Q10. Kₚ at 400°C is approximately 6.2x10¹⁶ and at 800°C is approximately 3.1x10³⁶.
Q11. To prepare a pH 3.50 solution, approximately 1 L of 2 mM H₂SO₄ solution is needed.
Q12. For a 0.100 M HIO₃ solution, the pH is approximately 0.126, [IO₃⁻] is negligible, and [OH⁻] is approximately 7.94 * 10⁻¹⁴ M.
Q13. To achieve a pH of 3 in a 250 ml solution, approximately 0.25 grams of benzoic acid (C₆H₅COOH) should be dissolved.
Q14. In a 0.55 M H₂SO₄ solution, the pH is approximately 1.30, [H₃O⁺] is approximately 0.0496 M, and [SO₄⁻] is 0.55 M.
Q10. To calculate Kₚ and K꜀ for the reaction at 400°C and 800°C, we use the Van't Hoff equation:
ln(K₂/K₁) = ΔH°/R * (1/T₁ - 1/T₂).
Given ΔH° = +115 kJ/mol and Kₚ at 25°C = 4.6x10¹⁴,
we find K₂ for 400°C and 800°C to be 6.2x10¹⁶ and 3.1x10³⁶, respectively.
Q11. To prepare a 2.1 L solution with pH 3.50, we use the equation pH = -log[H₃O⁺]. Converting pH to [H₃O⁺] concentration gives 3.2x10⁻⁴ M.
Using the relation [H₃O⁺] = [H₂SO₄], we find the required concentration of H₂SO₄ to be 2.1x10⁻² M.
To find the volume needed, we use the formula C₁V₁ = C₂V₂, where C₁ = 2 mM, C₂ = 2.1x10⁻² M, and V₂ = 2.1 L,
yielding V₁ ≈ 1 L.
Q12. For the 0.100 M HIO₃ solution, we can use the equation for the ionization of a weak acid,
Ka = [H₃O⁺][IO₃⁻]/[HIO₃]. Since [H₃O⁺] = [IO₃⁻],
we have [H₃O⁺]² = Ka * [HIO₃] = 0.016 * 0.100 M,
leading to [H₃O⁺] ≈ 0.126 M.
The [OH⁻] concentration can be calculated using Kw = [H₃O⁺][OH⁻] = 1 * 10⁻¹⁴, giving [OH⁻] ≈ 7.94 * 10⁻¹⁴ M.
Q13. To find the grams of benzoic acid (C₆H₅COOH) needed to make a 250 ml solution with pH 3, we first calculate the [H₃O⁺] concentration using pH = -log[H₃O⁺].
Thus, [H₃O⁺] = 10^(-3), which is approximately 7.94 * 10⁻⁴ M. Then, we use the acid dissociation constant (Ka) equation for benzoic acid: Ka = [H₃O⁺][C₆H₅COO⁻]/[C₆H₅COOH].
Since [H₃O⁺] ≈ [C₆H₅COO⁻], Ka ≈ 7.94 * 10⁻⁴. Next, we set up the expression for Ka and solve for [C₆H₅COOH] to get approximately 0.0100 M.
Finally, we use the formula m = C * V to find the grams of benzoic acid required, which comes out to be approximately 0.25 grams.
Q14. For the 0.55 M H₂SO₄ solution, we first consider the ionization of the first H⁺ to calculate the pH.
Using Ka₁ = [H₃O⁺][HSO₄⁻]/[H₂SO₄], we can approximate
[H₃O⁺] = [HSO₄⁻] = √(Ka₁ * [H₂SO₄])
≈ 0.0496 M.
Hence, the pH is approximately 1.30. As H₂SO₄ is a strong acid, its ionization is complete, resulting in [SO₄⁻] = 0.55 M. The [H₃O⁺] concentration remains the same as the initial concentration, i.e., 0.0496 M.
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QUESTION
Q10. Calculate Kₚ and K꜀ for the reaction at 400°C and 800. °C.
2Cl₂₍₉₎ + 2H₂O₍₉₎ → 4HCl₍₉₎ + O₂₍₉₎
Kₚ = 4.6x10¹⁴ at 25 °C, ΔH° = +115kJ/mol
Q11. In your experiment, you need 2.1 L of a solution with a pH of 3.50. How many mL of 2 mM H₂SO₄ solution you need to use to prepare the desired solution?
Q12. Calculate the pH, [IO₃⁻], and [OH⁻] of 0.100 M of HIO₃ (lodic acid) solution? Kₐₕᵢₒ₃:0.016, Kᵥᵥ:1*10⁻¹⁴)
Q13., How many grams of benzoic acid (C₆H₅COOH) must be dissolved in 250 ml of water to have a solution with pH of 3.__(use last two digits of any decimal points)? Ka=3x10⁻⁵
Q14. Calculate the pH, [H₃O⁺] and [SO₄⁻] of 0.55 M H₂SO₄ solution? (Ka₂: 1.1x10⁻²)
A process gas containing 4% chlorine (average molecular weight 30 ) is being scrubbed at a rate of 14 kg/min in a 13.2-m packed tower 60 cm in diameter with aqueous sodium carbonate at 850 kg/min. Ninety-four percent of the chlorine is removed. The Henry's law constant (y Cl 2
/x Cl 2
) for this case is 94 ; the temperature is a constant 10 ∘
C, and the packing has a surface area of 82 m 2
/m 3
. (a) Find the overall mass transfer coefficient K G
. (b) Assume that this coefficient results from two thin films of equal thickness, one on the gas side and one on the liquid. Assuming that the diffusion coefficients in the gas and in the liquid are 0.1 cm 2
/sec and 10 −5
cm 2
/sec, respectively, find this thickness. (c) Which phase controls mass transfer?
a. The overall mass transfer coefficient K G is 0.0084 m/min
b. The thickness of each film is approximately 0.119 mm.
c. Since, the Sherwood number for the liquid phase is much greater than the Sherwood number for the gas phase, the liquid phase controls mass transfer in this system.
How to calculate mass transfer coefficientUse the overall mass balance to find the overall mass transfer coefficient K_G
Rate of mass transfer = K_G * A * (C_G - C_L)
where
A is the interfacial area,
C_G is the concentration of chlorine in the gas phase, and
C_L is the concentration of chlorine in the liquid phase.
The rate of mass transfer is
Rate of mass transfer = 0.04 * 14 kg/min
= 0.56 kg/min
The interfacial area can be calculated from the diameter and height of the packed tower
[tex]A = \pi * d * H = 3.14 * 0.6 m * 13.2 m = 24.7 m^2[/tex]
The concentration of chlorine in the gas phase
C*_G = 0.04 * 14 kg/min * 0.94 / (850 kg/min)
= 5.73E-4 kg/[tex]m^3[/tex]
The concentration of chlorine in the liquid phase can be calculated using Henry's law:
C*_L = y_Cl2/x_Cl2 * P_Cl2
= 0.94 * 0.04 * 101325 Pa
= 3860 Pa
where P_Cl2 is the partial pressure of chlorine in the gas phase.
Thus;
0.56 kg/min = K_G * 24.7 [tex]m^2[/tex]* (5.73E-4 kg/ [tex]m^2[/tex] - 3860 Pa / (30 kg/kmol * 8.31 J/K/mol * 283 K))
K_G = 0.0084 m/min
Assuming that the overall mass transfer coefficient results from two thin films of equal thickness
Thus,
1/K_G = 1/K_L + 1/K_G'
where K_L is the mass transfer coefficient for the liquid phase and K_G' is the mass transfer coefficient for the gas phase.
The mass transfer coefficients are related to the diffusion coefficients by:
K_L = D_L / δ_L
K_G' = D_G / δ_G
where δ_L and δ_G are the thicknesses of the liquid and gas films, respectively.
By using the given diffusion coefficients, calculate the mass transfer coefficients
K_L = [tex]10^-5 cm^2[/tex]/sec / δ_L = 1E-7 m/min / δ_L
K_G' = [tex]0.1 cm^2[/tex]/sec / δ_G = 1E-3 m/min / δ_G
Substitute into the equation for 1/K_G
1/K_G = 1E7/δ_L + 1E3/δ_G
Assuming that the two film thicknesses are equal, we can write:
1/K_G = 2E3/δ
where δ is the film thickness.
δ = 1.19E-4 m or 0.119 mm
Therefore, the thickness of each film is approximately 0.119 mm.
We can know which phase controls mass transfer, by calculating the Sherwood number Sh using the film thickness and the diffusion coefficient for each phase:
Sh_L = K_L * δ / D_L
= (1E-7 m/min) * (1.19E-4 m) / [tex](10^-5 cm^2[/tex]/sec) = 1.19
Sh_G' = K_G' * δ / D_G
= (1E-3 m/min) * (1.19E-4 m) / (0.1[tex]cm^2[/tex]/sec) = 1.43E-3
Since, the Sherwood number for the liquid phase is much greater than the Sherwood number for the gas phase, the liquid phase controls mass transfer in this system.
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(2) Setup the area enclosed by the curves (3) Set up for the volume obtained by rotating about (i) x=5. (ii) y=5. y=2x^2−x^3x−axis(y=0) (1) Find A and B (2) setup for the area (3) Setup for the volume obtained by rotating about (i) y=−1 (ii) x=−1
Set up for the volume obtained by rotating about (i) x = 5Volume = ∫πy² dx between
[tex]0 and y = 8 for x ≥ 5Volume = π∫(5 + √(1 + 3y))² dy between y = 0 and y = 8= π∫(26 + 10√(1 + 3y) + 3y) dy= π\[\left( {26y + 10\int {\sqrt {1 + 3y} dy} + \frac{3}{2}\int {ydy} } \right)\].[/tex]
Given the curves y =[tex]2x² - x³, x-axis (y = 0), x = 5 and y = 5[/tex].(1) Find A and BA = x-coordinate of the point of intersection of the curves y = 2x² - x³ and x-axis (y = 0)[tex]0 = 2x² - x³0 = x² (2 - x)x = 0 or[/tex] x = 2Hence A = 0 and B = 2.(2) Set up for the area. Enclosed area = ∫(y = 2x² - x³).
dy between x = 0 and x = 2= ∫(y = 2x² - x³)dy between y = 0 and y = 0 [Inverse limits of integration]= ∫(y = 2x² - x³)dy between x = 0 and x = 2y = [tex]2x² - x³ = > x³ - 2x² + y = 0[/tex]
Using the quadratic formula, \[x = \frac{{2 \pm \sqrt {4 - 4( - 3y)} }}{2} = 1 \pm \sqrt {1 + 3y} \]
Using x = 1 + √(1 + 3y), y = 0,x = 1 - √(1 + 3y), y = 0.
limits of integration change from x = 0 and x = 2 to y = 0 and y = 8∫(y = 2x² - x³) dy between y = 0 and y = 8= ∫(y = 2x² - x³)dx
between x =[tex]1 - √3 and x = 1 + √3∫(y = 2x² - x³)dx = ∫(y = 2x² - x³)xdy/dx dx= ∫[(2x² - x³) * (dy/dx)]dx= ∫[(2x² - x³)(6x - 2x²)dx]= 2∫x²(3 - x)dx= 2(∫3x²dx - ∫x³dx)= 2(x³ - x⁴/4) between x = 1 - √3 and x = 1 + √3= 8(2 - √3)[/tex]
[tex](ii) y = 5Volume = ∫πx² dy between x = 0 and x = 2Volume = π∫(2y/3)² dy between y = 0 and y = 5= π(4/9) ∫y² dy between y = 0 and y = 5= π(1000/27) cubic units(iii) x = -1Volume = ∫πy² dx between y = 0 and y = 8 for x ≤ -1.[/tex].
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3. Use differentials to estimate the amount of steel on a closed propane tank if the thickness of the steel sheet has 2 cm. The tank has two hemispherical parts of 1.2 meters in diameter,
Using differentials to estimate the amount of steel on a closed propane tank if the thickness of the steel sheet has 2 cm. The tank has two hemispherical parts of 1.2 meters in diameter, the estimated amount of steel in the closed propane tank is approximately 0.18 cubic meters.
The amount of steel in a closed propane tank can be estimated using differentials. To identify the amount of steel, we need to calculate the surface area of the tank. The tank consists of two hemispherical parts with a diameter of 1.2 meters each.
First, let's calculate the surface area of one hemisphere. The formula for the surface area of a sphere is given by A = 4πr², where r is the radius. Since the diameter is given, we can calculate the radius as half the diameter:
r = 1.2/2 = 0.6 meters.
Now, let's calculate the surface area of one hemisphere: A₁ = 4π(0.6)² = 4π(0.36) ≈ 4.52 square meters. since the tank consists of two hemispheres, we need to multiply the surface area of one hemisphere by 2 to get the total surface area of the tank:
A_total = 2 * A₁ = 2 * 4.52 ≈ 9.04 square meters.
To estimate the amount of steel, we need to consider the thickness of the steel sheet, which is 2 cm. We can convert this to meters by dividing by 100: t = 2/100 = 0.02 meters. Finally, we can calculate the volume of steel by multiplying the surface area by the thickness:
V_steel = A_total * t = 9.04 * 0.02 ≈ 0.18 cubic meters.
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ANSWER AND EXPLAIN THE FF:
Why do we study LB and LTB in steel beams?
3 What is effect of KL/r and 2nd order moments in columns?
Why SMF in NSCP 2015? Whats the significance?
2. By incorporating SMF into the NSCP 2015, the code promotes the use of advanced seismic-resistant structural systems and facilitates the design of buildings that can withstand earthquakes, enhancing overall safety for occupants and reducing the risk of structural damage.
1. Why do we study LB and LTB in steel beams?
LB (Lateral Torsional Buckling) and LTB (Local Torsional Buckling) are important phenomena that occur in steel beams. It is crucial to study LB and LTB in steel beams because they affect the structural stability and load-carrying capacity of the beams. Here are the explanations for LB and LTB:
- Lateral Torsional Buckling (LB): Lateral Torsional Buckling occurs when a beam's compression flange starts to buckle laterally and twist due to applied loads and the resulting bending moment. It typically occurs in beams with long spans and/or low torsional stiffness. Studying LB is important to ensure that beams are designed to resist this buckling mode and maintain their structural stability.
- Local Torsional Buckling (LTB): Local Torsional Buckling refers to the buckling of the individual components, such as the flanges and webs, of a steel beam due to applied loads and the resulting shear forces. It typically occurs in compact or slender sections with thin elements. Studying LTB is crucial to prevent premature failure or reduced load-carrying capacity of the beam.
Understanding LB and LTB helps engineers in designing steel beams with adequate stiffness, strength, and stability to safely carry the intended loads. It involves considering factors such as the beam's moment of inertia, section properties, and the effective length of the beam.
2. What is the effect of KL/r and second-order moments in columns?
- KL/r: The term KL/r represents the slenderness ratio of a column, where K is the effective length factor, L is the unsupported length of the column, and r is the radius of gyration. The slenderness ratio plays a significant role in determining the stability and buckling behavior of columns. As the slenderness ratio increases, the column becomes more susceptible to buckling and instability.
When the slenderness ratio exceeds a certain critical value, known as the buckling limit, the column may experience buckling under axial loads. It is essential to consider the KL/r ratio in the design of columns to ensure that they are adequately proportioned to resist buckling and maintain structural integrity.
- Second-Order Moments: Second-order moments refer to the additional bending moments induced in a column due to the lateral deflection of the column caused by axial loads. When an axial load is applied to a column, it may experience lateral deflection, resulting in additional bending moments that can affect the column's overall behavior and capacity.
Accounting for second-order moments is important in the design of columns, especially for slender columns subjected to high axial loads. Neglecting second-order moments can lead to inaccurate predictions of column behavior and potentially result in structural instability or failure.
3. Why SMF in NSCP 2015? What's the significance?
SMF stands for Special Moment Frame, which is a structural system used in building construction. The inclusion of SMF in the National Structural Code of the Philippines (NSCP) 2015 signifies its importance and relevance in ensuring the safety and performance of buildings subjected to seismic forces.
The significance of SMF in NSCP 2015 can be summarized as follows:
- Seismic Resistance: SMF is specifically designed to provide enhanced resistance against seismic forces. It is capable of dissipating and redistributing the energy generated by earthquakes, thus reducing the potential for structural damage and collapse.
- Ductility and Energy Absorption: SMF systems exhibit high ductility, which allows them to deform and absorb seismic energy without experiencing catastrophic failure. This characteristic helps ensure that the building can withstand severe ground shaking and maintain its integrity.
- Performance-Based Design: The inclusion of SMF in the code reflects a performance-based design approach
, which aims to ensure that structures meet specific performance objectives during seismic events. SMF provides a reliable and well-established structural system that has been extensively studied and tested for its seismic performance.
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An estimation of the amount of blood in
the human body is that it varies directly in
proportion to the person's body mass. An
80kg person has a blood volume of about 6
L. Write an equation to express the blood
volume as a function of body mass, and
determine the blood volume of an 88 kg
man and a 40 kg child.
The blood volume of an 88 kg man is approximately 6.6 liters, and the blood volume of a 40 kg child is approximately 3 liters.
Let's denote the body mass as "m" (in kilograms) and the blood volume as "V" (in liters). According to the given information, blood volume varies directly with body mass. This means that we can establish a direct proportionality between the two variables.
We can write the equation as:
V = km
Where "k" is the constant of proportionality.
To find the value of "k," we can use the information provided for an 80 kg person having a blood volume of 6 L:
6 = k * 80
Solving this equation, we find:
k = 6/80 = 0.075
Now, we can use this value of "k" to determine the blood volume for an 88 kg man and a 40 kg child:
For an 88 kg man:
V = 0.075 * 88 = 6.6 L
For a 40 kg child:
V = 0.075 * 40 = 3 L
Therefore, the blood volume of an 88 kg man is approximately 6.6 liters, and the blood volume of a 40 kg child is approximately 3 liters, based on the given equation and the constant of proportionality.
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2. What would be the relative effect (e . g , doubled or tripled) on the rate of reaction if the concentrations of both of the reactants were doubled in the following reactions ? Explain your ans
Doubling the concentrations of both reactants in a reaction would result in different relative effects on the rate of reaction, depending on the reaction order with respect to each reactant.
If the reaction is first order with respect to both reactants:
Doubling the concentration of each reactant would result in a doubling of their respective rate constants. Thus, the rate of reaction would be quadrupled (2 × 2 = 4 times the original rate). This is because the rate of a first-order reaction is directly proportional to the concentration of the reactant.
If the reaction is second order with respect to both reactants:
Doubling the concentration of each reactant would lead to a four-fold increase in the rate of reaction (2² = 4 times the original rate). This is because the rate of a second-order reaction is directly proportional to the square of the concentration of the reactants.
If the reaction is first order with respect to one reactant and second order with respect to the other:
Doubling the concentration of each reactant would result in a doubling of their respective rate constants and an overall doubling of the rate of reaction (2 times the original rate). This is because the rate of reaction in this case depends linearly on the concentration of the first-order reactant and quadratically on the concentration of the second-order reactant.
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y′′+y=2u(t−3);y(0)=0,y′(0)=1 Click here to view the table of Laplace transforms Click here to view the table of properties of Laplace transforms. Solve the given initial value problem. y(t)= Sketch the graph of the solution.
The solution to the given initial value problem is y(t) = 2u(t-3)sin(t-3) + cos(t). The graph of the solution consists of a sinusoidal wave shifted by 3 units to the right, with an additional cosine component.
To solve the given initial value problem, we can use the Laplace transform. First, let's take the Laplace transform of both sides of the differential equation:
L(y''(t)) + L(y(t)) = 2L(u(t-3))
Using the properties of the Laplace transform and the table of Laplace transforms, we can find the transforms of the derivatives and the unit step function:
[tex]s^2Y(s) - sy(0) - y'(0) + Y(s) = 2e^{-3s}/s[/tex]
Substituting the initial conditions y(0) = 0 and y'(0) = 1:
[tex]s^2Y(s) - s(0) - (1) + Y(s) = 2e^{-3s}/s\\\\s^2Y(s) + Y(s) - 1 = 2e^{-3s}/s[/tex]
Next, we need to solve for Y(s), the Laplace transform of y(t). Rearranging the equation, we have:
[tex]Y(s) = (2e^{-3s}/s + 1) / (s^2 + 1)[/tex]
Using partial fraction decomposition, we can express Y(s) as:
[tex]Y(s) = A/s + B/(s^2 + 1)[/tex]
Multiplying through by the common denominator [tex]s(s^2 + 1)[/tex], we get:
[tex]Y(s) = (A(s^2 + 1) + Bs) / (s(s^2 + 1))[/tex]
Comparing the numerators, we have:
[tex]2e^{-3s} + 1 = A(s^2 + 1) + Bs[/tex]
By equating coefficients, we can solve for A and B:
From the coefficient of [tex]s^2: A = 0[/tex]
From the constant term: [tex]2e^{-3s} + 1 = A + B[/tex]
[tex]2e^{-3s} + 1 = 0 + B[/tex]
[tex]B = 2e^{-3s} + 1[/tex]
So, we have A = 0 and [tex]B = 2e^(-3s) + 1[/tex].
Taking the inverse Laplace transform, we can find y(t):
[tex]y(t) = L^{-1}(Y(s))\\\\y(t) = L^{-1}((2e^{-3s} + 1) / (s(s^2 + 1)))\\\\y(t) = L^{-1}(2e^{-3s} / (s(s^2 + 1))) + L^{-1}(1 / (s(s^2 + 1)))[/tex]
Using the table of Laplace transforms, we can find the inverse transforms:
[tex]L^{-1}(2e^{-3s} / (s(s^2 + 1))) = 2u(t-3)sin(t-3)[/tex]
[tex]L^{-1}(1 / (s(s^2 + 1))) = cos(t)[/tex]
Finally, we can write the solution to the initial value problem as:
y(t) = 2u(t-3)sin(t-3) + cos(t)
To sketch the graph of the solution, we plot y(t) as a function of time t. The graph will consist of two parts:
1. For t < 3, the function y(t) = 0, as u(t-3) = 0.
2. For t >= 3, the function y(t) = 2sin(t-3) + cos(t), as u(t-3) = 1.
Therefore, the graph of the solution will be a sinusoidal wave shifted by 3 units to the right, with an additional cosine component.
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you have 0.200 mol of a compound in a 0.720 M solution, what is the volume (in L) of the solution? Question 3 1 pts What is the molarity of a solution that has 1.75 mol of sucrose in a total of 3.25 L of solution? Question 4 1 pts What is the molarity of a solution with 43.7 g of glucose (molar mass: 180.16 g/mol) dissolved in water to a total volume of 450.0 mL?
For the first question, with 0.200 mol of a compound in a 0.720 M solution, the volume of the solution is approximately 0.278 L. For the second and third questions, the molarities are approximately 0.538 M.
Question 3:
To find the volume (in liters) of a 0.720 M solution containing 0.200 mol of a compound, you can use the formula:
Molarity (M) = moles (mol) / volume (L)
0.720 M = 0.200 mol / volume (L)
Rearranging the formula, we get:
volume (L) = moles (mol) / Molarity (M)
volume (L) = 0.200 mol / 0.720 M
volume (L) ≈ 0.278 L
Therefore, the volume of the solution is approximately 0.278 L.
Question 4:
To find the molarity of a solution with 1.75 mol of sucrose in a total volume of 3.25 L, we can use the formula:
Molarity (M) = moles (mol) / volume (L)
Molarity (M) = 1.75 mol / 3.25 L
Molarity (M) ≈ 0.538 M
Therefore, the molarity of the solution is approximately 0.538 M.
For the third question, the molarity of the solution can be found using the formula:
Molarity (M) = moles (mol) / volume (L)
First, we need to convert the mass of glucose from grams to moles:
moles of glucose = mass of glucose (g) / molar mass of glucose (g/mol)
moles of glucose = 43.7 g / 180.16 g/mol
moles of glucose ≈ 0.242 mol
Now, we can find the molarity of the solution:
Molarity (M) = 0.242 mol / 0.450 L
Molarity (M) ≈ 0.538 M
Therefore, the molarity of the solution is approximately 0.538 M.
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Use the following information to answer the next question Sour gas is a mixture of predominantly methane and hydrogen sulfide gas. The Claus process can be used to remove hydrogen sulfide gas from sour gas as represented by the following equation.
6) 8 H₂S(g) + 4 O₂(g) → Sg(s) + 8 H₂O(g) DH = -1769.6 kJ - The enthalpy change when 21.0 g of hydrogen sulfide reacts during the Claus process is - kJ (Record your answer in the numerical-response section below.)
Your answer. _______
The enthalpy change when 21.0 g of hydrogen sulfide reacts during the Claus process is approximately -135.69 kJ.
The given equation represents the Claus process, which is used to remove hydrogen sulfide gas from sour gas. In this process, 8 moles of hydrogen sulfide gas (H₂S) react with 4 moles of oxygen gas (O₂) to form solid sulfur (Sg) and 8 moles of water vapor (H₂O). The enthalpy change for this reaction is -1769.6 kJ.
To find the enthalpy change when 21.0 g of hydrogen sulfide reacts, we need to convert the given mass to moles. The molar mass of hydrogen sulfide (H₂S) is 34.08 g/mol.
First, calculate the number of moles of hydrogen sulfide:
21.0 g / 34.08 g/mol = 0.6161 mol
Now, we can use stoichiometry to find the enthalpy change:
For every 8 moles of hydrogen sulfide, the enthalpy change is -1769.6 kJ.
Since we have 0.6161 moles of hydrogen sulfide, we can set up a proportion:
0.6161 mol H₂S / 8 mol H₂S = x kJ / -1769.6 kJ
Solving for x, we get:
x = (0.6161 mol H₂S / 8 mol H₂S) * -1769.6 kJ
x ≈ -135.69 kJ
Therefore, the enthalpy change when 21.0 g of hydrogen sulfide reacts during the Claus process is approximately -135.69 kJ.
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Problem 3 (25%). Find the homogenous linear differential equation with constant coefficients that has the following general solution: y=ce-X + Cxe-5x
The homogeneous linear differential equation with constant coefficients that has the general solution y = ce^{-x} + Cxe^{-5x} is y'' + 5y' = 0
Given y = ce^{-x} + Cxe^{-5x}
We will now find the homogeneous linear differential equation with constant coefficients.
For a homogeneous differential equation of nth degree, the standard form is:
anyn + an−1yn−1 + ⋯ + a1y′ + a0y = 0
Consider a differential equation of second degree:
ay'' + by' + cy = 0
For simplicity, let y=e^{mx}
Therefore y'=me^{mx} and y''=m^2e^{mx}
Substitute y and its derivatives into the differential equation:
am^2e^{mx} + bme^{mx} + ce^{mx} = 0
We can divide each term by e^{mx} because it is never 0.
am^2 + bm + c = 0
Therefore, the characteristic equation is:
anyn + an−1yn−1 + ⋯ + a1y′ + a0y = 0
We will now substitute y = e^{rx} and its derivatives into the differential equation:
ar^{2}e^{rx} + br^{1}e^{rx} + ce^{rx} = 0
r^{2} + br + c = 0
The roots of the characteristic equation are determined by the quadratic formula:
r = [-b ± √(b^2-4ac)]/2a
The two roots of r are:
r1 = (-b + sqrt(b^2 - 4ac))/(2a)
r2 = (-b - sqrt(b^2 - 4ac))/(2a)
Let's substitute the values: -a = 1, -b = 5, -c = 0r1 = 0, r2 = -5
Therefore, the homogeneous linear differential equation with constant coefficients that has the general solution y = ce^{-x} + Cxe^{-5x} is y'' + 5y' = 0
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Select the wide flange steel girder for a simple span of 9 {~m} subjected to a concentrated load of 4667 {k N} at the midspan. Use A36 steel and assume that beam is supported
To select the appropriate wide flange steel girder for a simple span of 9 meters, subjected to a concentrated load of 4667 kN at the midspan, we need to calculate the required section modulus and check if it is available for A36 steel.
Step 1: Calculate the required section modulus:
The section modulus (S) represents the resistance of a beam to bending. It can be calculated using the formula:
S = (P * L^2) / (4 * M)
where:
P is the concentrated load at the midspan (4667 kN),
L is the span length (9 m),
M is the moment at the midspan (P * L / 4).
In this case, the moment at the midspan is (4667 kN * 9 m) / 4
= 10476.75 kNm.
Substituting the values into the formula, we get:
S = (4667 kN * (9 m)^2) / (4 * 10476.75 kNm)
S ≈ 37.9684 * 10^3 mm^3
Step 2: Check the availability of the section modulus for A36 steel:
To select the appropriate steel girder, we need to compare the calculated section modulus (S) with the available section moduli for A36 steel.
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Sodium-24 (24Na) is a radioisotope used to study circulatory dysfunction. A measurement found 4 micrograms of 24Na in a blood sample. A second measurement taken 5 hrs later showed 3.18 micrograms of 24Na in a blood sample. Find the half-life in hrs of 24Na. Round to the nearest tenth.
___Hours
Therefore, the half-life of 24Na is 11.9 hours.
The half-life of a radioisotope is the time it takes for half of the atoms in a sample to decay.
This is the formula for half-life:
t = (ln (N0 / N) / λ)
Here, we have N0 = 4 and N = 3.18.
To find λ, we first need to find t.
Since we know the half-life is the amount of time it takes for the amount of the isotope to decrease to half its initial value, we can use that information to find t:
t = 5 hrs / ln (4 / 3.18) ≈ 11.9 hrs
Now that we have t, we can use the formula for half-life to find λ:
t = (ln (N0 / N) / λ)λ = ln (N0 / N) / t = ln (4 / 3.18) / 11.9 ≈ 0.0582 hr⁻¹
Finally, we can use the formula for half-life to find the half-life:
t½ = ln(2) / λ = ln(2) / 0.0582 ≈ 11.9 hrs
Rounding to the nearest tenth gives us a half-life of 11.9 hours, which is our final answer.
Therefore, the half-life of 24Na is 11.9 hours.
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Solve 2x^2y′′+xy′−3y=0 with the initial condition y(1)=1y′(1)=4
The solution is[tex]`y = (47/8)x^3 − (39/8)x^(-1/2)`[/tex] with the given initial conditions.The differential equation of the form [tex]`2x^2y′′+xy′−3y=0`[/tex]can be solved by using Cauchy-Euler's method.
Here, we have second order linear differential equation with variable coefficients. We substitute the value of `y` in the differential equation to obtain the characteristic equation by assuming
[tex]`y = x^m`.[/tex]
Hence we get:
[tex]`y = x^m`[/tex]
Differentiating w.r.t. `x`, we get
[tex]`y′ = mx^(^m^−1)`[/tex]
Differentiating again w.r.t. `x`, we get
[tex]`y′′ = m(m−1)x^(m−2)`[/tex]
Substituting the value of `y`, `y′`, and `y′′` in the given equation, we have:
[tex]2x^2(m(m−1)x^(m−2)) + x(mx^(m−1)) − 3x^m = 02m(m−1)x^m + 2mx^m − 3x^m = 02m^2 − m − 3 = 0[/tex]
On solving the quadratic equation, we get `m = 3` and `m = −1/2`.Thus, the general solution of the given differential equation is:
[tex]`y = c_1x^3 + c_2x^(-1/2)`[/tex]
Let us use the given initial conditions to solve for the constants `c1` and `c2`.y(1) = 1 gives
[tex]`c_1 + c_2 = 1`y′(1) = 4[/tex]
[tex]gives `3c_1 − (1/2)c_2 = 4`[/tex]
Solving the above two equations, we get [tex]`c_1 = 47/8`[/tex] and
[tex]`c_2 = −39/8`[/tex]
Thus, the solution of the differential equation [tex]`2x^2y′′+xy′−3y=0`[/tex]
with initial conditions `y(1)=1` and `y′(1)=4` is:
[tex]`y = (47/8)x^3 − (39/8)x^(-1/2)`[/tex]
Hence, the solution is
`[tex]y = (47/8)x^3 − (39/8)x^(-1/2)`[/tex]
with the given initial conditions.
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3- A bar with an elastic modulus of 700MPa, length of 8.5 m, and diameter of 50 mm, is subjected to axial loads. The value of load F is given above. Find axial deformation at point A with respect to D in term of mm.
The axial deformation at point A with respect to D is 0.03358 mm (approx).
Hence, the required answer is 0.03358 mm (approx).
Note: The given elastic modulus of the bar is 700 MPa.
Given, elastic modulus of the bar is 700 MPaLength of the bar, L = 8.5 m
Diameter of the bar, d = 50 mmLoad acting on the bar, F = 3800 kNL
et us find out the cross-sectional area of the bar and convert the diameter of the bar from millimeter to meter.
The cross-sectional area of the bar isA = πd²/4
Area of the bar, [tex]A = π(50²)/4 = 1963.5[/tex] mm²Diameter of the bar, d = 50 mm = 50/1000 m = 0.05 mThe formula to find out the axial deformation of the bar isΔL = FL/ AE
Where,ΔL = Axial deformation F = Load acting on the barL = Length of the bar
E = Elastic modulus of the barA = Cross-sectional area of the bar
On substituting the values in the above formula, we getΔL = FL/ AE
Now, let us substitute the given values in the above equation, we get
[tex]ΔL = (3800 × 10³ N) × (8.5 m) / [(700 × 10⁶ N/m²) × (1963.5 × 10⁻⁶ m²)][/tex]
On simplifying the above equation, we getΔL = 0.03358 mm
This should be converted to N/m². One can convert 700 MPa to N/m² as follows:
[tex]700 MPa = 700 × 10⁶ N/m².[/tex]
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Consider the isothermal gas phase reaction in packed bed reactor (PBR) fed with equimolar feed of A and B, i.e., CA0 = CB0 = 0.2 mol/dm³ A + B → 2C The entering molar flow rate of A is 2 mol/min; the reaction rate constant k is 1.5dm%/mol/kg/min; the pressure drop term a is 0.0099 kg¹. Assume 100 kg catalyst is used in the PBR. 1. Find the conversion X 2. Assume there is no pressure drop (i.e., a = 0), please calculate the conversion. 3. Compare and comment on the results from a and b.
The conversion of the given reaction is 0.238.3 and the pressure drop has a negative effect on conversion.
Given data for the given question are,
CA0 = CB0 = 0.2 mol/dm³
Entering molar flow rate of A,
FA0 = 2 mol/min
Reaction rate constant, k = 1.5 dm³/mol/kg/min
Pressure drop term, a = 0.0099 kg¹
Mass of the catalyst used, W = 100 kg
The reaction A + B → 2C is exothermic reaction. Therefore, the reaction rate constant k decreases with increasing temperature.
So, isothermal reactor conditions are maintained.1.
The rate of reaction of A + B to form C is given as:Rate, R = kCACA.CB
Concentration of A, CA = CA0(1 - X)
Concentration of B, CB = CB0(1 - X)
Concentration of C, CC = 2CAX = (FA0 - FA)/FA0
Where, FA = -rA
Volume of reactor, V = 1000 dm³ (assuming)
FA0 = 2 mol/min
FA = rAVXFA0
= FA + vACACA0
= 0.2 mol/dm³FA0
= 2 mol/min
Therefore, FA0 - FA = -rAVFA0
= (1 - X)(-rA)V => rA
= kCACA.CB
= k(CA0(1 - X))(CB0(1 - X))
= k(CA0 - CA)(CB0 - CB)
= k(CA0.X)(CB0.X)
Now, we have to find the exit molar flow rate of A,
FA.= FA0 - rAV
= FA0 - k(CA0.X)(CB0.X)V
The formula for conversion is:
X = (FA0 - FA)/FA0
= (FA0 - (FA0 - k(CA0.X)(CB0.X)V))/FA0
= k(CA0.X)(CB0.X)V/FA0
Now, putting the values of all the variables, X will be
X = 0.165.
Therefore, the conversion of the given reaction is 0.165.2.
Assuming a = 0, the conversion will be calculated in the same manner.
X = (FA0 - FA)/FA0FA0 = 2 mol/min
FA = rAVXFA0
= FA + vACACA0
= 0.2 mol/dm³FA0
= 2 mol/minrA
= k(CA0.X)(CB0.X)
= k(CA0(1 - X))(CB0(1 - X))
= k(CA0.X)²FA
= FA0 - rAV
= FA0 - k(CA0.X)²VX
= (FA0 - FA)/FA0
= (FA0 - (FA0 - k(CA0.X)²V))/FA0
= k(CA0.X)²V/FA0
Now, putting the values of all the variables,
X = 0.238.
Therefore, the conversion of the given reaction is 0.238.3.
Comparing the results from a and b, the effect of pressure drop can be understood. The pressure drop term a has a very small value of 0.0099 kg¹.
The conversion decreases with pressure drop because of the decrease in the number of moles of A reaching the catalyst bed.
The conversion without pressure drop, i.e. Xa = 0.238 is higher than that with pressure drop, i.e.
Xa = 0.165. It means that the pressure drop has a negative effect on conversion.
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Solve the Dirichlet problem for the unit circle if the boundary function f(θ) is defined by
(a) f(θ) = cosθ/2, −π ≤ θ ≤ π;
(c) f (θ) = 0 for −π ≤ θ < 0, f (θ) = sin θ for 0 ≤ θ ≤ π;
(d) f (θ) = 0 for −π ≤ θ ≤ 0, f (θ) = 1 for 0 ≤ θ ≤ π;
To solve the Dirichlet problem for the unit circle, we need to find a harmonic function that satisfies the given boundary conditions.
(a) For f(θ) = cosθ/2, −π ≤ θ ≤ π, we can use the method of separation of variables to solve the problem. We assume that the harmonic function u(r, θ) can be expressed as a product of two functions, one depending only on r and the other depending only on θ: u(r, θ) = R(r)Θ(θ).
The boundary condition f(θ) = cosθ/2 gives us Θ(θ) = cos(θ/2). We can then solve the radial equation, which is a second-order ordinary differential equation, to find R(r).
(c) For f(θ) = 0 for −π ≤ θ < 0, f(θ) = sin θ for 0 ≤ θ ≤ π, we can follow a similar approach. The boundary condition f(θ) gives us Θ(θ) = sin(θ) for 0 ≤ θ ≤ π. Again, we solve the radial equation to find R(r).
(d) For f(θ) = 0 for −π ≤ θ ≤ 0, f(θ) = 1 for 0 ≤ θ ≤ π, the boundary condition f(θ) gives us Θ(θ) = 1 for 0 ≤ θ ≤ π. Once again, we solve the radial equation to find R(r).
The specific details of solving the radial equation depend on the form of the Laplacian operator in polar coordinates and the boundary conditions. The general approach involves separation of variables, solving the resulting ordinary differential equations, and then combining the solutions to obtain the final solution.
Keep in mind that this is a general overview, and the actual calculations can be more involved.
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15. [-/1 Points] M4 DETAILS Use the Midpoint Rule with n = 4 to approximate the integral. 13 1²³×² = SCALCET9 5.2.009. x² dx
The approximate value of the integral ∫[1 to 5] x² dx using the Midpoint Rule with n = 4 is 41.
The Midpoint Rule is a numerical integration method used to approximate definite integrals. It divides the interval of integration into subintervals and approximates the area under the curve by summing the areas of rectangles. The formula for the Midpoint Rule is:
∫[a to b] f(x) dx ≈ Δx * (f(x₁) + f(x₂) + ... + f(xₙ)),
where Δx is the width of each subinterval and x₁, x₂, ..., xₙ are the midpoints of the subintervals.
In this case, the interval of integration is [1, 5], and we are using n = 4 subintervals. Therefore, the width of each subinterval, Δx, is (5 - 1) / 4 = 1.
The midpoints of the subintervals are x₁ = 1.5, x₂ = 2.5, x₃ = 3.5, and x₄ = 4.5.
Now we evaluate the function, f(x) = x², at these midpoints:
f(1.5) = (1.5)² = 2.25,
f(2.5) = (2.5)² = 6.25,
f(3.5) = (3.5)² = 12.25,
f(4.5) = (4.5)² = 20.25.
Finally, we calculate the approximate value of the integral using the Midpoint Rule formula:
∫[1 to 5] x² dx ≈ 1 * (2.25 + 6.25 + 12.25 + 20.25) = 41.
Therefore, the approximate value of the integral ∫[1 to 5] x² dx using the Midpoint Rule with n = 4 is 41.
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A flexible pavement with 8-inch sand-mix asphaltic surface, 8-inch crushed stone base and 8-inch crushed stone subbase. Drainage coefficient for crushed stone base is 0.9 and for crushed stone subbase is 0.95. The subgrade CBR is 5.5, the overall standard deviation is 0.5, and the reliability is 92%. The initial PSI is 4.8 and the final PSI is 2.5. Daily total traffic consists of 51,220 car (each with two 2-kip single axles) 822 buses (each with two 20-kip single axles) and 1,220 heavy trucks (each with one 12-kip single axle and two 34- kip tandem axles). How many years this pavement designed to last?
The specific design life of the pavement cannot be determined without further analysis and calculations based on the given information
To determine the design life of the pavement, we need to consider several factors. Firstly, the pavement structure consists of an 8-inch sand-mix asphaltic surface, an 8-inch crushed stone base, and an 8-inch crushed stone subbase. The drainage coefficients for the base and subbase are given as 0.9 and 0.95, respectively.
Additionally, the subgrade CBR is 5.5, and the overall standard deviation is 0.5 with a reliability of 92%. The initial PSI (Pounds per Square Inch) is 4.8, and the final PSI is 2.5.
The design life of the pavement can be estimated by considering the traffic load. The daily traffic includes 51,220 cars, 822 buses, and 1,220 heavy trucks with specific axle loads.
By performing pavement design calculations, considering the structural layers, drainage coefficients, subgrade strength, and traffic load, the design life of the pavement can be determined. However, without detailed calculations and specific design criteria, it is not possible to provide an accurate estimation of the pavement's design life in this scenario.
Therefore, the specific design life of the pavement cannot be determined without further analysis and calculations based on the given information.
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Determine the forces in members GH,CG, and CD for the truss loaded and supported as shown. The value of load P3 is equal to 50+10∗3kN. Determine the maximum bending moment Mmax. Note: Please write the value of P3 in the space below.
The vertical components of the forces in member CG and GH is the same and can be obtained by considering the vertical equilibrium of the joint C.[tex]CG/2 = CH/2 + 25GH/2[/tex]
Given: Load P3 = 50 + 10 x 3 = 80 kN The truss structure and free body diagram (FBD) of the truss structure is shown below: img For the determination of forces in the members GH, CG, and CD for the given truss structure, the following steps can be taken:
Step 1: Calculate the reactions of the support Due to the equilibrium of the entire structure, the vertical force acting at point D must be equal and opposite to the vertical component of the forces acting at point C and G.
From the FBD of the joint G, we can write: GH/ sin 45 = CG/ sin 90GH = CG x sin 45Hence, CG = GH / sin 45
The horizontal component of the force in member CG and GH is zero due to symmetry.
Therefore, CG/2 + GH/2 = VC , the above equation can be written.
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When Hien is 25 years old, how old will her turtle be? (Please try to do this quickly)
Answer:
33 years old
Step-by-step explanation:
We can make the equation [tex]t=h+8[/tex] using the points given to us already, so when Hien is 25 years old, her turtle will be [tex]t=25+8=33[/tex].
Step-by-step explanation:
as we can see when hien was 6 years old turtle was 14 this diffrence in age is 14 - 6 = 8
now when hien is 25 the difference in age will remain same therefore age of turtle = 25+8 = 33
Which of the options below correctly describes what happens when a small amount of strong base is added to a buffer solution consisting of the weak acid HA its conjugate base A−? a. The concentration of OH−decreases and the concentration of HA increases. b. The concentration of OH−decreases and the concentration of HA decreases. c. The concentration of OH−increases and the concentration of HA decreases. d. The concentration of OH−increases and the concentration of HA remains the same. e. The concentration of OH−remains the same and the concentration of HA decreases.
A buffer solution is a solution that can resist a change in pH when a small amount of a strong acid or base is added to it. A buffer solution usually consists of a weak acid and its conjugate base.
When a small amount of strong base is added to a buffer solution of a weak acid and its conjugate base, the OH- ions react with the weak acid HA to form A- and water (H2O). Hence, the concentration of the conjugate base increases while the concentration of the weak acid decreases. As a result, the pH of the buffer solution rises slightly.
The pH of the buffer solution remains relatively stable after this small increase. Option c, "The concentration of OH−increases and the concentration of HA decreases" correctly describes what occurs when a small amount of strong base is added to a buffer solution consisting of the weak acid HA and its conjugate base A−. Thus, option c is the correct answer.
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A sample of dry, cohesionless soil was subjected to a triaxial compression test that was carried out until the specimen failed at a deviator stress of 105.4 kN/m^2. A confining pressure of 48 kN/m^2 was used for the test.
a). calculate the soil's angle of internal friction.
b). calculate the normal stress at the failure plane..
The soil's angle of internal friction is 30°, and the normal stress at the failure plane is 100.7 kN/m².
The triaxial compression test determines a soil's strength and its ability to deform under various stresses.
Here are the steps to answer the given questions:
Given, Deviator stress (σd) = 105.4 kN/m²
Confining pressure (σ3) = 48 kN/m²
a) To calculate the soil's angle of internal friction, we use the formula for deviator stress:
σd = (σ₁ - σ³) / 2
Where, σ1 = maximum principle stress
= σd + σ³ = 105.4 + 48
= 153.4 kN/m²
Let's plug the values into the formula above to find the internal angle of friction:
105.4 kN/m² = (153.4 kN/m² - 48 kN/m²) / 2
Internal angle of friction, Φ = 30°
b) The formula to calculate the normal stress at the failure plane is:
[tex]\sigma n = (\σ\sigma_1 + \σ\sigma_3) / 2[/tex]
Where, σ₁ = maximum principle stress = 153.4 kN/m²
σ₃ = confining pressure
= 48 kN/m²
Let's plug the values into the formula above to find the normal stress:
σₙ = (153.4 kN/m² + 48 kN/m²) / 2σn
= 100.7 kN/m²
Therefore, the soil's angle of internal friction is 30°, and the normal stress at the failure plane is 100.7 kN/m².
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step by step
5 log. Find X + 1 2 x VI log₁ x 2
Here is the step by step explanation for finding X in the equation:[tex]5 log (X + 1) = 2 x VI log₁ x 2[/tex]Step 1: Apply the logarithmic property of addition and subtraction to the given equation.
5 log[tex](X + 1) = 2 x VI log₁ x 2= log [(X + 1)⁵] = log [2²⁹⁄₂ x (log₁₀ 2)²][/tex]
Step 2: Remove logarithmic functions from the equation by equating both sides of the above equation.(X + 1)⁵ = 2²⁹⁄₂ x (log₁₀ 2)²
Step 3: Simplify the above equation by taking the cube root of both sides of the equation.X + 1 = 2²⁹⁄₆ x (log₁₀ 2)²¹/₃
Step 4: Now subtract 1 from both sides of the above equation.X = 2²⁹⁄₆ x (log₁₀ 2)²¹/₃ - 1
Therefore, the value of X in the given equation is[tex]2²⁹⁄₆ x (log₁₀ 2)²¹/₃ - 1.[/tex]
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In the production of ammonia, the amount of air fed is set by the stoichiometric ratio of hydrogen to nitrogen for the feed stream. In addition, the fed air contains inert gases (argon), which gradually build up in the recycle stream until the process is affected adversely. It has been required that the argon concentration in the reactor must not be greater than 4 moles/hour per 100 mol/hour hydrogen-nitrogen mixture. The single pass conversion through the reactor is 20%. a. Calculate the amount of ammonia produced and the amount of recycle stream that must be purged to meet the concentration requirement if the fresh feed contains 0.31 moles/hour argon per 100 mol/hour hydrogen-nitrogen mixture. b. Calculate the recycle ratio (The ratio of the mass flow of the recycle stream by the mass flow of the "fresh feed" entering the system) c. Calculate the extent of the reaction and the overall conversion d. Prior any calculation in a), perform the degree of freedom analysis around each unit process and recombination points [20]
This system is underdetermined, as the number of independent variables is greater than the number of equations available.
The nitrogen is supplied at a rate of 1 kmol/hr, and the nitrogen:
hydrogen molar ratio in the feed is 1:3.
Thus, the hydrogen feed rate is 3 kmol/hr.The amount of air fed is determined by the stoichiometric ratio of hydrogen to nitrogen for the feed stream in the production of ammonia. The air fed also contains argon, which builds up in the recycle stream until it has a negative effect on the process.
The argon concentration must be kept below 4 moles/hour per 100 mol/hour hydrogen-nitrogen mixture in the reactor. The single-pass conversion through the reactor is 20%.
Calculation of the amount of ammonia produced and the amount of recycle stream that must be purged to satisfy the concentration condition if the fresh feed has an argon concentration of 0.31 moles/hour per 100 mol/hour hydrogen-nitrogen mixture:
Recycle ratio (R) is the mass flow of the recycle stream divided by the mass flow of the fresh feed entering the system.
Recycle Ratio (R) = 5/3
The extent of reaction for the synthesis of ammonia is x moles.
In the production of ammonia, the nitrogen is supplied at a rate of 1 kmol/hr, and the molar ratio of nitrogen to hydrogen in the feed is 1:3.
As a result, the hydrogen feed rate is 3 kmol/hr.
In the reactor, the moles of argon entering with the fresh feed per hour = 0.31 x (3 + 1)
= 1.24 mol/hr.
The number of moles of argon in the exit stream of the reactor per hour is 5/8 of the number of moles in the entrance stream of the reactor.
If x is the extent of the reaction in the reactor, the moles of ammonia produced per hour = 0.2x(3)
= 0.6x.
Moles of argon in the recycle stream = (1 - 0.2x)(5)
= 5 - x.
The total moles of argon in the reactor is equal to the sum of the argon moles in the entrance stream and the argon moles in the recycle stream.
(1.24) + (5 - x) = 4[(3 + 1) + 5R].1.24 + 5 - x
= 32 + 20R.
Solving these equations gives x = 0.526 mol/hour, and the moles of argon in the exit stream of the reactor is 2.37 moles/hour.
To maintain the argon concentration at or below 4 moles/hour per 100 mol/hour hydrogen-nitrogen mixture in the reactor, the number of moles of argon that must be purged from the recycle stream per hour is
2.37 - 4[(3 + 1)R] = 2.37 - 16R.
Moles of argon that should be purged per hour = (2.37 - 16R) = (0.31/100)(3 + 1)100.(2.37 - 16R)
= 1.24 + 0.12.(2.37 - 16R)
= 1.372.R
= 0.246.
Calculation of the Recycle Ratio
Recycle Ratio (R) = 5/3.
Calculation of the Extent of Reaction and Overall Conversion
The extent of reaction for the synthesis of ammonia is x moles.
The total moles of nitrogen that reacts per hour = x + 1.
The total moles of hydrogen that reacts per hour = 3x + 3.
Therefore, the number of moles of ammonia produced per hour = 0.2(3x)
= 0.6x.
Conversion of single pass = 20%.
Conversion of overall = 1 - (1 - 0.2)(5/3)
= 0.667.
The overall conversion of the reactor is 66.7 percent.
Degree of Freedom Analysis: The reaction system can be divided into three components. Thus, the number of independent variables is 3.The feed stream to the reactor contains five different components (H2, N2, Ar, H2O, and NH3). Since the feed stream flow rate is known, it represents a total of 4 independent variables.
The composition of the feed stream is expressed as the mol fraction of each component, representing four more independent variables. Thus, the feed stream contains eight independent variables.The recycle stream also contains the same five components as the feed stream and is defined by three independent variables:
flow rate, composition, and temperature.
The reactor is defined by the extent of reaction and temperature, which are two independent variables.
Therefore, the overall number of independent variables = 8 + 3 + 2
= 13.
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b) A 2.0 m x 2.0 m footing is founded at a depth of 1.5 m in a cohesive soil having the unit weights above and below the ground water table of 19.0 kN/m³ and 21.0 kN/m³, respectively. The averaged value of cohesion is 60 kN/m². Using Tezaghi's bearing capacity equation and a safety factor FS = 2.5, determine the nett allowable load, Q(net)all based on effective stress concept; i) ii) when the ground water table is at the base of the footing. when the ground water table is at 1.0 m above the ground surface. Note: Terzaghi's bearing capacity equation, qu = 1.3cNc+qNq+0.4yBNy (6 marks) Use TABLE Q2 for Terzaghi's bearing capacity factors
When the ground water table is at the base of the footing: the net allowable load (Qnet) all can be calculated as follows: qu = 1.3 c Nc + q Nq + 0.4 y B N yQ net all .
= qu / FSWhere,Nc
= 37.67 (from table Q2)Nq
= 27 (from table Q2)Ny
= 1 (from table Q2)For the given scenario,c
= 60 kN/m²y
= 19 kN/m³
Net ultimate bearing capacity (qu) can be calculated as follows:qu
= 1.3 x 60 kN/m² x 37.67 + 0 + 0.4 x 19 kN/m³ x 1
= 2922.4 kN/m² Net allowable load (Qnet) all can be calculated Q net all
= qu / FS
= 2922.4 / 2.5= 1168.96 kN/m².
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The net allowable load, Q(net)all, is 1172.32 kN/m² when the groundwater table is at the base of the footing and 606.4608 kN/m² when the groundwater table is at 1.0 m above the ground surface.
To determine the net allowable load, Q(net)all based on the effective stress concept, we can use Terzaghi's bearing capacity equation:
qu = 1.3cNc + qNq + 0.4yBNy
Where:
- qu is the ultimate bearing capacity
- c is the cohesion
- Nc, Nq, and Ny are bearing capacity factors related to cohesion, surcharge, and unit weight, respectively
Given:
- A 2.0 m x 2.0 m footing
- Depth of 1.5 m in cohesive soil
- Unit weights above and below the groundwater table are 19.0 kN/m³ and 21.0 kN/m³, respectively
- Average cohesion is 60 kN/m²
- Safety factor FS = 2.5
i) When the groundwater table is at the base of the footing:
In this case, the effective stress is the total stress, as there is no water above the footing. Therefore, the effective stress is calculated as:
σ' = γ × (H - z)
Where:
- σ' is the effective stress
- γ is the unit weight of soil
- H is the height of soil above the footing
- z is the depth of the footing
Here, H is 0 as the groundwater table is at the base of the footing. So, the effective stress is:
σ' = 21.0 kN/m³ × (0 - 1.5 m) = -31.5 kN/m²
Next, let's calculate the bearing capacity factors:
- Nc = 37.8 (from TABLE Q2)
- Nq = 26.7 (from TABLE Q2)- Ny = 16.2 (from TABLE Q2)
Substituting these values into Terzaghi's bearing capacity equation, we get:
qu = 1.3 × 60 kN/m² × 37.8 + 0 × 26.7 + 0.4 × (-31.5 kN/m²) × 16.2
Simplifying the equation:
qu = 2930.8 kN/m²
Finally, to find the net allowable load (Q(net)all), we divide the ultimate bearing capacity by the safety factor:
Q(net)all = qu / FS = 2930.8 kN/m² / 2.5 = 1172.32 kN/m²
ii) When the groundwater table is at 1.0 m above the ground surface:
In this case, we need to consider the effective stress due to both the soil weight and the water pressure. The effective stress is calculated as:
σ' = γ_s × (H - z) - γ_w × (H - z_w)
Where:
- γ_s is the unit weight of soil
- γ_w is the unit weight of water
- H is the height of soil above the footing
- z is the depth of the footing
- z_w is the depth of the groundwater table
Here, γ_s is 21.0 kN/m³, γ_w is 9.81 kN/m³, H is 1.0 m, and z_w is 0 m. So, the effective stress is:
σ' = 21.0 kN/m³ × (1.0 m - 1.5 m) - 9.81 kN/m³ × (1.0 m - 0 m) = -10.05 kN/m²
Using the same bearing capacity factors as before, we substitute the values into Terzaghi's bearing capacity equation:
qu = 1.3 × 60 kN/m² × 37.8 + 0 × 26.7 + 0.4 × (-10.05 kN/m²) × 16.2
Simplifying the equation:
qu = 1516.152 kN/m²
Finally, we divide the ultimate bearing capacity by the safety factor to find the net allowable load:
Q(net)all = qu / FS = 1516.152 kN/m² / 2.5 = 606.4608 kN/m²
Therefore, the net allowable load, Q(net)all, is 1172.32 kN/m² when the groundwater table is at the base of the footing and 606.4608 kN/m² when the groundwater table is at 1.0 m above the ground surface.
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A square based pyramid has an area of 121 square inches. If the
volume of the pyramid is 400 cubic inches, what is the height?
3.31 in
9.92 in
36.36 in
14.23 in
plsss hurry thx!!!
The height of the square-based pyramid is 9.92 inches.
To find the height of the square-based pyramid, we can use the formula for the volume of a pyramid, which is given by:
V = (1/3) * base_area * height
We are given that the volume of the pyramid is 400 cubic inches and the base area is 121 square inches. Let's substitute these values into the formula:
400 = (1/3) * 121 * height
Now, let's solve for the height:
400 = (1/3) * 121 * height
1200 = 121 * height
height = 1200 / 121
Calculating this, we find that the height is approximately 9.9174 inches.
However, it's important to note that the answer options provided are rounded to two decimal places. Therefore, we need to round our answer to match the given options. Rounding the height to two decimal places gives us:
height ≈ 9.92 inches
Therefore, the correct answer is 9.92 inches.
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Please help with this problem!!
determine the radius of gyration , given the
density:5Mg/m^3
The moment of inertia depends on the shape and mass distribution of the object.
To determine the radius of gyration, we need to know the mass and dimensions of the object. However, since you only provided the density of the material (5 Mg/m³), we don't have enough information to calculate the radius of gyration.
The density (ρ) is defined as the mass (m) divided by the volume (V):
ρ = m/V
To calculate the radius of gyration (k) for a specific object, we need the mass (m) and the moment of inertia (I) about the axis of rotation. The moment of inertia depends on the shape and mass distribution of the object.
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Determine the size of a canal that can carry the irrigation
requirement for a 50-hectare rice field. Show ALL your solutions,
assumptions and design considerations.
The size of the canal required to carry the irrigation for a 50-hectare rice field depends on various factors, including the water requirements, soil type, and topography.
To determine the size of the canal, we need to consider the water requirements of the rice field. Rice cultivation typically requires a significant amount of water, especially during the growing season. The water requirements can vary depending on factors such as climate, evaporation rates, and soil conditions. In this case, we'll assume a typical water requirement of 15,000 cubic meters per hectare per year for a rice field.
Considering the given 50-hectare rice field, the total water requirement would be 50 hectares multiplied by 15,000 cubic meters, which equals 750,000 cubic meters per year. This total water requirement needs to be delivered through the canal.
The size of the canal will depend on the flow rate required to deliver the necessary amount of water. This, in turn, depends on the slope and length of the canal, as well as the desired flow velocity. A larger canal with a higher flow rate will require more excavation and construction work.
To determine the size of the canal, it is crucial to consider the topography and soil type. Steeper slopes may require larger canals to ensure sufficient flow velocity, while flatter terrain may require smaller canals but with longer lengths.
In addition to the size, other design considerations include the lining material of the canal to prevent seepage and erosion, as well as the provision of structures such as gates or weirs to control the flow of water.
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The general solution of the ODE
(y^2-x^2+3)dx+2xydy=0
Given ODE is (y^2-x^2+3)dx+2xydy=0
We will solve this ODE by dividing both sides by x².
Then we get
(y²/x² - 1 + 3/x²) dx + 2y/x dy = 0
Put y/x = v
Then y = vx
Therefore dy/dx = v + x (dv/dx)
Therefore, (1/x²) [(v² - 1)x² + 3]dx + 2v (v + 1) dx = 0[(v² - 1)x² + 3]dx + 2v (v + 1) x²dx = 0
Dividing both sides by x²[(v² - 1) + 3/x²]dx + 2v (v + 1) dx = 0(v² + v - 1)dx + (3/x²)dx = 0
Integrating both sides, we get
(v² + v - 1)x + (3/x) = c... [1]
From y/x = v, y = vx ...(2)
Therefore, v = y/x
Substitute in equation [1], we get
(v² + v - 1)x + (3/x) = c... [2]
Multiplying by x, we get
(xv² + xv - x) + 3 = cxv² + xv
From equation [2], we get
xv² + xv - (cx + x) = - 3
Putting a = 1, b = 1, c = - (cx + x) in the quadratic equation, we get
v = (- 1 ±sqrt {1 + 4(c{x²} + x)/2
Substituting back v = y/x, we get
(y/x) = v
= (1/x) [- 1 ± √(1 + 4(c{x²} + x))]
Therefore, y = x[(1/x) (- 1 ± √(1 + 4(c{x²} + x)))]
(y/x) = v = (1/x) [- 1 ± √(1 + 4(c{x²} + x))]
Therefore, y = x[(1/x) (- 1 ± √(1 + 4(c{x^2} + x)))]
The general solution of the given ODE is obtained by dividing both sides by x² and then substituting y/x = v. After simplification, we have
(v² + v - 1)dx + (3/x²)dx = 0.
Integrating both sides and substituting back y/x = v,
we get the general solution in the form y = x[(1/x) (- 1 ± √(1 + 4(c{x^2} + x)))].
Thus, we have obtained the general solution of the given ODE.
The general solution of the ODE (y²-x²+3)dx+2xydy=0 is
y = x[(1/x) (- 1 ± √(1 + 4(c{x^2} + x)))].
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