A gas mixture contains CO, Ar and H2. What is the total pressure of the mixture, if
the mole fraction of H2 is 0.35 and the pressure of H2 is 0.58 atm?

Answers

Answer 1

Answer:

The total pressure of the mixture is 1.657 atm

Explanation:

Step 1: Data given

Mol fraction of H2 = 0.35

Pressure of H2 = 0.58 atm

Partial pressure gas = total pressure gas * mol fraction gas

Step 2: Calculate the total pressure

Partial pressure H2 = total pressure * mol fraction

0.58 atm = total pressure * 0.35

Total pressure = 0.58 atm / 0.35

Total pressure = 1.657 atm

The total pressure of the mixture is 1.657 atm

Answer 2

Considering the Dalton's partial pressure, the total pressure in the mixture of gases is 1.657 atm.

The pressure exerted by a particular gas in a mixture is known as its partial pressure.

So, Dalton's law states that the total pressure of a gas mixture is equal to the sum of the pressures that each gas would exert if it were alone:

[tex]P_{T} =P_{1} +P_{2} +... +P_{n}[/tex]

where n is the amount of gases in the mixture.

Dalton's partial pressure law can also be expressed in terms of the mole fraction of the gas in the mixture.  So in a mixture of two or more gases, the partial pressure of gas A can be expressed as:

[tex]P_{A} =x_{A} P_{T}[/tex]

In this case, the partial pressure of gas H₂ can be expressed as:

[tex]P_{H_{2} } =x_{H_{2} } P_{T}[/tex]

You know:

[tex]P_{H_{2} }[/tex]= 0.58 atm[tex]x_{H_{2} }[/tex]= 0.35

Replacing in the definition of partial pressure of gas H₂:

[tex]0.58 atm=0.35P_{T}[/tex]

Solving:

[tex]P_{T}=\frac{0.58 atm}{0.35}[/tex]

[tex]P_{T}[/tex]= 1.657 atm

In summary, the total pressure in the mixture of gases is 1.657 atm.

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Related Questions

What is the law of conservation of energy as it applies to exothermic dissolution processes?Energy given off by the system during dissolution equals the energy absorbed by the surroundings.Energy given off by the system during dissolution is less than the energy absorbed by the surroundings.Energy given off by the system during dissolution is greater than the energy absorbed by the surroundings.Energy given off by the system during dissolution may be greater or less than the energy absorbed by the surroundings.

Answers

Energy given off by the system during dissolution equals the energy absorbed by the surroundings. Therefore, option (A) is correct.

The law of energy conservation states that energy can only be transmitted or changed. This equation says that the energy produced by the system during exothermic dissolution, where a material dissolves while generating heat, is equal to the energy received by the solvent and container.

Solute molecules spread and interact with the solvent, forming or breaking bonds and releasing heat. The environment absorbs this heat, keeping energy balance. The law of energy conservation emphasises that energy changes in a system must be counterbalanced by energy changes in the surrounding environment, reinforcing the idea that energy is conserved during exothermic dissolution. Therefore, option (A) is correct.

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Final answer:

The law of conservation of energy states that the energy in a system cannot be created or destroyed, only changed in form. In exothermic dissolution processes, the energy given off by the system as heat is equal to the energy absorbed by the surroundings.

Explanation:

According to the law of conservation of energy, energy can neither be created nor destroyed, only changed in form during a chemical or physical change. In the case of exothermic dissolution processes, energy is given off by the system as heat, and this energy is equal to the energy absorbed by the surroundings. This means that the energy released during dissolution is the same as the energy gained by the surroundings.

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Which of the following best describes the first step in the formation of a hurricane?

A.
Cooler water produces air masses with high pressure, causing fast-moving thunderstorms.
B.
Warm ocean water evaporates and then condenses, forming a low pressure area below.
C.
A high-pressure air mass remains undisturbed over land, resulting in excessive precipitation.
D.
Air masses over the ocean become colder, causing water waves to move faster.

Answers

I think the answer is B...

I am not sure

Answer:

B

Explanation:

Hurricanes are very powerful, circular storms that begin over warm water. These storms have heavy rains, very high winds, and low atmospheric pressures. They are fueled by a strong cycle of warmer, moister air flowing upward from near the ocean's surface and being replaced by cooler, drier air from the surrounding area. This cycle gets faster and stronger as it is fed by the ocean's heat and water evaporating from the ocean's surface.

So, the first step in hurricane formation occurs when warm ocean water evaporates and then condenses, forming a low pressure area below.

A reaction of importance in the formation of smog is that between ozone and nitrogen monoxide described by O3(g)+NO(g)⟶O2(g)+NO2(g) O3(g)+NO(g)⟶O2(g)+NO2(g) The rate law for this reaction is rate of reaction=k[O3][NO] rate of reaction=k[O3][NO] Given that k=4.09×106 M−1⋅s−1k=4.09×106 M−1⋅s−1 at a certain temperature, calculate the initial reaction rate when [O3][O3] and [NO][NO] remain essentially constant at the values [O3]0=5.84×10−6 M[O3]0=5.84×10−6 M and [NO]0=8.65×10−5 M,[NO]0=8.65×10−5 M, owing to continuous production from separate sources.

Answers

Answer:

Initial rate of reaction is [tex]2.07\times 10^{-3}M.s^{-1}[/tex].

Explanation:

It is a second order reaction.

Initial rate of reaction = [tex]k[O_{3}]_{0}[NO]_{0}[/tex]   , where k is rate constant, [tex][O_{3}]_{0}[/tex] is the initial concentration of [tex]O_{3}[/tex] and [tex][NO]_{0}[/tex] is the initial concentration of NO.

Here, k = [tex]4.09\times 10^{6}M^{-1}.s^{-1}[/tex], [tex][O_{3}]_{0}=5.84\times 10^{-6}M[/tex] and [tex][NO]_{0}=8.65\times 10^{-5}M[/tex]

So, initial rate of reaction = [tex](4.09\times 10^{6}M^{-1}.s^{-1})\times (5.84\times 10^{-6}M)\times (8.65\times 10^{-5}M)[/tex]

= [tex]2.07\times 10^{-3}M.s^{-1}[/tex]

So, initial rate of reaction is [tex]2.07\times 10^{-3}M.s^{-1}[/tex]

A steel container filled with H₂ gas is at a pressure of 6.5 atm and a temperature of 22°C. If the container is placed near a furnace and is heated to a temperature of 50°C, what would be the new pressure in the container?

Answers

Answer: The new pressure is 7.1 atm

Explanation:

To calculate the final pressure of the system, we use the equation given by Gay-Lussac Law. This law states that pressure of the gas is directly proportional to the temperature of the gas at constant pressure.

Mathematically,

[tex]\frac{P_1}{T_1}=\frac{P_2}{T_2}[/tex]

where,

[tex]P_1\text{ and }T_1[/tex] are the initial pressure and temperature of the gas.

[tex]P_2\text{ and }T_2[/tex] are the final pressure and temperature of the gas.

We are given:

[tex]P_1=6.5atm\\T_1=22^0C=(22+273)K=295K\\P_2=?\\T_2=50^0C=(50+273)K=323K[/tex]

Putting values in above equation, we get:

[tex]\frac{6.5}{295}=\frac{P_2}{323}\\\\P_2=7.1[/tex]

Hence, the new pressure is 7.1 atm

Final answer:

The new pressure in the steel container filled with H₂ gas, after being heated from 22°C to 50°C, is approximately 7.18 atm, calculated using Gay-Lussac's law.

Explanation:

The question deals with the effect of temperature change on the pressure of a gas within a steel container. According to Gay-Lussac's law, the pressure of a gas is directly proportional to its absolute temperature when the volume and the amount of gas are held constant. This situation can be represented mathematically as P1/T1 = P2/T2, where P1 and T1 are the initial pressure and temperature, and P2 and T2 are the final pressure and temperature, respectively.

To find the new pressure in the container when the temperature is increased from 22°C to 50°C, we first need to convert these temperatures to Kelvin by adding 273. Thus, T1 = 22 + 273 = 295 K and T2 = 50 + 273 = 323 K. Substituting the initial conditions into the equation along with T2, we can solve for P2. Using P1 = 6.5 atm and rearranging the formula gives us P2 = P1 * (T2/T1) = 6.5 * (323/295) ≈ 7.18 atm. Therefore, the new pressure in the container after heating is approximately 7.18 atm.

A solution has a hydroxide ion concentration of 1 × 10–5 M. What is the hydrogen ion concentration of the solution?


(a) 1 × 10–1 M

(b) 1 × 10–5 M

(c) 1 × 10–9 M

(d) 1 × 10–14 M

Answers

Answer:

The correct answer is (c) 1 × 10⁻⁹ M

Explanation:

Hydroxide ion = OH⁻

Hydrogen ion = H⁺

The autoionization equilibrium of water at 25ºC has a water constant Kw which is expressed as follows:

Kw = [H⁺] x [OH⁻]= 1 x 10⁻¹⁴

If we know the concentration of hydroxide ion ([OH⁻]) we can calculate the hydrogen ion concentration ([H⁺]) as follows:

[H⁺] = Kw/[OH⁻]= (1 x 10⁻¹⁴)/1 x 10⁻⁵ M= 1 x 10⁻⁹ M

Final answer:

The hydrogen ion concentration of a solution with a hydroxide ion concentration of 1 × 10-5 M is 1 × 10-9 M.

Explanation:

In chemistry, the product of the concentration of hydrogen ions [H+] and the concentration of hydroxide ions [OH-] in a solution always equals 1 × 10–14 M² at a temperature of 25°C (this is known as the ion product of water).

Since the concentration of hydroxide ions [OH-] in your solution is given as 1 × 10-5 M, you can calculate the concentration of hydrogen ions [H+] by dividing the ion product of water, 1 × 10-14 M², by the concentration of hydroxide ions [OH-]. Therefore, the hydrogen ion concentration [H+] in your solution would be 1 × 10-14 M² / 1 × 10-5 M = 1 × 10-9 M.

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What is the general equilibrium expression for the self-

ionization of water (shown below)?

2H20 (aq) = H20+ (aq) + OH- (aq)

Answers

Answer:

Kw= = [H3O+][OH-] = [H+][OH-].

Explanation:

In chemistry, the term 'equilibrium'' is a period or time in which the rate at which the product is been produced or generated is equal to the quantity of the reactants reacting. In order way, we can say the equilibrium is when forward Reaction is equal to the backward Reactions.

The general equilibrium expression for the self-ionization of water is given below;

Kw = [H3O+][OH-] = [H+][OH-].

The kw is now equal to 1.001x10-14 at 25°C. Kw which is the equilibrium constant is also refer to as the dissociation constant of water.

what is the molarity of a solution made by dissolving 21.2 g of sodium hydroxide in enough water to make 7.92 L of solution

Answers

Answer:

0.067M NaOH is the answer

7: A piston cylinder device initially contains 3.6L of air at 137 kPa and 28 C. Air is now compressed to a final state of 830 kPa and 231 C. The useful work input is 1.9 kJ. Assume the surroundings are at 112 kPa and 15 C. The gas constant of air is R = 0.287 kPa.m3 /kg.K. The specific heats of air at the average temperature of 360 K are cp = 1.009 kJ/kg·K and cv = 0.722 kJ/kg·K. a. Determine the entropy change per unit mass, (s2 - s0). b. Determine the volume change per unit mass, (v2 – v0). c. Determine the exergy of the air at the initial and the final states. d. Determine the minimum work that must be supplied to accomplish this compression process. e. Determine the second law efficiency of this process.

Answers

Answer:

See explaination

Explanation:

To calculate the second law of efficiency, temperatures here should be in Kelvin → K = ºC + 273.15 or Rankin = 460 + ºF. 2. Second Law Efficiency Second Law efficiency is a measure of how much of the theoretical maximum (Carnot) you achieve, or in other words, a comparison of the system's thermal efficiency to the maximum possible efficiency.

See attachment for the step by step solution of the given problem.

To solve this problem, we'll follow these steps:

a. Determine the entropy change per unit mass, (s2 - s0): The entropy change per unit mass can be calculated using the following equation:

[tex]\[ \Delta s = c_p \ln\left(\frac{T_2}{T_1}\right) - R \ln\left(\frac{P_2}{P_1}\right) \][/tex]

where:

- [tex]\( c_p \)[/tex] is the specific heat at constant pressure,

- [tex]\( R \)[/tex]is the gas constant,

- [tex]\( T_1 \) and \( T_2 \)[/tex] are the initial and final temperatures in Kelvin,

-[tex]\( P_1 \) and \( P_2 \)[/tex]are the initial and final pressures.

Given values:

- [tex]\( c_p = 1.009 \) kJ/kg·K[/tex]

- [tex]\( R = 0.287 \) kPa·m³/kg·K[/tex]

-[tex]\( T_1 = 28 + 273.15 \) K[/tex]

- [tex]\( T_2 = 231 + 273.15 \) K[/tex]

- [tex]\( P_1 = 137 \) kPa[/tex]

-[tex]\( P_2 = 830 \) kPa[/tex]

Substitute the values into the entropy change equation to calculate[tex]\( \Delta s \) per unit mass.[/tex]

[tex]\[ \Delta s = 1.009 \ln\left(\frac{231 + 273.15}{28 + 273.15}\right) - 0.287 \ln\left(\frac{830}{137}\right) \][/tex]

b. Determine the volume change per unit mass, (v2 – v0): The volume change per unit mass can be calculated using the equation:

[tex]\[ \Delta v = R \ln\left(\frac{V_2}{V_1}\right) \][/tex]

where:

-[tex]\( V_1 \) and \( V_2 \)[/tex] are the initial and final volumes.

Given values:

- [tex]\( V_1 = 3.6 \) L[/tex]

- [tex]\( V_2 \)[/tex] can be calculated using the ideal gas law:

[tex]\( V_2 = \frac{nRT_2}{P_2} \),[/tex] where \( n \) is the number of moles, [tex]\( R \)[/tex] is the gas constant,[tex]\( T_2 \)[/tex] is the final temperature in Kelvin, and [tex]\( P_2 \)[/tex] is the final pressure.

c. Determine the exergy of the air at the initial and the final states: Exergy [tex](\( X \))[/tex] is given by the equation:

[tex]\[ X = h - h_0 - T_0(s - s_0) \][/tex]

where:

- [tex]\( h \)[/tex] is the enthalpy per unit mass,

-[tex]\( h_0 \)[/tex] is the enthalpy at a reference state,

- [tex]\( T_0 \)[/tex] is the temperature at the reference state,

- [tex]\( s \)[/tex]  is the entropy per unit mass,

- [tex]\( s_0 \)[/tex] is the entropy at the reference state.

Given values:

-[tex]\( T_0 = 15 + 273.15 \)[/tex]K (temperature of the surroundings)

- [tex]\( P_0 = 112 \) kPa[/tex] (pressure of the surroundings)

We'll need to calculate [tex]\( h \), \( h_0 \), \( s \), and \( s_0 \)[/tex] for both initial and final states.

d. Determine the minimum work that must be supplied to accomplish this compression process: The minimum work required [tex](\( W_{\text{min}} \))[/tex]for an isentropic process can be calculated using the following equation:

[tex]\[ W_{\text{min}} = h_1 - h_2 \][/tex]

where:

-[tex]\( h_1 \)[/tex] is the enthalpy at the initial state,

- \( h_2 \) is the enthalpy at the final state.

e. Determine the second law efficiency of this process: The second law efficiency[tex](\( \eta \))[/tex] is given by the ratio of the actual work done[tex](\( W_{\text{actual}} \)) to the minimum work (\( W_{\text{min}} \)[/tex]):

[tex]\[ \eta = \frac{W_{\text{actual}}}{W_{\text{min}}} \][/tex]

Given values:

- [tex]\( W_{\text{actual}} = 1.9 \) kJ[/tex]

Now, let's go step by step and calculate each part of the problem.

a. Entropy Change per Unit Mass[tex](\( \Delta s = s_2 - s_0 \))[/tex]:

Using the given specific heats [tex]\( c_p \), \( R \)[/tex], temperatures [tex]\( T_1 \), \( T_2 \)[/tex], pressures [tex]\( P_1 \), and \( P_2 \)[/tex]:

[tex]\[ \Delta s = c_p \ln\left(\frac{T_2}{T_1}\right) - R \ln\left(\frac{P_2}{P_1}\right) \][/tex]

Substitute the values:

[tex]\[ \Delta s = 1.009 \ln\left(\frac{231 + 273.15}{28 + 273.15}\right) - 0.287 \ln\left(\frac{830}{137}\right) \][/tex]

[tex]\[ \Delta s \approx 1.009 \ln(1.842) - 0.287 \ln(6.0657) \][/tex]

[tex]\[ \Delta s \approx 0.6087 \, \text{kJ/kg·K} \][/tex]

b. Volume Change per Unit Mass [tex](\( \Delta v = v_2 - v_0 \))[/tex]:

First, calculate [tex]\( V_2 \)[/tex] using the ideal gas law:

[tex]\[ V_2 = \frac{nRT_2}{P_2} \][/tex]

where [tex]\( n \)[/tex] is the number of moles of air, which can be calculated using the initial conditions:

[tex]\[ n = \frac{P_1V_1}{RT_1} \][/tex]

Substitute the values and calculate[tex]\( V_2 \)[/tex]:

[tex]\[ n = \frac{137 \times 3.6}{0.287 \times (28 + 273.15)} \][/tex]

[tex]\[ n \approx 1.932 \, \text{kg} \][/tex]

[tex]\[ V_2 = \frac{1.932 \times 0.287 \times (231 + 273.15)}{830} \][/tex]

[tex]\[ V_2 \approx 1.476 \, \text{L/kg} \][/tex]

Now, calculate [tex]\( \Delta v \)[/tex] :

[tex]\[ \Delta v = R \ln\left(\frac{V_2}{V_1}\right) \][/tex]

[tex]\[ \Delta v \approx 0.287 \ln\left(\frac{1.476}{3.6}\right) \][/tex]

[tex]\[ \Delta v \approx -0.5305 \, \text{m}^3/\text{kg} \][/tex]

The negative sign indicates compression.

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Does the hydrogen molecule obey the octet rule?

Answers

Explanation:

Hydrogen does not obey the octet rule. Boron does not always

obey the octet rule and in fact forms Lewis acids such as BF3 which

only has 6 electrons.

What are the reactions that allow the conversion of cytosolic NADHNADH into NADPHNADPH during fatty acid biosynthesis? malate+NADP+⟶pyruvate+CO2+NADPHmalate+NADP+⟶pyruvate+CO2+NADPH glucose 6-phosphate+2NADP++H2O⟶ribulose 5-phosphate+2NADPH+2H++CO2glucose 6-phosphate+2NADP++H2O⟶ribulose 5-phosphate+2NADPH+2H++CO2 oxaloacetate+NADH+H+↽−−⇀malate+NAD+oxaloacetate+NADH+H+↽−−⇀malate+NAD+ pyruvate+CO2+ATP+H2O⟶oxaloacetate+ADP+Pi+2H+pyruvate+CO2+ATP+H2O⟶oxaloacetate+ADP+Pi+2H+ What enzymes are required? malic enzyme pyruvate carboxylase glucose 6‑phosphate dehydrogenase malate dehydrogenase What is the sum of these reactions?

Answers

Answer:

See explaination

Explanation:

Fatty acid synthesis is the creation of fatty acids from acetyl-CoA and NADPH through the action of enzymes called fatty acid synthases. This as a process usually takes place in the cytoplasm of the cell.

Check attachment for further solution of the given problem.

You are given 1.000 grams of hydrated Magnesium Sulfate (MgSO4*XH20). You place it into a crucible and heat it up past 100 C so that the water evaporates from the hydrated salt. Once you are done, the mass of the dry anhydrous Magnesium Sulfate is 0.488 grams.

How many molecules of water are attached to each atom of Magnesium?

Answers

Answer:

There would be seven mols of water per every mol of MgSO4.

Explanation:

Final answer:

To find out how many molecules of water are attached to each atom of Magnesium in the hydrated Magnesium Sulfate, we can calculate the number of moles of water lost during heating. From there, we can use the mole ratio in the formula of the hydrated salt to determine the number of water molecules attached to each atom of Magnesium.

Explanation:

To determine how many molecules of water are attached to each atom of Magnesium, we need to calculate the ratio of the mass of water to the mass of the anhydrous Magnesium Sulfate.

From the given information, the mass of the hydrated Magnesium Sulfate is 1.000 grams and the mass of the anhydrous Magnesium Sulfate is 0.488 grams. Therefore, the mass of water lost during heating is 1.000 grams - 0.488 grams = 0.512 grams.

To convert grams of water to molecules, we can use Avogadro's number. The molar mass of water is 18.015 g/mol. So, the number of moles of water lost is 0.512 grams / 18.015 g/mol = 0.0284 moles.

Next, we can calculate the number of molecules of water using the mole ratio between water and Magnesium Sulfate in the formula of the hydrated salt. The formula is MgSO4 * XH20, where X represents the number of water molecules. Assuming the formula is MgSO4 * 7H20, the mole ratio is 1:7. Therefore, the number of water molecules attached to each atom of Magnesium is 0.0284 moles * 7 = 0.199 moles. Now, we multiply this by Avogadro's number to get the number of molecules, which is 0.199 moles * 6.022 x 10^23 molecules/mol = 1.20 x 10^23 molecules of water.

The enzyme ribose‑5‑phosphate isomerase catalyzes the conversion between ribose‑5‑phosphate (R5P) and ribulose‑5‑phosphate (Ru5P) through an enediolate intermediate. In the Calvin cycle, Ru5P is used to replenish ribulose‑1,5‑bisphosphate, a substrate for rubisco. For the conversion of R5P to Ru5P, if Δ G ° ′ = 0.460 kJ / mol ΔG°′=0.460 kJ/mol and Δ G = 3.30 kJ / mol ΔG=3.30 kJ/mol , calculate the ratio of Ru5P to R5P at 298 K 298 K . [ Ru 5 P ] [ R 5 P ] = [Ru5P][R5P]= Which of the statements is true? This reaction is favorable, and it is not likely regulated. This reaction is favorable, and it is likely regulated. This reaction is not favorable, and it is not likely regulated. This reaction is not favorable, and it is likely regulated.

Answers

Answer:

This reaction is favorable, and is likely regulated.

Explanation:

The equation to calculate delta G (dG) of a reaction is dG = dGo' + RTln [initial P]/[initial R]. You could use just dG = RTln [initial P]/[initial R] if (and that's a big IF) dGo' is zero, meaning that the reaction is at equilibrium when we have equal amounts of [P] and [R] (which is rarely the case). What really matters is the ratio of Q ([initial P]/[initial R]) to Keq ([P at equilibrium]/[R at equilibrium]), meaning how far off are we from equilibrium.

If Q=Keq, we are already at equilibrium (EQ).

If Q<Keq, we are not yet at EQ, having relatively more [R], or less [P] than under EQ conditions. This means the reaction will move forward to produce more P until EQ is achieved (dG is therefore NEGATIVE).

If Q>Keq, we are also off EQ, but we have relatively more [P], or less [R] than under EQ conditions. This means the reaction will move backwards to produce more R until EQ conditions are achieved (dG is therefore POSITIVE).

Try to understand these equations below (they say what I tried to describe in words)

dGo' = -RTlnKeq (under "standard conditions", i.e. we try to figure out how a reaction "behaves" if we start out with the same molar concentrations of R and P)

dG = dGo' + RTlnQ Q=[initial P]/[initial R]   or

dG = -RTlnKeq + RTlnQ or

dG = RTlnQ - RTlnKeq   or

dG = RTln Q/Keq

For a redox reaction to occur, there must be a transfer of *

A. protons
B. neutrons
C. electrons
D. ions

Answers

Answer:

The answer is C.

Explanation:

Oxidation and Reduction are determine by the transfer of electrons .

PLEASE HELP ASAP!
Hydrogen reacts with nitrogen to form ammonia according to equation 3 H2(g) + N2(g) → 2 NH3(g)

A. How many grams of NH3 can be produced from 4.27 mol of N2 and excess H2?

B. How many grams of H2 are needed to produce 13.01g of NH3?

C. How many molecules (not moles) of NH3 are produced from 0.0235 g of H2?

Answers

Answer:

A. 145.2 g NH3

B. 0.76 g H2

C. 1.41 x 10^22 molecules NH3

Explanation:

A. 1 mol N2    -> 2 mol NH3

   4.27 mol N2 -> x

x= (4.27 mol N2 * 2 mol NH3)/1 mol N2     x= 8.54 mol NH3

1 mol N2       -> 17 g

8.54 mol N2 -> x        x= 145.2 g NH3

B.

2 g H2  -> 34 g NH3

         x   -> 13.01 g NH3

x= 0.76 g H2

C.

2 g  H2      -> 34 g NH3

0.0235 g H2 -> x

x=   0.39 g NH3

0.39 g NH3 (1 mol NH3/17 g NH3)(6.023 x 10^23 molecules/1 mol NH3) =

1.41 x 10^22 molecules NH3

Laura has 3 beakers. Each contain 200cm3 of colourless liquid. Describe how Laura could determine which beakers contain pure water and which contain solutions

Answers

Answer:

Laura can look for a transparent and  translucent liquid and hence determine which beaker has water and which has solution

Explanation:

Pure water is a compound that is transparent in color. However, a solution is a liquid mixture comprising of a solvent or a solute. The atoms of solute occupy space between the atoms of solvent and hence are said to dissolve in it. Water can be a solvent.  

Thus, if the beaker has a transparent liquid in it, then it would be pure water while a beaker having a translucent liquid, then it would be a solution  

Final answer:

Laura can differentiate pure water from solutions by using a conductivity test, indicators like pH paper or red cabbage water, measuring boiling and freezing points, or measuring the refractive index with a refractometer.

Explanation:

Laura can determine which beakers contain pure water and which contain solutions by conducting a series of tests that rely on the physical and chemical properties of the substances. Here are potential methods for differentiating between pure water and solutions:

Conducting a conductivity test, as pure water is a poor conductor of electricity while solutions with ions will conduct electricity.

Using indicators such as pH paper or red cabbage water, as solutions might be acidic or basic, changing the color of the indicator while pure water will not.

Examining the boiling and freezing points, as solutions have different boiling and freezing points compared to pure water.

Employing a refractometer or similar devices to measure the refractive index, which would differ between pure water and a solution.

To elaborate, a conductivity test can be set up by inserting electrodes into each beaker and connecting these to a circuit with a bulb or a conductivity meter. A color change when using red cabbage water as an indicator would signify the presence of an acidic or basic solution, since red cabbage juice changes color at different pH levels. Observing the boiling and freezing points would require heating or cooling the liquid and taking note of the temperature at which the change of state occurs. Pure water has specific boiling and freezing points (100°C and 0°C at standard atmospheric pressure), and deviations from these numbers would indicate a solution. Lastly, a refractometer could be used to compare the refraction of light through the liquids against known values for pure substances, revealing which beakers contain pure water and which contain solutions.

Chlorine can be prepared in the laboratory by the reaction of manganese dioxide with hydrochloric acid, HCl(aq)HCl(aq), as described by the chemical equation MnO2(s)+4HCl(aq)⟶MnCl2(aq)+2H2O(l)+Cl2(g) MnO2(s)+4HCl(aq)⟶MnCl2(aq)+2H2O(l)+Cl2(g) How much MnO2(s)MnO2(s) should be added to excess HCl(aq)HCl(aq) to obtain 235 mL Cl2(g)235 mL Cl2(g) at 25 °C and 805 Torr805 Torr?

Answers

Answer: 0.887 g of [tex]MnO_2[/tex] should be added to excess HCl(aq).

Explanation:

According to ideal gas equation:

[tex]PV=nRT[/tex]

P = pressure of gas = 805 torr = 1.06 atm  (760torr=1atm)

V = Volume of gas = 235 ml = 0.235 L

n = number of moles = ?

R = gas constant =[tex]0.0821Latm/Kmol[/tex]

T =temperature =[tex]25^0C=(25+273)K=298K[/tex]

[tex]n=\frac{PV}{RT}[/tex]

[tex]n=\frac{1.06atm\times 0.235L}{0.0820 L atm/K mol\times 298K}=0.0102moles[/tex]

[tex]MnO_2(s)+4HCl(aq)\rightarrow MnCl_2(aq)+2H_2O(l)+Cl_2(g)[/tex]

According to stoichiometry:

1 mole of chlorine is produced by = 1 mole of [tex]MnO_2[/tex]

Thus 0.0102 moles of chlorine is produced by = [tex]\frac{1}{1}\times 0.0102=0.0102[/tex] moles of [tex]MnO_2[/tex]

Mass of [tex]MnO_2[/tex] =[tex]moles\times {\text {Molar mass}}=0.0102mol\times 87g/mol=0.887g[/tex]

0.887 g of [tex]MnO_2[/tex] should be added to excess HCl(aq).

Write a balanced net ionic equation to show why the solubility of NiCO3 (s) increases in the presence of a strong acid and calculate the equilibrium constant for the reaction of this sparingly soluble salt with acid. Consider only the FIRST STEP in the reaction with strong acid. Use the pull-down boxes to specify states such as (aq) or (s). + + + K =

Answers

Final answer:

The solubility of NiCO3 increases in the presence of a strong acid due to the neutralization reaction that occurs. The balanced net ionic equation for this reaction is NiCO3 (s) + 2H+ (aq) → Ni2+ (aq) + CO2 (g) + H2O (l). The equilibrium constant for the reaction can be considered as the solubility product constant (Ksp) for NiCO3, which is 1.36 x 10^-7.

Explanation:

The solubility of NiCO3 (s) increases in the presence of a strong acid due to the neutralization reaction that occurs. When a strong acid is added, it provides H+ ions which react with the carbonate ions of NiCO3 to form carbonic acid, H2CO3. Carbonic acid is unstable and decomposes into water and carbon dioxide, causing more NiCO3 to dissolve.



The balanced net ionic equation for this reaction is:



NiCO3 (s) + 2H+ (aq) → Ni2+ (aq) + CO2 (g) + H2O (l)



As for calculating the equilibrium constant, since the question only asks for the first step in the reaction with the strong acid, the equilibrium constant can be considered to be the solubility product constant (Ksp) for NiCO3. The solubility product constant is given as Ksp = 1.36 x 10-7 for NiCO3.

Gallium is produced by the electrolysis of a solution made by dissolving gallium oxide in concentrated NaOH ( aq ) . NaOH(aq). Calculate the amount of Ga ( s ) Ga(s) that can be deposited from a Ga ( III ) Ga(III) solution using a current of 0.880 A 0.880 A that flows for 30.0 min .

Answers

Answer:

0.382 g

Explanation:

Let's consider the reduction of gallium (III) to gallium that occurs in the electrolysis.

Ga³⁺ + 3 e⁻ → Ga

We can establish the following relations:

1 minute = 60 second1 Ampere = 1 Coulomb / secondThe charge of 1 mole of electrons is 96,468 Coulomb (Faraday's constant)1 mole of gallium is deposited when 3 moles of electrons circulate.The molar mass of gallium is 69.72 g/mol

We will use this that to determine the mass of gallium deposited from a Ga(III) solution using a current of 0.880 A that flows for 30.0 min

[tex]30.0min \times \frac{60s}{1min} \times \frac{0.880c}{s} \times \frac{1mole^{-} }{96,468c} \times \frac{1molGa}{3 mole^{-}} \times \frac{69.72g}{1molGa} = 0.382 g[/tex]

Experiment #1A melting point of an old sample of Naphthalene was completed and a melting range of 77-83 oC was observed and recorded. Complete the following calculations and show your work. 1. From the information and data in the JoVE video, calculate the percent error of the melting point compared to the literature value for the naphthalene sample.2. What does the melting point range and percent error suggest about the sample?

Answers

Answer:

%error = 0.32%

Explanation:

Let's answer both questions, by parts.

1. Percentage error:

In this case, I do not have the video, but I do have the reported melting point of naphtalene which is 80.26 °C.

The expression to calculate the percentage error is the following:

%Error = absolute error / actual percentage. (1)

And the absolute error is:

Abs error = actual value - experimental value  (2)

But the experimental value is a range, so we just have to get a average of that:

Exp value = 77 + 83 / 2 = 80 °C

Now the absolute error:

Abs error = 80.26 - 80 = 0.26 °C

Finally the %error:

%error = (0.26 / 80.26) * 100

%error = 0.32%

2. Meaning of melting point range and %error

The melting point range just means that the sample of naphtalene has impurities, and when a sample of any compound has impurities, melting point tends to be low. However, this decrease of temperature is a wider range. But usually a range of just 5° C means that compound has little traces of impurities but it can still be used for reactions.

The %error means that the impurities of the sample are really low, so the sample is practically pure with little traces of impurities.

Final answer:

The percent error for the melting point of naphthalene is calculated using the formula and considering the literature value of 80.2°C, yielding an approximate percent error of 0.25%. The broad melting range and low percent error suggest the sample is mostly pure with possible minor impurities.

Explanation:

The student's question is regarding the calculation of the percent error for the melting point of a sample of naphthalene and what the results suggest about the sample's purity.

Percent Error Calculation

To find the percent error, we use the formula:

Percent Error = (|Experimental Value - Literature Value| / Literature Value) x 100%

Assuming the literature value of naphthalene's melting point is approximately 80.2°C (the value will need to be verified as it can vary slightly in literature), we calculate percent error using the experimental value's mean (80°C, the midpoint of 77-83°C) as follows:

Percent Error = (|80°C - 80.2°C| / 80.2°C) x 100% = (0.2°C / 80.2°C) x 100% ≈ 0.25%

Suggestion About the Sample

The observed melting range of 77-83°C and the low percent error suggest that the sample is relatively pure but may contain minor impurities since a pure sample would have a narrower melting point range close to the literature value.

The major product of reacting the molecule above with sodium cyanide in di-methyl formamide (DMF) would be ?

Help please

Answers

Answer:

DMF is an aprotic polar solvent.

hence CN acts as a strong nucleophile in DMF to give SN2 reaction with the reactant resulting into inversion of  configuration at stereo centers.

Explanation:

check the attached file for little explanation(diagram)

The correct answer is that the major product of reacting the given molecule with sodium cyanide in di-methyl formamide (DMF) would be the nitrile compound formed by the nucleophilic addition of the cyanide ion to the carbonyl carbon of the molecule.

To understand the reaction, let's consider the mechanism step by step:

 1. The carbonyl group in the given molecule contains a carbon atom that is electrophilic due to the partial positive charge on it, resulting from the electron-withdrawing effect of the oxygen atom.

 2. Sodium cyanide (NaCN) dissociates in the polar aprotic solvent DMF to give free cyanide ions (CN^-). The cyanide ion is a good nucleophile because of the negative charge on the carbon atom.

 3. The cyanide ion attacks the electrophilic carbonyl carbon, leading to the formation of a tetrahedral intermediate.

 4. The intermediate then undergoes elimination of a hydroxide ion (OH^-), which is a good leaving group, to form the nitrile.

 5. The final product is the nitrile compound, where the carbonyl oxygen has been replaced by the cyanide group.

 The reaction can be represented as follows:

  In this reaction, R and R' represent the alkyl or aryl groups attached to the carbonyl carbon. The product is a nitrile, which has a carbon triple-bonded to a nitrogen (C}\equiv\text{N}), and this is the major product of the reaction under the given conditions.

 It is important to note that the reaction conditions, such as the use of a polar aprotic solvent like DMF, favor the formation of the nitrile by stabilizing the transition state and the intermediate, and by not protonating the cyanide ion, which would reduce its nucleophilicity.

Give the formula for the alkene containing 15 carbons.

Answers

The general formula for alkanes is CnH₂n+2. If it's containing 15 carbon, it contains 32 hydrogen atoms. The formula would be C₁₅H₃₂.

What are alkenes?

Alkenes are defined as either branched or unbranched hydrocarbons with a general formula of CnH2n with at least one carbon-carbon double bond (CC).

Alkenes are unsaturated hydrocarbons with carbon-carbon double bonds and have the chemical formula CnH2n. The molecular structure of this is the same as that of cycloalkanes.

The naming convention for alkenes is the same as that for alkanes, with the exception that the suffix is now -ene.

Substitute 15 for n.

The number of hydrogen atoms is 2×15+2=32.

The formula for an acyclic alkane with 15 carbon atoms is C₁₅H₃₂.

Therefore, CnH₂n+2 is the standard formula for alkanes. 32 hydrogen atoms are present if it has 15 carbon atoms. The equation would be  C₁₅H₃₂.

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Match the following aqueous solutions with the appropriate letter from the column on the right. Assume complete dissociation of electrolytes. 1. 0.17 m NH4CH3COO ---- A. Lowest freezing point 2. 0.18 m MnSO4 ---- B. Second lowest freezing point 3. 0.20 m CoSO4 ---- C. Third lowest freezing point 4. 0.42 m Ethylene glycol (nonelectrolyte) ---- D. Highest freezing point

Answers

Answer:  0.17 m [tex]CH_3COONH_4[/tex] : Highest freezing point

0.20 m [tex]CoSO_4[/tex]: Second lowest freezing point

0.18 m [tex]MnSO_4[/tex]: Third lowest freezing point

0.42 m ethylene glycol: Lowest freezing point

Explanation:

Depression in freezing point  is a colligative property which depend upon the amount of the solute.

[tex]\Delta T_f=i\times k_f\times m[/tex]

where,

[tex]\Delta T_f[/tex] = change in freezing point

i= vant hoff factor

[tex]k_f[/tex] = freezing point constant

m = molality

a) 0.17 m [tex]CH_3COONH_4[/tex]

For electrolytes undergoing complete dissociation, vant hoff factor is equal to the number of ions it produce. Thus i =2 for [tex]CH_3COONH_4[/tex], thus total concentration will be 0.34 m

b) 0.18 m [tex]MnSO_4[/tex]

For electrolytes undergoing complete dissociation, vant hoff factor is equal to the number of ions it produce. Thus i = 2 for [tex]MnSO_4[/tex], thus total concentration will be 0.36 m

c) 0.20 m [tex]CoSO_4[/tex]

For electrolytes undergoing complete dissociation, vant hoff factor is equal to the number of ions it produce. Thus i = 2 for [tex]CoSO_4[/tex], thus total concentration will be 0.40 m

d) 0.42 m ethylene glycol

For non electrolytes undergoing no dissociation, vant hoff factor is equal to 1 . Thus i = 1 for ethylene glycol, thus concentration will be 0.42 m

The more is the concentration, the highest will be depression in freezing point and thus lowest will be freezing point.

Which system starts the process of breathing?
A. nervous
B. muscular
C. circulatory

Answers

Answer:

your nervous system C:

Answer:

It would be C.  

(Circulatory)

Explanation:

Breathing starts when you inhale air into your nose or mouth. It travels down the back of your throat and into your windpipe, which is divided into air passages called bronchial tubes. For your lungs to perform their best, these airways need to be open. Knowing that it all starts from the inside is what you should remember.

I hope this helps. :)

In a study of the conversion of methane to other fuels, a chemical engineer mixes gaseous methane and gaseous water in a 0.669 L flask at 1,020 K. At equilibrium, the flask contains 0.276 mol of CO gas, 0.207 mol of H2 gas, and 0.231 mol of methane. What is the water concentration at equilibrium (Kc = 0.30 for this process at 1,020 K)? Enter to 4 decimal places. HINT: Look at sample problem 17.7 in the 8th ed Silberberg book. Write a balanced chemical equation. Write the Kc expression. Calculate the equilibrium concentrations of all the species given (moles/liter). Put values into Kc expression, solve for the unknown.

Answers

Answer:

Concentration of water at equilibrium is 0.1177 M.    

Explanation:

Balanced equation: [tex]CH_{4}(g)+H_{2}O(g)\rightleftharpoons CO(g)+3H_{2}(g)[/tex]

Equilibrium concentration of [tex]CH_{4}[/tex], [[tex]CH_{4}[/tex]] = [tex]\frac{0.231}{0.669}[/tex] M = 0.345 M

Equilibrium concentration of CO, [CO] = [tex]\frac{0.276}{0.669}[/tex] M = 0.413 M

Equilibrium concentration of [tex]H_{2}[/tex], [[tex]H_{2}[/tex]] = [tex]\frac{0.207}{0.669}[/tex] M = 0.309 M

Equilibrium constant for the given reaction in terms of concentration, [tex]K_{c}[/tex] is expressed as:           [tex]K_{c}=\frac{[CO][H_{2}]^{3}}{[CH_{4}][H_{2}O]}[/tex]

                          [tex]\Rightarrow [H_{2}O]=\frac{[CO][H_{2}]^{3}}{[CH_{4}].K_{c}}=\frac{(0.413)\times (0.309)^{3}}{(0.345)\times (0.30)}= 0.1177[/tex]

Hence, concentration of water at equilibrium is 0.1177 M                          

Consider the following scenario
You are the manager of a chemical stockroom, and find a bottle containing approximately one liter of a clear and colorless solution of unknown identity and concentration. Your only clue to its identity is that it was found between bottles of silver fluoride and sodium fluoride, so it is likely an aqueous solution of one of those two compounds. You will need to develop a procedure to determine the following:
a) The identity of the unknown solution
b) The concentration of the unknown solution
Write out a precise procedure, which includes all glassware, reagents, and steps. You will also need to write the calculations that you would need to determine the concentration of the solution. Assume that you have access to all of the equipment that you used in the chemistry lab this semester and any reagent you might need. To complete this assignment, consider both the techniques learned in lab and the information learned in lecture.

Answers

Answer:

See explaination

Explanation:

Going by the clues that it is between Silver Flouride (AgF) and Sodium Fluoride (NaF) and since it is an aqueous solution , the 1 liter bottle is likely to be Sodium Chloride( NaCl). Going by the reaction,

AgF + NaCl= AgCl + NaF

Here, the color of AgCl is white, hence the solution cannot be AgCl.

Determination of NaCl

Determination of NaCl can be done by Mohr's Method or Volhard's method. But results in Volhard's method are more accurate . Its uses the method of back titration with Potassium Thiocynate which forms a AgCl precipitate . Prior to titration,excess AgNO3 ( The problem also has a clue that excess reagents are present in the lab ) is added to the NaCl solution so that all the Cl- ions react with Ag+. Fe3+ is then added as an indicator and the solution is titrated with KSCN to form a silver thiocyannite precipitate (AgSCN). Once all the silver has reacted, a slight excess of SCN- reacts with Fe3+ to form Fe(SCN)3 dark red complex. The concentration of Cl- is determined by subtracting the titer findings of Ag+ ions that reacted to form AgSCN from the Ag NO3 moles added to the solution. This is used because pH of the solution is acidic. If the pH of solution is basic, Mohr's method is used.

Reactions

Ag+ (aq)+ Cl-(aq) = AgCl(aq)

Ag+(aq) + SCN-(aq) = AgSCN(aq)

Fe3+(aq) + SCN-(aq) = [FeSCN]2- (aq)

Which headings should be used to complete this table?

A. ether (left column); ester (right column)
B. ketone (left column); aldehyde (right column)
C. alkyl halide (left column); amine (right column)
D. alcohol (left column); carboxylic acid (right column)

Answers

Headings that should be used is alkyl halide (left column); amine (right column).

What are Organic Compounds?Chemical compounds in which carbon atoms are covalently linked to the other compounds like nitrogen, oxygen and hydrogen.Ether, Ester, Ketone, Aldehyde, Alkyl halide, Amine, Alcohol are some of the examples.

Given: organic compounds

According to the table:

Left Column:

R-X, (X = F, Cl, Br, I) are the alkyl halide.

Alkyl halides are used as an organic solvent.

Right Column:

R-NH₂ are the amines.

Amines are the weak bases, they are used in many biochemical processes and they have foul smell.

Therefore, headings that should be used to complete the given table will be alkyl halide (left column); amine (right column).

Hence, option (C) is correct.

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Answer:

ether (left column); ester (right column)

ketone (left column); aldehyde (right column)

alkyl halide (left column); amine (right column)

alcohol (left column); carboxylic acid (right column)

Explanation:

Suppose you want to extract the iron from ferrous iodide, FeI2, through electrolysis. What can be said about the merits of electrolysis of molten versus aqueous FeI2? Group of answer choices You'll have to perform electrolysis of the aqueous solution because you can't get iron metal from electrolysis of the molten salt. You'll have to perform electrolysis on the molten salt because you can't get iron metal from electrolysis of the aqueous solution. Electrolysis of either the molten or aqueous salt will produce solid iron. Electrolysis will not produce solid iron rega

Answers

Answer:

Electrolysis of either the molten or aqueous salt will produce solid iron.

Explanation:

Iron (II) iodide has a relatively low melting point. Electrolysis of the molten salt will probably produce solid metallic iron and liquid I2 as well as iodine vapor. The temperature need not be high enough to cause Fe to melt.

so Electrolysis of either the molten or aqueous salt will produce solid iron.

When The Electrolysis of either the molten or aqueous salt will produce solid iron. So The temperature need not be high enough to cause Fe to melt.

What is Electrolysis?

When Iron (II) iodide has a moderately low melting point. Electrolysis of the molten salt will probably construct solid metallic iron and liquid I2 as well as iodine vapor. The temperature requirement not be high enough to cause Fe to melt.

Therefore, The Electrolysis of either the molten or aqueous salt will produce solid iron.

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In the halogenation reaction shown, ethane and chlorine gas yield chloroethane and hydrogen chloride. How do the properties of chloroethane compare to those of ethane?

Chloroethane is denser and has a lower boiling point
Chloroethane is denser and has a higher boiling point
Chloroethane is less dense and has a lower boiling point.
Chloroethane is less dense and has a higher boiling point.

Answers

Answer:

Chloroethane is denser and has a higher boiling point

Explanation:

The density of a gas depends directly on the molar mass of the gas. This means that as the molar mass increases, density increases and vice versa.

Having said that, we can easily see that the molar mass of chloroethane (64.51 g/mol) is greater than the molar mass of ethane (30.07 g/mol). Hence we expect that chloroethane is denser than ethane as established above.

In the absence of other strong intermolecular forces, the higher the molecular mass of a substance the greater its boiling point. Thus the boiling point of chloroethane is higher than that of Ethane since they both have weak Van der Waals forces holding their molecules together in the gaseous state.

Simply by living, an 87.5 kg human being will consume approximately 20.0 mol of O 2 per day. To provide energy for the human, the O 2 is reduced to H 2 O duing food oxidation by the reaction O 2 + 4 H + + 4 e − − ⇀ ↽ − 2 H 2 O Determine the current generated by the human per day. In this case, the current is defined as the flow of electrons ( e − ) to O 2 from the food the human consumes.

Answers

Answer:

The current generated by the human per day = 89.34 Amperes

Explanation:

Given that ;

the human consumes 20.0  mole of O₂ per day

The Food oxidation is given by the reaction :

[tex]O_2 + 4 H^+ + 4 e^- ----> 2H_2O[/tex]

So; the human will produce  20.0 × 4 moles of e⁻

Thus; moles of e⁻ produced  is = 80

Charge on 1  e⁻ = 1.602 × 10⁻¹⁹  C

e⁻ in 1 mole = 6.023 × 10²³

The total charge per day = [tex]\frac{1.602*10^{-19}*6.023*10^{23}*80}{24*60*60}[/tex]

= 89.34 Amperes

The student titrated 10 ml of standered 0.15 M HCl with his sodium hydroxide solution. When the titration reached the equivalence point, the student found that he had used
10.3 ml of Sodium hydroxide solution. Calculate the molarity of the sodium hydroxide solution.

Answers

Answer:

0.15 M

Explanation:

Step 1: Write the neutralization reaction

NaOH + HCl ⇒ NaCl + H₂O

Step 2: Calculate the moles of HCl that reacted

10 mL of 0.15 M HCl was used. The moles of HCl that reacted are:

[tex]0.010L \times \frac{0.15mol}{L} = 1.5 \times 10^{-3} mol[/tex]

Step 3: Calculate the moles of NaOH that reacted

The molar ratio of NaOH to HCl is 1:1. Then, the moles of NaOH that reacted are 1.5 × 10⁻³ moles.

Step 4: Calculate the concentration of NaOH

1.5 × 10⁻³ moles of NaOH are in 10.3 mL of solution. The molarity of NaOH is:

[tex]\frac{1.5 \times 10^{-3} mol}{10.3\times 10^{-3}L} =0.15 M[/tex]

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