To determine the number of moles of O2 needed to burn 9.45 moles of C2H2, we first need to write down the balanced chemical equation for the combustion of acetylene (C2H2):
2 C2H2 + 5 O2 → 4 CO2 + 2 H2O
From this equation, we can see that 5 moles of O2 are required to burn 2 moles of C2H2. To find out how many moles of O2 are needed for 9.45 moles of C2H2, we can use a simple proportion:
(5 moles O2 / 2 moles C2H2) = (x moles O2 / 9.45 moles C2H2)
To solve for x (moles of O2 needed), simply cross-multiply and divide:
x = (5 moles O2 * 9.45 moles C2H2) / 2 moles C2H2
x ≈ 23.63 moles O2
Therefore, approximately 23.63 moles of O2 are needed to burn 9.45 moles of C2H2.
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How many liters of iodine gas will be produced from the complete decomposition of 110 l of hydrogen iodine
49.3 liters of iodine gas will be produced from the complete decomposition of 110 liters of hydrogen iodide gas at STP.
The balanced chemical equation for the decomposition of hydrogen iodide is:
2HI (g) → H₂ (g) + I₂ (g)
According to the equation, for every 2 moles of hydrogen iodide that decompose, 1 mole of iodine gas is produced. Using the ideal gas law, we can convert the volume of hydrogen iodide gas to moles:
n = PV/RTwhere n is the number of moles, P is the pressure, V is the volume, R is the gas constant, and T is the temperature.
Assuming standard temperature and pressure (STP), which is 0°C and 1 atm, we have:
n(HI) = PV/RT = (1 atm) x (110 L) / (0.0821 L atm/K mol x 273 K) = 4.46 molesTherefore, the number of moles of iodine gas produced is:
n(I2) = 4.46 moles HI / 2 moles I2 = 2.23 moles I2Using the ideal gas law again, we can convert the number of moles of iodine gas to volume at STP:
V = nRT/P= (2.23 moles) x (0.0821 L atm/K mol) x (273 K) / (1 atm) = 49.3 LTo learn more about complete decomposition, here
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The complete question is:
How many liters of iodine gas will be produced from the complete decomposition of 110 L of hydrogen iodine? 2HI (g) → H₂ (g) + I₂ (g)
What is the strongest type of intermolecular forces present between the hydrocarbon chains of neighboring stearic acid molecules?
The strongest type of intermolecular forces present between the hydrocarbon chains of neighboring stearic acid molecules is van der Waals forces, specifically London dispersion forces.
These forces arise due to temporary fluctuations in electron distribution, causing momentary dipoles that attract adjacent molecules.
Stearic acid is a long-chain fatty acid consisting of a hydrocarbon chain (nonpolar) and a carboxylic acid functional group (polar). The hydrocarbon chains in stearic acid are composed of carbon and hydrogen atoms, resulting in a relatively nonpolar nature.
London dispersion forces, also known as instantaneous dipole-induced dipole interactions, are intermolecular forces that occur between all molecules, including nonpolar molecules like stearic acid.
These forces arise due to temporary fluctuations in the electron distribution around atoms or molecules, leading to the formation of temporary dipoles.
In the case of stearic acid, the temporary dipole moment that arises in one molecule induces a corresponding dipole in the neighboring molecule, creating an attractive force between them.
These temporary dipoles result from the uneven distribution of electrons at any given moment, leading to the establishment of temporary positive and negative charges.
The strength of London dispersion forces depends on factors such as the size of the molecules involved and the ease of electron movement within them.
In the hydrocarbon chains of stearic acid, the presence of a large number of carbon atoms increases the surface area available for intermolecular interactions, making the London dispersion forces relatively stronger.
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A 100 n force pulls a box horizontally across a floor for 2 m. how much was done by the force of gravity (which pulls straight down on the box)?
a. 50 j
b. 0 j
c. 100 j
d. 200 j
The net work done is 0 J. (B)
The force of gravity only affects the box vertically, not horizontally, so it doesn't do any work in this scenario. Only the applied force of 100 N pulling the box horizontally for 2 m does work.
This work can be calculated using the formula: Work = Force x Distance x Cos(theta), where theta is the angle between the force and the displacement.
In this case, since the force is applied horizontally, theta is 0, so the work done is simply: Work = 100 N x 2 m x Cos(0) = 200 J. Therefore, the correct answer is (b) 0 J for the work done by the force of gravity.(B)
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An archeological artifact has a carbon-14 decay rate of 2. 75 dis/min·gc. If the rate of decay of a living organism is 15. 3 dis/min·gc, how old is this artifact? assume that t1/2 for carbon-14 is 5730 yr.
The age of the artifact is approximately 25313.5 years.
The age of an archaeological artifact can be determined by measuring the decay rate of carbon-14 present in the sample. The decay rate of carbon-14 follows an exponential decay equation given by:
[tex]N = N0 * e^(-kt)[/tex]
where N is the remaining amount of carbon-14 after time t, N0 is the initial amount of carbon-14, k is the decay constant, and t is the time elapsed since the death of the organism.
The decay constant (λ) is related to the half-life (t1/2) by the equation:
λ = ln(2) / t1/2
Substituting the given values, we can calculate the decay constant for carbon-14:
λ = ln(2) / t1/2 = ln(2) / 5730 = 0.000120968
Now, we can use the decay rate of carbon-14 for the artifact and the decay constant to calculate its age:
[tex]N = N0 * e^(-kt)[/tex]
[tex]2.75 dis/min·gc = N0 * e^(-0.000120968*t)[/tex]
Assuming that the decay rate of a living organism is 15.3 dis/min·gc, we can calculate the initial amount of carbon-14 present in the artifact:
[tex]15.3 dis/min·gc = N0 * e^(-0.000120968*0)[/tex]
N0 = 15.3 dis/min·gc
Substituting the values, we get:
[tex]2.75 dis/min·gc = 15.3 dis/min·gc * e^(-0.000120968t)\\0.180 = e^(-0.000120968t)[/tex]
Taking the natural logarithm of both sides, we get:
[tex]ln(0.180) = -0.000120968*t[/tex]
t = ln(0.180) / (-0.000120968)
Solving for t, we get:
t = 25313.5 years
Therefore, the age of the artifact is approximately 25313.5 years.
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why does the pinacol rearrangement more often use sulfuric acid, h 2 s o 4 , as the acid catalyst rather than hydrochloric acid, h c l ?
The pinacol rearrangement more often use the sulfuric acid, H₂SO₄ , as the acid catalyst rather than the hydrochloric acid, HCl is because H₂SO₄ have the more proton than that of the HCl.
The pinacol rearrangement process will takes place through 1,2-rearrangement. This rearrangement will involves the shift of the two adjacent atoms. Pinacol is the compound which has the two hydroxyl groups, each of the attached to the vicinal carbon atom. It is the solid organic compound which is the white.
The H₂SO₄ have the more proton than that of the HCl. This will makes the pinacol rearrangement more often use the sulfuric acid H₂SO₄ , as the acid catalyst and rather than the hydrochloric acid, HCl.
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What type of a reaction is this?
HBr (aq) + KOH (aq) KBr (aq) + H2O (l)
combustion
synthesis
single replacement
double replacement
Answer: Double Replacement
Explanation:
Two elements are being switched around in this reaction, H and K, so it is a double replacement. The K from potassium hydroxide replaces the H in hydrobromic acid, becoming potassium bromide, and the H from hydrobromic acid replaces the K in potassium hydroxide, becoming water.
Sort the disciptions of open clusters and globular clusters into the correct categories
Open clusters:
Found in the disk of the galaxyYoung starsFew hundred to a few thousand starsLoosely bound by gravityIrregular shapeGlobular clusters:
Found in the halo of the galaxyOld starsTens of thousands to millions of starsTightly bound by gravitySpherical shapeWhat are clusters?Clusters are collections of stars that are gravitationally connected to one another and close to one another in astronomy. Open clusters and globular clusters are the two basic categories into which they can be separated.
While globular clusters are collections of much older stars that are tightly bound together into a spherical shape, open clusters are collections of much younger stars that are relatively loosely bound together.
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Determine the pressure in atm exerted by 1 mole of methane placed into a bulb with a volume of 244. 6 mL at 25°C. Carry out two calculations: in the first calculation, assume that methane behaves as an ideal gas; in the second calculation, assume that methane behaves as a real gas and obeys the van der Waals equation
When, 1 mole of methane at 25°C in a 244.6 mL bulb would exert a pressure of 2.79 atm assuming it behaves as a real gas and obeys the van der Waals equation.
First, let's calculate the pressure exerted by 1 mole of methane at 25°C assuming it behaves as an ideal gas;
We can use Ideal Gas Law to calculate the pressure;
PV = nRT
where P is pressure, V is volume, n is number of moles, R is gas constant, and T is the temperature in Kelvin.
Converting the volume of the bulb to liters and the temperature to Kelvin;
V = 244.6 mL = 0.2446 L
T = 25°C = 298 K
For 1 mole of methane;
n = 1 mole
The gas constant for the Ideal Gas Law is;
R = 0.0821 L·atm/(mol·K)
Substituting the values into Ideal Gas Law equation;
P = (nRT) / V
P = (1 mole) x (0.0821 L·atm/(mol·K)) x (298 K) / (0.2446 L)
P = 3.24 atm
Therefore, 1 mole of methane at 25°C in a 244.6 mL bulb would exert a pressure of 3.24 atm assuming it behaves as an ideal gas.
Now, let's calculate the pressure exerted by 1 mole of methane at 25°C assuming it behaves as a real gas and obeys the van der Waals equation;
The van der Waals equation is;
(P + a(n/V)²) (V - nb) = nRT
where P is the pressure, V is the volume, n is the number of moles, R is the gas constant, T is the temperature in Kelvin, a is a constant that takes into account the attractive forces between molecules, b is a constant that takes into account the volume of the molecules, and (n/V) is the molar density.
For methane, the values of the van der Waals constants are;
a = 2.253 atm L²/mol
b = 0.0428 L/mol
Substituting the values into the van der Waals equation and solving for P;
P = (nRT / (V - nb)) - (a(n/V)² / V²)
P = (1 mole) x (0.0821 L·atm/(mol·K)) x (298 K) / (0.2446 L - (0.0428 L/mol x 1 mole)) - (2.253 atm L²/mol² / (0.2446 L)²)
P = 2.79 atm
Therefore, the pressure is 2.79 atm.
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How will this investigation explain joe's 2kg barbell that was left under the sun for about 30 minutes was so much hotter than his 10 kg barbell that was left in the sun for the same amount of time?
This investigation will explain why Joe's 2kg barbell was much hotter than his 10kg barbell after being left in the sun for the same amount of time. Heat is transferred through a process called conduction, which is the direct transfer of thermal energy between two objects in contact. This process is directly proportional to the thermal conductivity of the material and the surface area between the two objects.
Since Joe's 2kg barbell has a smaller surface area than his 10kg barbell, it will experience more heat transfer in a given time period, making it hotter than the 10kg barbell.
Additionally, certain materials have higher thermal conductivities than others, meaning they can transfer heat more quickly. Thus, the material of both barbells could also have a significant effect on the amount of heat transferred to each.
Ultimately, this investigation will explain why Joe's 2kg barbell became hotter than his 10kg barbell in a similar time period, based on their respective surface areas and the materials of which they are made.
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What mass in grams of hydrogen gas is produced if 20.0 mol of zn are added to excess hydrochloric acid according to the equation
zn(s) +2hcl(aq) --> zncl₂(aq) + h₂(g)?
40.32 grams of hydrogen gas will be produced.
According to the balanced chemical equation:
1 mol of Zn reacts with 2 mol of HCl to produce 1 mol of H2
So if 20.0 mol of Zn is added to excess HCl, all the Zn will react to produce:
20.0 mol Zn × 1 mol H2 / 1 mol Zn = 20.0 mol H2
To calculate the mass of H2 produced, we need to use its molar mass, which is 2.016 g/mol:
Mass of H2 = number of moles of H2 × molar mass of H2
Mass of H2 = 20.0 mol × 2.016 g/mol
Mass of H2 = 40.32 g
Therefore, 40.32 grams of hydrogen gas will be produced.
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When 2. 060 g of titanium is combusted in a bomb calorimeter, the temperature of the calorimeter increases from 25. 00°c to 91. 60°c. In a separate experiment, the heat capacity of the calorimeter is measured to be 9. 84 kj/k. The heat of reaction for the combustion of a mole of ti in this calorimeter is ________ kj/mol.
The heat of reaction for the combustion of a mole of Ti in this calorimeter is 15221.209 kJ/mol.
First, we need to calculate the amount of heat absorbed by the calorimeter:
ΔT = 91.60°C - 25.00°C = 66.60°C
q = (9.84 kJ/°C) x (66.60°C) = 655.344 kJ
Since the combustion of 2.060 g of titanium caused this increase in temperature, we can calculate the heat of reaction per mole of titanium:
molar mass of Ti = 47.87 g/mol
moles of Ti combusted = 2.060 g / 47.87 g/mol = 0.043 mol
ΔHrxn = q / n = 655.344 kJ / 0.043 mol = 15221.209 kJ/mol
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Help what’s the answer?
69.6 grams of carbon tetrachloride will be formed after the complete reaction of 32.0 grams of chlorine gas with excess carbon disulfide.
How do we calculate?Moles of chlorine = mass of chlorine / molar mass of chlorine
Moles of chlorine = 32.0 g / 70.9 g/mol = 0.451 mol
the mole ratio between chlorine and carbon disulfide is 1:1 from the balanced equation, also the number of moles of carbon disulfide is also 0.451 mol.
Moles of carbon tetrachloride = moles of carbon disulfide
Moles of carbon tetrachloride = 0.451 mol
We use the molar mass of carbon tetrachloride to convert the number of moles to grams.
Mass of carbon tetrachloride = moles of carbon tetrachloride x molar mass of carbon tetrachloride
Mass of carbon tetrachloride = 0.451 mol x 154.0 g/mol = 69.6 g
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the process in which an atom or ion experiences a decrease in its oxidation state is _____________.
Answer:
Reduction
Explanation:
when an atom or ion decreases in oxidation state
The process in which an atom or ion experiences a decrease in its oxidation state is called reduction.
Reduction is the opposite of oxidation, which is the process in which an atom or ion experiences an increase in its oxidation state. In a redox (reduction-oxidation) reaction, one species undergoes reduction while the other undergoes oxidation.
In the process of reduction, the species gains electrons, resulting in a decrease in its oxidation state. The reducing agent is the species that donates electrons, while the oxidizing agent is the species that accepts electrons.
Reduction reactions are important in many chemical and biological processes, including metabolism, photosynthesis, and corrosion. The study of redox reactions is important in understanding the behavior of chemicals in natural and industrial processes.
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Which of the following chemical reactions represents a single replacement reaction?
A. H3PO4 (aq) + NH4OH (aq) NH4PO4 (aq) + H2O (l)
B. Ca(OH)2 (aq) + Al2(SO4)3 (aq) CaSO4 (aq) + Al(OH)3 (aq)
C. Na (aq) + H2O (aq) NaOH (aq) + H2 (g)
D. NH4OH (aq) + KCl (aq) KOH (aq) + NH4Cl (aq)
C. Na (aq) + H2O (aq) NaOH (aq) + H2 (g) of the following chemical reactions represents a single replacement reaction
What three categories of single replacement responses exist?When a more reactive ingredient in a compound replaces a less reactive element, the reaction is referred to as a single displacement reaction. Metal, hydrogen, and halogen displacement reactions are the three different types of displacement reactions.
When chlorine is introduced to a solution of sodium bromide in gaseous form (or as a gas dissolved in water), bromine is replaced by chlorine. Sodium bromide's bromine is replaced with chlorine because it is more reactive than bromine, which causes the solutions to become blue.
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The volume of a sample of hydrogen gas at 0. 997 atm is 5. 00 L. What will be the new volume if the pressure is decreased to 0. 977 atm?
The new volume of the hydrogen gas is 5.12 L when the pressure is decreased to 0.977 atm.
The relationship between pressure and volume is described by Boyle's Law, which states that when the pressure of a gas decreases, its volume increases proportionally, and vice versa. In other words, the pressure and volume of a gas are inversely proportional, assuming temperature and amount of gas remain constant.
In this case, the initial pressure of the hydrogen gas is 0.997 atm, and its initial volume is 5.00 L. If the pressure is decreased to 0.977 atm, we can use Boyle's Law to calculate the new volume:
P1V1 = P2V2
Where P1 and V1 are the initial pressure and volume, and P2 and V2 are the new pressure and volume.
Substituting the given values, we get:
(0.997 atm)(5.00 L) = (0.977 atm)(V2)
Solving for V2, we get:
V2 = (0.997 atm)(5.00 L) / (0.977 atm)
V2 = 5.12 L
Therefore, the new volume of the hydrogen gas is 5.12 L when the pressure is decreased to 0.977 atm.
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Read the given passage and answer the questions: A-D that follow: An electrochemical cell (Daniell cell) is set-up by using Silver metal rod and Copper metal rod along with silver nitrate aqueous solution and copper sulphate aqueous solution are used as electrolyte. The circuit is completed inside the cell by migration of ions through the salt bridge. It may be noted that the direction of current is opposite to the direction of electron flow. Given E of Ag/Ag-0.80V and E" of Ca/Cu-034V A. Calculate Eo cell. Which of the electrode is negatively charged. C. Write individual reaction at each electrode. D. Write the cell reaction
(A) Eo cell for the given electrochemical cell is -1.14V. (B) The electrode that is negatively charged is the anode, which is made up of copper (Cu). (C) At the cathode (Ag electrode): Ag⁺ + e⁻ → Ag
At the anode (Cu electrode): Cu → Cu²⁺+ 2e⁻
(D) Overall reaction: 2Ag⁺ + Cu → 2Ag + Cu²⁺
What is electrochemical cell?An electrochemical cell, also known as a voltaic cell or a galvanic cell, is a device that generates electrical energy from a chemical reaction. It consists of two electrodes, a positive electrode (anode) and a negative electrode (cathode), that are immersed in an electrolyte solution that contains ions.
A. To calculate Eo cell, we can use the formula:
Eo cell = Eo cathode - Eo anode
where Eo cathode is the standard reduction potential of the cathode and Eo anode is the standard reduction potential of the anode.
From the given information, Eo of Ag/Ag is -0.80V (since it's a reduction potential, we need to reverse the sign to get the oxidation potential) and Eo of Cu/Cu is 0.34V. Since Ag is the cathode and Cu is the anode in this cell, we can plug in the values and get:
Eo cell = Eo cathode - Eo anode
Eo cell = (-0.80V) - (0.34V)
Eo cell = -1.14V
Therefore, the Eo cell for the given electrochemical cell is -1.14V.
B. The electrode that is negatively charged is the anode, which is made up of copper (Cu).
C. The individual reactions at each electrode are:
At the cathode (Ag electrode):
Ag⁺ + e⁻ → Ag
At the anode (Cu electrode):
Cu → Cu²⁺ + 2e⁻
D. The overall cell reaction can be obtained by combining the individual reactions at the cathode and anode. Since there are two electrons involved in the anode reaction, we need to multiply the cathode reaction by 2 so that the electrons cancel out in the overall reaction:
2Ag⁺ + 2e⁻ → 2Ag (cathode)
Cu → Cu²⁺ + 2e⁻ (anode)
Overall reaction:
2Ag⁺ + Cu → 2Ag + Cu²⁺
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How many grams of iron are produced from 300. moles of carbon monoxide reacting with 15,000. grams of ferric oxide? 3CO + Fe2O3 →2Fe + 3C02
11,169 grams of iron is produced from 300 moles of carbon monoxide reacting with 15,000 grams of ferric oxide.
The balanced chemical equation shows that 3 moles of CO react with 1 mole of [tex]Fe_2O_3[/tex] to produce 2 moles of Fe. Therefore, we can calculate the number of moles of Fe produced from 300 moles of CO reacting with [tex]Fe_2O_3[/tex] as follows:
1 mole [tex]Fe_2O_3[/tex] produces 2 moles Fe
300 moles CO produces (2/3) x 300 = 200 moles Fe (by stoichiometry)
Next, we can use the molar mass of Fe to convert moles to grams:
1 mole Fe = 55.845 g Fe
200 moles Fe = 200 x 55.845 = 11,169 g Fe
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Question 25 of 25
what is indicated by the prefixes cis-and trans-?
a. the size of the molecule
b. the location of the methyl group
c. the type of stereoisomer
d. the type of alkane
The prefixes cis- and trans- are used to describe stereoisomers, which are molecules that have the same molecular formula and connectivity but differ in their spatial arrangement. The correct answer is option c.
Specifically, they are used to describe molecules that have a carbon-carbon double bond or a ring structure.
Cis- and trans- indicate the type of stereoisomer, specifically geometric isomers. Cis- is used to describe molecules in which the two groups attached to the carbons of the double bond are on the same side, while trans- is used to describe molecules in which the two groups are on opposite sides of the double bond.
For example, in the molecule [tex]2-butene[/tex], there are two possible arrangements of the methyl ([tex]CH3[/tex]) and hydrogen (H) groups around the carbon-carbon double bond. If the two methyl groups are on the same side of the double bond, the molecule is called [tex]cis-2-butene[/tex]. If the two methyl groups are on opposite sides of the double bond, the molecule is called [tex]trans-2-butene[/tex].
The correct answer is option c.
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Put these atoms in order from most positive overall charge to least positive overall charge.
Atom B: 24 protons, 19 electrons
Atom A: 14 protons, 16 electrons
Atom R: 26 protons, 24 electrons
Atom P: 8 protons, 11 electrons PLEASE HELP FAST
If the pressure of a 7. 2 liter sample of gas changes from 735 mmHg to 800 mmHg and the temperature remains constant, what is the new volume of
gas?
06. 62 L
оооо
0 5. 9 L
0 7. 2L
The new volume of gas is 6.62 L when the pressure changes from 735 mmHg to 800 mmHg at a constant temperature.
According to Boyle's Law, at a constant temperature, the pressure and volume of a gas are inversely proportional. This means that as the pressure of the gas increases, its volume decreases, and vice versa. Therefore, we can use this law to find the new volume of gas when the pressure changes from 735 mmHg to 800 mmHg.
Using the formula P1V1 = P2V2, where P1 is the initial pressure, V1 is the initial volume, P2 is the final pressure, and V2 is the final volume, we can solve for V2.
Plugging in the values given in the question, we get:
735 mmHg x 7.2 L = 800 mmHg x V2
Solving for V2, we get:
V2 = (735 mmHg x 7.2 L) / 800 mmHg
V2 = 6.62 L
Therefore, the new volume of gas is 6.62 L when the pressure changes from 735 mmHg to 800 mmHg at a constant temperature.
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.if you dilute 0.20 l of a 3.5 m solution of lici to 0.90 l, determine the new concentration of the
solution.
The new concentration of the solution can be calculated using the dilution formula, which states that the initial concentration multiplied by the initial volume (V1) is equal to the new concentration multiplied by the new volume (V2).
In this case, the equation would be: (3.5M)(0.20L) = (xM)(0.90L). Solving for x, we get the new concentration of the solution as 3.17M.
In other words, when a 3.5M solution of lici is diluted from 0.20L to 0.90L, the new concentration of the solution is 3.17M. This is because when the volume of a solution is increased, the concentration of the solution decreases proportionately.
Thus, when the volume of the solution is increased by a factor of four and a half, the concentration of the solution is reduced by the same factor.
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4. A gas has a volume of 4 liters at 50 ℃. What will its volume be (in liters) at 100℃?
The volume of the gas at 100℃ would be 4.64 liters, assuming the pressure remains constant.
We can use the combined gas law, which relates the pressure, volume, and temperature of a gas. The combined gas law formula is: (P1 x V1) / T1 = (P2 x V2) / T2. Where P is the pressure, V is the volume, and T is the temperature. The subscripts 1 and 2 refer to the initial and final states of the gas, respectively.
In this case, we know that the initial volume (V1) is 4 liters and the initial temperature (T1) is 50 ℃. We want to find the final volume (V2) when the temperature is 100℃.To solve for V2, we can rearrange the formula as follows: V2 = (P1 x V1 x T2) / (P2 x T1).We don't know the pressure, but since the problem doesn't mention any changes in pressure, we can assume that it remains constant. Therefore, we can cancel out the P1 and P2 terms.
Plugging in the known values, we get: V2 = (4 L x 373 K) / (323 K) = 4.64 L (rounded to two decimal places)Therefore, the volume of the gas at 100℃ would be 4.64 liters, assuming the pressure remains constant.
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Why would it be unreasonable for an amendment to the clean air act to call for 0%
pollution emissions from cars with combustion engines?
It would be unreasonable for an amendment to the clean air act to call for 0% pollution emissions from cars with combustion engines because practically it is not possible to have 0% pollution emission.
The CAA was amended in 1965 with the Engine Vehicle Air Contamination Control Act (MVAPCA) which gave the Slash Secretary power to set government guidelines for vehicle emanations as soon as 1967.
In 1963, The Clean Air Act (CAA) was passed. It was an augmentation of Air Pollution Control Act, 1955, . The main idea behind this act was to empower the national government through US General administration under the division of Wellbeing, Government assistance and schooling, and to extend support towards innovative work and minimizing pollution.
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If you have a 6. 2 L container with a pressure of 1. 5 atm, how many moles are present if the temperature is 38 o C? (0. 0821 L atm/mol K)
a
2. 28
b
0. 28
c
0. 31
d
0. 36
Correct option is d)0.36
To find the number of moles present, we can use the Ideal Gas Law formula:
PV = nRT
Where:
P = pressure (1.5 atm)
V = volume (6.2 L)
n = number of moles (which we need to find)
R = gas constant (0.0821 L atm/mol K)
T = temperature in Kelvin (38°C + 273.15 = 311.15 K)
Rearranging the formula to solve for n:
n = PV / RT
Plugging in the given values:
n = (1.5 atm * 6.2 L) / (0.0821 L atm/mol K * 311.15 K)
n ≈ 0.36 moles
Th answer is: d) 0.36
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A gas occupies 12.0 Lat 25°C. What is the volume at 333.0 °C?
The volume of the gas at 333.0°C is 24.5 L. To solve this problem, we can use the combined gas law, which relates the pressure, volume, and temperature of a gas.
The combined gas law is expressed as:
(P₁V₁)/T₁ = (P₂V₂)/T₂
where P₁, V₁, and T₁ are the initial pressure, volume, and temperature of the gas, and P₂, V₂, and T₂ are the final pressure, volume, and temperature of the gas.
In this case, we know that the initial volume V₁ is 12.0 L and the initial temperature T₁ is 25°C. We want to find the final volume V₂ when the temperature is 333.0°C. We also know that the pressure remains constant.
To use the combined gas law, we need to convert the temperatures to the absolute scale (Kelvin) by adding 273.15 to each temperature. So, T₁ = 298.15 K and T₂ = 606.15 K.
Plugging in the values into the equation, we get:
(P₁V₁)/T₁ = (P₂V₂)/T₂
(P₁ x 12.0)/298.15 = (P₂ x V₂)/606.15
Since the pressure is constant, we can simplify the equation to:
V₂ = (P₁ x V₁ x T₂)/(T₁ x P₂)
Substituting the values, we get:
V₂ = (1 x 12.0 x 606.15)/(298.15 x 1)
V₂ = 24.5 L
Therefore, the volume of the gas at 333.0°C is 24.5 L.
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HELP ME PLEASEEEE
The student produced less magnesium oxide than expected.
Suggest two reasons why.
There could be several reasons why a student produced less magnesium oxide than expected. Here are two possibilities: Incomplete reaction, Loss of product
Incomplete reaction: Magnesium oxide is produced when magnesium metal is heated in the presence of oxygen. However, if the reaction is incomplete, then less magnesium oxide will be produced. One reason for incomplete reaction could be that the temperature was not high enough to provide the necessary activation energy.
Loss of product: It is possible that some of the magnesium oxide that was produced was lost during the experiment. For example, if the magnesium oxide was not handled carefully after it was produced, it may have been spilled or blown away.
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An aircraft flying from a region of higher air pressure towards a region of lower air pressure will _____ altitude, and the aircraft’s pressure altimeter will read an altitude _____ than the plane’s true elevation, unless corrections are made to the altimeter
An aircraft flying from a region of higher air pressure towards a region of lower air pressure will experience a change in altitude, and the aircraft's pressure altimeter will read an altitude different than the plane's true elevation, unless corrections are made to the altimeter.
When an aircraft moves from an area of higher air pressure to an area of lower air pressure, the aircraft will generally gain altitude. This occurs because the pressure difference causes the air to become less dense, allowing the aircraft to rise more easily. As a result, the aircraft's wings will generate more lift, enabling it to climb higher.
However, the pressure altimeter, which measures an aircraft's altitude based on the surrounding air pressure, will not accurately reflect the plane's true elevation in this situation. The altimeter will typically read an altitude lower than the actual elevation of the aircraft.
This discrepancy occurs because the altimeter is calibrated for a standard pressure setting and will not account for variations in air pressure without adjustments.
To ensure accurate altitude readings, pilots must make corrections to the altimeter by setting the appropriate pressure setting for the area they are flying in, known as the "altimeter setting." This setting can be obtained from air traffic control or other aviation weather sources.
By inputting the correct altimeter setting, the pressure altimeter will provide a more accurate altitude reading, reflecting the plane's true elevation.
In summary, an aircraft flying from a region of higher air pressure towards a region of lower air pressure will gain altitude, and the aircraft's pressure altimeter will read an altitude lower than the plane's true elevation unless corrections are made to the altimeter.
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A 20. 0 g lead ball is heated in a Bunsen burner to 705 degrees celsius. It is then dropped into a 500. 0 g water bath. What is the initial temperature of the water if the final temperature is 35 degrees celsius? The C of lead is 0. 13 J/g degrees C.
[ Remember: Ch2o = 4. 18 J/g degrees celsius]
The initial temperature of the water is 25.8 °C. As a result, the lead ball loses heat rapidly when it is placed in the water bath, causing the water temperature to increase significantly.
What is Temperature?
Temperature is a measure of the average kinetic energy of the particles in a substance. It is a physical quantity that describes how hot or cold an object is. Temperature is usually measured using a thermometer and is commonly expressed in units such as degrees Celsius (°C), Fahrenheit (°F), or Kelvin (K).
The energy gained by the water can also be calculated using the formula:
Q = mcΔT
where Q is the energy gained (in joules), m is the mass of the water (in grams), c is the specific heat capacity of water (in J/g°C), and ΔT is the change in temperature of the water (in °C).
We can calculate Q as follows:
Q = (500.0 g)(4.184 J/g°C)(35°C - T)
where T is the initial temperature of the water.
Since the energy lost by the lead ball is equal to the energy gained by the water, we can set these two equations equal to each other and solve for T:
(20.0 g)(0.13 J/g°C)(705°C - T) = (500.0 g)(4.184 J/g°C)(35°C - T)
Simplifying and solving for T gives:
T = 25.8°C
Therefore, the initial temperature of the water is 25.8 °C.
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treatment of pentanedioic (glutaric) anhydride with ammonia at elevated temperature leads to a compound of molecular formula c5h7no2. what is the structure of this product? [hint: you need to think about the reactivity not only of acid anhydrides but also of amides and carboxylic acids]
The structure of the product is drawn.
The reaction between pentanedioic anhydride and ammonia at elevated temperature is an example of amidation reaction. The product formed has a molecular formula of C₅H₇NO₂, which suggests that it has five carbon atoms, seven hydrogen atoms, one nitrogen atom, and two oxygen atoms.
The constitutional isomers with the molecular formula C₅H₇NO₂ are,
Pentanamide (also known as valeramide)
2-Aminopentanoic acid (also known as α-aminocaproic acid)
3-Aminopentanoic acid (also known as β-aminocaproic acid)
Of these three isomers, only 2-aminopentanoic acid and 3-aminopentanoic acid have two oxygen atoms. Therefore, one of these two isomers is the product of the reaction.
To distinguish between the two isomers, we need to consider the conditions of the reaction. The reaction was carried out at elevated temperature, which suggests that it is likely to be a thermal reaction. Under thermal conditions, the reaction is expected to favor the formation of the less substituted amide, which in this case is 2-aminopentanoic acid.
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What quantity in moles of hydrogen gas at 150. 0 °C and 23. 3 atm would occupy a vessel of 8. 50 L?
Answer ASAP
The number of moles of hydrogen gas comes out to be 5.700 that can be calculated using the ideal gas equation.
Using ideal gas equation,
PV = nRT ......(1)
It is given that,
T = 150.0 °C
P = 23.3 atm
V = 8.50 L
To calculate the number of moles, substitute the known values in equation (1).
PV = nRT
23.3 atm x 8.50 L = n x 0.0821 L atm/mol/K x 423.15 K
n = (23.3 atm x 8.50 L) / (0.0821 L atm/mol/K x 423.15 K)
= 198.05 / 34.74 mole
= 5.700 moles
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