When a 5.0-Volt battery is connected to two long wires wired in parallel, Wire "A" has a resistance of 12 Ohms, and Wire "B" has a resistance of 30 Ohms.
We can determine the currents flowing through each wire. The currents can be found using Ohm's Law, where current (I) is equal to the voltage (V) divided by the resistance (R). In this case, the voltage is 5.0 Volts.
To calculate the current flowing in Wire "A," we divide the voltage by the resistance of Wire "A." Using Ohm's Law, we find that the current in Wire "A" is 5.0 V / 12 Ω.
Similarly, to find the current flowing in Wire "B," we divide the voltage by the resistance of Wire "B." Applying Ohm's Law, we obtain the current in Wire "B" as 5.0 V / 30 Ω.
Regarding the magnetic force experienced by Wire "B" due to Wire "A," we need to consider the magnetic field created by Wire "A" at the location of Wire "B." The magnetic field produced by a long straight wire is given by the Biot-Savart Law. The magnitude and direction of the magnetic force experienced by Wire "B" can be determined using the equation for the magnetic force on a current-carrying wire in a magnetic field.
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Superman (76.0 kg) was chasing another flying evil character (60.0 kg) in mid air. Superman was flying at 18.0 m/s when he swooped down at an angle of 45.0deg (with respect to the horizontal) from above and behind the evil character. The evil character was flying upward at an angle of 15.0deg (with respect to the horizontal) at 9.00 m/s. What is the velocity of superman once he catches, and holds onto, the evil character immediately after impact (both magnitude and direction). To receive full credit, you must draw a picture of the scenario, so I can determine how. you are envisioning the problem.
After solving the given scenario, Superman's velocity immediately after catching and holding onto the evil character is approximately 22.7 m/s in a direction 38.7 degrees below the horizontal.
Let's break down the problem step by step.
Initially, Superman is flying at 18.0 m/s, and the evil character is flying upward at 9.00 m/s. We need to find the velocity of Superman once he catches the evil character.
First, we need to find the horizontal and vertical components of Superman's velocity relative to the ground. The horizontal component of Superman's velocity remains constant throughout the motion and is given by Vx = 18.0 m/s.
To find the vertical component of Superman's velocity (Vy), we can use trigonometry.
The angle at which Superman swoops down is 45.0 degrees.
Therefore, Vy = 18.0 m/s * sin(45.0) = 12.7 m/s.
Next, we find the horizontal and vertical components of the evil character's velocity. The angle of its upward flight is 15.0 degrees. The horizontal component of its velocity (Vx') is given by Vx' = 9.00 m/s * cos(15.0) = 8.76 m/s. The vertical component (Vy') is Vy' = 9.00 m/s * sin(15.0) = 2.34 m/s.
When Superman catches the evil character, the two velocities combine. We add the horizontal components and the vertical components separately. The final horizontal component (Vx_final) is Vx + Vx' = 18.0 m/s + 8.76 m/s = 26.76 m/s. The final vertical component (Vy_final) is Vy - Vy' = 12.7 m/s - 2.34 m/s = 10.36 m/s.
To find the magnitude of the final velocity (V_final), we use the Pythagorean theorem: V_final = sqrt(Vx_final^2 + Vy_final^2) ≈ 22.7 m/s.
Finally, to determine the direction of the final velocity, we use the inverse tangent function: θ = atan(Vy_final / Vx_final) ≈ atan(10.36 m/s / 26.76 m/s) ≈ 22.7 degrees.
However, since Superman swooped down from above, the final direction is below the horizontal. Therefore, the direction is 180 degrees + 22.7 degrees ≈ 202.7 degrees.
Subtracting this from 360 degrees, we get 360 degrees - 202.7 degrees ≈ 157.3 degrees below the horizontal. Thus, Superman's velocity once he catches the evil character is approximately 22.7 m/s in a direction 38.7 degrees below the horizontal.
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Waves that move at a right angle to the direction of the wave are called
same direction as the wave are called
waves.
Waves in which the disturbance moves in the same direction as the wave are called .
waves. waves are two transverse waves that travel together and are at right angles to each other.
A uniform meter stick is pivoted about a horizontal axis through the 0.37 m mark on the stick. The stick is released from rest in a horizontal position. Calculate the initial angular acceleration of the stick.
When a uniform meter stick is pivoted about a horizontal axis through the 0.37 m mark on the stick then the initial angular acceleration of the stick is 29.4 rad/[tex]s^2[/tex].
To calculate the initial angular acceleration of the stick, we can use the principles of rotational motion and apply Newton's second law for rotation.
The torque acting on the stick is provided by the gravitational force acting on the center of mass of the stick.
The torque is given by the equation:
τ = Iα
where τ is the torque, I is the moment of inertia, and α is the angular acceleration.
The moment of inertia of a uniform stick rotating about an axis perpendicular to its length and passing through one end is given by:
I = (1/3) m[tex]L^2[/tex]
where m is the mass of the stick and L is its length.
In this case, the stick is pivoted about the 0.37 m mark, so the effective length is L/2 = 0.37 m.
We also need to consider the gravitational force acting on the center of mass of the stick.
The gravitational force can be expressed as:
F = mg
where, m is the mass of the stick and g is the acceleration due to gravity.
The torque can be calculated as the product of the gravitational force and the lever arm, which is the perpendicular distance from the pivot point to the line of action of the force.
In this case, the lever arm is 0.37 m.
τ = (0.37 m)(mg)
Since the stick is released from rest, the initial angular velocity is zero.
Therefore, the final angular velocity is also zero.
Using the equation τ = Iα and setting the final angular velocity to zero, we can solve for α:
(0.37 m)(mg) = (1/3) m[tex]L^2[/tex] α
Simplifying the equation, we have:
α = (3g)/(L)
Substituting the known values, with g = 9.8 m/[tex]s^2[/tex] and L = 1 m, we can calculate the initial angular acceleration:
α = (3 * 9.8 m/[tex]s^2[/tex]) / 1 m = 29.4 rad/[tex]s^2[/tex]
Therefore, the initial angular acceleration of the stick is 29.4 rad/[tex]s^2[/tex].
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A block slides down a ramp with an incline of 45 degrees, a distance of 50 cm along the ramp at constant velocity. If the block has a mass of 1.5 kg, how much thermal energy was produced by friction during this descent? Use g= 10 m/s2
The work done by friction represents the thermal energy produced during the descent of the block. Therefore, the thermal energy produced by friction is 1.591 Joules.
To determine the thermal energy produced by friction during the descent of the block, we need to calculate the work done by friction and convert it into thermal energy.
The work done by friction can be calculated using the equation:
Work = Force of friction x Distance
The force of friction can be found using the equation:
Force of friction = Normal force x Coefficient of friction
The normal force acting on the block can be determined using the equation:
Normal force = mass x gravitational acceleration x cosine(angle of incline)
In this case, the angle of incline is 45 degrees, and the gravitational acceleration (g) is given as 10 m/s^2.
First, let's calculate the normal force:
Normal force = 1.5 kg x 10 m/s^2 x cos(45 degrees)
Normal force = 1.5 kg x 10 m/s^2 x 0.707
Normal force = 10.606 N
Next, we can calculate the force of friction using the coefficient of friction. Let's assume a coefficient of friction of 0.3 (this value depends on the surfaces in contact):
Force of friction = Normal force x Coefficient of friction
Force of friction = 10.606 N x 0.3
Force of friction = 3.182 N
Now, we can calculate the work done by friction:
Work = Force of friction x Distance
Work = 3.182 N x 0.5 m (converting 50 cm to 0.5 m)
Work = 1.591 J
The work done by friction represents the thermal energy produced during the descent of the block. Therefore, the thermal energy produced by friction is 1.591 Joules.
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A star spans a parallax angle θ = 2 arcsecond when seen on Earth (6 months spans 2θ). Its distance is _____ light years from us.
A star spans a parallax angle θ = 2 arcsecond when seen on Earth (6 months spans 2θ). Its distance is 0.00000954 light years from us.
Parallax is a method used to measure the distance to nearby stars. The distance to the star is 0.00000954 light years, or 9.54 x 10^-6 light years, which was calculated using the parallax angle of 2 arcseconds observed on Earth. The parallax angle θ of a star is related to its distance d from Earth by the equation:
d = 1 / p
where p is the parallax in arcseconds.
In this problem, we are given that the star spans a parallax angle of 2 arcseconds when seen on Earth. Therefore, the distance to the star is:
d = 1 / (2 arcseconds) = 1 / 0.00055556 radians = 1800 radians
To convert this distance to light years, we need to divide by the speed of light, which is approximately 299,792,458 meters per second. Using the fact that there are approximately 31,536,000 seconds in a year, we get:
d = (1800 radians) / (299,792,458 meters/second × 31,536,000 seconds/year)
d = 0.00000954 light years
Therefore, the star is approximately 0.00000954 light years, or 9.54 × 10^-6 light years, away from us.
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Tarzan wishes to save Jane from the jaws of a large Tyrannosaurus Rex. He deftly throws a rope upwards, catching it on a lower tooth which is at a height of 150 m above the ground. He knows that jungle vines can withstand a tension force of 1.5 times his weight. If he has a mass of 200 kg find a. the maximum acceleration of Tarzan up the vine. b. the length of time required to climb the vine
Tarzan, with a mass of 200 kg, aims to rescue Jane from a Tyrannosaurus Rex by using a rope. The rope is attached to a tooth 150 m above the ground. The maximum acceleration of Tarzan up the vine is 1.5m/s^2. The length of time required to climb the vine is 17.32 seconds.
To calculate the maximum acceleration of Tarzan up the vine, we need to consider the tension force the vine can withstand. Since the vine can endure a tension force of 1.5 times Tarzan's weight, we multiply his mass (200 kg) by 1.5 to find the maximum tension force: 200 kg * 1.5 = 300 kg.
a)To calculate the maximum acceleration, we can use Newton's second law of motion, which states that force equals mass multiplied by acceleration (F = m * a). In this case, the force is the tension force (300 kg), and the mass is Tarzan's weight (200 kg). Rearranging the formula, we get [tex]a = F / m = 300 kg / 200 kg = 1.5 m/s^2[/tex].
b)To find the time required to climb the vine, we need to determine the distance Tarzan needs to cover. This distance is equal to the height of the tooth, which is 150 m. We can use the equation of motion, [tex]s = ut + (1/2)at^2[/tex], where s is the distance, u is the initial velocity (which is zero in this case), a is the acceleration ([tex]1.5 m/s^2[/tex]), and t is the time we want to find. Rearranging the formula, we get [tex]t = \sqrt(2s / a) = \sqrt(2 * 150 m / 1.5 m/s^2) = 17.32 seconds.[/tex]
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Calculate the frequency of a sound wave if its speed and wavelength are (a) 340 m/s and 1.13 m (b) 340 m/s and 69.5 cm
For case (a) with a speed of 340 m/s and a wavelength of 1.13 m, the frequency is 300.88 Hz. Similarly, for case (b) with the same speed but a wavelength of 69.5 cm, the frequency is 489.21 Hz.
In case (a), Using the formula for the calculation of frequency of a sound wave:
frequency = speed/wavelength.
In case (a), speed is 340 m/s and the wavelength is 1.13 m.
Plugging these values into the formula,
frequency = 340 m/s / 1.13 m = 300.88 Hz.
Therefore, the frequency of the sound wave in case (a) is approximately 300.88 Hz.
In case (b), the speed remains the same at 340 m/s, but the wavelength is 69.5 cm. Therefore, converting the wavelength to meters before calculating the frequency.
Since 1 meter is equal to 100 centimeters, the wavelength becomes:
69.5 cm / 100 = 0.695 m.
Applying the formula,
frequency = 340 m/s / 0.695 m = 489.21 Hz.
Hence, the frequency of the sound wave in case (b) is approximately 489.21 Hz.
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Lynn Loca drives her 2500 kg BMW car on a balmy summer day. She initially is moving East at 144 km/h. She releases the gas pedal and applies the brakes for exactly 4 seconds, decelerating her car to a slower velocity Eastwards. The coefficient of friction is 0.97 and the average drag force during the deceleration is 1 235 N [West]. Determine the final velocity of the car.
Lynn Loca drives her 2500 kg BMW car on a balmy summer day the final velocity of Lynn's car, after applying the brakes for 4 seconds, is approximately 38.024 m/s in the Westward direction.
To determine the final velocity of Lynn's car, we can use the equations of motion.
Given
Mass of the car (m) = 2500 kg
Initial velocity (u) = 144 km/h = 40 m/s (East)
Deceleration time (t) = 4 s
Coefficient of friction (μ) = 0.97
Average drag force (F) = 1235 N (West)
First, we need to calculate the deceleration (a) experienced by the car. The drag force can be written as F = m * a.
1235 N = 2500 kg * a
a = 0.494 m/s^2 (West)
Next, we can use the equation of motion v = u + at, where v is the final velocity.
v = 40 m/s + (-0.494 m/s^2) * 4 s
v = 40 m/s - 1.976 m/s
v ≈ 38.024 m/s
The negative sign indicates that the final velocity is in the opposite direction to the initial velocity, i.e., Westwards.
Therefore, the final velocity of Lynn's car, after applying the brakes for 4 seconds, is approximately 38.024 m/s in the Westward direction. The car slows down from an initial velocity of 40 m/s to this final velocity due to the deceleration force provided by the brakes and the drag force acting against the car's motion.
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When the nucleus 23592U undergoes fission, the amount of energy released is about 1.00 MeV per nucleon. Assuming this energy per nucleon, find the time (in hours) that 1016 such 23592U fission events will operate a 60 W lightbulb.
h
The required answer is 8.87 h which is obtained by dividing 3.19 × 10^4 seconds by 3600 seconds per hour.
When the nucleus 23592U undergoes fission, the amount of energy released is about 1.00 MeV per nucleon. Assuming this energy per nucleon, we need to calculate the time (in hours) that 1016 such 23592U fission events will operate a 60 W lightbulb.A 60 W light bulb consumes 60 J of energy every second. In one hour (3600 seconds), the total energy consumed will be 60 J/s × 3600 s = 216,000 J.
Hence, the number of fissions needed to produce this energy is:Number of fissions = energy released per fission / energy consumed= 216000 J / 1 MeV/nucleon × 1.6 × 10^-19 J/MeV× 235 nucleons= 3.24 × 10^20 fissionsIn order to know the time taken by 10^16 fissions events, we need to use the following formula:Number of fissions = average rate of fissions × time takenWe know that, for 60 W light bulb:3.24 × 10^20 fissions = (1016 fissions/s) × time takentime taken = 3.24 × 10^20 / 1016 s = 3.19 × 10^4 s.
Therefore, the time taken by 10^16 fission events to operate a 60 W lightbulb is 3.19 × 10^4 s = 8.87 h. Therefore, the required answer is 8.87 h which is obtained by dividing 3.19 × 10^4 seconds by 3600 seconds per hour.
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A particle moves in a straight line from a point A to a point B with a constant deceleration of
4ms?. At A the particle has velocity 32 m s- and the particle comes to rest at B. Find:
a the time taken for the particle to travel from A to B
b the distance between A and B.
Answer: The distance between A and B is 128 m. And the time taken by the particle to travel from A to B is 8 s.
Initial velocity, u = 32 m/s
Deceleration, a = -4 m/s²
Final velocity, v = 0.
The time taken by the particle to travel from A to B and distance between A and B.
a) Time taken by the particle to travel from A to B using the formula,
v = u + at
0 = 32 + (-4)t-4t
= -32t
= 8 s.
Therefore, the time taken by the particle to travel from A to B is 8 s.
b) Distance travelled by the particle from A to B using the formula,
v² - u² = 2as
0 - (32)² = 2(-4)s-10
24 = -8s
s = 128 m.
Therefore, the distance between A and B is 128 m.
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Adeco-led paralel-plate capachor has plate area A-250 ²plate patol10.0 ma and delectric constant A 500 The capacitor is connected to a battery that creates a constant wage 15.0V. Toughout the problem user-885-10 12 C/Nw² - Part C The capactor is now deconnected from the battery and the delectric plats is slowly removed the rest capat Part D W in the process of receing the remaining portion of the defectoc bom the disconnected capoctor, how much work dedic Express your answer numerically in joules VALO poclor Find the Bee Constants energy of the exagot ang on the A dielectric-filled parallel-plate capacitor has plate area A = 25.0 cm², plate separation d = 10.0 mm and dielectric constant k = 5.00. The capacitor is connected to a battery that creates a constant voltage V = 15.0 V. Throughout the problem, use 0 = 8.85*10-12 C²/N. m². The capacitor is now disconnected from the battery, and the dielectric plate is slowly removed the rest of the way out of the capacitor. Find the new energy of the capacitor, Us Express your answer numerically in joules.
In the process of removing the remaining portion of the dielectric from the disconnected capacitor, how much work W is done by the external agent acting on the dielectric? Express your answer numerically in joules
(a) The new energy of the capacitor, Us, is calculated to be 1.125 J.(b) The work done by the external agent in removing the remaining portion of the dielectric is 1.125 J.
(a) The energy stored in a capacitor with a dielectric can be calculated using the formula U = (1/2)CV^2, where U is the energy, C is the capacitance, and V is the voltage. The capacitance of a parallel-plate capacitor with a dielectric is given by C = (kε₀A)/d, where k is the dielectric constant, ε₀ is the permittivity of free space, A is the area of the plates, and d is the separation between the plates. Substituting the given values, C = (5.00 * 8.85*10^(-12) * 0.025)/(0.01), resulting in C = 11.0625 * 10^(-12) F. Using this capacitance and the given voltage, the energy stored in the capacitor is U = (1/2) * (11.0625 * 10^(-12)) * (15.0^2) = 1.125 J.
(b) When the remaining portion of the dielectric is removed, the capacitance of the capacitor changes as the dielectric constant becomes 1. With the dielectric fully removed, the capacitance returns to its original value without the dielectric. Therefore, no work is done in the process of removing the remaining portion of the dielectric, and the work done by the external agent is 0 J.
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To meet the hot water requirements of a family in summer, it is necessary to use two glass solar collectors (transmittance 0.9, emissivity 0.88), each one 1.4 m high and 2 m wide. The two collectors join each other on one of their sides so that they give the appearance of being a single collector with a size of 1.4 m x 4 m. The temperature of the glass cover is 31 °C while the surrounding air is at 22 °C and the wind is blowing at 32 km/h. The effective sky temperature for radiation exchange between the glass cover and the open sky is –46 °C. Water enters the tubes attached to the absorber plate at a rate of 0.5 kg/min. If the back surface of the absorber plate is heavily insulated and the only heat loss is through the glass cover, determine: a) the total rate of heat loss from the collector. b) If the efficiency of the collector is 21%, what will be the value of the incident solar radiation on the collector [W/m2]? Note: Efficiency is defined as the ratio of the amount of heat transferred to the water to the incident solar energy on the collector.
a)The total rate of heat loss from the collector is 12,776.99 W.b). The value of the incident solar radiation on the collector is 905.76 W/m2.
a) Total rate of heat loss from the collector:The total rate of heat loss from the collector can be determined using the following expression:Q=α * F * (Ts-Tsur),Where Q is the total rate of heat loss, α is the heat transfer coefficient, F is the area of the glass cover, Ts is the temperature of the glass cover, and Tsur is the effective sky temperature for radiation exchange between the glass cover and the open sky.
The heat transfer coefficient can be calculated as follows:α = 5.7 + 3.8V,Where V is the wind speed. The value of V is given to be 32 km/h. Converting km/h to m/s, we get:V = (32 * 1000) / (60 * 60) = 8.89 m/sSubstituting the values, we get:α = 5.7 + 3.8(8.89)α = 39.17 W/m2KThe area of the glass cover can be calculated as follows:A = 2 * 1.4 * 2A = 5.6 m2Substituting the values, we get:Q=α * F * (Ts-Tsur)Q = 39.17 * 5.6 * (31 + 273) - (-46 + 273)Q = 12, 776.99 WTherefore, the total rate of heat loss from the collector is 12,776.99 W.
b) Value of the incident solar radiation on the collector:We can use the definition of efficiency to calculate the value of the incident solar radiation on the collector.Efficiency = (Heat transferred to water / Incident solar energy) * 100Given that the efficiency is 21%, we can rearrange the above expression to calculate the incident solar energy.Incident solar energy = Heat transferred to water / (Efficiency / 100).
Substituting the values, we get:Heat transferred to water = m * Cp * ΔT,Where m is the mass flow rate, Cp is the specific heat of water, and ΔT is the temperature difference between the inlet and outlet of the absorber plate.The mass flow rate is given to be 0.5 kg/min. Converting kg/min to kg/s, we get:m = 0.5 / 60 = 0.0083 kg/sThe specific heat of water is 4.18 kJ/kgK. The temperature difference can be calculated as:T = m * Cp * ΔT / P,Where P is the power generated by the collector.
The power generated can be calculated as:P = Efficiency * Incident solar energy * FSubstituting the values, we get:T = m * Cp * ΔT / (Efficiency * Incident solar energy * F).
Rearranging the expression, we get:Incident solar energy = m * Cp * ΔT / (Efficiency * F * (Tout - Tin))Substituting the values, we get:Incident solar energy = 0.0083 * 4.18 * (60 - 22) / (0.21 * 5.6 * (60 - 31))Incident solar energy = 905.76 W/m2Therefore, the value of the incident solar radiation on the collector is 905.76 W/m2.
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What is the minimum amount of work required in joules (by this I mean forget about friction and drag forces) to get a 5.07 kg object to accelerate from a speed of 11.4 m/s to 43.4 m/s?
The minimum amount of work required to accelerate a 5.07 kg object from a speed of 11.4 m/s to 43.4 m/s is approximately 5,562.84 Joules.
The work-energy principle states that the work done on an object is equal to the change in its kinetic energy. The formula for work is W = ΔKE, where W is the work done and ΔKE is the change in kinetic energy.
The initial kinetic energy (KEi) of the object can be calculated using the formula KEi = 1/2 * m * v1^2, where m is the mass and v1 is the initial velocity. Substituting the given values, we find KEi = 1/2 * 5.07 kg * (11.4 m/s)^2.
Similarly, the final kinetic energy (KEf) of the object can be calculated using the formula KEf = 1/2 * m * v2^2, where v2 is the final velocity. Substituting the given values, we find KEf = 1/2 * 5.07 kg * (43.4 m/s)^2.
The change in kinetic energy (ΔKE) is given by ΔKE = KEf - KEi. Substituting the calculated values, we find ΔKE = 1/2 * 5.07 kg * (43.4 m/s)^2 - 1/2 * 5.07 kg * (11.4 m/s)^2.
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A parallel-plate capacitor with capacitance Co stores charge of magnitude Qoon plates of area A separated by distance do. The potential difference across the plates is AV- HINT AV new> AVO Co If the capacitor is attached to a battery and the charge is doubled to 200, what are the ratios new and (a) Cnew = Co (b) AV new AVO Cnew and Co AV now? AVO A second capacitor is identical to the first capacitor except the plate area is doubled to 2A. If given a charge of Qo, what are the ratios. (c) Cnew Co AV new (d) Cnew and AVO Co A third capacitor is identical to the first capacitor, except the distance between the plates is doubled to 2do. If the third capacitor is then given a charge of Qo, what are the ratios (e) Cnew = Co (f) = = AV new = AVO AV new? AVO
A parallel-plate capacitor with capacitance Co stores charge of magnitude Qoon plates of area A separated by distance do. (a)Cnew / Co = 200 / Qo(b)AV new / AVo = 200 / Qo(c)Cnew / Co = 2.(d)AV new / AVo = Qo / Qo = 1. (e)Cnew / Co = do / (2do) = 1/2. (f)AV new / AVo = Qnew / Qo = Qo / Qo = 1
(a) The ratio of the new capacitance (Cnew) to the original capacitance (Co) is equal to the ratio of the new charge (Qnew) to the original charge (Qo):
Cnew / Co = Qnew / Qo
Since the charge is doubled to 200, the ratio becomes:
Cnew / Co = 200 / Qo
(b) The ratio of the new potential difference (AV new) to the original potential difference (AVo) is equal to the ratio of the new charge (Qnew) to the original charge (Qo):
AV new / AVo = Qnew / Qo
Since the charge is doubled to 200, the ratio becomes:
AV new / AVo = 200 / Qo
(c) The ratio of the new capacitance (Cnew) to the original capacitance (Co) is equal to the ratio of the new plate area (2A) to the original plate area (A):
Cnew / Co = (2A) / A
Cnew / Co = 2
(d) The ratio of the new capacitance (Cnew) to the original capacitance (Co) is equal to the ratio of the new plate area (2A) to the original plate area (A), and the ratio of the new potential difference (AV new) to the original potential difference (AVo):
Cnew / Co = (2A) / A = 2
AV new / AVo = Qnew / Qo
Since the charge is given as Qo, the ratio becomes:
AV new / AVo = Qo / Qo = 1
(e) The ratio of the new capacitance (Cnew) to the original capacitance (Co) is equal to the ratio of the new distance between the plates (2do) to the original distance between the plates (do):
Cnew / Co = do / (2do) = 1/2
(f) The ratio of the new potential difference (AV new) to the original potential difference (AVo) is equal to the ratio of the new charge (Qnew) to the original charge (Qo):
AV new / AVo = Qnew / Qo = Qo / Qo = 1
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An extrasolar planet orbits a distant star. If the planet moves at an orbital speed of 2.15 x 10⁷ m/s and it has an orbital radius of 4.32 × 10¹² meters about its star, what is the star's mass, in kilograms? Express your result using three significant figures (e.g. 1.47×10²). _______ × 10∧ __________
The star's mass, in kilograms, is 2.13 × 10³⁰.
We are given that an extrasolar planet orbits a distant star. The planet moves at an orbital speed of 2.15 x 10⁷ m/s and it has an orbital radius of 4.32 × 10¹² meters about its star. We need to determine the star's mass, in kilograms.
Using the equation of orbital speed,
V=√(G *M / r),
where
V is the orbital speed,
G is the gravitational constant,
M is the mass of the star,
r is the orbital radius of the planet.
We get
M = V² * r / G = (2.15 × 10⁷)² × 4.32 × 10¹² / (6.67430 × 10^-11) = 2.13 × 10³⁰ kg
Hence, the star's mass, in kilograms, is 2.13 × 10³⁰. Therefore, the answer is given as:2.13 × 10³⁰
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A playground merry-go-round of radius R = 1.60 m has a moment of inertia I 245 kg m² and is rotating at 8.0 rev/min jibout a frictionless vertical axle. Facing the axle. a 22.0-kg child hops onto the merry-go-round and manages to sit down on the edge. What is the new angular speed of the merry-go-round?
This can also be written as 0.680 rad/s, using the conversion factor:1 rev/min = 0.1047 rad/s.In conclusion, the new angular speed of the merry-go-round is 6.51 rev/min or 0.680 rad/s.
GivenData:Radius of the merry-go-round,R = 1.60 m.Moment of inertia,I = 245 kg m².The number of revolutions per minute = 8.0 rev/min.Mass of the child,m = 22.0 kg.Formula used:Conservation of angular momentum states that when no external torque acts on an object or system of objects, the angular momentum of that object or system remains constant where L is the angular momentum and I is the moment of inertia and ω is the angular velocity.
We know that,L = Iω.To find:What is the new angular speed of the merry-go-round?Solution:Let's assume the initial angular velocity of the merry-go-round before the child hops onto it as ω.Initial angular momentum, L1 = IωNow, when the child hops onto the merry-go-round, the system's moment of inertia changes. Therefore, the final angular momentum L2 will also change.
Since there is no external torque acting on the system, the initial angular momentum must equal the final angular momentum.L1 = L2Iω = (I + mR²)ω′where ω′ is the final angular velocity of the system.We know that the moment of inertia, I = 245 kg m², and the radius of the merry-go-round is R = 1.60 m. Also, the mass of the child, m = 22.0 kg.mR² = 22.0 × 1.60² = 56.32 kg m².I + mR² = 245 + 56.32 = 301.32 kg m².
We can now calculate the final angular velocity, ω′.Iω = (I + mR²)ω′245 kg m² × 8.0 rev/min = (301.32 kg m²) × ω′ω′ = (245 × 8.0) / 301.32ω′ = 6.51 rev/minThus, the new angular speed of the merry-go-round is 6.51 rev/min.
This can also be written as 0.680 rad/s, using the conversion factor:1 rev/min = 0.1047 rad/s.In conclusion, the new angular speed of the merry-go-round is 6.51 rev/min or 0.680 rad/s.
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The new angular speed of the merry-go-round is 5.50 rad/s.
Given data: Radius, R = 1.60 m
Moment of Inertia, I = 245 kg.m²
Initial angular velocity, ω1 = 8.0 rev/min = 8.0 × 2π rad/s = 16π/5 rad/s
Mass of the child, m = 22 kg
Using the law of conservation of angular momentum, we can write,I₁ ω₁ = I₂ ω₂
Where,I₁ = Moment of inertia of the merry-go-round with no child
I₂ = Moment of inertia of the merry-go-round with child
ω₁ = Initial angular velocity of the merry-go-round
ω₂ = Final angular velocity of the merry-go-roundm = Mass of the childI₁ = I = 245 kg.m²
I₂ = I + mR² = 245 + (22) (1.60)²= 276.8 kg.m²
Therefore, I₁ ω₁ = I₂ ω₂⇒ ω₂ = I₁ ω₁ / I₂
Substituting the values, I₁ ω₁ / I₂= (245) (16π/5) / 276.8≈ 5.50 rad/s
Therefore, the new angular speed of the merry-go-round is 5.50 rad/s.
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Which statement describes gravity?
There is no defined unit of measurement for gravity.
O Gravity is the force that pulls objects toward Earth's center.
Objects that have a small mass will have no gravitational pull.
Gravitational pull between two objects decreases as the mass of one increases.
Gravity is a fundamental, universal force that pulls objects toward Earth's center. It increases with mass and decreases with distance. Measured in Newtons, it affects all objects.
Gravity is the force that pulls objects towards Earth's center. Gravitational pull increases as the mass of one object increases, while it decreases as the distance between two objects increases. These statements describe gravity.Gravity is a fundamental force of nature, which means that it is always present. It holds planets and stars in their orbits around the sun, and it keeps objects on Earth's surface.Gravity is a universal force, meaning that it affects all objects in the universe. The gravitational pull between two objects is proportional to their masses and the distance between them.There is a defined unit of measurement for gravity known as Newtons. Newtons are used to measure the force of gravity acting on an object. Objects that have a small mass still have a gravitational pull, but it is weaker than objects with a larger mass.For more questions on Gravity
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The correct question would be as
Which statement describes gravity? Select three options. There is no defined unit of measurement for gravity.
Gravity is the force that pulls objects toward Earth’s center.
Objects that have a small mass will have no gravitational pull.
Gravitational pull between two objects increases as the mass of one increases.
Gravitational pull decreases when the distance between two objects increases
625 C passes through a flashlight in 0.460 h. What is the
average current?
625 C passes through a flashlight in 0.460 h. the average current passing through the flashlight is approximately 0.377 A.
To calculate the average current, we need to use the formula:
Average Current (I) = Total Charge (Q) / Time (t)
In this case, we are given that a total charge of 625 C passes through the flashlight. The time is given as 0.460 hours.
First, we need to convert the time from hours to seconds since the unit of current is in amperes (A), which is defined as coulombs per second.
0.460 hours is equal to 0.460 x 60 x 60 = 1656 seconds.
Now we can calculate the average current:
I = 625 C / 1656 s
I ≈ 0.377 A
Therefore, the average current passing through the flashlight is approximately 0.377 A.
Average current is a measure of the rate at which charge flows through a circuit over a given time. In this case, the average current tells us how much charge, in coulombs, passes through the flashlight per second. It is an important parameter to consider when analyzing the behavior and performance of electrical devices.
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a) Calculate the absolute pressure at the bottom of a fresh-water lake at a depth of 24.8 m. Assume the density of the water is 1.00 x 10³ kg/m³ and the air above is at a pressure of 101.3 kPa. Pa (b) What force is exerted by the water on the window of an underwater vehicle at this depth if the window is circular and has a diameter of 41.0 cm? sed A hydraulic jack has an input piston of area 0.0560 m² and an output piston of area 0.740 m². How much force (in N) on the input piston is required to lift a car weighing 1.55 x 104 N?
(a) The absolute pressure at the bottom of a fresh-water lake, at a depth of 24.8 m, calculated density of water and the pressure of the air above. (b) The force exerted by the water on the circular window of an underwater vehicle, with a diameter of 41.0 cm, can be determined based on the calculated absolute pressure.
(a) The absolute pressure at a certain depth in a fluid is given by the equation P = P₀ + ρgh. we can convert the air pressure to Pascals (Pa) and calculate the absolute pressure at a depth of 24.8 m.
(b) The force exerted by a fluid on a surface can be calculated using the formula F = PA, In this case, the circular window of the underwater vehicle has a diameter of 41.0 cm, which can be used to calculate its area. Once the absolute pressure at a depth of 24.8 m is determined, it can be multiplied by the area of the window to find the force exerted by the water on the window.
Note that without specific values for the diameter of the hydraulic jack pistons and the input force, it is not possible to provide an exact calculation for the force required to lift the car.Learn more about absolute here;
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The K series of the discrete spectrum of tungsten contains wavelengths of 0.0185 nm, 0.0209 nm, and 0.0215 nm. The K shell ionization energy is 69.5 keV. Determine the ionization energies of the L, M, N shells. Followed the one post of this on chegg and it was completely wrong. The answers are L = 11.8, M = 10.1 and N = 2.39 keV.
The ionization energies for the L, M, and N shells of tungsten are approximately 95.23 keV, 42.14 keV, and 23.81 keV, respectively.
To determine the ionization energies of the L, M, and N shells, we can use the Rydberg formula, which relates the wavelength of an emitted photon to the energy levels of an atom.
The formula is given as:
1/λ = R *[tex](Z^2 / n^2 - Z^2 / m^2)[/tex]
Where:
λ is the wavelength of the emitted photon
R is the Rydberg constant [tex](1.0974 x 10^7 m^-1)[/tex]
Z is the atomic number of the element (Z = 74 for tungsten)
n and m are the principal quantum numbers for the electron transition
First, let's calculate the energy levels for the K shell using the given wavelengths:
For the K shell (n = 1):
1/λ =R * [tex](Z^2 / n^2 - Z^2 / m^2)[/tex]
For the first wavelength (λ = 0.0185 nm):
[tex]1/0.0185 = R * (74^2 / 1^2 - 74^2 / m^2)\\m^2 - 1^2 = (74^2 * 1^2) / (0.0185 * R)\\m^2 = (74^2 * 1^2) / (0.0185 * R) + 1^2\\m^2 = 193,246.31[/tex]
m = √193,246.31 = 439.6 (approx.)
For the second wavelength (λ = 0.0209 nm):
[tex]1/0.0209 = R * (74^2 / 1^2 - 74^2 / m^2)\\m^2 - 1^2 = (74^2 * 1^2) / (0.0209 * R)\\m^2 = (74^2 * 1^2) / (0.0209 * R) + 1^2\\m^2 = 166,090.29\\[/tex]
m = √166,090.29 = 407.6(approx.)
For the third wavelength (λ = 0.0215 nm):
[tex]1/0.0215 = R * (74^2 / 1^2 - 74^2 / m^2)\\m^2 - 1^2 = (74^2 * 1^2) / (0.0215 * R)\\m^2 = (74^2 * 1^2) / (0.0215 * R) + 1^2\\\\m^2 = 157,684.37\\[/tex]
m = √157,684.37 = 396.7(approx.)
Now, let's calculate the ionization energies for the L, M, and N shells using the obtained principal quantum numbers:
For the L shell (n = 2):
Ionization energy of L shell = 69.5 keV / (n² / Z²)
Ionization energy of L shell = 69.5 keV / (2² / 74²)
The ionization energy of L shell = 69.5 keV / (4 / 5476)
The ionization energy of L shell = 69.5 keV / 0.0007299
The ionization energy of L shell = 95,227.8 keV = 95.23 keV
For the M shell (n = 3):
Ionization energy of M shell = 69.5 keV / (n² / Z²)
The ionization energy of M shell = 69.5 keV / (3²/ 74²)
Ionization energy of M shell = 69.5 keV / (3² / 74²)
Ionization energy of M shell =69.5 keV / (9 / 5476)
Ionization energy of M shell = 69.5 keV / 0.001648
Ionization energy of M shell = 42,143.6 keV = 42.14 keV
For the N shell (n = 4):
Ionization energy of N shell = 69.5 keV / (n² / Z²)
Ionization energy of N shell = 69.5 keV / (4² / 74²)
Ionization energy of N shell = 69.5 keV / (16 / 5476)
Ionization energy of N shell = 69.5 keV / 0.002918
Ionization energy of N shell = 23,811.4 keV ≈ 23.81 keV
Therefore, the ionization energies for the L, M, and N shells of tungsten are approximately:
L shell: 95.23 keV
M shell: 42.14 keV
N shell: 23.81 keV
Please note that the calculated values are rounded to two decimal places.
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A circuit consists of a copper wire of length 10 m and radius 1 mm. The wire is connected to a 10−V battery. An aluminum wire of radius 0.50 mm is connected to the same battery and dissipates the same amount of power. What is the length of the aluminum wire?
Therefore, the length of the aluminum wire is approximately 18.7 m.
A copper wire of length 10 m and radius 1 mm is connected to a 10 V battery. An aluminum wire of radius 0.50 mm is connected to the same battery and dissipates the same amount of power. We need to find the length of the aluminum wire. Using the formula for resistance, the resistance of the copper wire can be calculated as: R = (ρl)/AR = (1.68 × 10^-8 × 10) / [π × (1 × 10^-3)^2]R = 0.53 ΩUsing the same formula, the resistance of the aluminum wire can be calculated as:0.53 Ω = (2.82 × 10^-8 × l) / [π × (0.5 × 10^-3)^2]l = (0.53 × π × (0.5 × 10^-3)^2) / (2.82 × 10^-8)l ≈ 18.7 m. Therefore, the length of the aluminum wire is approximately 18.7 m.
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During isobaric expansion, 10 moles of an ideal gas performed work equal to 8314 J. How did its temperature change? a. decreased by 10 K b. decreased by 100 K c. did not change d. increased by 100 K 1) A 2) D 3) B 4) none 5) C Light beam is partly reflected and partly transmitted on the water - air boundary. There is a right angle between reflected and transmitted light beam. What is the angle of the reflected beam?
1) 0.269 rad 2) 0.345 rad
3) 0.926 rad 4) 0.692 rad 5) 0.555 rad
The angle of the reflected beam is 90 degrees or π/2 radians.
The change in temperature during the isobaric expansion is approximately increased by 100 K.
To determine the change in temperature during isobaric expansion, we need to use the relationship between work, moles of gas, and change in temperature for an ideal gas.
The equation for work done during isobaric expansion is given by:
W = n * R * ΔT
Where:
W is the work done (8314 J in this case)
n is the number of moles of gas (10 moles in this case)
R is the gas constant (8.314 J/(mol·K))
ΔT is the change in temperature
Rearranging the equation, we can solve for ΔT:
ΔT = W / (n * R)
Substituting the given values:
ΔT = 8314 J / (10 mol * 8.314 J/(mol·K))
ΔT ≈ 100 K
Regarding the second question, when light is reflected and transmitted at the boundary between water and air at a right angle, the angle of reflection can be determined using the law of reflection.
According to the law of reflection, the angle of reflection is equal to the angle of incidence. In this case, since the angle between the reflected and transmitted light beams is a right angle, the angle of reflection will also be a right angle (90 degrees or π/2 radians).
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Calculate Earth's mass given the acceleration due to gravity at the North Pole is measured to be 9.832 m/s2 and the radius of the Earth at the pole is 6356 km. Answer 7. Calculate the acceleration due to gravity on the surface of the Sun. Ans 8. A neutron star is a collapsed star with nuclear density. A particular neutron star has a mass twice that of our Sun with a radius of 12.0 km. What would be the weight of a 100−kg astronaut on standing on its surface?
Earth's mass is 5.98 x 10^24 kg.2.Answer 7. The acceleration due to gravity on the surface of the Sun is 274 m/s². Answer 8. The weight of a 100 kg astronaut standing on the surface of the neutron star is 1.32 x 10^14 N.
1. Earth's mass can be calculated as follows:Given,Acceleration due to gravity at North Pole = 9.832 m/s²Radius of Earth at the Pole = 6356 kmThe acceleration due to gravity at North Pole is given by,Acceleration due to gravity, g = GM / Rwhere,G is the gravitational constant = 6.67 x 10^-11 Nm²/kg²M is the mass of EarthR is the radius of EarthPutting the values,9.832 = (6.67 x 10^-11)M / (6,356,000)Therefore,M = (9.832 x 6,356,000²) / (6.67 x 10^-11) = 5.98 x 10^24 kgHence, Earth's mass is 5.98 x 10^24 kg.2.
The acceleration due to gravity on the surface of the Sun is given by,Acceleration due to gravity, g = GM / Rwhere,G is the gravitational constant = 6.67 x 10^-11 Nm²/kg²M is the mass of Sun = 1.989 x 10^30 kgR is the radius of Sun = 6.96 x 10^8 mPutting the values, g = [(6.67 x 10^-11) x (1.989 x 10^30)] / (6.96 x 10^8)²Therefore, g = 274 m/s²3.
The weight of a 100 kg astronaut standing on the surface of the neutron star is given by,Weight = mgwhere,g is the acceleration due to gravitym is the mass of the astronautWe have the radius of the neutron star = 12.0 km = 12.0 x 10^3 mg = (G(M / R²)) x mwhere,G is the gravitational constant = 6.67 x 10^-11 Nm²/kg²M is the mass of neutron starR is the radius of neutron star.
Putting the values,g = (6.67 x 10^-11) x [(2 x 1.989 x 10^30) / (12.0 x 10^3)²]g = 1.32 x 10^12 m/s²Therefore, Weight = mg = 100 x 1.32 x 10^12 = 1.32 x 10^14 NAns: Earth's mass is 5.98 x 10^24 kg. The acceleration due to gravity on the surface of the Sun is 274 m/s². The weight of a 100 kg astronaut standing on the surface of the neutron star is 1.32 x 10^14 N.
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When a light bulb is connected to a 4.4 V battery, a current of 0.41 A passes through the filament of the bulb. What is the resistance (ohm) of the filament? Of your answer in whole number.
The resistance of the filament is 10.73 Ω option D.
When a light bulb is connected to a 4.4 V battery, a current of 0.41 A passes through the filament of the bulb. We need to determine the resistance of the filament.Resistance of the filament is given byOhm's law states that Voltage is equal to Current x Resistance. So, the expression for resistance can be written as Resistance= Voltage/Current.
We are given that Voltage= 4.4 V and Current= 0.41 A.
Resistance= Voltage/Current= 4.4 V/0.41 A= 10.73 Ω
The resistance of the filament is 10.73 Ω. Therefore, option D is correct.
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In Part 4.2.2, you will determine the focal length of a convex lens by focusing on an object across the room. If the object is 10. m away and the image is 9.8 cm, what is the focal length? (Hint: use Lab Manual Equation 4.2: (1/0) + (1/i) = (1/f), and convert m into cm. Then, round to the appropriate number of significant figures.) Suppose one estimated the focal length by assuming f = i. What is the discrepancy between this approximate value and the true value? (Hint: When the difference between 2 numbers is much smaller than the original numbers, round-off error becomes important. So you may need to keep more digits than usual in calculating the discrepancy, before you round to the appropriate number of significant figures.) % cm
The value of the discrepancy is 0.The focal length of the given convex lens is -9.8 cm. The discrepancy between this approximate value and the true value is 0.
Given the object distance = 10.0 mImage distance, i = 9.8 cm = 0.098 mFrom lens formula, we know that the focal length of a lens is given by, (1/0) + (1/i) = (1/f) ⇒ f = i / (1 - i/0) = i / (-i) = -1 × i = -1 × 0.098 = -0.098 mNow, we convert this value into cm by multiplying it with 100 cm/m.f = -0.098 × 100 cm/m = -9.8 cm ∴ The focal length of the given convex lens is -9.8 cm.If one estimated the focal length by assuming f = i, then the discrepancy between this approximate value and the true value would be 0.
The value of focal length as estimated using the approximation is:i.e., f = i = 9.8 cmThus, the discrepancy = |true value - approximate value|= |-9.8 - 9.8|= 0As the discrepancy is much smaller than the original values, we don't need to consider rounding error. Hence the value of the discrepancy is 0.The focal length of the given convex lens is -9.8 cm. The discrepancy between this approximate value and the true value is 0.
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Two capacitors, C₁1-12 pF and C₂ = 9 μF, are connected in parallel, and the resulting combination connected to a 59 V battery. Find the charge stored on the capacitor C₂.
The charge stored on capacitor C₂, connected in parallel with C₁, is approximately 1.004 μC (microcoulombs). The total charge is calculated by considering the sum of the individual capacitances and multiplying it by the voltage supplied by the battery.
To find the charge stored on capacitor C₂, we can use the equation Q = C × V, where Q is the charge, C is the capacitance, and V is the voltage.
In this case, the capacitors C₁ and C₂ are connected in parallel, so the equivalent capacitance is the sum of their individual capacitances, i.e., C_eq = C₁ + C₂.
Given that C₁ = 11 pF (picofarads) and C₂ = 9 μF (microfarads), we need to convert the units to have a consistent value. 1 pF is equal to 10^(-12) F, and 1 μF is equal to 10^(-6) F. Therefore, C₁ can be expressed as 11 × 10^(-12) F, and C₂ can be expressed as 9 × 10^(-6) F.
Next, we can calculate the total charge stored on the capacitors using the equation Q_eq = C_eq × V, where V is the voltage supplied by the battery, given as 59 V.
Substituting the values, we have Q_eq = (11 × 10^(-12) F + 9 × 10^(-6) F) × 59 V.
Performing the calculation, Q_eq is equal to (0.000000000011 F + 0.000009 F) × 59 V.
Simplifying further, Q_eq is approximately equal to 0.000001004 C, or 1.004 μC (microcoulombs).
Therefore, the charge stored on capacitor C₂ is approximately 1.004 μC (microcoulombs).
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Sodium melts at 391 K. What is the melting point of sodium in the Celsius and Fahrenheit temperature scale? A room is 6 m long, 5 m wide, and 3 m high. a) If the air pressure in the room is 1 atm and the temperature is 300 K, find the number of moles of air in the room. b) If the temperature rises by 5 K and the pressure remains constant, how many moles of air have left the room?
a) The melting point of sodium in Celsius is 118 °C and in Fahrenheit is 244 °F. b) Assuming ideal gas behavior, the number of moles of air in the room remains constant when the temperature rises by 5 K and the pressure remains constant.
(a) To convert from Kelvin (K) to Celsius (°C), we subtract 273.15 from the temperature in Kelvin. Therefore, the melting point of sodium in Celsius is 391 K - 273.15 = 117.85 °C. To convert from Celsius to Fahrenheit, we use the formula F = (C × 9/5) + 32.
Thus, the melting point of sodium in Fahrenheit is (117.85 × 9/5) + 32 = 244.13 °F. Rounding to the nearest whole number, the melting point of sodium in Celsius is 118 °C and in Fahrenheit is 244 °F.
(b) According to the ideal gas law, PV = nRT, the pressure is P, volume is V, number of moles is n, ideal gas constant is R, and temperature in Kelvin is T. As the pressure and volume remain constant, we can rewrite the ideal gas law as n = (PV) / (RT).
No matter how the temperature changes, the number of moles of air in the space remains constant since the pressure and volume are both constant. Therefore, when the temperature rises by 5 K, no moles of air have left the room.
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Two m = 4.0 g point charges on 1.0-m-long threads repel each other after being charged to q = 110 nC , as shown in the figure. What is the angle θ ? You can assume that θ is a small angle.
The angle θ between the two charged point charges is approximately 89.97 degrees.
To find the angle θ between the two charged point charges, we can use the concept of electrostatic forces and trigonometry.
Given:
- Mass of each point charge: m = 4.0 g = 0.004 kg
- Length of the threads: l = 1.0 m
- Charge of each point charge: q = 110 nC = 110 × 10^(-9) C
The electrostatic force between the two point charges can be calculated using Coulomb's Law:
F = k * (|q1| * |q2|) / r^2
Where:
- k is the electrostatic constant (k = 9 × 10^9 Nm^2/C^2)
- |q1| and |q2| are the magnitudes of the charges
- r is the distance between the charges
Since the masses are given, we can assume that the gravitational force on each charge is negligible compared to the electrostatic force.
At equilibrium, the electrostatic force will be balanced by the tension in the threads. The tension in each thread is equal to the weight of the mass attached to it.
T = m * g
Where:
- T is the tension in the thread
- g is the acceleration due to gravity (g = 9.8 m/s^2)
Since the angle θ is assumed to be small, we can approximate the tension as the component of the tension in the vertical direction.
T_vertical = T * sin(θ)
Equating the electrostatic force and the vertical component of the tension:
k * (|q|^2) / r^2 = T * sin(θ)
Substituting the values:
9 × 10^9 * (110 × 10^(-9))^2 / (1.0)^2 = (0.004 kg * 9.8 m/s^2) * sin(θ)
Simplifying the equation:
99 = 0.0392 * sin(θ)
Now, we can solve for the angle θ:
sin(θ) = 99 / 0.0392
θ = arcsin(99 / 0.0392)
Using a calculator, we find:
θ ≈ 89.97 degrees
Therefore, the angle θ between the two charged point charges is approximately 89.97 degrees.
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To find the angle θ between the two point charges, use the equation tan(θ) = (F×r)/(k×q²), where F is the force, r is the length of the thread, k is Coulomb's constant, and q is the charge.
Explanation:To find the angle between the two point charges, we can use trigonometry. The electrical force between the charges causes the wire to twist until the torsion balances the force. As the wire twists, the angle between the wire and the x-axis increases.
We can use the equation tan(θ) = (F×r)/(k×q²) to find the angle θ, where F is the force, r is the length of the thread, k is Coulomb's constant, and q is the charge. Plugging in the values from the problem, we can calculate the value of θ.
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Key Space C2 X1 1F 12V 10W V1 12V Key-A GND Using the time constant T-RC, what is the Capacitance that will allow the light to stay on for 5 seconds? C=T/R= Hint The T will be about 4 time periods for 5 seconds total, so the C value must be divided by 4. 0%
The Capacitance that will allow the light to stay on for 5 seconds is C = 0.4166666666666667 F.
A time constant is defined as the time it takes for a capacitor to charge to about 63.2 percent of its ultimate charge after a change in voltage is applied to it. A capacitor with a time constant of one second, for example, takes approximately one second to reach 63.2 percent of its ultimate charge when it is charged via a resistor.As per the given data, we have:T = 5 secondsR = 12 ohmsC = ? (Unknown)
So, let's calculate the capacitance that will allow the light to stay on for 5 seconds. The formula for the time constant is given by: T = R * C or C = T / R. Put the given values in the formula, we get: C = T / RC = T / R = 5 / 12C = 0.4166666666666667 F. Since the T value is around 4 time periods for a total of 5 seconds, the C value should be divided by 4.Therefore, the Capacitance that will allow the light to stay on for 5 seconds is C = 0.4166666666666667 F.
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A diver is located 56 m below the surface of the ocean (the density of seawater is 1025 kg/m³). To raise a treasure chest that she discovered, the diver inflates a plastic, spherical buoy with her compressed air tanks. The radius of the buoy is inflated to 36 cm, and the mass of the inflated buoy is 0.24 kg. The treasure chest has a mass of 160 kg and is 20 cm * 45 cm 10 cm in size. What is the acceleration of the buoy and treasure chest when they are attached together and released?
A diver is located 56 m below the surface of the ocean (the density of seawater is 1025 kg/m³). The radius of the buoy is inflated to 36 cm, and the mass of the inflated buoy is 0.24 kg. The treasure chest has a mass of 160 kg and is 20 cm × 45 cm 10 cm in size. The acceleration of the buoy and treasure chest, when they are attached together and released, is approximately -2.389 m/s^2.
To find the acceleration of the buoy and treasure chest when they are released, we need to consider the forces acting on them.
First, let's calculate the volume of the inflated buoy:
Volume of the buoy = (4/3) × π × r^3
= (4/3) × π × (0.36 m)^3
= 0.194 m^3
Next, let's calculate the buoy's buoyant force:
Buoyant force = Weight of the fluid displaced
= Density of seawater × Volume of the buoy × g
= 1025 kg/m^3 × 0.194 m^3 × 9.8 m/s^2
= 1953.17 N
The buoyant force acts upward, opposing the gravitational force acting downward on the buoy and the treasure chest. The total downward force is the sum of the gravitational forces on both objects:
Weight of the buoy = mass of the buoy ×g
= 0.24 kg × 9.8 m/s^2
= 2.352 N
Weight of the treasure chest = mass of the chest × g
= 160 kg × 9.8 m/s^2
= 1568 N
Total downward force = Weight of the buoy + Weight of the treasure chest
= 2.352 N + 1568 N
= 1570.352 N
To find the net force, we subtract the buoyant force from the total downward force:
Net force = Total downward force - Buoyant force
= 1570.352 N - 1953.17 N
= -382.818 N (negative sign indicates the net force is upward)
Now, we can use Newton's second law of motion, F = ma, to find the acceleration:
Net force = (mass of the buoy + mass of the treasure chest) * acceleration
Since the buoy and the treasure chest are attached together, we can combine their masses:
Mass of the buoy and treasure chest = mass of the buoy + mass of the treasure chest
= 0.24 kg + 160 kg
= 160.24 kg
Acceleration = Net force / (mass of the buoy and treasure chest)
= (-382.818 N) / (160.24 kg)
= -2.389 m/s^2 (negative sign indicates the acceleration is upward)
Therefore, the acceleration of the buoy and treasure chest, when they are attached together and released, is approximately -2.389 m/s^2.
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