Write the equilibrium-constant, kp, expression for the reaction a(g)+4b(l)<--------->3c(g)+d(g)
Answer:
[tex]K_{p} =\frac{(P_{c} )^{3}(P_{d} ) }{(P_{a}) }[/tex]
Explanation:
The equilibrium constant is expressed as the relationship between the molar concentration of reagents and products. The expression of a generic reaction is:
aA + bB <--------> cC + dD
[tex]K_{p}=\frac{[C]^{c} [D]^{d} }{[A]^{a} [B]^{b}}[/tex]
The numerator is the product of the concentrations of the products and the denominator is the product of the reagents. Each term in the equation is raised to a power whose value is that of the stoichiometric coefficient in the balanced equation.
When it comes to gas mixtures, it is sometimes more appropriate to describe the composition in terms of partial pressures. So in this case we will have:
[tex]K_{p} =\frac{(P_{c} )^{3}(P_{d} ) }{(P_{a})(P_{b}) ^{4} }[/tex]
As the concentration and partial pressure of pure liquids and solids can be considered as 1, the final equation will be:
[tex]K_{p} =\frac{(P_{c}) ^{3}(P_{d} ) }{(P_{a}) } [/tex]
Braddy connected the lose wire to the battery and created an electromagnet. He picked up 45 thumb tacks with his electromagnet, though his goal was to pick up 50 thumb tacks. What could Braddy do to increase the strength of his electromagnet and pick up more thumbtacks?
A) Use fewer coils of wire.
B) Use a screw instead of a nail.
C) Use two batteries instead of one.
D) Replace the nail with a piece of steel.
Braddy could use two batteries instead of one. One way he could increase the strength of his magnet is to increase the current and add a second battery. He could also add more coils of wire, not use fewer.
An element has three naturally occurring isotopes. Use the information below to calculate the weighted average atomic mass of the element, showing both the setup and the final answer for the calculation.
Isotope
Atomic Mass
Percent Abundance
X 1.01 u 99.984%
Y 2.01 u 0.014%
Z 3.02 u 0.002%
How much water should be added to 1 gallon of pure antifreeze to obtain a solution that is 75 %75% antifreeze?
This means that you need to add 1 gallon of water to 1 gallon of pure antifreeze to obtain a solution that is 75% antifreeze. To obtain a solution that is 75% antifreeze, you need to add 1 gallon of water to 1 gallon of pure antifreeze.
Explanation:To obtain a solution that is 75% antifreeze, you need to determine how much water should be added to 1 gallon of pure antifreeze.
Let's assume that the final volume of the solution, after adding water, remains at 1 gallon.
The amount of antifreeze in the solution can be calculated using the equation:
Amount of antifreeze = Volume of antifreeze / Total volume of solution
Since the volume of the antifreeze is 1 gallon (given) and the total volume of the solution is also 1 gallon (assuming), we can calculate:
Amount of antifreeze = 1 gallon / 1 gallon = 1
This means that you need to add 1 gallon of water to 1 gallon of pure antifreeze to obtain a solution that is 75% antifreeze.
(3) consider a the titration of 1.0 m sulfurous acid (h2so3, ka1 = 1.5e-2, ka2 = 1.0e-7) with 2.0 m naoh. what is the ph at the equivalence point of the titration?
The pH at the equivalence point of the titration of 1.0 M sulfurous acid (H2SO3) with 2.0 M NaOH is 7.08. The pH is slightly basic due to the hydrolysis of the resulting sulfite ion in water, which forms OH- ions.
Explanation:The titration of 1.0 M
sulfurous acid
(H2SO3) with 2.0 M NaOH is a process in which a strong base (NaOH) neutralizes a weak acid (H2SO3). The result at equivalence point is not a neutral solution (pH 7); instead, it is slightly basic because the sulfite ion (SO3^2-) produced from the titration processes hydrolyzes water to produce hydroxide ions (OH-) and render the solution basic.
From the given Ka values (Ka1 = 1.5e-2 and Ka2 = 1.0e-7), we find that the second ionization can be ignored due to its low extent. When 1 mol of H2SO3 is neutralized by 1 mol of NaOH, a solution containing 1 M of SO3^2- is formed. This anion will react with water to generate hydroxide ions. SO3^2- + H2O ↔ HSO3^- + OH-, for which the Kb can be calculated as Kw/Ka1= [1.0e-14]/[1.5e-2] = 6.7x10^-13.
By solving the equilibrium expression Kb = [HSO3^-][OH-]/[SO3^2-], considering the initial concentration of SO3^2- as 1 M and the formation of equal amounts of HSO3^- and OH-, we find [OH-] = √(Kb)= 8.2x10^-7. Finally, using the relationship pOH = -log[OH-] and pH = 14 - pOH, we find that the pH at the equivalence point is 14 + log{8.2x10^-7} = 7.08.
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The pH at the equivalence point of the titration of 1.0 M sulfurous acid (H₂SO₃) with 2.0 M sodium hydroxide (NaOH) is 7.00. The second dissociation constant of H₂SO₃ and the concentrations of HSO₃⁻ formed at the equivalence point.
The pH at the equivalence point of a titration involving 1.0 M sulfurous acid (H₂SO₃) with 2.0 M sodium hydroxide (NaOH), we need to follow these steps:
Identify the acid and base reactions: Sulfurous acid (H₂SO₃) has two dissociation constants (Ka1 = 1.5 × 10⁻² and Ka2 = 1.0 × 10⁻⁷), which means it is a diprotic acid undergoing two ionization steps: H₂SO₃ ⇌ H⁺ + HSO₃⁻ and HSO₃⁻ ⇌ H⁺ + SO₃²⁻.Calculate the moles of H₂SO₃ and NaOH: Given 1.0 M H₂SO₃ and 2.0 M NaOH, let's assume we use 1 L of H₂SO₃ and 0.5 L of NaOH to reach the equivalence point, meaning we have 1 mol H₂SO₃ neutralized by 1 mol NaOH.Determine the species present at equivalence point: At the first equivalence point, the solution mainly contains HSO₃⁻ as the product with a concentration of approximately 0.5 M due to the reaction H₂SO₃ + 2NaOH → NA₂SO₃ + 2H₂O.Calculate the pH: To find the pH, use the remaining concentration of HSO₃⁻ and the second dissociation constant (Ka2 = 1.0 × 10⁻⁷). Applying the Henderson-Hasselbalch equation: pH = pKa2 + log([HSO₃⁻]/[H₂SO₄]). Since [HSO₃⁻] ≈ 0.5 M and [H₂SO₄] ≈ 0, the contribution of HSO₃⁻ will dominate, simplifying the pH calculation to: pH = -log(1.0 × 10⁻⁷) = 7.00.An experiment is designed to test what color of light will activate a photoelectric cell the best. The photocell is set in a circuit that "clicks" in response to current. The faster the current, the more clicks per minute. In this experiment, the number of clicks in one minute is recorded for each color of light shining on the photocell. To change the color of light, a different color of cellophane is placed over the same flashlight and the flashlight is then located a specific distance from the photocell.
In the above experiment, which factor is the independent variable?
A)the number of clicks
B)the color of the light
C)the original source of the light
D)the photocell
PLEASE HELP!!
1. Which of these is the balanced equation for this reaction?
A. V2O5 + HCl ? VOCl3 + H2O
B. V2O5 + HCl ? 2VOCl3 + 3H2O
C. V2O5 + 3HCl ? 2VOCl3 + H2O
D. V2O5 + 6HCl ? 2VOCl3 + 3H2O
2. __N2 + __O2 + __H2O ? __HNO3
What coefficient values will balance the reaction?
A. 2,5,2,4
B. 2,2,2,2
C. 2,2,1,2
D. 1,3,1,2
3.The chemical formula of a compound can tell you -
A. the proportions of elements in the compound.
B. the three-dimensional structure of the compound.
C. the type and arrangement of bonds in the compound.
D. the properties of the elements in the compound.
4.The reaction equation below shows the formation of aluminum oxide. Which set of coefficients balances the equation? Al + O2 ?Al2O3
A. 1,1,1
B. 2,3,5
C. 2,4,5
D. 4,3,2
5.Which of the following is the balanced equation for this process?
A.2NH4NO3? 2N2 + O2 + 4H2O
B.NH4NO3? N2 + 3O2 + H2O
C.2NH4NO3? N2 + O2 + 3H2O
D.2NH4NO3? N2 + 3O2 + 2H2O
what makes a nucleus stable
In an experiment, an unknown gas effuses at one-half the speed of oxygen gas, which has a molar mass of 32 g/mol. which might be the unknown gas?
Which are examples of dynamic equilibrium? Check all that apply.
A cooking pot left under a dripping faucet eventually fills with water and overflows.
A person's bank account balance remains constant because income and expenses are equal.
When a small amount of sugar is added to pure water, the sugar dissolves completely.
When humidity is high, the rate at which water evaporates from the surface of a puddle is the same as the rate at which water vapor condenses from the air, so the puddle's size does not change.
Sodium moves between many different compounds during chemical reactions on Earth, but the total amount of sodium on Earth is constant.
B, D. and E are correct
How many carbon atoms are in 15.6 kg of acetone? acetone is ch3coch3. the density of acetone is 1.30 g/ml?
What are the properties of the aluminum in the can
Which practice is a sustainable method of food production?
A. Using drip irrigation systems to conserve water
B. Allowing chemical pollutants to build up in soil
C. Creating a monoculture crop over large areas
D. Practicing high-density livestock farming
The answers a (apex)
The periodic law describes trends seeing across which of the following?
Periods within the periodic table
Radio activity within the periodic table
Elements with the same number of protons
The top half of periodic table
What was the original element formed moments after the Big Bang? What then created higher order elements?
Hydrogen was the first element formed right after the Big Bang, followed by helium and a small amount of lithium during a period known as Big Bang nucleosynthesis. The heavier elements were created in the cores of stars or during supernovae much later in the universe's history. The CMB is evidence of the universe's early state when neutral hydrogen atoms first formed.
Explanation:The original element formed moments after the Big Bang was hydrogen. After that, the processes that occurred in the early universe allowed for the fusion of hydrogen nuclei into helium and a small amount of lithium. This period of nucleosynthesis occurred within a few hundred seconds of the Big Bang. Heavier elements were created much later in the cores of stars and during supernova explosions.
During the first few minutes after the Big Bang, conditions were ripe for nuclear fusion due to the extremely high temperatures. Protons and neutrons combined to form deuterium (a stable isotope of hydrogen), which then fused into helium. Only about 5% of the current universe's ordinary matter was created during this brief period of Big Bang nucleosynthesis.
As the universe cooled and expanded, fusion became less viable and only the fusion within stars continued the process of creating heavier elements. The Cosmic Microwave Background (CMB) radiation that we observe today is a remnant from the time when the universe cooled enough for neutral hydrogen atoms to form, making the universe transparent to radiation again.
Which of the following is NOT a characteristic of a strong acid and a strong base?
Has a [H+] higher than water
Completely dissociates in water
Has a pH at the extreme end of the scale
Is corrosive to most metals
When will the net enthalpy of formation of a solution (δhsolution) be endothermic?
87 g of oxygen gas would occupy how many liters of volume at stp
The proton pump _____. see concept 36.2 (page 786) the proton pump _____. see concept 36.2 (page 786) uses the energy stored in atp to produce a hydrogen ion gradient across membranes. uses the energy of a proton gradient to generate atp is a passive process operates by osmosis releases kinetic energy
Which is not a hydrogenous sediment?
manganese nodules
calcium carbonates
evaporites
calcareous ooze
my answer is the letter D. calcareous ooze
Because calcareous ooze is a Biogenous sediment not a hydrogenous sediment
What volume of a 3.00 M KI stock solution would you use to make 0.195 L of a 1.25 M KI solution?
The volume of the 3.00 M KI stock solution needed to prepare 0.195 L of a 1.25 M KI solution is 81.25 mL.
The student is asking how to calculate the volume of a stock solution needed to make a diluted solution of a different concentration. The problem can be solved using the dilution equation C1V1 = C2V2, where C1 and V1 are the concentration and volume of the stock solution, respectively, and C2 and V2 are the concentration and volume of the diluted solution, respectively. For this particular question:
C1 = 3.00 M (stock solution concentration)
V2 = 0.195 L (volume of the desired diluted solution)
C2 = 1.25 M (desired concentration of the diluted solution)
To find V1, the volume of the stock solution, we rearrange the equation to:
V1 = (C2 * V2) / C1
V1 = (1.25 M * 0.195 L) / 3.00 M
V1 = (0.24375) / 3.00
V1 = 0.08125 L or 81.25 mL
Question 8 4 pts What would be the resulting molarity of a solution made by dissolving 31.3 grams of Ca(OH)2 in enough water to make a 1050-milliliter solution? Show all of the work needed to solve this problem.
Answer : The molarity of the solution is, 0.4028 mole/L
Explanation : Given,
Mass of [tex]Ca(OH)_2[/tex] = 31.3 g
Molar mass of [tex]Ca(OH)_2[/tex] = 74 g/mole
Volume of solution = 1050 ml
Molarity : It is defined as the moles of solute present in one liter of solution.
Formula used :
[tex]Molarity=\frac{\text{Mass of }Ca(OH)_2\times 1000}{\text{Molar mass of }Ca(OH)_2\times \text{volume of solution in ml}}[/tex]
Now put all the given values in this formula, we get:
[tex]Molarity=\frac{31.3g\times 1000}{74g/mole\times 1050ml}=0.4028mole/L[/tex]
Therefore, the molarity of the solution is, 0.4028 mole/L
Dextrose 25% 1000 ml was ordered, you have only dextrose 70% solution available. how much of the dextrose 70% solution and sterile water will you use to fill this order?
Is bioluminescence an endothermic process bioluminescence an endothermic process or exothermic process?\?
Ga2O3(s) + 3SOCl2(l) --> 2GaCl3(s) +3SO2
In a certain reaction, 71.8 g of Ga2O3 is reacted with 110.8 g SOCl2.The GaCl3 produced is collected and its mass founded to be 97.66 g.
What is the theoretical yield of GaCl3?
How many valance electrons (ve) does one atom of carbon have?
a. 8 ve
b. 4 ve
c. 2 ve
d. 1 ve?
Use the periodic table to answer this question.
Sodium reacts with chlorine gas to form sodium chloride. 2Na + Cl2 → 2NaCl
What mass of chlorine gas will react with 92.0 g of sodium?
246 g Cl2
298 g Cl2
142 g Cl2
63 g Cl2
Can you dissolve .35 moles of Potassium Permanganate (KMnO 4 ) into 500 mL of water? _________ Why? / Why not? (please show work)
Yes, you can dissolve 0.35 moles of Potassium Permanganate (KMnO4) into 500 mL of water.
Explanation:To answer whether you can dissolve 0.35 moles of Potassium Permanganate (KMnO4) into 500 mL of water, we need to consider the solubility of the compound. Potassium Permanganate is highly soluble in water, with a solubility of about 7 g per 100 mL of water at room temperature. The molar mass of KMnO4 is 158.034 g/mol, so 0.35 moles would weigh 55.3119 g. Since you have 500 mL of water, which is about 500 g, you can dissolve 55.3119 g of KMnO4 into it.
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how many moles of gas sample are 5.0 L container at 373K and 203kPa
Final answer:
To calculate the number of moles of a gas sample in a 5.0 L container at 373 K and 203 kPa, one uses the Ideal Gas Law. By substituting the appropriate values into the equation and solving for 'n', the calculation yields approximately 0.328 moles of the gas under the specified conditions.
Explanation:
The question asks how many moles of a gas sample are in a 5.0 L container at 373 K and 203 kPa. To find the number of moles of gas, we use the Ideal Gas Law, which is PV = nRT. In this formula, P is the pressure (in kPa), V is the volume (in liters), n is the number of moles, R is the ideal gas constant (8.314 J/(mol·K) or 8.314 L·kPa/(mol·K)), and T is the temperature (in Kelvin).
First, we convert the pressure into kPa since R is given in L·kPa/(mol·K). The pressure is already in kPa. Then, we solve for 'n' (number of moles):
P = 203 kPa
V = 5.0 L
R = 8.314 L·kPa/(mol·K)
T = 373 K
Using the Ideal Gas Law:
n = PV / RT = (203 kPa × 5.0 L) / (8.314 L·kPa/(mol·K) × 373 K)
n = 1015 / 3093.402 = 0.328 mol
Thus, under the given conditions, the 5.0 L container holds approximately 0.328 moles of the gas sample.
The equilibrium constant k for the synthesis of ammonia is 6.8x105 at 298 k. what will k be for the reaction at 375 k?
The value of K for the reaction at 375 k is : 326
Given data :
Initial temperature ( T1 ) = 298 k
rate constant ( k1 ) = 6.8 * 10⁵
Final temperature ( T2 ) = 375 k
Determine the value of K2applying the relationship below
Log ( K₂ / K₁ ) = ΔH / 2.303 * R * ( T₂-T₁ / T₂T₁ ) ----- ( 1 )
equation ( 1 ) becomes
Log K₂ - log (6.8 * 10⁵ ) = - 7100940 / 213967725
Log K₂ - ( 5 + log 6.8 ) = - 3.318
therefore Log K₂ = 2.5145
K₂ = 10^2.5145
= 326
Hence we can conclude that The value of K for the reaction at 375 k is : 326
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Attached below is the complete question
The equilibrium constant K for the synthesis of ammonia changes with temperature, and to determine K at 375 K, the Van't Hoff equation should be used, which requires the standard enthalpy change of the reaction, ΔH°. Without ΔH°, the exact value of K at 375 K cannot be determined.
Explanation:The equilibrium constant K for the synthesis of ammonia will vary with temperature due to the inherent properties of the reaction and the effect of temperature on reaction dynamics. In thermodynamics, the Van't Hoff equation relates the change in the equilibrium constant with temperature, which is described as:
ln(K2/K1) = -ΔH°/R * (1/T2 - 1/T1)
where:
K1 and K2 are the equilibrium constants at temperatures T1 and T2, respectively,ΔH° is the standard enthalpy change of the reaction,R is the universal gas constant, andT1 and T2 are the initial and final temperatures in Kelvin.To determine K at 375 K, one would need the value of ΔH° for the reaction. In absence of this information, the question cannot be fully answered. However, generally a rise in temperature for an exothermic reaction, like the synthesis of ammonia, results in a lower equilibrium constant due to Le Chatelier's Principle.