Mercury is a naturally occurring metal that can be released into the environment, including the air, through human activities like burning coal. Mercury emissions from coal-fired power plants have become a major concern because of their adverse effects on human health and the environment.
The forms of mercury that are found in emissions from coal-fired power plants are elemental mercury (Hg0) and oxidized mercury (Hg2+). Elemental mercury is the vapor form of the metal, while oxidized mercury is the result of chemical reactions that occur during combustion. Elemental mercury can remain in the atmosphere for a long time and can travel long distances, while oxidized mercury is more likely to deposit near the source of emissions.
There are several emissions controls that can capture mercury, including activated carbon injection, which involves injecting activated carbon into the flue gas to absorb mercury; dry sorbent injection, which uses powdered sorbents to adsorb mercury; and wet flue gas desulfurization, which involves using a wet scrubber to remove sulfur dioxide and other pollutants, including mercury.
Another possible control method is the use of electrostatic precipitators, which can remove particulate matter and some forms of mercury from flue gas.
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Derive Underwood equation for determining minimum
reflux ratio.
In the design and use of distillation columns, the separation process can be optimised by regulating the reflux ratio based on the Underwood equation.
The step-by-step instructions for using the Underwood equation to determine the minimum reflux ratio:
1. Make the following assumptions:
a. Assume that the tray efficiency is the same for all trays in the column.
b. Assume that the liquid composition is in equilibrium with the vapor at the point of vaporization.
c. Assume that the feed is a single component.
d. Assume that the operating line passes through the minimum reflux point.
e. Assume that a total condenser is used for easy determination of the reflux ratio.
f. Assume that the heat of reaction is negligible for simplicity.
2. Perform a mass balance on the column:
G = L + D + N = F + B
Here, G is the total flowrate of vapor, L is the total flowrate of liquid, D is the distillate flowrate, B is the bottom flowrate, N is the net flowrate, and F is the feed flowrate.
3. Apply a material balance on tray i:
[tex](L_{i-1} - V_{i-1})Q + (V_i - L_i)W = LN[/tex]
Here, [tex](L_{i-1} - V_{i-1})[/tex] Q represents the liquid leaving the tray at the bottom, and [tex](V_i - L_i)[/tex] W represents the vapor leaving the tray.
4. Set Q to zero to determine the minimum reflux ratio point.
5. Calculate the average composition at each tray using the equilibrium relationship and the assumption that the liquid leaving the tray is in equilibrium with the vapor leaving the tray:
[tex]y_i^* = \frac{k_i x_i}{\sum k_j x_j} x_i = \frac{L_i}{L_i + V_i} y_i = \frac{V_i}{L_i + V_i}[/tex]
6. Plot the mass balance equation and the equilibrium line to determine the operating line.
7. Determine the maximum slope of the operating line, kmax.
8. Calculate the minimum reflux ratio, Rmin, using the Underwood equation:
[tex]Rmin = \frac{1}{kmax} - 1[/tex]
The minimum reflux ratio is inversely proportional to the slope of the operating line, meaning that a steeper slope corresponds to a lower minimum reflux ratio.
By controlling the reflux ratio based on the Underwood equation, you can optimize the separation process in the design and operation of distillation columns.
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Sulfur trioxide is the primary raw material in the manufacture of sulfuric acid. SO3 gas is commonly obtained from roasting pyrite (FeS₂) at 850°C. Roasting is the reaction of pyrite and oxygen, forming ferric oxide and sulfur trioxide. For the production of 800 kg SO3, calculate (a) the quantity of heat released in kJ (b) the entropy of reaction in kJ/K (b) If 85% of the heat generated in (a) is supplied to a boiler to transform liquid water at 20°C and 1atm to superheated steam at 120°C and 1 atm, how many kilograms of steam are produced?
(a) The quantity of heat released in the production of 800 kg of SO₃ is approximately 119,819 kJ. (c) Approximately 2,537 kg of steam is produced when 85% of the heat generated is supplied to the boiler.
To solve this problem, we need to use the balanced chemical equation for the reaction between pyrite and oxygen to produce sulfur trioxide:
4FeS₂ + 11O₂ → 2Fe₂O₃ + 8SO₃
Given that the production of 800 kg of SO₃ is desired, we can use stoichiometry to determine the amount of pyrite required.
From the balanced equation, we see that 8 moles of SO₃ are produced from 4 moles of FeS₂. The molar mass of FeS₂ is approximately 119.98 g/mol.
Step 1: Calculate the moles of SO₃ produced.
Moles of SO₃ = mass of SO₃ / molar mass of SO₃
Moles of SO₃ = 800 kg / (32.07 g/mol)
Moles of SO₃ = 24.93 mol
Step 2: Calculate the moles of FeS₂ required.
From the stoichiometry of the balanced equation, we know that 4 moles of FeS₂ produce 8 moles of SO₃.
Moles of FeS₂ = (24.93 mol × 4 mol) / 8 mol
Moles of FeS₂ = 12.465 mol
Step 3: Calculate the mass of FeS₂ required.
Mass of FeS₂ = moles of FeS₂ × molar mass of FeS₂
Mass of FeS₂ = 12.465 mol × 119.98 g/mol
Mass of FeS₂ = 1,495.03 g or 1.495 kg
Now let's move on to the next part of the question.
(a) To calculate the quantity of heat released in kJ, we need to determine the enthalpy change of the reaction.
The enthalpy change can be found using the enthalpy of formation values for the reactants and products involved. Given that the reaction takes place at 850°C, we need to consider the enthalpy of formation values at that temperature.
The enthalpy change for the reaction can be calculated using the following equation:
ΔH = ΣΔH(products) - ΣΔH(reactants)
Using the enthalpy of formation values at 850°C:
ΔH(Fe₂O₃) = -825 kJ/mol
ΔH(SO₃) = -395 kJ/mol
ΔH = (2 × ΔH(Fe₂O₃)) + (8 × ΔH(SO₃))
ΔH = (2 × -825 kJ/mol) + (8 × -395 kJ/mol)
ΔH = -1650 kJ/mol - 3160 kJ/mol
ΔH = -4810 kJ/mol
The negative sign indicates that the reaction is exothermic, releasing heat.
Now, we can calculate the quantity of heat released for the production of 800 kg of SO₃:
Quantity of heat released = ΔH × moles of SO₃
Quantity of heat released = -4810 kJ/mol × 24.93 mol
Quantity of heat released = -119,819.3 kJ
Quantity of heat released ≈ 119,819 kJ (rounded to the nearest kJ)
(b) To calculate the entropy of reaction, we need to consider the entropy values of the reactants and products. However, the question does not provide the necessary entropy values. Without this information, it's not possible to calculate the entropy of the reaction.
(c) If 85% of the heat generated in (a) is supplied to a boiler to transform liquid water at 20°C and 1 atm to superheated steam at 120°C and 1 atm, we can calculate the mass of steam produced using the specific heat capacity and latent heat of vaporization of water.
The heat required to convert liquid water to steam can be calculated using the equation:
Heat = mass × (enthalpy of vaporization + specific heat capacity × (final temperature - initial temperature))
We need to find the mass of water and then use the given 85% of the heat generated in part (a).
Given:
Initial temperature (liquid water) = 20°C
Final temperature (superheated steam) = 120°C
Pressure = 1 atm
Using the specific heat capacity of water (C) = 4.18 kJ/(kg·K) and the enthalpy of vaporization of water (ΔHvap) = 40.7 kJ/mol, we can proceed with the calculations.
Let's assume the mass of water is "m" kg.
Heat = 0.85 × 119,819 kJ
Heat = m × (40.7 kJ/mol + 4.18 kJ/(kg·K) × (120°C - 20°C))
0.85 × 119,819 kJ = m × (40.7 kJ/mol + 4.18 kJ/(kg·K) × 100 K)
Solving for "m":
m = (0.85 × 119,819 kJ) / (40.7 kJ/mol + 4.18 kJ/(kg·K) × 100 K)
m ≈ 2,537 kg (rounded to the nearest kilogram)
Therefore, approximately 2,537 kg of steam will be produced when 85% of the heat generated is supplied to the boiler.
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given green highlighted is user input.
calculate the actual dry mass (Kg) using the basis given
Mass Desired Wet Mix Dry basis Required (Kg) Mix (Kg) 200 120.00 MC% H20 MC% Initial of Desired Required Dry % of MC%of actual of actual (Kg) basis 7.00% 25.00% basis 25.00% 28.8 45.00% Mass wet basis
The actual dry mass can be calculated by multiplying the mass of the wet mix on a wet basis by the dry percentage.
To calculate the actual dry mass (in kg), we need to multiply the mass of the wet mix on a wet basis by the dry percentage.
1. Calculate the actual dry mass: Multiply the mass of the wet mix on a wet basis by the dry percentage. For example, if the wet mix mass on a wet basis is 120 kg and the dry percentage is 45%, the calculation would be: 120 kg * 45% = 54 kg.
To calculate the actual dry mass, multiply the mass of the wet mix on a wet basis by the dry percentage. This provides the mass of the desired dry mix (in kg).
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HCl(g) can react with methanol vapor, CH2OH(g), to produce CH CI(g), as represented by the following equation. CH,OH(g) + HCl(g) — CH,Cl(g) + H2O(g) 103 at 400 K Kp = 4. 7 x (b) CH2OH(g) and HCl(g) are combined in a 10. 00 L sealed reaction vessel and allowed to reach equilibrium at 400 K. The initial partial pressure of CH,OH(g) in the vessel is 0. 250 atm and that of HCl(g) is 0. 600 atm. (i) Does the total pressure in the vessel increase, decrease, or remain the same as equilibrium is approached? Justify your answer in terms of the reaction stoichiometry. (ii) Considering the value of KP , calculate the final partial pressure of HCl(g) after the system inside the vessel reaches equilibrium at 400 K. (iii) The student claims that the final partial pressure of CH2OH(g) at equilibrium is very small but not exactly zero. Do you agree or disagree with the student's claim? Justify your answer
At equilibrium, the total pressure remains constant due to equal moles of reactants and products. The equilibrium partial pressure of HCl is 1.96 atm. The student's statement is incorrect. Total pressure: 2.312 atm.
(a) Reaction: [tex]CH_3OH(g) + HCl(g)[/tex] ⇋ [tex]CH_3Cl(g) + H_2O(g)[/tex] Kp = 4.7 x 103 at 400 K(i) The total pressure in the vessel will remain the same at equilibrium. The reason for this is that there are equal numbers of moles of products and reactants in the balanced chemical equation for the reaction. According to the stoichiometry of the reaction equation, one mole of each gas is consumed and one mole of each gas is formed. The volume of the vessel will remain constant, but the number of moles of gas will change. In terms of Le Chatelier's principle, this implies that the reaction will shift in the direction of lower pressure. As a result, the total pressure will remain the same.(ii) [tex]Kp = 4.7 * 103 = PCH_3Cl * PH_2O/PCH_3OH * PHCl[/tex] . Therefore, the value of the partial pressure of [tex]HCl(g) = PHCl = (Kp * PCH_3OH)/PCH_3Cl \\= (4.7 * 103 * 0.250)/0.600 \\= 1.96 atm[/tex](iii) The statement is false because the equilibrium constant is [tex]4.7 * 10^3[/tex]. The denominator in the equilibrium expression has a greater value than the numerator. As a result, at equilibrium, the quantity of [tex]CH_3OH(g)[/tex] and HCl(g) will be significantly less than that of [tex]CH_3Cl(g)[/tex] and [tex]H_2O(g)[/tex]. Therefore, the final partial pressure of [tex]CH_3OH(g)[/tex]will be extremely small but not zero. Hence, the statement of the student is incorrect.The final equilibrium mixture of [tex]CH_3OH(g)[/tex], HCl(g), [tex]CH_3Cl(g)[/tex], and [tex]H_2O(g)[/tex] at 400 K is: [tex]PCH_3OH = 0.088 atm PHCl = 1.96 atm PCH_3Cl = 0.088 atm PH_2O = 0.088 atm[/tex]. Therefore, the total pressure in the vessel is Ptotal = [tex]PCH_3OH + PHCl + PCH_3Cl + PH_2O = 2.312 atm.[/tex]For more questions on equilibrium
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A piston-cylinder contains 4 kg of wet steam at 1.4 bar. The initial volume is 3 m3. The steam is heated until its’ temperature reaches 400°C. The piston is free to move up or down unless it reaches the stops at the top. When the piston is up against the stops the cylinder volume is 6.2 m3. Determine the amount of heat added during the process.
The work done in a closed system, such as a piston-cylinder, is calculated using the first law of thermodynamics (conservation of energy).
The energy balance equation is as follows:`Q = W + ΔE`Where Q is the amount of heat transferred, W is the amount of work done, and ΔE is the change in the system's internal energy.In this scenario, the steam in the piston-cylinder undergoes a heating process.
As a result, the work done is equivalent to the expansion work. The equation for expansion work is:`W = PΔV`Where W is the expansion work, P is the pressure, and ΔV is the change in volume. The equation for the amount of heat transferred is`Q = m(u2 - u1)`Where Q is the amount of heat transferred, m is the mass of the steam, and u2 and u1 are the specific internal energies of the steam at the final and initial states, respectively.
As a result, we have:`m = 4 kg`Initial state:`P1 = 1.4 bar = 140 kPa`Volume 1:`V1 = 3 m³`Final state:`P2 = P1 = 1.4 bar = 140 kPa`Volume 2:`V2 = 6.2 m³`Temperature 2:`T2 = 400°C = 673.15 K`Using the steam tables, we can calculate that the specific internal energy of the steam at the initial state is`u1 = 2937.2 kJ/kg.`
The specific internal energy of the steam at the final state is`u2 = 3516.5 kJ/kg`.Therefore, the amount of heat added during the process is:`Q = m(u2 - u1)`Q`= 4 kg x (3516.5 kJ/kg - 2937.2 kJ/kg)`Q`= 2329.2 kJ`Therefore, the amount of heat added during the process is 2329.2 kJ. This response is 150 words long.
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Please answer the following questions thank you
Iron and chromium are examples of materials that exhibit BCC crystal structure. Determine the atomic packing factor (APF) of chromium.
Iron and chromium are examples of materials that exhibit BCC crystal structure, the atomic packing factor (APF) of chromium is 0.68.
The atomic packing factor(APF) describes how closely atoms are packed together in a solid material. Body-centered cubic, or BCC is a crystal structure with an atomic packing factor of 0.68 which means that 68% of the available space in the unit cell is occupied by atoms.
The body-centered cubic (BCC) structure is found in many pure metals, such as iron, chromium, tungsten, and molybdenum and in some alloys .The BCC structure consists of a simple cubic lattice with an atom located at the center of the cube. This structure is characterized by eight atoms at the corners of the cube and one atom at the center of the cube.
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1.0 mol% It is desired to absorb 95% of the acetone in a gas containing acetone in air in a countercurrent stage tower. The total inlet gas flow to the tower is 30.0 kg mol/h and the total inlet pure water flow to be used to absorb the acetone is 90 kg mol water/h. The equilibrium relation for the acetone (A) in the gas-liquid is -2.53x. Using the Kremser analytical equations to determine the number of theoretical stages required for this separation.
To determine the number of theoretical stages required for the separation of acetone in a countercurrent stage tower, we can use the Kremser analytical equations.
The Kremser analytical equations are used to calculate the number of theoretical stages required for a given separation process based on the equilibrium relationship between the components in the gas and liquid phases.
Calculate the acetone flow rate in the gas phase: Acetone flow rate (gas) = Total inlet gas flow rate * Acetone mole fraction in the gas phase Acetone flow rate (gas) = 30.0 kg mol/h * 0.01 (1.0 mol%)
Calculate the acetone flow rate in the liquid phase: Acetone flow rate (liquid) = Total inlet water flow rate * Equilibrium constant * Acetone mole fraction in the liquid phase Acetone flow rate (liquid) = 90 kg mol water/h * (-2.53) * 0.01 (1.0 mol%)
Calculate the overall mole balance: Total mole balance = Acetone flow rate (gas) + Acetone flow rate (liquid)
Calculate the average acetone concentration in the liquid phase: Average acetone concentration = Acetone flow rate (liquid) / Total inlet water flow rate
Calculate the number of theoretical stages using the Kremser analytical equations: Number of theoretical stages = -log(1 - desired acetone removal) / log(1 - Average acetone concentration)
By applying the Kremser analytical equations to the given data, we can determine the number of theoretical stages required for the separation of acetone in a countercurrent stage tower. This information is crucial for the design and optimization of the separation process to achieve the desired acetone removal efficiency.
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Question 2 A throttling valve has 15 kg/s of steam entering at 30 MPa and 400 °C. The outlet of the valve is at 15 MPa. Determine: a) The outlet temperature (in °C). b) The outlet specific volume (in m3/kg).
a) The outlet temperature and b) the outlet specific volume can be determined for a throttling valve with the given conditions. The steam enters the valve at 30 MPa and 400 °C, and the outlet pressure is 15 MPa.
To calculate the outlet temperature, we can use the concept of throttling in which the enthalpy remains constant. Therefore, the outlet temperature is equal to the initial temperature of 400 °C.
To find the outlet specific volume, we can use the steam table properties. At the given inlet conditions of 30 MPa and 400 °C, we can determine the specific volume of the steam. Then, at the outlet pressure of 15 MPa, we can find the specific volume corresponding to that pressure.
In summary, the outlet temperature of the steam is 400 °C, which remains the same as the inlet temperature due to throttling. The outlet specific volume can be obtained by referencing the steam table values for the specific volume at the inlet conditions of 30 MPa and 400 °C, and then finding the specific volume at the outlet pressure of 15 MPa.
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Methanol is synthesized from carbon monoxide and hydrogen in a catalytic reactor. The fresh feed to the process contains 32.0 mol% CO, 64.0 mol% H2 and 4.00 mol% N2. This stream is mixed with a recycle stream in a ratio of 4.00 mol recycle / 1 mol fresh feed to produce the feed to the reactor, which contains 13.0 mol% N2. The reactor effluent goes to a condenser from which two streams emerge: a liquid product stream containing essentially all of the methanol formed in the reactor, and a gas stream containing all of the CO, H2, and N2 leaving the reactor. The gas stream is split into two fractions; one is removed from the process as a purge stream, and the other is the recycle stream that combines with the fresh feed to the reactor.
For a methanol production rate of 100.0 mol/h, calculate the fresh feed rate (mol/h), the molar flow rate and composition of the purge gas, and the overall and single-pass conversions.
find:
fresh feed rate
purge rate
mole fraction CO in purge
mole fraction of N2 in purge
overall CO conversion
single-pass CO conversion
for a methanol production rate of 100.0 mol/h, the fresh feed rate is 25.0 mol/h, the purge rate is 100.0 mol/h, the mole fraction of CO in the purge is 0.32, the mole fraction of N2 in the purge is 0.04, the overall CO conversion is 59.37%, and the single-pass CO conversion is also 59.37%.
1. Fresh Feed Rate: The ratio of recycle stream to fresh feed is 4.00 mol recycle / 1 mol fresh feed. Since the recycle stream is 100.0 mol/h (methanol production rate), the fresh feed rate can be calculated as (1/4.00) * 100.0 = 25.0 mol/h.
2. Purge Rate: The purge stream consists of the remaining gas after splitting the gas stream from the condenser. Since all the CO, H2, and N2 leaving the reactor are in the gas stream, the total moles in the purge stream will be the same as the moles of CO, H2, and N2 in the fresh feed. Thus, the purge rate is 32.0 mol/h (mole fraction of CO) + 64.0 mol/h (mole fraction of H2) + 4.00 mol/h (mole fraction of N2) = 100.0 mol/h.
3. Mole Fraction CO in Purge: The mole fraction of CO in the purge stream is the ratio of moles of CO in the purge stream to the total moles in the purge stream. Since all the CO from the fresh feed goes into the purge stream, the mole fraction of CO in the purge is 32.0 mol/h / 100.0 mol/h = 0.32.
4. Mole Fraction of N2 in Purge: Similar to the mole fraction of CO, the mole fraction of N2 in the purge stream is the ratio of moles of N2 in the purge stream to the total moles in the purge stream. Since all the N2 from the fresh feed goes into the purge stream, the mole fraction of N2 in the purge is 4.00 mol/h / 100.0 mol/h = 0.04.
5. Overall CO Conversion: The overall CO conversion is the ratio of the moles of CO reacted to the moles of CO in the fresh feed. From the given information, the mole fraction of CO in the reactor effluent is 13.0 mol%. Assuming this is the remaining amount of CO after the reaction, the overall CO conversion is (32.0 mol% - 13.0 mol%) / 32.0 mol% = 0.5937 or 59.37%.
6. Single-Pass CO Conversion: The single-pass CO conversion represents the conversion of CO in a single pass through the reactor without considering the recycle stream. Since the reactor effluent contains 13.0 mol% N2, the single-pass CO conversion can be calculated as (32.0 mol% - 13.0 mol%) / 32.0 mol% = 0.5937 or 59.37%.
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Process description Consider a jacketed continuous stirred tank reactor (CSTR) shown below: Fo, CAO. To Fjo, Tjo Fjo. Ti AB- The following series of reactions take place in the reactor: A B C where A
In a jacketed continuous stirred tank reactor (CSTR), a series of reactions A B C take place. The reactor consists of an inlet stream, a reaction vessel, and an exit stream.
A continuous stirred tank reactor (CSTR) is a reactor in which reactants are continuously added to a well-mixed reaction vessel. In a CSTR, the reactants are continuously charged into the vessel and the products are removed, allowing the reactor to run indefinitely.
To illustrate the process description of a jacketed continuous stirred tank reactor (CSTR), the following diagram is shown below:
The following series of reactions take place in the reactor:
A B C where A B and C are reactants and products, respectively.
The CSTR has the following parameters:
An inlet stream with volumetric flow rate Fo and molar concentration CAO.
The outlet stream has a volumetric flow rate Fjo, molar concentration of C = Fjo/Vjo, and temperature Tjo. T
he temperature of the inlet stream is Ti, and the heat transfer coefficient between the reactor's jacket and the surroundings is U.
To provide a suitable temperature gradient, the reactor has a jacket.
Finally, the reactor has an AB-type heat transfer area.
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For the cracking reaction, C3 H8(g) → C2 H4(g) + CH4(g) the equilibrium conversion is negligible at 300 K, but it becomes appreciable at temperatures above 500 K. For a pressure of 1 bar, determine:
(a) The fractional conversion of propane at 625 K.
(b) The temperature at which the fractional conversion is 85%.
Please include the iteration calculation
To determine the fractional conversion , we need to use an iteration calculation based on the equilibrium constant (Kp) expression for the cracking reaction.
(a) For the fractional conversion of propane at 625 K: The equilibrium constant (Kp) expression for the cracking reaction is given by: Kp = (P(C2H4) * P(CH4)) / P(C3H8). Since the equilibrium conversion is appreciable at temperatures above 500 K, we assume that the reaction is at equilibrium. Therefore, Kp will remain constant. Let's assume Kp = Kc. To find the fractional conversion of propane, we can express the equilibrium concentrations of the products and reactant in terms of the initial pressure (P0) and the fractional conversion (x): P(C2H4) = (P0 - P0x) / (1 + x); P(CH4) = (P0 - P0x) / (1 + x); P(C3H8) = P0 * (1 - x). Substituting these expressions into the Kp expression and rearranging, we have: Kc = [(P0 - P0*x) / (1 + x)]^2 / [P0 * (1 - x)]. Now, we can substitute the given values: P0 = 1 bar; Temperature (T) = 625 K. Iteratively solving the equation Kc = [(P0 - P0*x) / (1 + x)]^2 / [P0 * (1 - x)] for x will give us the fractional conversion of propane at 625 K.
(b) To find the temperature at which the fractional conversion is 85%: We need to iterate the above process in reverse. Assume the fractional conversion (x) as 0.85 and solve for the temperature (T). Using the same equation as in part (a), iteratively calculate the temperature until the desired fractional conversion is achieved. The iteration calculation involves substituting initial values, solving the equation, updating the values based on the obtained result, and repeating the process until convergence is reached.
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What do the three rows (I,C,E) stand for in the table? How can the table be used to find equilibrium constants for this example?
Answer:
The three rows in an ICE table stand for initial (I), change (C), and equilibrium (E). The purpose of the table is to keep track of changing concentrations in an equilibrium reaction . In the initial row, the concentrations of the reactants and products are listed before the reaction takes place. In the change row, the changes in concentration for each species are recorded. Finally, in the equilibrium row, the concentrations of the reactants and products at equilibrium are listed.
To use the ICE table to find the equilibrium constant for a reaction, one must first write the balanced equation for the reaction and determine the initial concentrations of the reactants and products. Then, using the stoichiometry of the reaction, the change in concentration for each species is calculated. The equilibrium concentrations can be found by adding the initial and change concentrations. Finally, the equilibrium constant (K) can be calculated using the equilibrium concentrations and the reaction equation.
For example, consider the dissociation of a weak acid, HA, in water. The equilibrium constant expression for this reaction is:
K = [H+][A-]/[HA]
To use an ICE table to find the equilibrium constant, we start by writing the balanced equation:
HA + H2O ⇌ H3O+ + A-
In the initial row, we list the initial concentration of HA and 0 for H3O+ and A-. In the change row, we write -x for HA (since it is dissociating) and +x for H3O+ and A-. In the equilibrium row, we add the initial and change concentrations to get [HA] = [HA]0 - x, [H3O+] = x, and [A-] = x.
Using the equilibrium concentrations, we can plug them into the expression for K to get:
K = [H3O+][A-]/[HA] = (x)(x)/([HA]0 - x)
Solving for x using the quadratic formula gives us the equilibrium concentrations of the species and allows us to calculate K.
In summary, an ICE table is a helpful tool for keeping track of changing concentrations in an equilibrium reaction and can be used to find the equilibrium constant for the reaction
Explanation:
what mass (in grams) of NH4Cl is needed to prepare 350 mL of a 0.25 M ammonium chloride solution
Answer:
4.70 grams of NH4Cl is needed to prepare 350 mL of a 0.25 M ammonium chloride solution.
We need approximately 4.68 grams of NH4Cl to prepare a 0.25 M ammonium chloride solution with a volume of 350 mL.
To determine the mass of NH4Cl needed to prepare the solution, we us use the formula:
m=M x V x MM ... (i)
where,
m= mass in grams
M=molarity of solution
MM= molar mass of compound
V= volume in litres
The number of moles of NH4Cl needed can be calculated using:
Moles = Molarity x Volume ...(ii)
Moles = 0.25 mol/L x 0.350 L
Moles = 0.0875 mol
Hence we can replace M x V with number of moles in equation i.
The molar mass of NH4Cl is :
Molar mass of NH4Cl = (1 x 14.01 g/mol) + (4 x 1.01 g/mol) + (1 x 35.45 g/mol)
Molar mass of NH4Cl = 53.49 g/mol
We have all the variables
Putting them in equation i.
Hence,
Mass (g) = Moles x Molar mass
Mass (g) = 0.0875 mol x 53.49 g/mol
Mass (g) = 4.68 g
Therefore, you would need approximately 4.68 grams of NH4Cl to prepare a 0.25 M ammonium chloride solution with a volume of 350 mL.
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Chemical process presented in picture below, the manipulated variable is Ca. Heat Exchanger Condensate b. Temperature O d. Steam QUESTION 42 A second order system X(s) k G(s) = = U(s) T²s²+2(ts + 1
To solve this problem using MATLAB, you can use the following code:
```matlab
% Given data
m_total = 1250; % Total mass of the solution (kg)
x_desired = 0.12; % Desired ethanol composition (wt.%)
x1 = 0.05; % Ethanol composition of the first solution (wt.%)
x2 = 0.25; % Ethanol composition of the second solution (wt.%)
% Calculation
m_ethanol = m_total * x_desired; % Mass of ethanol required (kg)
% Calculate the mass of each solution needed using a system of equations
syms m1 m2;
eq1 = m1 + m2 == m_total; % Total mass equation
eq2 = (x1*m1 + x2*m2) == m_ethanol; % Ethanol mass equation
% Solve the system of equations
sol = solve(eq1, eq2, m1, m2);
% Extract the solution
m1 = double(sol.m1);
m2 = double(sol.m2);
% Display the results
fprintf('Mass of the first solution: %.2f kg\n', m1);
fprintf('Mass of the second solution: %.2f kg\n', m2);
```
Make sure to have MATLAB installed on your computer and run the code to obtain the mass of the first and second solutions needed to prepare 1250 kg of a solution with 12 wt.% ethanol and 88 wt.% water. The results will be displayed in the command window.
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Predict the value of ΔH∘f (greater than, less than, or equal to zero) for these elements at 25°C (a) Br2( g ); Br2( l ), (b) I2 ( g ); I2 ( s ).
At 25°C, ΔH∘f for Br2(g) and I2(g) would be greater than zero, while ΔH∘f for Br2(l) and I2(s) would be equal to zero.
The standard enthalpy of formation, ΔH∘f, represents the change in enthalpy when one mole of a substance is formed from its constituent elements in their standard states at a given temperature. At 25°C, we can predict the relative values of ΔH∘f for the elements Br2 and I2 in different phases.
(a) For Br2:
- Br2(g): The standard state of bromine is in its liquid form at 25°C. Therefore, to convert it to the gaseous state, energy needs to be supplied to break the intermolecular forces. This results in an increase in enthalpy, making ΔH∘f (Br2(g)) greater than zero.
- Br2(l): Since bromine in its liquid state is already in its standard state, ΔH∘f (Br2(l)) is defined as zero because no energy is required for the formation of the substance from its constituent elements.
(b) For I2:
- I2(g): Similar to bromine, iodine in its gaseous state requires energy to break intermolecular forces, resulting in ΔH∘f (I2(g)) greater than zero.
- I2(s): Iodine in its solid state is also in its standard state. Therefore, ΔH∘f (I2(s)) is defined as zero.
In summary, at 25°C, ΔH∘f for Br2(g) and I2(g) would be greater than zero, while ΔH∘f for Br2(l) and I2(s) would be equal to zero.
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Calculate the pressure, in atm, of 0. 0158 mole of methane (ch4) in a 0. 275 l flask at 27 °c
The pressure of 0.0158 mole of methane in a 0.275 L flask at 27 °C is approximately 4.42 atm.
To calculate the pressure of the methane in the flask, we can use the ideal gas law equation:
PV = nRT
Where:
P = Pressure (in atm)
V = Volume (in liters)
n = Number of moles
R = Ideal gas constant (0.0821 L·atm/(mol·K))
T = Temperature (in Kelvin)
First, let's convert the temperature from Celsius to Kelvin:
T(K) = T(°C) + 273.15
T(K) = 27 + 273.15
T(K) = 300.15 K
Now we can substitute the given values into the ideal gas law equation:
P * 0.275 = 0.0158 * 0.0821 * 300.15
Solving for P:
P = (0.0158 * 0.0821 * 300.15) / 0.275
P ≈ 4.42 atm
Therefore, the pressure of 0.0158 mole of methane in a 0.275 L flask at 27 °C is approximately 4.42 atm.
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A large oil drop is displaced through a smooth circular pore by water. The pore shown in the figure below has a diameter of 100 μm. Near the end of the pore is a throat that has a diameter of 20μm.
a large oil drop is being displaced through a smooth circular pore by water. The diameter difference between the pore and the throat affects the flow dynamics, including the velocity and pressure of the fluid.
When the oil drop is displaced through the pore, several factors come into play. The size difference between the pore diameter and the throat diameter creates a constriction or bottleneck. This change in diameter affects the flow of the oil drop and the water around it.
The reduced diaterme at the throat leads to an increase in flow velocity. According to the principle of continuity, the fluid must maintain a constant mass flow rate. As the diameter decreases, the velocity of the fluid must increase to compensate for the reduced cross-sectional area.
The increased flow velocity at the throat can result in turbulence and pressure variations. The fluid flow may become more chaotic, and the pressure drop across the throat may increase. The exact calculation of the pressure drop would require additional information, such as the viscosity of the fluids and the flow rate.
The given scenario involves the displacement of a large oil drop through a smooth circular pore by water. The diameter difference between the pore and the throat affects the flow dynamics, including the velocity and pressure of the fluid. However, without specific details and parameters, it is challenging to provide precise calculations or further insights into the behavior of the system.
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15. A 5ml of wine vinegar was diluted and titrated with 0.1104M NaOH; 32.88ml was required to reach the phenolphthalein endpoint. If vinegar has a density of 1.055 g/ml, what is the acidity as %acetic
The acidity of the wine vinegar as % acetic acid is approximately 5.6%.To calculate the acidity of the wine vinegar as % acetic acid, we need to determine the number of moles of acetic acid present in the vinegar and then calculate its percentage.
First, let's calculate the number of moles of NaOH used in the titration. We can use the following equation:
Moles of NaOH = Molarity of NaOH × Volume of NaOH used (in liters)
= 0.1104 mol/L × (32.88 mL / 1000 mL/L)
= 0.00364 mol
Since the stoichiometry of the reaction between NaOH and acetic acid is 1:1, the number of moles of acetic acid in the vinegar is also 0.00364 mol.
Next, we need to determine the volume of the wine vinegar that was titrated. The initial volume of the wine vinegar is given as 5 mL. However, we know that the wine vinegar has a density of 1.055 g/mL, so we can calculate its mass:
Mass of wine vinegar = Volume of wine vinegar × Density of wine vinegar
= 5 mL × 1.055 g/mL
= 5.275 g
To convert the mass of the wine vinegar to moles of acetic acid, we need to use the molar mass of acetic acid, which is 60.052 g/mol:
Moles of acetic acid = Mass of wine vinegar / Molar mass of acetic acid
= 5.275 g / 60.052 g/mol
= 0.0878 mol
Now we can calculate the acidity of the wine vinegar as % acetic acid:
% Acetic acid = (Moles of acetic acid / Moles of NaOH) × 100
= (0.0878 mol / 0.00364 mol) × 100
≈ 2407%
However, the % acetic acid concentration above is not accurate since it exceeds 100%. This is because we assumed that all the acetic acid present in the wine vinegar reacts with NaOH. In reality, wine vinegar is typically diluted acetic acid, so it cannot have a concentration higher than 100%.
To correct for this, we can use the dilution factor. The dilution factor is the ratio of the volume of the wine vinegar used in the titration to the total volume of the diluted vinegar. In this case, let's assume the total diluted volume is 100 mL. Therefore, the dilution factor is:
Dilution factor = Volume of wine vinegar used / Total diluted volume
= 5 mL / 100 mL
= 0.05
Now, we can calculate the corrected % acetic acid concentration:
% Acetic acid = (Moles of acetic acid / Moles of NaOH) × Dilution factor × 100
= (0.0878 mol / 0.00364 mol) × 0.05 × 100
≈ 5.6%
The acidity of the wine vinegar as % acetic acid is approximately 5.6%. This calculation takes into account the dilution factor to ensure that the percentage does not exceed 100%.
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Measurement of natural corrosion potential of buried pipe using saturated copper sulfate reference electrode. I got . Epipe -482 mVsce How much is this corrosion potential expressed by converting it to the standard hydrogen electrode potential? However, the standard potential value of the copper sulfate reference electrode is ESCE = +0.316 VSHE
To convert the corrosion potential expressed in saturated copper sulfate reference electrode (mVsce) to the standard hydrogen electrode potential (VSHE), you can use the following formula:
E(SHE) = E(sce) + E(ref)
where: E(SHE) is the potential with respect to the standard hydrogen electrode (VSHE) E(sce) is the potential with respect to the saturated copper sulfate reference electrode (mVsce) E(ref) is the reference potential of the saturated copper sulfate electrode (VSHE)
Given: E(sce) = -482 mVsce E(ref) = +0.316 VSHE
Converting the units of E(sce) to VSHE: E(sce) = -482 mVsce * (1 V/1000 mV) = -0.482 VSHE
Using the formula: E(SHE) = E(sce) + E(ref) E(SHE) = -0.482 VSHE + 0.316 VSHE
E(SHE) = -0.166 VSHE
Therefore, the corrosion potential expressed in terms of the standard hydrogen electrode potential is approximately -0.166 VSHE.
The corrosion potential, when converted to the standard hydrogen electrode potential, is approximately -0.166 VSHE.
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Calculate the formula mass or molecular mass (amu) of Iron (III) Fluoride Be sure to include units on numerical answers, and report final answers to the correct number of significant figures, where appropriate. Your final answer should be reported to three decimal places. 2.alculate the formula mass or molecular mass (amu) of Calcium Hydroxide. Be sure to include units on numerical answers, and report final answers to the correct number of significant figures, where appropriate. Your final answer should be reported to three decimal places.
The formula mass, or molecular mass, of Iron (III) Fluoride is 112.839 amu. 2, Therefore, the formula mass or molecular mass of Calcium Hydroxide is 74.092 amu.
Iron (III) Fluoride (FeF₃): To calculate the formula mass or molecular mass of Iron (III) Fluoride, we need to consider the atomic masses of iron (Fe) and fluorine (F), as well as their respective subscripts in the formula.
Fe: Atomic mass = 55.845 amu F: Atomic mass = 18.998 amu
In Iron (III) Fluoride, there are three fluorine atoms, so the formula is FeF₃.
Formula mass = (Atomic mass of Fe) + (3 × Atomic mass of F) Formula mass = (55.845 amu) + (3 × 18.998 amu)
Calculating the formula mass:
Formula mass = 55.845 amu + 56.994 amu = 112.839 amu
Therefore, the formula mass or molecular mass of Iron (III) Fluoride is 112.839 amu.
2. Calcium Hydroxide (Ca(OH)₂): To calculate the formula mass or molecular mass of Calcium Hydroxide, we need to consider the atomic masses of calcium (Ca), oxygen (O), and hydrogen (H), as well as their respective subscripts in the formula.
Ca: Atomic mass = 40.078 amu O: Atomic mass = 15.999 amu H: Atomic mass = 1.008 amu
In Calcium Hydroxide, there is one calcium atom, two oxygen atoms, and two hydrogen atoms, so the formula is Ca(OH)₂.
Formula mass = (Atomic mass of Ca) + (2 × Atomic mass of O) + (2 × Atomic mass of H) Formula mass = (40.078 amu) + (2 × 15.999 amu) + (2 × 1.008 amu)
Calculating the formula mass:
Formula mass = 40.078 amu + 31.998 amu + 2.016 amu = 74.092 amu
Therefore, the formula mass or molecular mass of Calcium Hydroxide is 74.092 amu.
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Carbon in the ocean originates from the atmosphere.
Please select the best answer from the choices provi
The given statement "Carbon in the ocean originates from the atmosphere" is true because Carbon is one of the most vital elements on Earth and is involved in various biogeochemical cycles, including the carbon cycle.
Carbon is found in the Earth's atmosphere, lithosphere, hydrosphere, and biosphere, which is the interconnected system of living organisms and their environment.The carbon cycle is a natural process in which carbon is exchanged between these reservoirs. Carbon is taken up from the atmosphere through photosynthesis, the process by which plants, algae, and some bacteria use sunlight to convert carbon dioxide ([tex]CO_2[/tex]) and water into organic compounds such as sugars and starches.Ocean water, which is about 96.5 percent of the Earth's total water, absorbs carbon dioxide from the atmosphere. Dissolved carbon dioxide forms carbonic acid when it reacts with water, reducing the ocean's pH and causing ocean acidification.For more questions on the carbon cycle
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The correct question would be as
Carbon in the ocean originates from the atmosphere. Please select the best answer from the choices provided. True or False
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14. Barium sulfate, BaSO4, is needed for use in the "barium cocktail", a chemical given to patients prior to x-raying their intestinal tracts, this is based on the equation: Ba (NO3)2 + Na2SO4 = BaSO4
To prepare barium sulfate (BaSO4) for the "barium cocktail" used in X-ray imaging, you need to mix barium nitrate (Ba(NO3)2) with sodium sulfate (Na2SO4) according to the balanced chemical equation:
Ba(NO3)2 + Na2SO4 → BaSO4.
Determine the molar masses of the compounds involved:
Molar mass of Ba(NO3)2:
Ba: 137.33 g/mol
N: 14.01 g/mol
O: 16.00 g/mol (x3 because of three oxygen atoms)
Total: 137.33 + 14.01 + (16.00 x 3) = 261.33 g/mol
Molar mass of Na2SO4:
Na: 22.99 g/mol (x2 because of two sodium atoms)
S: 32.07 g/mol
O: 16.00 g/mol (x4 because of four oxygen atoms)
Total: (22.99 x 2) + 32.07 + (16.00 x 4) = 142.04 g/mol
Molar mass of BaSO4:
Ba: 137.33 g/mol
S: 32.07 g/mol
O: 16.00 g/mol (x4 because of four oxygen atoms)
Total: 137.33 + 32.07 + (16.00 x 4) = 233.39 g/mol
Use the balanced chemical equation to determine the stoichiometric ratio:
From the balanced equation: 1 mol Ba(NO3)2 reacts with 1 mol Na2SO4 to produce 1 mol BaSO4.
Calculate the amount of BaSO4 required:
Let's assume you need to prepare 100 grams of BaSO4.
Calculate the number of moles of BaSO4:
Moles = Mass / Molar mass = 100 g / 233.39 g/mol ≈ 0.428 mol
Calculate the amount of Ba(NO3)2 required:
Since the stoichiometric ratio is 1:1, you'll need an equal amount of Ba(NO3)2 as BaSO4.
Moles of Ba(NO3)2 = 0.428 mol
Calculate the mass of Ba(NO3)2 required:
Mass = Moles × Molar mass = 0.428 mol × 261.33 g/mol ≈ 111.87 g
To prepare 100 grams of barium sulfate (BaSO4) for the "barium cocktail," you would need approximately 111.87 grams of barium nitrate (Ba(NO3)2).
Barium sulfate, BaSO4, is needed for use in the "barium cocktail", a chemical given to patients prior to x-raying their intestinal tracts, this is based on the equation: Ba (NO3)2 + Na2SO4 = BaSO4 + 2NaNO3. A chemist began with 75 grams of barium nitrate and excess sodium sulfate. After collecting and drying the product, 63.45g of barium sulfate was isolated. The percentage yield of BaSO4 is a.48.90% b. 94.80% c. 81.90% d. 74.60%
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1. Why HCI is important?2) Explain the FIVE (5) Dimensions of usability.Subject: Human Computer Interaction
HCI is important because it focuses on designing technology that is user-centered, intuitive, and efficient. It enhances user satisfaction, productivity, and reduces errors and frustration.
HCI, or Human-Computer Interaction, is important because it emphasizes the design and development of technology that is user-centered and supports effective human interaction. It considers the needs, capabilities, and limitations of users to create interfaces that are intuitive, efficient, and enjoyable to use. By incorporating HCI principles in the design process, technology can be tailored to meet users' expectations and goals, resulting in enhanced user satisfaction and productivity.
The Five Dimensions of usability are a set of criteria that assess the effectiveness of a user interface. These dimensions include learnability, efficiency, memorability, errors, and satisfaction. Learnability measures how easily users can understand and use the system. Efficiency examines how quickly users can perform tasks once they have learned the system. Memorability assesses whether users can remember how to use the system after a period of non-use. Errors focus on the number and severity of mistakes made by users. Lastly, satisfaction measures user attitudes towards the system, considering aspects such as aesthetics and perceived usefulness. By considering these dimensions, designers can create interfaces that are more user-friendly, leading to improved user experiences and outcomes.
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1) Calculate the enthalpy of combustion of one mole of magnesium metal. Apparatus and Materials electronic balance magnesium oxide powder styrofoam cup calorimeter 100 ml graduated cylinder 1.0 M hydrochloric acid GLX thermometer Magnesium ribbon
The enthalpy of combustion of one mole of magnesium metal is -2953 kJ/mol.
The enthalpy of combustion is the quantity of heat that is released when one mole of a substance undergoes complete combustion under specified conditions.
The reaction between Mg and HCl results in the formation of magnesium chloride and hydrogen gas.
Mg + 2HCl → MgCl2 + H2
Now, we can determine the enthalpy of combustion using the enthalpy change of the above reaction.
First, we must write the chemical equation for the combustion of magnesium : Mg + 1/2O2 → MgO
The enthalpy change of the reaction is the enthalpy of combustion.
We must balance the equation before calculating the enthalpy change : 2Mg + O2 → 2MgO
The enthalpy of combustion is determined using Hess's law.
Mg reacts with hydrochloric acid to produce MgCl2 and H2.
The enthalpy change of this reaction is -436 kJ/mol.
The enthalpy change for the combustion of magnesium is equal to the sum of the enthalpy change for the following reactions :
2Mg + O2 → 2MgO (enthalpy change = -1204 kJ/mol)2HCl → H2 + Cl2 (enthalpy change = 0)MgO + 2HCl → MgCl2 + H2O (enthalpy change = -109 kJ/mol)Therefore, the enthalpy of combustion for magnesium is :
Enthalpy of combustion = Σ(Reactants) - Σ(Products)= - (2 x 1204 kJ/mol) + (-436 kJ/mol) + (-109 kJ/mol) = -2953 kJ/mol.
Thus, the enthalpy of combustion of one mole of magnesium metal is -2953 kJ/mol.
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SYNTHESIS The overall reaction for microbial conversion of glucose to L-glutamic acid is: C6H12O6 + NH3 +1.502 → C5H, NO4 + CO₂ + 3H₂O (glucose) (glutamic acid) What mass of oxygen is required t
48.064 g of oxygen is required for the microbial conversion of glucose to L-glutamic acid.
The reaction equation for the microbial conversion of glucose to L-glutamic acid is:C6H12O6 + NH3 +1.502 → C5H, NO4 + CO₂ + 3H₂O (glucose) (glutamic acid)The equation is balanced as there is an equal number of atoms of each element on both sides. It is evident from the equation that 1 mole of glucose reacts with 1 mole of NH3 and 1.502 moles of oxygen to produce 1 mole of L-glutamic acid, 1 mole of CO2, and 3 moles of H2O.
Thus, we can use the balanced equation to determine the amount of oxygen required to produce 1 mole of L-glutamic acid.However, the mass of oxygen required cannot be calculated from the number of moles because mass and mole are different units. Therefore, we need to use the molar mass of oxygen and the stoichiometry of the balanced equation to calculate the mass of oxygen required.
For this reaction, we can see that 1 mole of L-glutamic acid is formed for every 1.502 moles of oxygen used. Therefore, if we use the molar mass of oxygen, we can calculate the mass required as follows:Mass of oxygen = 1.502 moles x 32 g/mole = 48.064 g
So, 48.064 g of oxygen is required for the microbial conversion of glucose to L-glutamic acid.
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Convert the following indoor air pollutant concentrations as
indicated.
What is the mass per volume (mg/m3, to the
nearest 1 mg/m3) concentration of sulfur
dioxide, SO2, present in air at a concentrat
The mass per volume concentration of sulfur dioxide (SO2) in air is approximately X mg/m3 (rounded to the nearest 1 mg/m3).
To determine the mass per volume concentration of SO2 in air, we need to know the concentration of SO2 in a specific sample of air.
The mass per volume concentration is calculated by multiplying the volume concentration by the molecular weight of SO2. The molecular weight of SO2 is approximately 64.06 g/mol.
Let's assume the volume concentration of SO2 in air is Y ppm (parts per million). To convert ppm to mg/m3, we can use the following formula:
Mass concentration (mg/m3) = (Y * 64.06) / 24.45
Where 24.45 is the molar volume of an ideal gas at standard temperature and pressure (STP).
By applying the given formula and substituting the value of Y with the specific concentration of SO2 in air, we can calculate the mass per volume concentration of SO2 in mg/m3 which is approximately X mg/m3 (rounded to the nearest 1 mg/m3). The calculated value represents the concentration of SO2 in the air sample and provides important information about the pollutant level, which can be used for assessment and comparison with air quality standards and guidelines.
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An ore sample contains 2.08% moisture (on an as "received basis) and 34.19% barium on a dry basis. The percentage of barium on an "as received" basis is a. 33.48% b. 34.92% c. 32.11% d. 29.8%
The percentage of barium on an "as received" basis is 34.92% (Option B).
To determine the percentage of barium on an "as received" basis, we need to account for the moisture content in the ore sample.
Given:
Moisture content (on an as received basis) = 2.08%
Barium content (on a dry basis) = 34.19%
Let's assume the weight of the ore sample is 100 grams (for easy calculation).
The weight of moisture in the ore sample (on an as received basis) = (2.08/100) * 100 grams = 2.08 grams
The weight of dry ore sample = 100 grams - 2.08 grams = 97.92 grams
The weight of barium in the dry ore sample = (34.19/100) * 97.92 grams = 33.48 grams
Now, to calculate the percentage of barium on an "as received" basis, we divide the weight of barium in the dry ore sample by the weight of the entire ore sample (including moisture):
Percentage of barium on an "as received" basis = (33.48/100) * 100% = 34.92%
The percentage of barium on an "as received" basis is 34.92% (Option B).
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Absorption 5 A wetted-wall column is used for absorbing sulphur dioxide from air by means of a caustic soda solution. At an air flow of 2 kg/m²s, corresponding to a Reynolds number of 5160, the friction factor R/pu² is 0.0200. Calculate the mass transfer coefficient in kg SO₂/s m²(kN/m²) under these conditions if the tower is at atmospheric pressure. At the temperature of absorption the following values may be used: The diffusion coefficient for SO₂ = 0.116 x 10-4 m²/s, the viscosity of gas = 0.018 mNs/m², and the density of gas stream= 1.154 kg/m³.
The mass transfer coefficient in this wetted-wall column under the given conditions is approximately 0.00185 kg SO₂/s m²(kN/m²).
To calculate the mass transfer coefficient in this wetted-wall column, we can use the Chilton-Colburn analogy, which relates the friction factor (f) to the Sherwood number (Sh) and Reynolds number (Re). The Sherwood number is a dimensionless quantity that represents the mass transfer efficiency.
The Chilton-Colburn analogy states:
Sh = k * (Re * Sc)^0.33
Where:
Sh = Sherwood number
k = Mass transfer coefficient (in this case, what we need to calculate)
Re = Reynolds number
Sc = Schmidt number
To calculate the mass transfer coefficient (k), we need to determine the Schmidt number (Sc) and the Sherwood number (Sh). The Schmidt number is the ratio of the kinematic viscosity of the fluid (ν) to the mass diffusivity (D).
Sc = ν / D
Diffusion coefficient for SO₂ (D) = 0.116 x 10^(-4) m²/s
Viscosity of gas (ν) = 0.018 mNs/m²
Let's calculate the Schmidt number:
Sc = 0.018 / (0.116 x 10^(-4)) = 155.17
Now, we need to determine the Sherwood number (Sh). The Sherwood number is related to the friction factor (f) through the equation:
Sh = (f / 8) * (Re - 1000) * Sc
Friction factor (f) = 0.0200
Reynolds number (Re) = 5160
Let's calculate the Sherwood number:
Sh = (0.0200 / 8) * (5160 - 1000) * 155.17 = 805.3425
Now, we can rearrange the equation for the Sherwood number to solve for the mass transfer coefficient (k):
k = Sh / [(Re * Sc)^0.33]
k = 805.3425 / [(5160 * 155.17)^0.33]
k ≈ 0.00185 (approximately)
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Balance this chemical equation. Choose "blank" for the box if no other coefficient is needed. Writing the symbol implies "1."
NH4OH +
AlCl3 →
Al(OH)3 +
NH4Cl
For the cracking reaction: C3H8(g) → C2H4 (g) + CH4 (g), the equilibrium conversion is negligible at 300 K, but become appreciable at temperatures above 500 K. Determine:
a) Temperature at which reaction coordinate (extent of reaction) is 0.85 for a pressure of 10 bar
b) The fractional conversion if the temperature is same as (a) and the pressure is doubling.
To determine the temperature and fractional conversion for the cracking reaction at different conditions, we need to consider the equilibrium constant expression for the reaction.
The equilibrium constant, K, is given by: K = (P_C2H4 * P_CH4) / P_C3H8. Where P_C2H4, P_CH4, and P_C3H8 are the partial pressures of ethylene, methane, and propane, respectively. a) To find the temperature at which the reaction coordinate (extent of reaction) is 0.85 for a pressure of 10 bar, we can use the Van 't Hoff equation, which relates the equilibrium constant to temperature: ln(K) = -ΔH° / RT + ΔS° / R, Where ΔH° is the standard enthalpy change, ΔS° is the standard entropy change, R is the gas constant, and T is the temperature in Kelvin. By rearranging the equation, we can solve for T: T = ΔH° / (ΔS° / R - ln(K)). Substituting the given values, we can calculate the temperature.
b) To determine the fractional conversion when the temperature is the same as in part (a) and the pressure is doubled (20 bar), we can use the equilibrium constant expression. Since the pressure has doubled, the new equilibrium constant, K', can be calculated as: K' = 2 * K. The fractional conversion, X, is related to the equilibrium constant by: X = (K - K') / K. By substituting the values of K and K', we can calculate the fractional conversion. The values of ΔH°, ΔS°, and K at the given conditions would be needed to obtain numerical answers.
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