Luis is nearsighted. To correct his vision, he wears a diverging eyeglass lens with a focal length of -0.50 m. When wearing glasses, Luis looks not at an object but at the virtual image of the object because that is the point from which diverging rays enter his eye. Suppose Luis, while wearing his glasses, looks at a vertical 10-cm-tall pencil that is 2.0 m in front of his glasses. Part A How far from his glasses is the image of the pencil? Express your answer with the appropriate units. s'] = 0.40 m Previous Answers ✓ Correct Luis is nearsighted. To correct his vision, he wears a diverging eyeglass lens with a focal length of -0.50 m. When wearing glasses, Luis looks not at an object but at the virtual image of the object because that is the point from which diverging rays enter his eye. Suppose Luis, while wearing his glasses, looks at a vertical 10-cm-tall pencil that is 2.0 m in front of his glasses. Y Part B What is the height of the image? Express your answer with the appropriate units. h' = 2.0 cm Previous Answers ✓ Correct Luis is nearsighted. To correct his vision, he wears a diverging eyeglass lens with a focal length of -0.50 m. When wearing glasses, Luis looks not at an object but at the virtual image of the object because that is the point from which diverging rays enter his eye. Suppose Luis, while wearing his glasses, looks at a vertical 10-cm-tall pencil that is 2.0 m in front of his glasses. Heview Constants Your answer to part b might seem to suggest that Luis sees everything as being very tiny. However, the apparent size of an object (or a virtual image) is determined not by its height but by the angle it spans. In the absence of other visual cues, a nearby short object is perceived as being the same size as a distant tall object if they span the same angle at your eye. From the position of the lens, what angle is spanned by the actual pencil 2.0 m away that Luis sees without his glasses? And what angle is spanned by the virtual image of the pencil that he sees when wearing his glasses? Express your answers in degrees and separated by a comma.

Answers

Answer 1

Part AThe object distance is u = -2.0 m, the focal length is f = -0.50 m and we are looking for the image distance which is given by the lens formula, 1/f = 1/v - 1/u1/-0.5=1/v-1/-2v=0.4 mTherefore, the image distance is 0.4 m.Part BThe magnification is given by the relation, m = -v/uUsing the values of v and u calculated above, we getm = -0.4/-2 = 0.2The magnification is positive which means that the image is erect and virtual.

The height of the object is h = 10 cm and we are looking for the height of the image, which is given byh' = mh = 0.2 × 10 = 2.0 cmThe height of the image is 2.0 cm.Angle CalculationThe angle spanned by an object at the eye depends on both the size and the distance of the object from the eye. The angle θ can be calculated using the relation,θ = 2tan⁻¹(h/2d)where h is the height of the object and d is its distance from the eye.1. For the object without glasses:

The object is 2.0 m away from the lens and has a height of 10 cm.θ1 = 2tan⁻¹(0.1/4) = 2.86 degrees2. For the image with glasses: The image is virtual and appears 0.4 m behind the lens.

The height of the image is 2.0 cm.θ2 = 2tan⁻¹(0.02/0.4) = 2.86 degreesTherefore, the angles spanned by the object and the image are the same and equal to 2.86 degrees.


Related Questions

A brick with a mass of 10 kg and a volume of 0.01 m³ is submerged in a fluid that has a density of 800 kg/m³. The brick will sink in the fluid. O True O False

Answers

The brick will sink in the fluid is true.

A brick with a mass of 10 kg and a volume of 0.01 m³ is submerged in a fluid that has a density of 800 kg/m³.

The density of an object is the ratio of mass to volume.

The mass of the brick is 10 kg and the volume is 0.01 m³.

So, the density of the brick is; Density = mass/volume = 10 kg/0.01 m³ = 1000 kg/m³

The density of the brick is 1000 kg/m³.

The density of the fluid is 800 kg/m³.

So, the brick will sink because the density of the brick is greater than the density of the fluid.

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There is a DFB-LD composed of InGaAsP with a central wavelength of 1550 nm and an effective refractive index of 3.6 (a) The change in oscillation wavelength according to the temperature of DFB-LD is +0.1 nm/°C. Assuming that wavelength tuning is performed due to the temperature change of TEC, what is the wavelength tuning range A if it is operated between -20 °C and 80 °C ? (b) We intend to produce a tunable laser array that can use the entire C-band (1525 nm to 1565 nm) using multiple channels of DFB-LD with different center wavelengths. If the temperature range of the TEC is operated between -20 °C and 80 °C, what is the minimum number of channels of DFB-LD required?

Answers

A) the wavelength tuning range A if it is operated between -20 °C and 80 °C is 10 nm

B) the minimum number of channels of DFB-LD required to span the entire C-band would be 4 channels.

(a) The change in oscillation wavelength according to the temperature of DFB-LD is +0.1 nm/°C.

Assuming that wavelength tuning is performed due to the temperature change of TEC, what is the wavelength tuning range A if it is operated between -20 °C and 80 °C?

The wavelength tuning range is determined by the minimum temperature of -20°C and the maximum temperature of 80°C, with a range of 100°C. For every degree of temperature increase, the oscillation wavelength increases by 0.1 nm.

The oscillation wavelength range can be found using the following equation:

A = Δλ/ΔT x ΔT

Where,

Δλ/ΔT = Temperature Coefficient of the device

ΔT = Change in temperature

A = Wavelength tuning range, we have,

Δλ/ΔT = +0.1 nm/°C

ΔT = (80 - (-20))°C = 100°C

So,

A = Δλ/ΔT x ΔT = +0.1 nm/°C x 100°C= 10 nm

(b) We intend to produce a tunable laser array that can use the entire C-band (1525 nm to 1565 nm) using multiple channels of DFB-LD with different center wavelengths. If the temperature range of the TEC is operated between -20 °C and 80 °C, what is the minimum number of channels of DFB-LD required?

To span the entire C-band (1525 nm to 1565 nm), we need to find the range of center wavelengths that is required. We can find this by finding the difference between the maximum wavelength of the C-band and the minimum wavelength of the C-band, which is,

1565 nm - 1525 nm = 40 nm

We know that for every degree of temperature increase, the oscillation wavelength increases by 0.1 nm. So, to span a wavelength range of 40 nm, we need to change the temperature by:

40 nm / 0.1 nm/°C = 400°C

To cover this range, we have a temperature range of 80 - (-20) = 100°C available to us.

Therefore, the minimum number of channels required to cover the full C-band would be:

400°C / 100°C = 4 channels

Hence, the minimum number of channels of DFB-LD required to span the entire C-band would be 4 channels.

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Write down the radar equation and analyze it. Discuss how to use
it to design the radar system

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The radar equation is a fundamental equation used in radar systems to calculate the received power at the radar receiver. It relates the transmitted power, antenna characteristics, target properties, and range.

Analyzing the radar equation helps understand the factors that influence radar system design and performance.

The radar equation is given as:

Pr = Pt * Gt * Gr * (λ^2 * σ * A) / (4 * π * R^4)

where:

Pr is the received power at the radar receiver,

Pt is the transmitted power,

Gt and Gr are the gain of the transmitting and receiving antennas respectively,

λ is the wavelength of the radar signal,

σ is the radar cross-section of the target,

A is the effective aperture area of the receiving antenna,

R is the range between the radar transmitter and the target.

By analyzing the radar equation, we can understand the factors that affect the received power and the design of a radar system. The transmitted power and the gains of the antennas influence the strength of the transmitted and received signals. The wavelength of the radar signal determines the resolution and target detection capabilities. The radar cross-section (σ) represents the reflectivity of the target and its ability to scatter the radar signal. The effective aperture area of the receiving antenna (A) determines the ability to capture and detect the weak reflected signals. The range (R) between the radar and the target affects the received power.

To design a radar system, the radar equation can be used to determine the required transmitted power, antenna characteristics, and sensitivity of the receiver to achieve a desired level of received power. The equation helps in optimizing the antenna gain, choosing the appropriate radar frequency, and considering the target characteristics. By understanding the radar equation and its parameters, engineers can design radar systems with the desired range, resolution, and target detection capabilities while considering factors such as power consumption, signal processing, and environmental conditions.

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heavy uniform beam of mass 25 kg and length 1.0 m is supported at rest by two ropes, as shown. The left rope is attached at the left end of the beam while the right rope is secured 3/4 of the beam's length away to the right. Determine the fraction of the beam's weight being supported by the rope on the right. In other words, determine: TR Wbeam 0 0 0.5 0.67 0.83 0.75

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The rope on the right can support the entire weight of the beam, so the fraction of the beam's weight being supported by that rope is 1 or 100%.

The fraction of the beam's weight being supported by the rope on the right can be determined by analyzing the torque equilibrium of the beam.

Let's denote the weight of the beam as W_beam.

Since the beam is uniform, we can consider its weight to act at its center of mass, which is located at the midpoint of the beam.

To calculate the torque, we need to consider the distances of the two ropes from the center of mass of the beam.

The left rope is attached at the left end of the beam, so its distance from the center of mass is 0.5 m.

The right rope is secured 3/4 of the beam's length away to the right, so its distance from the center of mass is 0.75 m.

In torque equilibrium, the sum of the torques acting on the beam must be zero.

The torque exerted by the left rope is TR (tension in the rope) multiplied by its distance from the center of mass (0.5 m), and the torque exerted by the right rope is TR multiplied by its distance from the center of mass (0.75 m).

Since the beam is at rest, the sum of these torques must be zero.

Therefore, we can set up the equation:

TR * 0.5 - TR * 0.75 = 0

Simplifying the equation, we find:

-0.25TR = 0

Since the left side of the equation is zero, the tension in the right rope (TR) can be any value.

This means that the right rope can support the entire weight of the beam, so the fraction of the beam's weight being supported by the rope on the right is 1.

In summary, the rope on the right can support the entire weight of the beam, so the fraction of the beam's weight being supported by that rope is 1 or 100%.

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Prove the effective thickness equation.

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To prove the effective thickness equation, we need to start with the basic equation for thermal resistance in a composite wall. The thermal resistance of a composite wall can be expressed as:

1/[tex]R_{total[/tex] = Σ[tex](L_i / k_i)[/tex],

where [tex]R_{total[/tex] is the total thermal resistance, [tex]L_i[/tex] is the thickness of each layer i, and [tex]k_i[/tex] is the thermal conductivity of each layer i.

Now, let's consider a composite wall consisting of multiple layers with varying thicknesses. The effective thickness ([tex]L_{eff[/tex]) is defined as the thickness of a single imaginary layer that would have the same thermal resistance as the composite wall. We want to derive an equation for [tex]L_{eff[/tex].

To begin, we can rewrite the thermal resistance equation for the composite wall as:

1/[tex]R_{total[/tex] = ([tex]L_1 / k_1) + (L_2 / k_2) + ... + (L_n / k_n)[/tex],

where n is the total number of layers in the composite wall.

Now, we introduce the concept of effective thermal conductivity ([tex]k_{eff)[/tex], which is the thermal conductivity that the composite wall would have if it were replaced by a single imaginary layer with thickness [tex]L_{eff[/tex]. We can express this as:

[tex]k_{eff[/tex] = Σ[tex](L_i / k_i[/tex]).

The effective thermal conductivity represents the ratio of the total thickness of the composite wall to the total thermal resistance.

Next, we can rearrange the equation for the effective thermal conductivity to solve for[tex]L_{eff[/tex]:

[tex]k_{eff = L_{eff / R_{total.[/tex]

Now, we can substitute the expression for the total thermal resistance ([tex]R_{total[/tex]) from the thermal resistance equation:

[tex]k_{eff = L_{eff / ((L_1 / k_1) + (L_2 / k_2) + ... + (L_n / k_n)[/tex]).

Finally, by rearranging the equation, we can solve for [tex]L_{eff[/tex]:

[tex]L_eff = k_eff / ((1 / L_1) + (1 / L_2) + ... + (1 / L_n)).[/tex]

This is the effective thickness equation, which gives the thickness of a single imaginary layer that would have the same thermal resistance as the composite wall.

The effective thickness equation allows us to simplify the analysis of composite walls by replacing them with a single equivalent layer. This concept is particularly useful when dealing with heat transfer calculations in complex systems with multiple layers and varying thicknesses, as it simplifies the calculations and reduces the system to an equivalent homogeneous layer.

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how can determine the frequency and wavelength of the sound when it hits a 15 feet tall tree

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The frequency of sound when it hits a 15 feet tall tree is 37.5 Hz and the wavelength is 9.144 meters.

The wavelength and frequency of sound can be determined when it hits a 15 feet tall tree by using the formula:

f = v/λ

Where,

f = frequency

v = velocity of sound

λ = wavelength

We can assume that the velocity of sound in air is 343 meters per second (m/s) at standard conditions (0°C and 1 atm pressure).  

To convert 15 feet to meters, we can use the conversion factor 1 foot = 0.3048 meters.

So,

15 feet = 15 × 0.3048

           = 4.572 meters.

The wavelength (λ) can be calculated using the formula:

λ = 2L

Where,

L = length of the tree = 4.572 meters

λ = 2 × 4.572λ = 9.144 meters

The frequency (f) can now be calculated using the formula:

f = v/λ

f = 343/9.144

f = 37.5 Hz

Therefore, the frequency of sound when it hits a 15 feet tall tree is 37.5 Hz and the wavelength is 9.144 meters.

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Question 1 1 pts After successfully clearing the bar during the pole vault, the vaulter falls to the landing cushion while trying to calculate the impending impulse which will break his fall. If his momentum is -980 kg.m/s and he has a velocity of -12.5 m/s just prior to landing, what is the mass of the vaulter? 98.1 ks 980.0 kg 78.4 kg BOOK After successfully clearing the bar during the pole vault, the vaulter falls to the landing cushion while trying to calculate the impending Impulse which will break his fall. If his momentum is -980 kg.m/s and he has a velocity of -12.5 m/s just prior to landing, what is the mass of the vaulter? 98.1 ks 980.0 kg 0 78.4 kg 80.0

Answers

Answer:  The mass of the vaulter is 78.4 kg.

After successfully clearing the bar during the pole vault, the vaulter falls to the landing cushion while trying to calculate the impending impulse which will break his fall.

Momentum = -980 kg.m/s

Velocity = -12.5 m/s

Impulse is the force acting for a specific time and it is given by: Impulse = Momentum = mass × velocity

Impulse = Momentum

Impulse = mass × velocity

mass = Impulse / velocity

Now, substitute the given values of impulse and velocity into the above equation: mass = Impulse / velocity= -980 kg.m/s / -12.5 m/s= 78.4 kg.

Therefore, the mass of the vaulter is 78.4 kg.

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A proton and a deuteron (a particle with the same charge as the proton, but with twice the mass) try to penetrate a barrier of rectangular potential of height 10 MeV and width 10⁻¹⁴ m. The two particles have kinetic energies of 3 MeV. (a) Use qualitative arguments to predict which of the particles have the highest probability of getting it, (b) Quantitatively calculate the probability of success for each of the particles.

Answers

A proton and a deuteron (a particle with the same charge as the proton, but with twice the mass) try to penetrate a barrier of rectangular potential of height 10 MeV and width 10⁻¹⁴ m. The two particles have kinetic energies of 3 MeV.

a) Qualitative prediction:

The potential energy barrier is quite high and very wide, which means that it is difficult for any of the two particles to penetrate the barrier. Since the deuteron has twice the mass of the proton, it will have a greater energy density. As a result, it will have a lower kinetic energy, which will make it less likely to overcome the barrier and penetrate it. As a result, a proton will have a greater probability of success when compared to a deuteron.  Hence, the proton has the highest probability of getting through the potential barrier.

b) Quantitative calculation:

For the calculation of the probability of success for each of the particles, the transmission coefficient is to be calculated. Transmission coefficient is the ratio of the probability of transmission of a particle to the probability of its incidence. We can calculate the transmission coefficient as follows:

L = e 2 4 π ε 0 Z E − R

By plugging the values in the above equation, we get approx 3.1 * 10^{-29} for proton and approx 8.5* 10^{-32} for deuteron

As we can see, the probability of success for the proton is much higher than that for the deuteron. Therefore, a proton has the highest probability of getting through the potential barrier.

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A track and field athlete applies a force of 150N the length of her arm (0.5m) directly upward to a 7.26kg shot put. How high does the shot put travel above her arm?

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The shot put travels approximately 1.08 meters above the athlete's arm.

To determine how high the shot put travels above the athlete's arm, we need to consider the work done by the athlete's force and the change in gravitational potential energy of the shot put.

The work done by the athlete's force is given by the formula:

Work = Force × Distance × cos(θ)

In this case, the force applied is 150 N, the distance is 0.5 m (the length of the athlete's arm), and θ is the angle between the force and the displacement, which is 0 degrees since the force is applied directly upward.

Therefore, cos(θ) is equal to 1.

Work = 150 N × 0.5 m × cos(0°) = 75 joules

The work done by the athlete's force is equal to the change in gravitational potential energy of the shot put:

Work = ΔPE

ΔPE = m × g × h

Where m is the mass of the shot put (7.26 kg), g is the acceleration due to gravity (approximately 9.8 m/s²), and h is the height above the athlete's arm.

Substituting the known values:

75 joules = 7.26 kg × 9.8 m/s² × h

Simplifying the equation:

h = 75 joules / (7.26 kg × 9.8 m/s²)

h ≈ 1.08 meters

Therefore, the shot put travels approximately 1.08 meters above the athlete's arm.

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. Sunlight falls on a soap film 360 nm thick. The soap film has an index of 1.25 and lies on top of water of index 1.33. Find (a) the wavelength of visible light most strongly reflected, and (b) the wavelength of visible light that is not seen to reflect at all. Estimate the colors.

Answers

(a) The wavelength of visible light most strongly reflected is 720 nm. This corresponds to the color red in the visible spectrum.(b) The soap film will strongly reflect red light (720 nm) and not reflect violet light (240 nm), giving rise to the colors observed in thin film interference.

The wavelength of visible light most strongly reflected and the wavelength of visible light that is not seen to reflect at all, we can use the principles of thin film interference.

(a) The wavelength of visible light most strongly reflected can be determined using the equation for constructive interference in a thin film:

2t = mλ

where t is the thickness of the film, λ is the wavelength of light, and m is the order of the interference. In this case, we are looking for the first-order interference (m = 1).

t = 360 nm = 360 x 10^-9 m

n1 (index of soap film) = 1.25

n2 (index of water) = 1.33

We can rearrange the equation to solve for λ:

λ = 2t / m

For m = 1:

λ = 2(360 x 10^-9 m) / 1

  = 720 x 10^-9 m

  = 720 nm

So, the wavelength of visible light most strongly reflected is 720 nm. This corresponds to the color red in the visible spectrum.

(b) The wavelength of visible light that is not seen to reflect at all corresponds to the wavelength of light that experiences destructive interference. In this case, we can use the equation:

2t = (m + 1/2)λ

Using the same values as before, we can solve for λ:

λ = 2t / (m + 1/2)

For m = 1:

λ = 2(360 x 10^-9 m) / (1 + 1/2)

  = 2(360 x 10^-9 m) / (3/2)

  = (2/3)(360 x 10^-9 m)

  = 240 x 10^-9 m

  = 240 nm

So, the wavelength of visible light that is not seen to reflect at all is 240 nm. This corresponds to the color violet in the visible spectrum.

Therefore, the soap film will strongly reflect red light (720 nm) and not reflect violet light (240 nm), giving rise to the colors observed in thin film interference.

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A laser emits radiations with a wavelength of λ=470 nm. How many photons are emitted per second if the laser has a power of 1.5 mW?

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The number of photons emitted per second is 7.4 × 10^14 photons/second when a laser emits radiations with a wavelength of λ = 470 nm and has a power of 1.5 mW.

The given values are:Power, P = 1.5 mWavelength, λ = 470 nmWe can use the formula to find the number of photons emitted per second.N = P / (E * λ)Where,N is the number of photons emitted per secondP is the power of the laserE is the energy of each photonλ is the wavelength of the lightE = hc / λ.

Where,h is the Planck's constant (6.626 × 10^-34 J s)c is the speed of light (3 × 10^8 m/s)Putting the given values in E = hc / λWe get,E = (6.626 × 10^-34) × (3 × 10^8) / (470 × 10^-9)E = 4.224 × 10^-19 JNow, putting the values of P, E, and λ in the above equation:N = P / (E * λ)N = (1.5 × 10^-3) / (4.224 × 10^-19 × 470 × 10^-9)N = 7.4 × 10^14 photons/second.

Therefore, the number of photons emitted per second is 7.4 × 10^14 photons/second when a laser emits radiations with a wavelength of λ = 470 nm and has a power of 1.5 mW.

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A heavy crate rests on an unpolished surface. Pulling on a rope attached to the heavy crate, a laborer applies a force which is insufficient to move it. From the choices presented, check all of the forces that should appear on the free body diagram of the heavy crate.
The force of kinetic friction acting on the heavy crate. An inelastic or spring force applied to the heavy crate. The force on the heavy crate applied through the tension in the rope. The force of kinetic friction acting on the shoes of the person. The force of static friction acting on the heavy crate. The weight of the person. The force of static friction acting on the shoes of the person. The weight of the heavy crate. The normal force of the heavy crate acting on the surface. The normal force of the surface acting on the heavy crate.

Answers

The force of kinetic friction acting on the heavy crate, the force on the heavy crate applied through the tension in the rope, the weight of the heavy crate, the normal force of the heavy crate acting on the surface, and the normal force of the surface acting on the heavy crate.

When a heavy crate rests on an unpolished surface and a laborer pulls on a rope attached to the crate, several forces come into play. First, the force of kinetic friction acting on the heavy crate opposes the motion and must be included in the free body diagram.

Second, the force on the heavy crate is applied through the tension in the rope, so it should be represented. Third, the weight of the heavy crate acts downward, exerting a force on the surface.

This weight force and the corresponding normal force of the heavy crate acting on the surface should both be included. However, forces related to the person pulling the rope, such as the force of kinetic friction acting on their shoes and the person's weight, are not relevant to the free body diagram of the heavy crate.

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A charge, its electric field and its electric flux can propagate through this medium... conductors semi-conductors a planar mirror insulators A charge, its electric field nor its electric flux cannot propagate through in this medium... conductor sacrificial anode insulator water

Answers

A charge, its electric field, and its electric flux can propagate through conductors, semiconductors, and insulators. However, they cannot propagate through planar mirrors.

Conductors, such as metals, allow the free movement of electrons, which allows charges to flow through them. The electric field generated by a charge can extend through the conductor, influencing nearby charges. Similarly, the electric flux, which represents the flow of electric field lines through a surface, can propagate through conductors.

Semiconductors, like silicon, have properties between conductors and insulators. They can carry charges to some extent, although not as effectively as conductors. Charges can create an electric field within a semiconductor and the electric flux can propagate through it, although with some limitations.

Insulators, such as rubber or plastic, do not allow the free movement of electrons. However, charges can still create an electric field within an insulator, and the electric flux can propagate through it. Insulators have high resistance to the flow of charges.

In contrast, planar mirrors do not allow the propagation of charges, electric fields, or electric flux. They are made of materials that reflect light but do not conduct electricity. Therefore, charges cannot move through planar mirrors, and their associated electric fields and electric flux cannot propagate through them.

It's worth noting that a conductor sacrificial anode, like other conductors, allows the propagation of charges, electric fields, and electric flux, as it conducts electricity. Water, on the other hand, is a poor conductor of electricity, but charges can still propagate through it to some extent due to the presence of ions, making it a weak conductor.

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Water flows through a garden hose (radius =1.5 cm ) and fills a tub of volume V=670 Liters in Δt=6.0 minutes. What is the speed of the water in the hose in meters per second?

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For the volume of 670 liters and the time of 6.0 minutes, the speed of the water in the hose is approximately 0.043 meters per second.

The speed of water in the hose can be calculated by dividing the volume of water that flows through the hose by the time it takes to fill the tub.

Given that the volume is 670 liters and the time is 6.0 minutes, we can determine the speed of the water in meters per second.

To find the speed of the water in the hose, we need to convert the given volume and time into consistent units.

First, let's convert the volume from liters to cubic meters.

Since 1 liter is equal to 0.001 cubic meters, we have:

V = 670 liters = 670 * 0.001 cubic meters = 0.67 cubic meters

Next, let's convert the time from minutes to seconds.

Since 1 minute is equal to 60 seconds, we have:

Δt = 6.0 minutes = 6.0 * 60 seconds = 360 seconds

Now, we can calculate the speed of the water using the formula:

Speed = Volume / Time

Speed = 0.67 cubic meters / 360 seconds ≈ 0.00186 cubic meters per second

Since the speed is given in cubic meters per second, we can convert it to meters per second by taking the square root of the speed:

Speed = √(0.00186) ≈ 0.043 meters per second

Therefore, the speed of the water in the hose is approximately 0.043 meters per second.

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. A ray of light travels in a glass and exits into the air. The critical angle of the glass-air interface is 39 ∘
. Select possible correct pairs of angles of incident and refraction. 2 The speed of red light in glass A is faster than in glass B. Which of the following is/are TRUE? A. The index of refraction of B is higher than A. B. The speed of light in A is lower than in the air. C. The frequency of the red light is the same in both glasses. 3. Which of the following statement is/are TRUE about the polarization of waves? A. Sound waves can exhibit a polarization effect. B. Polarization is an orientation of an oscillation. C. Radiowave cannot be polarized because it is invisible. 4. Which of the following optical phenomena causes the change in the wavelength of a wave? A. Reflection B. Refraction C. Diffraction 5. Unpolarised light of intensity, I o

passes through three polarisers as shown in FIGURE 2. The second and third polarizers are rotated at angles θ 1

and θ 2

relative to the vertical line. θ 2

is set to 80 ∘
. What is/are the possible values of θ 1

and I 2

? 6. Which of the following optical elements always produce a virtual image? A. Positive lens B. Diverging lens C. Convex mirror 7. FIGURE 3 shows a television receiver which consists of a dish and the signal collector on a house roof. It receives radio waves from a long-distance transmitter containing information about television programs. Which statement is/are TRUE about the receiver? A. The receiver applies the effect of wave reflection. B. The receiver acts as a lens to focus received radiowaves. C. The receiver changes the wavelength of the received radio waves. 8. Which of the following lens has a positive focal length? 9. An image has twice the magnification of its object and is located on the opposite side of the object. The possible optical element(s) which can produce the condition is/are A. positive lens. B. concave lens. C. concave mirror. 10. An object and a converging mirror are positioned with the labelled focal point, F, as shown in FIGURE 4. Which ray(s) come(s) from the object's tip? FIGURE 4 11. Farhan has a far point of 90 cm. Which of the following is TRUE about her? A. He can use a concave mirror to correct her vision. B. He could not sharply see an object beyond 90 cm from his eyes. C. He can use contact lenses with negative optical power to correct her vision.

Answers

2 A. The index of refraction of B is higher than A.B. The speed of light in A is lower than in the air.C.

The frequency of the red light is the same in both glasses. 3. B. Polarization is an orientation of an oscillation.4. B. Refraction 5. θ1 = 50°, I2 = Io/4.6. C. Convex mirror. 7. A. The receiver applies the effect of wave reflection. 8. Positive lens. 9. A. Positive lens.10. Ray 1 and Ray 3 come from the object's tip.

B. He could not sharply see an object beyond 90 cm from his eyes.Explanation:2. If the speed of light in A is faster than in B, then the index of refraction of A will be lower than in B. So, statement A is not true, statement B is true and the frequency of the red light will be the same in both glasses because the medium change does not affect the frequency of the light.3. Polarization is an orientation of an oscillation. It is a property of transverse waves, including electromagnetic waves such as light and radio waves.4. Refraction is the bending of light when it passes from one transparent medium to another transparent medium. When light travels through different mediums, the speed changes, and this changes the direction of light. This change in direction and speed is called refraction.5. The intensity of unpolarized light after passing through the first polarizer is Io/2 and after passing through the second polarizer, it becomes Io/4.

The final intensity of light depends on the angle between the two polarizers. The value of θ1 can be calculated using the formula, I2 = Io/4 cos²(θ1 - θ2).6. A convex mirror always produces a virtual image that is smaller than the object and appears closer to the mirror than the actual object.7. The signal collector on the house roof of a TV receiver works based on the reflection of radio waves. The curved dish acts as a reflector to focus the incoming radiowaves on the signal collector.8. A positive lens is a lens that converges incoming light rays and has a positive focal length. Convex lens is a positive lens.9. The magnification produced by a lens or mirror depends on the focal length of the element. Only positive lenses have positive focal lengths. So, a positive lens will produce twice the magnification of the object and will be located on the opposite side of the object.10. Ray 1 and Ray 3 come from the object's tip. Ray 1 is parallel to the principal axis of the mirror and after reflection from the mirror passes through the focal point F. Ray 3 passes through the focal point F before reflection from the mirror and becomes parallel to the principal axis of the mirror after reflection.11. Farhan has a far point of 90 cm. It means he cannot see a distant object beyond 90 cm from his eyes.

This means his eye's accommodation power is weak. To correct this condition, he can use concave lenses with negative optical power, not concave mirrors.

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Water from a fire hose is directed horizontally against a wall at a rate of 50.0 kg/s and a speed of 42.0 m/s. Calculate the magnitude of the force exerted on the wall, assuming the waters horizontal momentum is reduced to zero

Answers

The magnitude of the force exerted on the wall is large but not infinite.

To determine the magnitude of the force exerted on the wall, we can use the principle of conservation of momentum. The initial momentum of the water stream is given by the product of its mass and velocity:

Initial momentum = mass × velocity = 50.0 kg/s × 42.0 m/s = 2100 kg·m/s

Since the water's horizontal momentum is reduced to zero, the final momentum is zero:

Final momentum = 0 kg·m/s

According to the conservation of momentum, the change in momentum is equal to the impulse applied, which can be calculated using the equation:

Change in momentum = Final momentum - Initial momentum

0 kg·m/s - 2100 kg·m/s = -2100 kg·m/s

The negative sign indicates that the change in momentum is in the opposite direction to the initial momentum. By Newton's third law of motion, this change in momentum is equal to the impulse exerted on the wall. Therefore, the magnitude of the force exerted on the wall is equal to the change in momentum divided by the time it takes for the water to come to rest.

Assuming the water comes to rest almost instantaneously, we can approximate the time taken as very small (approaching zero). In this case, the force can be approximated as infinite. However, in reality, the force would be large but finite, as it takes some time for the water to slow down and come to rest completely.

It's important to note that this approximation assumes idealized conditions and neglects factors such as water absorption by the wall or the reaction force of the wall. In practice, the wall would experience a large force but not an infinite one.

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direct current, as shown in the figure, the average value of the magnetic field measured in the sides is 6.3G. What is the current in the wire? พ

Answers

We cannot directly calculate the current passing through the wire. We would need additional information such as the distance from the wire to calculate the current.

In order to find out the current in the wire, let's first understand the concept of magnetic field in direct current.Direct current is an electric current that flows in a constant direction.

The magnetic field produced by a straight wire carrying a direct current is in the form of concentric circles around the wire. The magnitude of this magnetic field is directly proportional to the current passing through the wire. This magnetic field can be measured using a magnetic field sensor.The average value of the magnetic field measured in the sides is 6.3G.

Therefore, using the formula for magnetic field due to a straight wire, we get:B = μ₀I/2πrwhere B is the magnetic field, μ₀ is the permeability of free space (4π x 10⁻⁷ T m/A), I is the current passing through the wire, and r is the distance from the wire.In this case, the distance from the wire is not given.

Therefore, we cannot directly calculate the current passing through the wire. We would need additional information such as the distance from the wire to calculate the current.

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A 350−Ω resistor, an uncharged 2.5−μF capacitor, and a 3−V battery are connected in series. (a) What is the initial current? (b) What is the RC time constant? (c) What is the current after one time constant? (d) What is the voltage on the capacitor after one time constant? a. The initial current through the circuit is mA. b. The RC time constant is ms. c. The current through the circuit after one time constant is mA. d. The voltage on the capacitor after one time constant is V. The label on a battery-powered radio recommends the use of a rechargeable nickel-cadmium cell (nicads), Ithough it has a 1.25-V open-circuit voltage, whereas an alkaline cell has a 1.58-V open-circuit voltage. he radio has a 3.2Ω resistance. a. With a nicad cell, having an internal resistance of 0.04Ω, what is the voltage supplied to the radio, if a single nicad cell is used? The voltage supplied to the radio is V. b. With an alkaline cell, having an internal resistance of 0.2Ω, what is the voltage supplied to the radio, if a single alkaline cell is used? The voltage supplied to the radio is V. c. The radio's effective resistance is lowered when its volume is turned up. At what value of radio's resistance does a nicad cell begin to supply a greater voltage to the radio than an alkaline cell? When the radio has an effective resistance of Ω or smaller, a greater voltage can be obtained with a nicad cell.

Answers

The current through the circuit after one time constant is approximately 3.16 mA. The voltage on the capacitor after one time constant is approximately 2.21 V. The voltage supplied to the radio using an alkaline cell is approximately 1.55 V.

(a) To find the initial current, we can use Ohm's Law, which states that current (I) is equal to voltage (V) divided by resistance (R). In this case, the voltage is 3V and the resistance is 350Ω. Therefore, the initial current is:

I = V / R = 3V / 350Ω

(b) The RC time constant is given by the product of the resistance and the capacitance in the circuit. In this case, the resistance is 350Ω and the capacitance is 2.5μF. Therefore, the RC time constant is:

RC = R * C = 350Ω * 2.5μF

(c) After one time constant, the current through the circuit has decayed to approximately 36.8% of its initial value. Therefore, the current after one time constant is:

[tex]I_{after = I_{initial[/tex]l * e^(-1) ≈[tex]I_{initial[/tex]* 0.368

(d) The voltage on the capacitor after one time constant can be calculated using the formula for charging a capacitor in an RC circuit. The voltage on the capacitor ([tex]V_c[/tex]) after one time constant is:

[tex]V_c[/tex] = V * (1 - e^(-1)) ≈ V * 0.632

For the second part of the question:

(a) To find the voltage supplied to the radio using a nicad cell, we need to consider the internal resistance of the cell. The voltage supplied to the radio can be calculated using Ohm's Law:

[tex]V_{supplied = V_{cell - I * r_internal[/tex]

where [tex]V_{cell[/tex] is the open-circuit voltage of the cell, I is the current flowing through the cell, and [tex]r_{internal[/tex] is the internal resistance of the cell.

(b) Similarly, to find the voltage supplied to the radio using an alkaline cell, we use the same formula as in part (a), but with the values specific to the alkaline cell.

(c) To determine the value of the radio's resistance at which the nicad cell supplies a greater voltage than the alkaline cell, we set up the equation:

[tex]V_{nicad = V_{alkaline[/tex]

Solving this equation for the resistance will give us the threshold value.

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Which of the following vectors is equivalent to 50 [553°E]? a. [-30,40] b. [40, -30] c. [-40, 30] d. [-40, -30] 2. Which of the following vectors is not collinear with the others? a. [-3,7] b. [6,-14] c. [-30, 70] d. [9, 21] 3. Determine the result of the dot product: [3,-4] [2,5] a. [6, -20] b. 14 C. -14 d. 26 4. Which of the following expressions involving dot product and cross product cannot be evaluated? a. (a.b) × (d.d) c. (a. b) + (ĉ. d) d. (axb). (¿xd) b. (axb) x (exd) 5. Albert is pushing his broken-down car. He pushed with a force of 8000 N at an angle of 10° to the horizontal to move the car 20 metres. How much work has Albert done? a. 75175 Nm. b. 160000 Nm c. 27784 Nm d. 157569 Nm 6. Determine the result of the cross product: [1, -2,3] x [-4,5,-6] b. [3, 6, 3] c. [27,-18, 13] a. [-3, -6, -3] d. [7,-8, 9] 7. Determine the angle between the vectors [1, 2, 3] and [4, 5, 6] a. 15.2° b. 12.9 c. 13.1 d. 0.97 8. For what value(s) of k are the two vectors [k, 2, 3] and [1, k, -2] perpendicular to each other? a. k = 2 and -2 b. k=2 c. k=-2 k=3 9. Choose the vector equation of a line through the point (4, 7) with direction vector m = [1, 5). a. (x, y) = [1, 5] + t[4, 7] c. (x, y] H [4, 7) + t[-5, 1) b. (x, y) = [1, 5] + t[-7,4] d. [x, y] [4, 7] + t(1, 5] 10. Which of the following is a scalar equation of the line with vector equation [x, y] [1, 3] + t[-1, -2]? a. 2x+y+1=0 b. x+2y-1=0 6.2x-y+1=0 d. x-2y+1=0 11. Which of the following is a vector equation of the line 2x - y = 7? a. [x, y] [4, 3] + t[1, 2] b. [x, y] = [2, 7] + [2, 4] 12. Which of the following does not have a normal of [1, 1, 1]? a. [x, y, z) = [2, 3, 1] + [-2, 3, -1] b. [x, y, z] [19, 12, 7] + t[-4, 5, -2] c. [x, y] = [4, 1] + t[2, -1] d. [x, y] = [5, 3] + t[-3, -6] c. [x, y, z) = [4, 0, 1] + t[1, 0, -1] d. [x, y, z]= [0, 0, 0] + [13, -7, -6]

Answers

Answer:

1. Option c. [-40, 30].

2. Option c. [-30, 70].

3. Option b. 14.

4. Option d. (axb) x (exd).

5. Option d. 157569 Nm.

6. Option c. [27, -18, 13].

7. Option a. 15.2°.

8. Option k = 2 and -2.

9. Option b. (x, y) = [1, 5] + t[-7, 4].

10. Option  c. 6.2x-y+1=0.

11. Option a. [x, y] = [4, 3] + t[1, 2].

12. Option d. [x, y] = [5, 3] + t[-3, -6].

Here's an explanation:

1. The vector equivalent to 50 [553°E] is c. [-40, 30].

2. The vector that is not collinear with the others is c. [-30, 70].

3. The result of the dot product of [3, -4] and [2, 5] is b. 14.

4. The expression that cannot be evaluated is d. (axb) x (exd).

5. The work that Albert has done is d. 157569 Nm.

6. The result of the cross product of [1, -2, 3] and [-4, 5, -6] is c. [27, -18, 13].

7. The angle between the vectors [1, 2, 3] and [4, 5, 6] is a. 15.2°.

8. The value of k that makes the two vectors [k, 2, 3] and [1, k, -2] perpendicular to each other is k = 2 and -2.

9. The vector equation of a line through the point (4, 7) with direction vector m = [1, 5) is b. (x, y) = [1, 5] + t[-7, 4].

10. The scalar equation of the line with vector equation [x, y] = [1, 3] + t[-1, -2] is c. 6.2x-y+1=0.

11. The vector equation of the line 2x - y = 7 is a. [x, y] = [4, 3] + t[1, 2].

12. The equation that does not have a normal of [1, 1, 1] is d. [x, y] = [5, 3] + t[-3, -6].

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In the figure, a horse pulls a barge along a canal by means of a rope. The force on the barge from the rope has a magnitude of 7910N and is at the angle θ=15 ∘
from the barge's motion, which is in the positive direction of an x axis extending along the canal. The mass of the barge is 9500 kg, and the magnitude of its acceleration is 0.12 m/s 2
. What are (a) the magnitude and (b) the direction (measured from the positive direction of the x axis) of the force on the barge from the water? Give your answer for (b) in the range of (−180 ", 180%

Answers

Thus, the direction of the force on the barge from the water is -57° relative to the positive direction of the x-axis.

(a) The magnitude of the force on the barge from the water is 1.15 × 10^4 N.(b) The direction of the force on the barge from the water is -57° relative to the positive direction of the x-axis.In the given figure, a horse is pulling a barge along a canal by means of a rope.

The force on the barge from the rope has a magnitude of 7910 N and is at an angle of θ = 15° from the barge's motion, which is in the positive direction of an x-axis extending along the canal.

The mass of the barge is 9500 kg, and the magnitude of its acceleration is 0.12 m/s^2.(a) Magnitude of the force on the barge from the water:Let's find out the magnitude of the force on the barge from the water:We know that,F_net = m × aWhere,F_net = Net force acting on the barge = Force exerted by the rope - Force exerted by the water

Thus,F_net = 7910 N - F_wNet force F_net = (9500 kg)(0.12 m/s^2)F_net = 1140 NThus,7910 N - F_w = 1140 N- F_w = -6770 N|F_w| = 6770 NThus, the magnitude of the force on the barge from the water is 1.15 × 10^4 N.(b) Direction of the force on the barge from the water:

The direction of the force on the barge from the water is given by:θ = tan⁻¹(F_w/F_net)θ = tan⁻¹(-6770/7910)θ = -37.23°

Thus, the direction of the force on the barge from the water is -57° relative to the positive direction of the x-axis.

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Final answer:

This problem involves using Newton's second law in two dimensions. We can find the magnitude and direction of the force from the water by setting up and solving equations for the forces in the horizontal and vertical directions.

Explanation:

This problem relates to Newton’s second law of motion in two dimensions and can be solved by considering the forces in both the x and y direction. Given that the total force acting on the barge is the sum of the force from the rope and the force from water, we have the equations:

F_total = F_rope + F_water = m*a.

For the x direction (horizontal): m*a = F_rope_cos(θ) – F_water_x,

and for the y direction (vertical): 0 = F_rope_sin(θ) + F_water_y.

To find the magnitude (a) and the direction (b) of the water force, you can solve these equations considering that the force from the rope is 7910N at an angle of 15 degrees from the horizontal, the mass of the barge is 9500kg and its acceleration is 0.12m/s².

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A single mass m1 = 3.4 kg hangs from a spring in a motionless elevator. The spring is extended x = 14 cm from its unstretched length.
1)
What is the spring constant of the spring? 238
N/m
2)
Now, three masses m1 = 3.4 kg, m2 = 10.2 kg and m3 = 6.8 kg hang from three identical springs in a motionless elevator. The springs all have the same spring constant that you just calculated above.
What is the force the top spring exerts on the top mass?199.92
N
3)
What is the distance the lower spring is stretched from its equilibrium length?28
cm
4)
Now the elevator is moving downward with a velocity of v = -2.6 m/s but accelerating upward with an acceleration of a = 5.3 m/s2. (Note: an upward acceleration when the elevator is moving down means the elevator is slowing down.)
102
What is the force the bottom spring exerts on the bottom mass?
N
5)
What is the distance the upper spring is extended from its unstretched length?128.6
cm
8)
What is the distance the MIDDLE spring is extended from its unstretched length? LOOKING FOR ANSWER TO #8

Answers

1) A single mass m1 = 3.4 kg hangs from a spring in a motionless elevator. The spring is extended x = 14 cm from its unstretched length.We have to calculate the spring constant of the spring.The spring constant of the spring is given by the equation below:k = (m*g) / xwhere,m = mass of the object,  m1 = 3.4 kgx = displacement = 14 cm = 0.14 m  g = 9.8 m/s², acceleration due to gravitySubstitute the given values in the above equation to get;k = (m*g) / xk = (3.4 kg * 9.8 m/s²) / (0.14 m)k = 238 N/m2) Now, three masses m1 = 3.4 kg, m2 = 10.2 kg and m3 = 6.8 kg hang from three identical springs in a motionless elevator. The springs all have the same spring constant that you just calculated above.

We have to calculate the force the top spring exerts on the top mass.The force the top spring exerts on the top mass is given by the equation below;F1 = k * x1where,F1 = force exerted by the top spring on the top mass,  k = spring constant = 238 N/mx1 = displacement of the top spring = 14 cm = 0.14 mSubstitute the given values in the above equation to get;F1 = k * x1F1 = 238 N/m * 0.14 mF1 = 33.32 N3) We have to calculate the distance the lower spring is stretched from its equilibrium length.The displacement of the lower spring can be found using the equation for force exerted by a spring;F2 = k * x2where, F2 = force exerted by the middle spring, k = spring constant = 238 N/mx2 = displacement of the middle spring from the equilibrium length.

The force exerted by the middle spring is equal to the sum of the weights of the middle and the lower blocks since they are connected by the same spring. Thus,F2 = (m2 + m3) * gSubstituting the given values in the above equation,m2 = 10.2 kgm3 = 6.8 kgg = 9.8 m/s²F2 = (10.2 kg + 6.8 kg) * 9.8 m/s²F2 = 147.56 NThus,F2 = k * x2Therefore, x2 = F2 / k = 147.56 N / 238 N/m = 0.62 m = 62 cm.4) We have to calculate the force the bottom spring exerts on the bottom mass.The force the bottom spring exerts on the bottom mass is given by the equation below;F3 = m3 * (g - a)where,F3 = force exerted by the bottom spring,  m3 = 6.8 kg  g = 9.8 m/s², acceleration due to gravitya = 5.3 m/s², acceleration of the elevator in upward direction.

Substituting the given values in the above equation,F3 = m3 * (g - a)F3 = 6.8 kg * (9.8 m/s² - 5.3 m/s²)F3 = 29.96 N5) We have to calculate the distance the upper spring is extended from its unstretched length.The force exerted by the upper spring is equal to the sum of the weights of all the three blocks since they are connected by the same spring. Thus,F = (m1 + m2 + m3) * gSubstituting the given values in the above equation,m1 = 3.4 kgm2 = 10.2 kgm3 = 6.8 kgg = 9.8 m/s²F = (3.4 kg + 10.2 kg + 6.8 kg) * 9.8 m/s²F = 981.6 N

The displacement of the upper spring can be found using the equation for force exerted by a spring;F = k * xwhere,F = 981.6 Nk = spring constant = 238 N/mx = displacement of the upper spring from the equilibrium length.Substituting the given values in the above equation,x = F / k = 981.6 N / 238 N/m = 4.12 m = 412 cm.8) We have to calculate the distance the MIDDLE spring is extended from its unstretched length.The force exerted by the middle spring is equal to the sum of the weights of the middle and the lower blocks since they are connected by the same spring.

Thus,F = (m2 + m3) * gSubstituting the given values in the above equation,m2 = 10.2 kgm3 = 6.8 kgg = 9.8 m/s²F = (10.2 kg + 6.8 kg) * 9.8 m/s²F = 147.56 NThe displacement of the middle spring can be found using the equation for force exerted by a spring;F = k * xwhere,F = 147.56 Nk = spring constant = 238 N/mx = displacement of the middle spring from the equilibrium length.Substituting the given values in the above equation,x = F / k = 147.56 N / 238 N/m = 0.62 m = 62 cm.

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Halley's comet, which passes around the Sun every 76 years, has an elliptical orbit. When closest to the Sun (perihelion) it is at a distance of 8.823 x 100 m and moves with a speed of 54.6 km/s. When farthest from the Sun (aphelion) it is at a distance of 6.152 x 10¹2 m and moves with a speed of 783 m/s. Part A Find the angular momentum of Halley's comet at perihelion. (Take the mass of Halley's comet to be 9.8 x 10¹4 kg.)

Answers

The angular momentum of Halley's comet at perihelion is 5.92 x 10^17 kg⋅m²/s.

Angular momentum (L) is defined as the product of the moment of inertia (I) and the angular velocity (ω) of an object. In this case, we can calculate the angular momentum of Halley's comet at perihelion using the formula L = I * ω.

The moment of inertia of a point mass rotating around a fixed axis is given by I = m * r², where m is the mass and r is the distance from the axis of rotation. In this case, the mass of Halley's comet is given as 9.8 x 10^14 kg, and at perihelion, the distance from the Sun is 8.823 x 10^10 m. Therefore, we can calculate the moment of inertia as I = (9.8 x 10^14 kg) * (8.823 x 10^10 m)².

The angular velocity (ω) can be calculated by dividing the linear velocity (v) by the radius (r) of the orbit. At perihelion, the linear velocity of the comet is given as 54.6 km/s, which is equivalent to 54.6 x 10^3 m/s. Dividing this by the distance from the Sun at perihelion (8.823 x 10^10 m), we obtain the angular velocity ω.

Substituting the values into the formula L = I * ω, we can calculate the angular momentum of Halley's comet at perihelion.

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Calculate the heat flux into the subsurface, the nel radiation emited is 88 sensible heat flux to the air is 3, no energy trapped during photosynthesis, heat aborted by vegetation is 14 and latent heat flux 4 Report the answer as a whole number with zero decimal place Scientific exponential notation is not allowed eg 10-4 • Spaces are not allowed Calculate the heat flux into the subsurface, the nel radiation emited is 88 sensible heat flux to the air is 3, no energy trapped during photosynthesis, heat aborted by vegetation is 14 and latent heat flux 4 Report the answer as a whole number with zero decimal place Scientific exponential notation is not allowed eg 10-4 • Spaces are not allowed

Answers

Answer: the heat flux into the subsurface is 67.

The heat flux into the subsurface can be calculated using the following formula; Qsub = Qnet - Qs - Qv - Qh - Qp Where,

Qsub = heat flux into the subsurface,

Qnet = net radiation emitted,

Qs = sensible heat flux to the air,

Qv = latent heat flux,

Qh = heat absorbed by vegetation,

Qp = energy trapped during photosynthesisGiven,

Qnet = 88Qs = 3Qv = 4Qh = 14Qp = 0

Now, substituting the given values into the above equation; Qsub = 88 - 3 - 4 - 14 - 0= 67

Hence, the heat flux into the subsurface is 67. Answer: 67

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A cooling fan is turned off when it is running at 9.2 rad/s. It turns 25 rad before it comes to a stop. What is the fan's angular acceleration in rad/s?? -1.48 -1.69 -1.73 -158 An iron object of density 7.80g/cm appears 27 N lighter in water than in air. What is the volume of the object?

Answers

a. the angular acceleration in rad/s² of the cooling fan is -16.16 rad/s². Hence, the correct option is -16.16 rad/s².

b. the volume of the iron object is 0.35 cm³. Thus, the correct option is 0.35.

a. The angular acceleration in rad/s² of the cooling fan that has been turned off when running at 9.2 rad/s and it turns 25 rad before it comes to a stop can be calculated using the formula shown below:

ωf = 0rad/s;

ωi = 9.2rad/s;

θ = 25 rad(ωf)² = (ωi)² + 2αθ

α = (ωf² - ωi²)/2θ

α = ((0)² - (9.2)²)/2(25)

α = -16.16 rad/s²

b. The volume of an iron object of density 7.80g/cm appears 27 N lighter in water than in air can be calculated using the formula shown below:

Buoyant force = mg

Apparent weight in water = Weight in air - Buoyant force

Therefore, 27 = mg - ρVg

27 = g(m - ρV)

V = (m - ρV) / ρV = (m / ρ) - 1

V = (27 / 9.8 x 7.80) - 1

V = 0.35 cm³

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A ray of light indexes on a smooth surface and makes an angle of 10° with the surface.
What is the angle of incidence?
a) 10° b) 20° c) 50° d) 40° e) 80°

Answers

The angle of incidence in this scenario is 10°.The angle of incidence is the angle between the incident ray (the incoming ray of light) and the normal to the surface it strikes.

In this case, the problem states that the ray of light indexes on a smooth surface and makes an angle of 10° with the surface. Since the angle of incidence is defined as the angle between the incident ray and the normal, and the surface is smooth (presumably meaning it is flat), the normal to the surface would be perpendicular to the surface.

Therefore, the angle of incidence is equal to the angle that the incident ray makes with the surface, which is given as 10°. Hence, the correct answer is option a) 10°.

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A seated musician plays an A*5 note at 932 Hz. How much time At does it take for 796 air pressure maxima to pass a stationary listener? Δt = ______ s You would like to express the air pressure oscillations at a point in space in the given form. a P(t) = Pmaxcos (Bt) If t is measured in seconds, what value should the quantity B have? B=_____
If t is measured in seconds, what units should the quantity B have?

Answers

The quantity B in the expression for air pressure oscillations 5866.25 rad/s. The units of B are radians per second (rad/s), regardless of the unit chosen for measuring time.

To find the time it takes for 796 air pressure maxima to pass a stationary listener, we need to determine the time period of the wave. The time period (T) of a wave is defined as the inverse of its frequency (f).

Given that the musician plays an A*5 note at 932 Hz, we have:

f = 932 Hz

Using the formula for the time period (T = 1/f), we find:

T = 1/932 s

Now, to calculate the time (Δt) for 796 maxima to pass, we multiply the time period by the number of maxima:

Δt = T * 796

Substituting the value of T, we get:

Δt = (1/932 s) * 796 = 0.854 s

Therefore, the value for Δt, the time it takes for 796 air pressure maxima to pass a stationary listener, is approximately 0.854 s.

Regarding the quantity B in the expression for air pressure oscillations, P(t) = Pmaxcos(Bt), the formula for B is:

B = 2πf

Substituting the value of f, we have:

B = 2π * 932 rad/s

Thus, the value of B is approximately 5866.25 rad/s.

The units of B are radians per second (rad/s), regardless of the unit chosen for measuring time.

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a) What is the thinnest film of MgF2 (n=1.38) on glass (n=1.5) that produces a strong reflection for 600 nm orange light? b) What is the thinnest film that produces a minimum reflection, like an anti-reflection coating?

Answers

Answer:

a) Strong reflection for 600 nm orange light is approximately 217.39 nm.

b) Anti-reflection coating, is approximately 434.78 nm.

a) To determine the thinnest film of MgF2 on glass that produces a strong reflection for 600 nm orange light, we can use the concept of thin film interference.

The condition for strong reflection is when the phase change upon reflection is 180 degrees.

The phase change due to reflection from the top surface of the film is given by:

Δφ = 2πnt/λ

Where Δφ is the phase change,

n is the refractive index of the film (MgF2),

t is the thickness of the film, and

λ is the wavelength of the light.

For strong reflection, the phase change should be 180 degrees. Therefore, we can set up the equation:

2πnt/λ = π

Simplifying the equation:

nt/λ = 1/2

Rearranging the equation to solve for the thickness of the film:

t = (λ/2n)

Wavelength of orange light, λ = 600 nm = 600 x 10^(-9) m

Refractive index of MgF2, n = 1.38

Substituting the values into the equation:

t = (600 x 10^(-9) m) / (2 x 1.38)

t ≈ 217.39 nm

Therefore, the thinnest film of MgF2 on glass that produces a strong reflection for 600 nm orange light is approximately 217.39 nm.

b) To determine the thinnest film that produces a minimum reflection, like an anti-reflection coating, we need to consider the condition for destructive interference. For minimum reflection, the phase change upon reflection should be 0 degrees.

Using the same equation as above:

2πnt/λ = 0

Simplifying the equation:

nt/λ = 0

Since the thickness of the film cannot be zero, we need to consider the next possible value that gives destructive interference. In this case, we can choose a thickness that results in a phase change of 360 degrees (or any multiple of 360 degrees).

nt/λ = 1

Rearranging the equation to solve for the thickness:

t = λ/n

Substituting the values:

t = (600 x 10^(-9) m) / 1.38

t ≈ 434.78 nm

Therefore, the thinnest film of MgF2 on glass that produces a minimum reflection, like an anti-reflection coating, is approximately 434.78 nm.

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(2 M) A balanced Y-connected load with a phase impedance of 40+ j25 2 is supplied by a balanced, positive sequence -connected source with a line voltage of 210 V. Calculate the phase currents. Use Vab as reference.

Answers

The phase currents of the balanced Y-connected load are approximately:

Ia = 4.40 ∠ 0° A

Ib = 4.40 ∠ (-120°) A

Ic = 4.40 ∠ 120° A

To calculate the phase currents of the balanced Y-connected load, we can use the concept of complex power and impedance.

Given:

Phase impedance of the load (Z) = 40 + j25 Ω

Line voltage (Vab) = 210 V

In a Y-connected system, the line voltage (Vab) is equal to the phase voltage (Vp). So, we can directly use the line voltage as the reference for calculations.

The complex power (S) is given by:

S = V * I*

Where:

V is the complex conjugate of the voltage

I is the complex current

To find the phase current (I), we can rearrange the equation as:

I = S / V

Now, let's calculate the phase current.

Step 1: Convert the line voltage (Vab) to the phase voltage (Vp)

Since in a Y-connected system, Vp = Vab, the phase voltage is also 210 V.

Step 2: Calculate the complex power (S)

S = V * I* = Vp * I*

Step 3: Calculate the magnitude of the current (|I|)

|I| = |S| / |Vp|

Step 4: Calculate the phase angle of the current (θI)

θI = arg(S) - arg(Vp)

Given that the phase impedance of the load is 40 + j25 Ω, we can calculate the current as follows:

|I| = |S| / |Vp| = |Vp| / |Z|

θI = arg(S) - arg(Vp) = arg(Z)

Now, let's calculate the phase current.

|I| = |Vp| / |Z| = 210 V / |40 + j25 Ω| = 210 V / √(40^2 + 25^2) ≈ 210 V / 47.69 Ω ≈ 4.40 A

θI = arg(Z) = arctan(25/40) ≈ 33.69°

Therefore, the phase currents of the balanced Y-connected load are approximately:

Ia = 4.40 ∠ 0° A

Ib = 4.40 ∠ (-120°) A

Ic = 4.40 ∠ 120° A

Note: The angles represent the phase angles of the currents with respect to the reference voltage Vab.

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please help me asnwering this question..!
5) D/C Transformer The input voltage to a transformer is \( 120 \mathrm{~V} \mathrm{DC} \) to the primary coil of 1000 turns. What are the number of turns in the secondary needed to produce an output

Answers

Approximately 83.33 turns are needed in the secondary coil to produce an output voltage of 10 VDC in this D/C transformer.

In a transformer, the ratio of the number of turns in the primary coil to the number of turns in the secondary coil determines the voltage transformation. To calculate the number of turns in the secondary coil, we can use the formula:

[tex]Turns_{ratio} = (Voltage_{ratio})^{exponent}[/tex]

In this case, the voltage ratio is the ratio of the output voltage to the input voltage. The exponent is 1 since it's a D/C transformer. So, the equation becomes:

(120 VDC) / (10 VDC) = (1000 turns) / (x turns)

Solving for x, the number of turns in the secondary coil, we find:

x = (1000 turns) * (10 VDC) / (120 VDC)

x ≈ 83.33 turns

Therefore, approximately 83.33 turns are needed in the secondary coil to produce an output voltage of 10 VDC in this D/C transformer.

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The complete question is:

D/C Transformer The input voltage to a transformer is 120 VDC to the primary coil of 1000 turns. What are the number of turns in the secondary needed to produce an output voltage of 10 VDC ?

Scientists want to place a 3 × 103 kg satellite in orbit around Mars. They plan to have the satellite orbit a distance equal to 1.8 times the radius of Mars above the surface of the planet. Here is some information that will help solve this problem:
mmars = 6.4191 x 1023 kg
rmars = 3.397 x 106 m
G = 6.67428 x 10-11 N-m2/kg2
1)
What is the force of attraction between Mars and the satellite? 1420.668208
N
2)
What speed should the satellite have to be in a perfectly circular orbit?

Answers

The speed of the satellite should be approximately 3.41048 x 10³ m/s to be in a perfectly circular orbit around Mars.

1) Force of attraction between Mars and satellite:To find the force of attraction between Mars and satellite, we will use the equation for gravitational force:F = G (m1 m2) / d²Where G is the universal gravitational constant, m1 and m2 are the masses of two objects, and d is the distance between them.Given data:Mass of Mars, mmars = 6.4191 x 10²³ kgMass of satellite, m = 3 × 10³ kgRadius of Mars, rmars = 3.397 x 10⁶ m

Distance from the surface of Mars, d = 1.8 rmars + rmars = 1.8 x 3.397 x 10⁶ m + 3.397 x 10⁶ m = 9.1294 x 10⁶ mUsing the above data and the gravitational constant G = 6.67428 x 10⁻¹¹ N m²/kg²F = G (m1 m2) / d²= (6.67428 x 10⁻¹¹ N m²/kg²) [(6.4191 x 10²³ kg) (3 x 10³ kg)] / (9.1294 x 10⁶ m)²= 1.420668 x 10³ NTherefore, the force of attraction between Mars and the satellite is 1420.668208 N.

2) Speed of satellite:To find the speed of the satellite, we will use the formula:v = √(G M / r)Where G is the universal gravitational constant, M is the mass of Mars and r is the radius of the orbit.Given data:Mass of Mars, M = 6.4191 x 10²³ kgRadius of orbit, r = (1.8 x 3.397 x 10⁶ m) + 3.397 x 10⁶ m= 9.1294 x 10⁶ mUsing the above data and the gravitational constant G = 6.67428 x 10⁻¹¹ N m²/kg²v = √(G M / r)= √[(6.67428 x 10⁻¹¹ N m²/kg²) (6.4191 x 10²³ kg) / (9.1294 x 10⁶ m)]≈ 3.41048 x 10³ m/sTherefore, the speed of the satellite should be approximately 3.41048 x 10³ m/s to be in a perfectly circular orbit around Mars.

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