During the production of parts in a factory, it was noticed that the part had a 0.03 probability of failure. Determine the probability of only 2 failure parts being found in a sample of 100 parts. (Use Poissons).

Answers

Answer 1

The Poisson distribution is used to model the probability of a specific number of events occurring in a fixed time or space, given the average rate of occurrence per unit of time or space.

For instance, during the production of parts in a factory, it was noticed that the part had a 0.03 probability of failure.

The probability of only 2 failure parts being found in a sample of 100 parts can be calculated using Poisson's distribution as follows:

[tex]Mean (λ) = np = 100 × 0.03 = 3[/tex]

We know that [tex]P(x = 2) = [(λ^x) * e^-λ] / x![/tex]

Therefore, [tex]P(x = 2) = [(3^2) * e^-3] / 2! = 0.224[/tex]

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Related Questions

What is the type number of the following system: G(s) = (s +2) /s^2(s +8) (A) 0 (B) 1 (C) 2 (D) 3

Answers

To determine the type number of a system, we need to count the number of integrators in the open-loop transfer function. The system has a total of 2 integrators.

Given the transfer function G(s) = (s + 2) / (s^2 * (s + 8)), we can see that there are two integrators in the denominator (s^2 and s). The numerator (s + 2) does not contribute to the type number.

Therefore, the system has a total of 2 integrators.

The type number of a system is defined as the number of integrators in the open-loop transfer function plus one. In this case, the type number is 2 + 1 = 3.

The correct answer is (D) 3.

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please answer asap and correctly! must show detailed steps.
Find the Laplace transform of each of the following time
functions. Your final answers must be in rational form.

Answers

Unfortunately, there is no time function mentioned in the question.

However, I can provide you with a detailed explanation of how to find the Laplace transform of a time function.

Step 1: Take the time function f(t) and multiply it by e^(-st). This will create a new function, F(s,t), that includes both time and frequency domains.  F(s,t) = f(t) * e^(-st)

Step 2: Integrate the new function F(s,t) over all values of time from 0 to infinity. ∫[0,∞]F(s,t)dt

Step 3: Simplify the integral using the following formula: ∫[0,∞] f(t) * e^(-st) dt = F(s) = L{f(t)}Where L{f(t)} is the Laplace transform of the original function f(t).

Step 4: Check if the Laplace transform exists for the given function. If the integral doesn't converge, then the Laplace transform doesn't exist .Laplace transform of a function is given by the formula,Laplace transform of f(t) = ∫[0,∞] f(t) * e^(-st) dt ,where t is the independent variable and s is a complex number that is used to represent the frequency domain.

Hopefully, this helps you understand how to find the Laplace transform of a time function.

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Efficiency of home furnace can be improved by preheating combustion air using hot flue gas. The flue gas has temperature of Tg = 1000°C, specific heat of c = 1.1 kJ/kg°C and is available at the rate of 12 kg/sec. The combustion air needs to be delivered at the rate of 15 kg/sec, its specific heat is ca 1.01 kJ/kg°C and its temperature is equal to the room temperature, i.e. Tair,in = 20°C. The overall heat transfer coefficient for the heat exchanger is estimated to be U = 80 W/m2°C. (i) Determine size of the heat exchanger (heat transfer surface area A) required to heat the air to Tair,out 600°C assuming that a single pass, cross-flow, unmixed heat exchanger is used. (ii) Determine temperature of flue gases leaving heat exchanger under these conditions. (iii) Will a parallel flow heat exchanger deliver the required performance and if yes, will it reduce/increase its size, i.e. reduce/increase the heat transfer area A? (iv) Will use of a counterflow heat exchanger deliver the required performance and, if yes, will it reduce/increase its size, i.e. reduce/increase the heat transfer area A?

Answers

i) The size of the heat exchanger required is approximately 13.5 m².

ii) The temperature of the flue gases leaving the heat exchanger T_flue,out ≈ 311.36°C.

iii) To achieve the desired outlet temperature of 600°C for the combustion air, a counterflow heat exchanger is needed.

iv) The required surface area A remains the same for a counterflow heat exchanger, so the size of the heat exchanger does not change.

To solve this problem, we can use the energy balance equation for the heat exchanger.

The equation is given by:

Q = m_air × c_air × (T_air,out - T_air,in) = m_flue × c_flue × (T_flue,in - T_flue,out)

Where:

Q is the heat transfer rate (in watts or joules per second).

m_air is the mass flow rate of combustion air (in kg/s).

c_air is the specific heat of combustion air (in kJ/kg°C).

T_air,in is the inlet temperature of combustion air (in °C).

T_air,out is the desired outlet temperature of combustion air (in °C).

m_flue is the mass flow rate of flue gas (in kg/s).

c_flue is the specific heat of flue gas (in kJ/kg°C).

T_flue,in is the inlet temperature of flue gas (in °C).

T_flue,out is the outlet temperature of flue gas (in °C).

Let's solve the problem step by step:

(i) Determine the size of the heat exchanger (heat transfer surface area A) required to heat the air to T_air,out = 600°C assuming a single pass, cross-flow, unmixed heat exchanger is used.

We can rearrange the energy balance equation to solve for A:

A = Q / (U × ΔT_lm)

Where ΔT_lm is the logarithmic mean temperature difference given by:

ΔT_lm = (ΔT1 - ΔT2) / ln(ΔT1 / ΔT2)

ΔT1 = T_flue,in - T_air,out

ΔT2 = T_flue,out - T_air,in

Plugging in the values:

ΔT1 = 1000°C - 600°C = 400°C

ΔT2 = T_flue,out - 20°C (unknown)

We need to solve for ΔT2 by substituting the values into the energy balance equation:

Q = m_air × c_air × (T_air,out - T_air,in) = m_flue × c_flue × (T_flue,in - T_flue,out)

15 kg/s × 1.01 kJ/kg°C × (600°C - 20°C) = 12 kg/s × 1.1 kJ/kg°C × (1000°C - T_flue,out)

Simplifying:

9090 kJ/s = 13200 kJ/s - 13.2 kJ/s * T_flue,out

13.2 kJ/s × T_flue,out = 4110 kJ/s

T_flue,out = 311.36°C

Now we can calculate ΔT2:

ΔT2 = T_flue,out - 20°C

ΔT2 = 311.36°C - 20°C

ΔT2 = 291.36°C

Now we can calculate ΔT_lm:

ΔT_lm = (ΔT1 - ΔT2) / ln(ΔT1 / ΔT2)

ΔT_lm = (400°C - 291.36°C) / ln(400°C / 291.36°C)

ΔT_lm ≈ 84.5°C

Finally, we can calculate the required surface area A:

A = Q / (U × ΔT_lm)

A = 9090 kJ/s / (80 W/m²°C × 84.5°C)

A ≈ 13.5 m²

Therefore, the size of the heat exchanger required is approximately 13.5 m².

(ii) Determine the temperature of flue gases leaving the heat exchanger under these conditions.

We already determined the temperature of the flue gases leaving the heat exchanger in part (i): T_flue,out ≈ 311.36°C.

(iii) In a parallel flow heat exchanger, the hot and cold fluids flow in the same direction. The temperature difference between the two fluids decreases along the length of the heat exchanger. In this case, a parallel flow heat exchanger will not deliver the required performance because the outlet temperature of the flue gases is significantly higher than the desired outlet temperature of the combustion air.

To achieve the desired outlet temperature of 600°C for the combustion air, a counterflow heat exchanger is needed.

(iv) In a counterflow heat exchanger, the hot and cold fluids flow in opposite directions. This arrangement allows for better heat transfer and can achieve a higher temperature difference between the two fluids. A counterflow heat exchanger can deliver the required performance in this case.

To determine if the size of the heat exchanger will be reduced or increased, we need to recalculate the required surface area A using the new ΔT1 and ΔT2 values for a counterflow heat exchanger.

ΔT1 = 1000°C - 600°C = 400°C

ΔT2 = T_flue,out - T_air,in = 311.36°C - 20°C = 291.36°C

ΔT_lm = (ΔT1 - ΔT2) / ln(ΔT1 / ΔT2)

ΔT_lm = (400°C - 291.36°C) / ln(400°C / 291.36°C)

ΔT_lm ≈ 84.5°C

A = Q / (U × ΔT_lm)

A = 9090 kJ/s / (80 W/m²°C * 84.5°C)

A ≈ 13.5 m²

The required surface area A remains the same for a counterflow heat exchanger, so the size of the heat exchanger does not change.

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The probability density function for the diameter of a drilled hole in millimeters is 10e^(-10(x-5)) for x > 5 mm. Although the target diameter is 5 millimeters, vibrations, tool wear, and other nuisances produce diameters greater than 5 millimeters. a. Draw the probability distribution curve. b. Determine the probability that the hole diameter is 5 to 5.1mm c. Determine the expected diameter of the drilled hole. d. Determine the variance of the diameter of the holes. Determine the cumulative distribution function. e. Draw the curve of the cumulative distribution function. f. Using the cumulative distribution function, determine the probability that a diameter exceeds 5.1 millimeters.

Answers

a. To draw the probability distribution curve, we can plot the probability density function (PDF) over a range of values.

The probability density function for the diameter of a drilled hole is given by:

f(x) = 10e^(-10(x-5)), for x > 5

To plot the curve, we can choose a range of x-values, calculate the corresponding y-values using the PDF equation, and plot the points.

b. To determine the probability that the hole diameter is between 5 and 5.1 mm, we need to calculate the area under the probability distribution curve within that range. Since the PDF represents the probability density, we can integrate the PDF function over the given range to find the probability.

P(5 ≤ x ≤ 5.1) = ∫[5, 5.1] f(x) dx

c. To determine the expected diameter of the drilled hole, we need to calculate the expected value or the mean of the probability distribution. The expected value is given by:

E(X) = ∫[5, ∞] x * f(x) dx

d. To determine the variance of the diameter of the holes, we need to calculate the variance of the probability distribution. The variance is given by:

Var(X) = ∫[5, ∞] (x - E(X))^2 * f(x) dx

e. The cumulative distribution function (CDF) represents the probability that a random variable is less than or equal to a given value. To draw the curve of the CDF, we need to calculate the cumulative probability for different x-values.

CDF(x) = ∫[5, x] f(t) dt

f. Using the CDF, we can determine the probability that a diameter exceeds 5.1 millimeters by subtracting the CDF value at 5.1 from 1:

P(X > 5.1) = 1 - CDF(5.1)

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A fluid in a fire hose with a 46.5 mm radius, has a velocity of 0.56 m/s. Solve for the power, hp, available in the jet at the nozzle attached at the end of the hose if its diameter is 15.73 mm. Express your answer in 4 decimal places.

Answers

Given data: Radius of hose

r = 46.5m

m = 0.0465m

Velocity of fluid `v = 0.56 m/s`

Diameter of the nozzle attached `d = 15.73 mm = 0.01573m`We are supposed to calculate the power, hp available in the jet at the nozzle attached to the hose.

Power is defined as the rate at which work is done or energy is transferred, that is, P = E/t, where E is the energy (J) and t is the time (s).Now, Energy E transferred by the fluid is given by the formula E = 1/2mv² where m is the mass of the fluid and v is its velocity.We can write m = (ρV) where ρ is the density of the fluid and V is the volume of the fluid. Volume of the fluid is given by `V = (πr²l)`, where l is the length of the hose through which fluid is coming out, which can be assumed to be equal to the diameter of the nozzle or `l=d/2`.

Thus, `V = (πr²d)/2`.Energy transferred E by the fluid can be expressed as Putting the value of V in the above equation, we get .Now, the power of the fluid P, can be written as `P = E/t`, where t is the time taken by the fluid to come out from the nozzle.`Putting the given values of r, d, and v, we get Thus, the power available in the jet at the nozzle attached to the hose is 0.3011 hp.

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Design a excel file of an hydropower turgo turbine in Sizing and Material selection.
Excel file must calculate the velocity of the nozel, diameter of the nozel jet, nozzle angle, the runner size of the turgo turbine, turbine blade size, hub size, fastner, angular velocity,efficiency,generator selection,frequnecy,flowrate, head and etc.
(Note: File must be in execl file with clearly formulars typed with all descriptions in the sheet)

Answers

Designing an excel file for a hydropower turbine (Turgo turbine) involves calculating different values that are essential for its operation. These values include the velocity of the nozzle, diameter of the nozzle jet, nozzle angle, runner size of the turbine, turbine blade size, hub size, fastener, angular velocity, efficiency, generator selection, frequency, flow rate, head, etc.

To create an excel file for a hydropower turbine, follow these steps:Step 1: Open Microsoft Excel and create a new workbook.Step 2: Add different sheets to the workbook. One sheet can be used for calculations, while the others can be used for data input, output, and charts.Step 3: On the calculation sheet, enter the formulas for calculating different values. For instance, the formula for calculating the velocity of the nozzle can be given as:V = (2 * g * H) / (√(1 - sin²(θ / 2)))Where V is the velocity of the nozzle, g is the acceleration due to gravity, H is the head, θ is the nozzle angle.Step 4: After entering the formula, label each column and row accordingly. For example, the velocity of the nozzle formula can be labeled under column A and given a name, such as "Nozzle Velocity Formula".Step 5: Add a description for each formula entered in the sheet.

The explanation should be clear, concise, and easy to understand. For example, a description for the nozzle velocity formula can be given as: "This formula is used to calculate the velocity of the nozzle in a hydropower turbine. It takes into account the head, nozzle angle, and acceleration due to gravity."Step 6: Repeat the same process for other values that need to be calculated. For example, the formula for calculating the diameter of the nozzle jet can be given as:d = (Q / V) * 4 / πWhere d is the diameter of the nozzle jet, Q is the flow rate, and V is the velocity of the nozzle. The formula should be labeled, given a name, and described accordingly.Step 7: Once all the formulas have been entered, use the data input sheet to enter the required data for calculation. For example, the data input sheet can contain fields for flow rate, head, nozzle angle, etc.Step 8: Finally, use the data output sheet to display the calculated values. You can also use charts to display the data graphically. For instance, you can use a pie chart to display the percentage efficiency of the turbine. All the sheets should be linked correctly to ensure that the data input reflects on the calculation sheet and output sheet.

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A bathtub with dimensions 8’x5’x4’ is being filled at the rate
of 10 liters per minute. How long does it take to fill the bathtub
to the 3’ mark?

Answers

The time taken to fill the bathtub to the 3’ mark is approximately 342.86 minutes.

The dimensions of a bathtub are 8’x5’x4’. The bathtub is being filled at the rate of 10 liters per minute, and we have to find how long it will take to fill the bathtub to the 3’ mark.

Solution:

The volume of the bathtub is given by multiplying its length, breadth, and height: Volume = Length × Breadth × Height = 8 ft × 5 ft × 4 ft = 160 ft³.

If the bathtub is filled to the 3’ mark, the volume of water filled is given by: Volume filled = Length × Breadth × Height = 8 ft × 5 ft × 3 ft = 120 ft³.

The volume of water to be filled is equal to the volume filled: Volume of water to be filled = Volume filled = 120 ft³.

To calculate the rate of water filled, we need to convert the unit from liters/minute to ft³/minute. Given 1 liter = 0.035 ft³, 10 liters will be equal to 0.35 ft³. Therefore, the rate of water filled is 0.35 ft³/minute.

Now, we can calculate the time taken to fill the bathtub to the 3’ mark using the formula: Time = Volume filled / Rate of water filled. Plugging in the values, we get Time = 120 ft³ / 0.35 ft³/minute = 342.86 minutes (approx).

In conclusion, it takes approximately 342.86 minutes to fill the bathtub to the 3’ mark.

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An electric resistance heater works with a 245 V power-supply and consumes approximately 1.4 kW. Estimate the electric current drawn by this heater. Provide your answer in amperes rounded to three significant digits.

Answers

The electric current drawn by this heater is 5.71 Amperes.

The formula for electric power is given by:

P = VI

where P is electric power,

V is voltage, and

I is the current

An electric resistance heater works with a 245 V power-supply and consumes approximately 1.4 kW.

We have to estimate the electric current drawn by this heater.We know that:

Power (P) = 1.4 kW

= 1400 W

Voltage (V) = 245 V

Substituting these values in the formula of electric power:

P = VI1400

= 245*I

= 1400/245I

= 5.71 Amperes

Therefore, the electric current drawn by this heater is 5.71 Amperes.

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Design a circuit which counts seconds, minutes and hours and displays them on the 7-segement display in 24 hour format. The clock frequency available is 36 KHz. Assume that Binary to BCD converter and BCD to 7-Segement display is already available for the design.

Answers

The 24-hour clock has two digits for hours, two digits for minutes, and two digits for seconds. Binary Coded Decimal (BCD) is a technique for representing decimal numbers using four digits in which each decimal digit is represented by a 4-bit binary number.

A 7-segment display is used to display the digits from 0 to 9.
Here is the circuit that counts seconds, minutes, and hours and displays them on the 7-segment display in 24-hour format:

Given the clock frequency of 36 KHz, the number of pulses per second is 36000. The seconds counter requires 6 digits, or 24 bits, to count up to 59. The minutes counter requires 6 digits, or 24 bits, to count up to 59. The hours counter requires 5 digits, or 20 bits, to count up to 23.The clock signal is fed into a frequency divider that produces a 1 Hz signal. The 1 Hz signal is then fed into a seconds counter, minutes counter, and hours counter. The counters are reset to zero when they reach their maximum value.

When the seconds counter reaches 59, it generates a carry signal that increments the minutes counter. Similarly, when the minutes counter reaches 59, it generates a carry signal that increments the hours counter.

The outputs of the seconds, minutes, and hours counters are then converted to BCD format using a binary to BCD converter. Finally, the BCD digits are fed into a BCD to 7-segment display decoder to produce the display on the 7-segment display.Here's a block diagram of the circuit: Block diagram of the circuit

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If a line-to-line fault occurs across "b" and "c" and Ea = 230 V/0°, Z₁ = 0.05 +j 0.292, Zn = 0 and Zf = 0.04 + j0.3 02, find: a) the sequence currents la1 and laz fault current If b) c) the sequence voltages Vǝ1 and Va2 d) sketch the sequence network for the line-to-line fault.

Answers

Line-to-line fault across "b" and "c". Ea = 230 V/0°.Z₁ = 0.05 +j 0.292,Zn = 0.f = 0.04 + j0.302.

(a) The sequence currents: Sequence currents la1 and laz fault current are calculated by using the following formulae:

la1 = (-2/3)[(0.05 + j0.292) / (0.05 + j0.292 + 0.04 + j0.302)] * (230 / √3)la1 = (-2/3)[0.05 + j0.292 / 0.0896 + j0.594] * 230la1

= -28.7 + j51.5A

Let us use the below formula to calculate the fault current: if = 3 * la1if

= 3 * (-28.7 + j51.5)if = -86.1 + j154.5

A(b) The sequence voltages :Sequence voltages Vǝ1 and Va2 are calculated using the following formulae: For voltage

Vǝ1:(Vǝ1 / √3) = Ea / √3Vǝ1 = Ea = 230V/0

°For voltage Va2:Va2 = 0

(As the fault is a line-to-line fault, the phase voltages are equal in magnitude but opposite in direction, and they are canceled out due to phase shifting in a balanced system.

Hence, the zero sequence voltage is zero.) (c) The sequence diagram can be shown as follows:  Sequence Network The sequence network for the line-to-line fault is shown below: Sequence Network for the line-to-line fault.

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Three vectors are given by P=2ax - az Q=2ax - ay + 2az R-2ax-3ay, +az Determine (a) (P+Q) X (P - Q) (b) sin0QR
Show all the equations, steps, calculations, and units.

Answers

Hence, the values of the required vectors are as follows:(a) (P+Q) X (P-Q) = 3i+12j+3k (b) sinθ QR = (√15)/2

Given vectors,

P = 2ax - az

Q = 2ax - ay + 2az

R = -2ax - 3ay + az

Let's calculate the value of (P+Q) as follows:

P+Q = (2ax - az) + (2ax - ay + 2az)

P+Q = 4ax - ay + az

Let's calculate the value of (P-Q) as follows:

P-Q = (2ax - az) - (2ax - ay + 2az)

P=Q = -ay - 3az

Let's calculate the cross product of (P+Q) and (P-Q) as follows:

(P+Q) X (P-Q) = |i j k|4 -1 1- 0 -1 -3

(P+Q) X (P-Q) = i(3)+j(12)+k(3)=3i+12j+3k

(a) (P+Q) X (P-Q) = 3i+12j+3k

(b) Given,

P = 2ax - az

Q = 2ax - ay + 2az

R = -2ax - 3ay + az

Let's calculate the values of vector PQ and PR as follows:

PQ = Q - P = (-1)ay + 3az

PR = R - P = -4ax - 2ay + 2az

Let's calculate the angle between vectors PQ and PR as follows:

Now, cos θ = (PQ.PR) / |PQ||PR|

Here, dot product of PQ and PR can be calculated as follows:

PQ.PR = -2|ay|^2 - 2|az|^2

PQ.PR = -2(1+1) = -4

|PQ| = √(1^2 + 3^2) = √10

|PR| = √(4^2 + 2^2 + 2^2) = 2√14

Substituting these values in the equation of cos θ,

cos θ = (-4 / √(10 . 56)) = -0.25θ = cos^-1(-0.25)

Now, sin θ = √(1 - cos^2 θ)

Substituting the value of cos θ, we get

sin θ = √(1 - (-0.25)^2)

sin θ  = √(15 / 16)

sin θ  = √15/4

sin θ  = (√15)/2

Therefore, sin θ = (√15) / 2

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Consider a machine that has a mass of 250 kg. It is able to raise an object weighing 600 kg using an input force of 100 N. Determine the mechanical advantage of this machine. Assume the gravitational acceleration to be 9.8 m/s^2.

Answers

The mechanical advantage of 58.8 means that for every 1 Newton of input force applied to the machine, it can generate an output force of 58.8 Newtons. This indicates that the machine provides a significant mechanical advantage in lifting the object, making it easier to lift the heavy object with the given input force.

The mechanical advantage of a machine is defined as the ratio of the output force to the input force. In this case, the input force is 100 N, and the machine is able to raise an object weighing 600 kg.

The output force can be calculated using the equation:

Output force = mass × acceleration due to gravity

Given:

Mass of the object = 600 kg

Acceleration due to gravity = 9.8 m/s²

Output force = 600 kg × 9.8 m/s² = 5880 N

Now, we can calculate the mechanical advantage:

Mechanical advantage = Output force / Input force

Mechanical advantage = 5880 N / 100 N = 58.8

Therefore, the mechanical advantage of this machine is 58.8.

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MatLab Question, I have most of the lines already just need help with the last part and getting the four plots that are needed. The file is transient.m and the case is for Bi = 0.1 and Bi = 10 for N = 1 and N = 20.
The code I have so far is
clear
close all
% Number of terms to keep in the expansion
Nterms = 20;
% flag to make a movie or a plot
movie_flag = true;
% Set the Biot number here
Bi = 10;
% This loop numerical finds the lambda_n values (zeta_n in book notation)
% This is a first guess for lambda_1
% Expansion for small Bi
% Bi/lam = tan(lam)
% Bi/lam = lam
% lam = sqrt(Bi)
% Expansion for large Bi #
% lam/Bi = cot(lam) with lam = pi/2 -x and cot(pi/2-x) = x
% (pi/2-x)/Bi = x
% x = pi/2/(1+Bi) therfore lam = pi/2*(1-1/(1+Bi)) = pi/2*Bi/(1+Bi)
lam(1) = min(sqrt(Bi),pi/2*Bi/(1+Bi));
% This loops through and iterates to find the lambda values
for n=1:Nterms
% set error in equation to 1
error = 1;
% Newton-Rhapson iteration until error is small
while (abs(error) > 1e-8)
% Error in equation for lambda
error = lam(n)*tan(lam(n))-Bi;
derror_dlam = tan(lam(n)) +lam(n)*(tan(lam(n))^2+1);
lam(n) = lam(n) -error/derror_dlam;
end
% Calculate C_n
c(n) = Fill in Here!!!
% Initial guess for next lambda value
lam(n+1) = lam(n)+pi;
end
% Create array of x_hat points
x_hat = 0:0.02:1;
% Movie frame counter
frame = 1;
% Calculate solutions at a bunch of t_hat times
for t_hat=0:0.01:1.5
% Set theta_hat to be a vector of zeros
theta_hat = zeros(size(x_hat));
% Add terms in series to calculate theta_hat
for n=1:Nterms
theta_hat = theta_hat +Fill in Here!!!
end
% Plot solution and create movie
plot(x_hat,theta_hat);
axis([0 1 0 1]);
if (movie_flag)
M(frame) = getframe();
else
hold on
end
end
% Play movie
if (movie_flag)
movie(M)
end

Answers

The provided code is for a MATLAB script named "transient.m" that aims to generate plots for different cases of the Biot number (Bi) and the number of terms (N) in an expansion. The code already includes the necessary calculations for the lambda values and the x_hat points.

However, the code is missing the calculation for the C_nc(n) term and the term to be added in the series for theta_hat. Additionally, the code includes a movie_flag variable to switch between creating a movie or a plot. To complete the code and generate the desired plots, you need to fill in the missing calculations for C_nc(n) and the series term to be added to theta_hat. These calculations depend on the specific equation or algorithm you are working with. Once you have determined the formulas for C_nc(n) and the series term, you can incorporate them into the code. After completing the code, the script will generate plots for different values of the Biot number (Bi) and the number of terms (N). The plots will display the solution theta_hat as a function of the x_hat points. The axis limits of the plot are set to [0, 1] for both x and theta_hat. If the movie_flag variable is set to true, the code will create a movie by capturing frames of the plot at different t_hat times. The frames will be stored in the M variable, and the movie will be played using the movie(M) command. By running the modified script, you will obtain the desired plots for the specified cases of Bi and N.

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In a diffusion welding process, the process temperature is 642 °C. Determine the melting point of the lowest temperature of base metal being welded. For the toolbar, press ALT+F10 (PC) or ALT+FN+F10 (Mac).

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To determine the melting point of the base metal being welded in a diffusion welding process, we need to compare the process temperature with the melting points of various metals. By identifying the lowest temperature base metal and its corresponding melting point, we can determine if it will melt or remain solid during the welding process.

1. Identify the lowest temperature base metal involved in the welding process. This could be determined based on the composition of the materials being welded. 2. Research the melting point of the identified base metal. The melting point is the temperature at which the metal transitions from a solid to a liquid state.

3. Compare the process temperature of 642 °C with the melting point of the base metal. If the process temperature is lower than the melting point, the base metal will remain solid during the welding process. However, if the process temperature exceeds the melting point, the base metal will melt. 4. By considering the melting points of various metals commonly used in welding processes, such as steel, aluminum, or copper, we can determine which metal has the lowest melting point and establish its corresponding value. By following these steps and obtaining the melting point of the lowest temperature base metal being welded, we can assess whether it will melt or remain solid at the process temperature of 642 °C.

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5. (14 points) Steam expands isentropically in a piston-cylinder arrangement from a pressure of P1=2MPa and a temperature of T1=500 K to a saturated vapor at State2. a. Draw this process on a T-S diagram. b. Calculate the mass-specific entropy at State 1 . c. What is the mass-specific entropy at State 2? d. Calculate the pressure and temperature at State 2.

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The pressure and temperature at State 2 are P2 = 1.889 MPa and T2 = 228.49°C.

a) The isentropic expansion process from state 1 to state 2 is shown on the T-S diagram below:b) The mass-specific entropy at State 1 (s1) can be determined using the following expression:s1 = c_v ln(T) - R ln(P)where, c_v is the specific heat at constant volume, R is the specific gas constant for steam.The specific heat at constant volume can be determined from steam tables as:

c_v = 0.718 kJ/kg.K

Substituting the given values in the equation above, we get:s1 = 0.718 ln(500) - 0.287 ln(2) = 1.920 kJ/kg.Kc) State 2 is a saturated vapor state, hence, the mass-specific entropy at State 2 (s2) can be determined by using the following equation:

s2 = s_f + x * (s_g - s_f)where, s_f and s_g are the mass-specific entropy values at the saturated liquid and saturated vapor states, respectively. x is the quality of the vapor state.Substituting the given values in the equation above, we get:s2 = 1.294 + 0.831 * (7.170 - 1.294) = 6.099 kJ/kg.Kd) Using steam tables, the pressure and temperature at State 2 can be determined by using the following steps:Step 1: Determine the quality of the vapor state using the following expression:x = (h - h_f) / (h_g - h_f)where, h_f and h_g are the specific enthalpies at the saturated liquid and saturated vapor states, respectively.

Substituting the given values, we get:x = (3270.4 - 191.81) / (2675.5 - 191.81) = 0.831Step 2: Using the quality determined in Step 1, determine the specific enthalpy at State 2 using the following expression:h = h_f + x * (h_g - h_f)Substituting the given values, we get:h = 191.81 + 0.831 * (2675.5 - 191.81) = 3270.4 kJ/kgStep 3: Using the specific enthalpy determined in Step 2, determine the pressure and temperature at State 2 from steam tables.Pressure at state 2:P2 = 1.889 MPaTemperature at state 2:T2 = 228.49°C

Therefore, the pressure and temperature at State 2 are P2 = 1.889 MPa and T2 = 228.49°C.

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A small aircraft has a wing area of 50 m², a lift coefficient of 0.45 at take-off settings, and a total mass of 5,000 kg. Determine the following: a. Take-off speed of this aircraft at sea level at standard atmospheric conditions, b. Wing loading and c. Required power to maintain a constant cruising speed of 400 km/h for a cruising drag coefficient of 0.04.

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a. The take-off speed of the aircraft is approximately 79.2 m/s.

b. The wing loading is approximately 100 kg/m².

c. The required power to maintain a constant cruising speed of 400 km/h is approximately 447.2 kW.

a. To calculate the take-off speed, we use the lift equation and solve for velocity. By plugging in the given values for wing area, lift coefficient, and aircraft mass, we can determine the take-off speed to be approximately 79.2 m/s. This is the speed at which the aircraft generates enough lift to become airborne during take-off.

b. Wing loading is the ratio of the aircraft's weight to its wing area. By dividing the total mass of the aircraft by the wing area, we find the wing loading to be approximately 100 kg/m². Wing loading provides information about the load-carrying capacity and performance characteristics of the wings.

c. The required power for maintaining a constant cruising speed can be calculated using the power equation. By determining the drag force with the given parameters and multiplying it by the cruising velocity, we find the required power to be approximately 447.2 kW. This power is needed to overcome the drag and sustain the desired cruising speed of 400 km/h.

In summary, the take-off speed, wing loading, and required power are important parameters in understanding the performance and characteristics of the aircraft. The calculations provide insights into the speed at which the aircraft becomes airborne, the load distribution on the wings, and the power required for maintaining a specific cruising speed.

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A contractor manufacturing company purchased a production equipment for $450,000 to meet the specific needs of a customer that had awarded a 4-year contract with the possibility of extending the contract for another 4 years. The company plans to use the MACRS depreciation method for this equipment as a 7-year property for tax purposes. The combined income tax rate for the company is 24%, and it expects to have an after-tax rate of return of 8% for all its investments. The equipment generated a yearly revenue of $90,000 for the first 4 years. The customer decided not to renew the contract after 4 years. Consequently, the company decided to sell the equipment for $220,000 at the end of 4 years. Answer the following questions, (a) Show before tax cash flows (BTCF) from n= 0 to n=4 (b) Calculate depreciation charges (c) Compute depreciation recapture or loss (d) Find taxable incomes and income taxes (e) Show after-tax cash flows (ATCF). (f) Determine either after tax NPW or after-tax rate of return for this investment and indicate if the company obtained the expected after-tax rate of retum

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a) Before-tax cash flows (BTCF) from n= 0 to n=4Year

RevenueDepreciationBTCF0-$450,000-$450,0001$90,000$57,144$32,8562$90,000$82,372$7,6283$90,000$59,013$30,9874$90,000$28,041$61,959

b) Depreciation charges

Using the MACRS depreciation method, the annual depreciation expenses are as follows:Year

Depreciation rate Depreciation charge1 14.29% $64,215.002 24.49% $110,208.753 17.49% $78,705.754 12.49% $56,216.28Therefore, the total depreciation charge over 4 years is $309,345.75.

c) Depreciation recapture or loss

After 4 years, the equipment was sold for $220,000. The adjusted basis of the equipment is the initial cost minus the accumulated depreciation, which is:$450,000 - $309,345.75 = $140,654.25Therefore, the depreciation recapture or loss is:$220,000 - $140,654.25 = $79,345.75The depreciation recapture is positive and hence, the company must report this as ordinary income in the current tax year.

d) Taxable incomes and income taxesYearRevenueDepreciationBTCFTaxable IncomeTax1$90,000$64,215.00$25,785.00$6,187.60(24% x $25,785.00)2$90,000$110,208.75-$20,208.75-$4,850.10(24% x -$20,208.75)3$90,000$78,705.75$11,294.25$2,710.22(24% x $11,294.25)4$90,000$56,216.28$33,783.72$8,107.69(24% x $33,783.72)

The total income taxes paid over 4 years is $21,855.61.e) After-tax cash flows (ATCF)YearBTCFTaxIncome TaxATCF0-$450,000-$450,0001$32,856$6,188$26,6692$7,628$4,850$2,7793$30,987$2,710$28,2774$61,959$8,108$53,851The total ATCF over 4 years is $110,576.f)

After-tax NPW or After-tax rate of return (ARR) for this investmentAfter-tax NPW = -$450,000 + $110,576(P/A,8%,4 years)= -$450,000 + $110,576(3.3121)= -$28,128.04Since the NPW is negative, the company did not obtain the expected after-tax rate of return.

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state the assumption made for deriving the efficiency
of gas turbine?

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A gas turbine is a type of internal combustion engine that converts the energy of pressurized gas or fluid into mechanical energy, which can then be used to generate power. The following are the assumptions made for deriving the efficiency of a gas turbine:

Assumptions made for deriving the efficiency of gas turbine- A gas turbine cycle is made up of the following: intake, compression, combustion, and exhaust.

To calculate the efficiency of a gas turbine, the following assumptions are made: It's a steady-flow process. Gas turbine cycle air has an ideal gas behaviour. Each of the four processes is reversible and adiabatic; the combustion process is isobaric, while the other three are isentropic. Processes that occur within the combustion chamber are ideal. Inlet and exit kinetic energies of gases are negligible.

There is no pressure drop across any device. A gas turbine has no external heat transfer, and no heat is lost to the surroundings. The efficiencies of all the devices are known. The gas turbine cycle has no friction losses.

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1. (a) Let A and B be two events. Suppose that the probability that neither event occurs is 3/8. What is the probability that at least one of the events occurs? (b) Let C and D be two events. Suppose P(C)=0.5,P(C∩D)=0.2 and P((C⋃D) c)=0.4 What is P(D) ?

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(a) The probability that at least one of the events A or B occurs is 5/8.

(b) The probability of event D is 0.1.

(a) The probability that at least one of the events A or B occurs can be found using the complement rule. Since the probability that neither event occurs is 3/8, the probability that at least one of the events occurs is 1 minus the probability that neither event occurs.

Therefore, the probability is 1 - 3/8 = 5/8.

(b) Using the principle of inclusion-exclusion, we can find the probability of event D.

P(C∪D) = P(C) + P(D) - P(C∩D)

0.4 = 0.5 + P(D) - 0.2

P(D) = 0.4 - 0.5 + 0.2

P(D) = 0.1

Therefore, the probability of event D is 0.1.

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Represent the system below in state space in phase-variable form s² +2s +6 G(s) = s³ + 5s² + 2s + 1

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The system represented in state space in phase-variable form, with the given transfer function s² + 2s + 6 = s³ + 5s² + 2s + 1, is described by the state equations: x₁' = x₂, x₂' = x₃, x₃' = -(5x₃ + 2x₂ + x₁) + x₁''' and the output equation: y = x₁

To represent the given system in state space in phase-variable form, we'll start by defining the state variables. Let's assume the state variables as:

x₁ = s

x₂ = s'

x₃ = s''

Now, let's differentiate the state variables with respect to time to obtain their derivatives:

x₁' = s' = x₂

x₂' = s'' = x₃

x₃' = s''' (third derivative of s)

Next, we'll express the given transfer function in terms of the state variables. The transfer function is given as:

G(s) = s³ + 5s² + 2s + 1

Since we have x₁ = s, we can rewrite the transfer function in terms of the state variables as:

G(x₁) = x₁³ + 5x₁² + 2x₁ + 1

Now, we'll substitute the state variables and their derivatives into the transfer function:

G(x₁) = (x₁³ + 5x₁² + 2x₁ + 1) = x₁''' + 5x₁'' + 2x₁' + x₁

This equation represents the dynamics of the system in state space form. The state equations can be written as:

x₁' = x₂

x₂' = x₃

x₃' = -(5x₃ + 2x₂ + x₁) + x₁'''

The output equation is given by:

y = x₁

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Equation: y=5-x^x​​​​​
Numerical Differentiation 3. Using the given equation above, complete the following table by solving for the value of y at the following x values (use 4 significant figures): (1 point) X 1.00 1.01 1.4

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Given equation:

y = 5 - x^2 Let's complete the given table for the value of y at different values of x using numerical differentiation:

X1.001.011.4y = 5 - x²3.00004.980100000000014.04000000000001y

= 3.9900 y

= 3.9798y

= 0.8400h

= 0.01h

= 0.01h

= 0.01  

As we know that numerical differentiation gives an approximate solution and can't be used to find the exact values. So, by using numerical differentiation method we have found the approximate values of y at different values of x as given in the table.

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Compute the stress in the wall of a sphere having an inside diameter of 300 mm and a wall thickness of 1.50 mm when carrying nitrogen gas at 3500kPa internal pressure. First, determine if it is thin-walled. Stress in the wall = ___ MPa. a 177 b 179 c 181 d 175

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The given values are:Diameter of the sphere, d = 300 mm wall thickness, t = 1.50 mm Internal pressure, P = 3500 kPa

The formula to calculate the hoop stress in a thin-walled sphere is given by the following equation:σ = PD/4tThe given sphere is thin-walled if the wall thickness is less than 1/20th of the diameter. To check whether the given sphere is thin-walled or not, we can calculate the ratio of the wall thickness to the diameter.t/d = 1.50/300 = 0.005If the ratio is less than 0.05, then the sphere is thin-walled. As the ratio in this case is 0.005 which is less than 0.05, the sphere is thin-walled.

Substituting the given values in the formula, we have:σ = 3500 × 300 / 4 × 1.5 = 525000 / 6 = 87500 kPa

To convert kPa into MPa, we divide by 1000.

σ = 87500 / 1000 = 87.5 MPa

Therefore, the stress in the wall of the sphere is 87.5 MPa.

The given problem requires us to calculate the stress in the wall of a sphere which is carrying nitrogen gas at an internal pressure of 3500 kPa. We are given the inside diameter of the sphere which is 300 mm and the wall thickness of the sphere which is 1.5 mm.

To calculate the stress in the wall, we can use the formula for hoop stress in a thin-walled sphere which is given by the following equation:σ = PD/4t

where σ is the hoop stress in the wall, P is the internal pressure, D is the diameter of the sphere, and t is the wall thickness of the sphere.

Firstly, we need to determine if the given sphere is thin-walled. A sphere is thin-walled if the wall thickness is less than 1/20th of the diameter. Therefore, we can calculate the ratio of the wall thickness to the diameter which is given by:

t/d = 1.5/300 = 0.005If the ratio is less than 0.05, then the sphere is thin-walled. In this case, the ratio is 0.005 which is less than 0.05. Hence, the given sphere is thin-walled.

Substituting the given values in the formula for hoop stress, we have:σ = 3500 × 300 / 4 × 1.5 = 525000 / 6 = 87500 kPa

To convert kPa into MPa, we divide by 1000.σ = 87500 / 1000 = 87.5 MPa

Therefore, the stress in the wall of the sphere is 87.5 MPa.

The stress in the wall of the sphere carrying nitrogen gas at an internal pressure of 3500 kPa is 87.5 MPa. The given sphere is thin-walled as the ratio of the wall thickness to the diameter is less than 0.05.

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The average flow speed in a constant-diameter section of the pipeline is 2.5 m/s. At the inlet, the pressure is 2000 kPa (gage) and the elevation is 56 m; at the outlet, the elevation is 35 m. Calculate the pressure at the outlet (kPa, gage) if the head loss = 2 m. The specific weight of the flowing fluid is 10000N/m³. Patm = 100 kPa.

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The pressure at the outlet (kPa, gage) can be calculated using the following formula:

Pressure at the outlet (gage) = Pressure at the inlet (gage) - Head loss - Density x g x Height loss.

The specific weight (γ) of the flowing fluid is given as 10000N/m³.The height difference between the inlet and outlet is 56 m - 35 m = 21 m.

The head loss is given as 2 m.Given that the average flow speed in a constant-diameter section of the pipeline is 2.5 m/s.Given that Patm = 100 kPa.At the inlet, the pressure is 2000 kPa (gage).

Using Bernoulli's equation, we can find the pressure at the outlet, which is given as:P = pressure at outlet (gage), ρ = specific weight of the fluid, h = head loss, g = acceleration due to gravity, and z = elevation of outlet - elevation of inlet.

Therefore, using the above formula; we get:

Pressure at outlet = 2000 - (10000 x 9.81 x 2) - (10000 x 9.81 x 21)

Pressure at outlet = -140810 PaTherefore, the pressure at the outlet (kPa, gage) is 185.19 kPa (approximately)

In this question, we are given the average flow speed in a constant-diameter section of the pipeline, which is 2.5 m/s. The pressure and elevation are given at the inlet and outlet. We are supposed to find the pressure at the outlet (kPa, gage) if the head loss = 2 m.

The specific weight of the flowing fluid is 10000N/m³, and

Patm = 100 kPa.

To find the pressure at the outlet, we use the formula:

P = pressure at outlet (gage), ρ = specific weight of the fluid, h = head loss, g = acceleration due to gravity, and z = elevation of outlet - elevation of inlet.

The specific weight (γ) of the flowing fluid is given as 10000N/m³.

The height difference between the inlet and outlet is 56 m - 35 m = 21 m.

The head loss is given as 2 m

.Using the above formula; we get:

Pressure at outlet = 2000 - (10000 x 9.81 x 2) - (10000 x 9.81 x 21)

Pressure at outlet = -140810 PaTherefore, the pressure at the outlet (kPa, gage) is 185.19 kPa (approximately).

The pressure at the outlet (kPa, gage) is found to be 185.19 kPa (approximately) if the head loss = 2 m. The specific weight of the flowing fluid is 10000N/m³, and Patm = 100 kPa.

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(a) A solid conical wooden cone (s=0.92), can just float upright with apex down. Denote the dimensions of the cone as R for its radius and H for its height. Determine the apex angle in degrees so that it can just float upright in water. (b) A solid right circular cylinder (s=0.82) is placed in oil(s=0.90). Can it float upright? Show calculations. The radius is R and the height is H. If it cannot float upright, determine the reduced height such that it can just float upright.

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Given Data:S = 0.82 (Density of Solid)S₀ = 0.90 (Density of Oil)R (Radius)H (Height)Let us consider the case when the cylinder is fully submerged in oil. Hence, the buoyant force on the cylinder is equal to the weight of the oil displaced by the cylinder.The buoyant force is given as:

F_b = ρ₀ V₀ g

(where ρ₀ is the density of the fluid displaced) V₀ = π R²Hρ₀ = S₀ * gV₀ = π R²HS₀ * gg = 9.8 m/s²

Therefore, the buoyant force is F_b = S₀ π R²H * 9.8

The weight of the cylinder isW = S π R²H * 9.8

For the cylinder to float upright,F_b ≥ W.

Therefore, we get,S₀ π R²H * 9.8 ≥ S π R²H * 9.8Hence,S₀ ≥ S

The given values of S and S₀ does not satisfy the above condition. Hence, the cylinder will not float upright.Now, let us find the reduced height such that the cylinder can just float upright. Let the reduced height be h.

We have,S₀ π R²h * 9.8

= S π R²H * 9.8h

= H * S/S₀h

= 1.10 * H

Therefore, the reduced height such that the cylinder can just float upright is 1.10H.

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Project report about developed the fidget spinner concept
designs and followed the steps to eventually build a fully
assembled and functional fidget spinner. ( at least 900 words)

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Fidget Spinners have revolutionized the way children and adults relieve stress and improve focus. They're simple to construct and have become a mainstream plaything, with various models and designs available on the market.

Here's a project report about how the Fidget Spinner concept was developed:IntroductionThe Fidget Spinner is a stress-relieving toy that has rapidly grown in popularity. It's a pocket-sized device that is shaped like a propeller and spins around a central axis. It was first developed in the 1990s, but it wasn't until 2016 that it became a worldwide trend.

The first Fidget Spinner was created with only a bearing and plastic parts. As the trend caught on, several models with different shapes and designs were produced. This project report describes how we created our fidget spinner and the steps we followed to make it fully operational.

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Methane gas at 120 atm and −18°C is stored in a 20−m³ tank. Determine the mass of methane contained in the tank, in kg, using the
(a) ideal gas equation of state. (b) van der Waals equation. (c) Benedict-Webb-Rubin equation.

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The mass of methane contained in the tank, in kg, using

(a) ideal gas equation of state = 18.38 kg

(b) van der Waals equation = 18.23 kg

(c) Benedict-Webb-Rubin equation = 18.21 kg.

(a) Ideal gas equation of state is

PV = nRT

Where, n is the number of moles of gas

R is the gas constant

R = 8.314 J/(mol K)

Therefore, n = PV/RT

We have to find mass(m) = n × M

Mass of methane in the tank, using the ideal gas equation of state is

m = n × Mn = PV/RTn = (1.2159 × 10⁷ Pa × 20 m³) / (8.314 J/(mol K) × 255 K)n = 1145.45 molm = n × Mm = 1145.45 mol × 0.016043 kg/molm = 18.38 kg

b) Van der Waals equation

Van der Waals equation is (P + a/V²)(V - b) = nRT

Where, 'a' and 'b' are Van der Waals constants for the gas. For methane, the values of 'a' and 'b' are 2.25 atm L²/mol² and 0.0428 L/mol respectively.

Therefore, we can write it as(P + 2.25 aP²/RT²)(V - b) = nRT

At given conditions, we have

P = 120 atm = 121.59 × 10⁴ Pa

T = 255 K

V = 20 m³

n = (P + 2.25 aP²/RT²)(V - b)/RTn = (121.59 × 10⁴ Pa + 2.25 × (121.59 × 10⁴ Pa)²/(8.314 J/(mol K) × 255 K) × (20 m³ - 0.0428 L/mol))/(8.314 J/(mol K) × 255 K)n = 1138.15 molm = n × Mm = 1138.15 mol × 0.016043 kg/molm = 18.23 kg

(c) Benedict-Webb-Rubin equation Benedict-Webb-Rubin (BWR) equation is given by(P + a/(V²T^(1/3))) × (V - b) = RT

Where, 'a' and 'b' are BWR constants for the gas. For methane, the values of 'a' and 'b' are 2.2538 L² kPa/(mol² K^(5/2)) and 0.0387 L/mol respectively.

Therefore, we can write it as(P + 2.2538 aP²/(V²T^(1/3)))(V - b) = RT

At given conditions, we haveP = 120 atm = 121.59 × 10⁴ PaT = 255 KV = 20 m³n = (P + 2.2538 aP²/(V²T^(1/3)))(V - b)/RTn = (121.59 × 10⁴ Pa + 2.2538 × (121.59 × 10⁴ Pa)²/(20 m³)² × (255 K)^(1/3) × (20 m³ - 0.0387 L/mol))/(8.314 J/(mol K) × 255 K)n = 1135.84 molm = n × Mm = 1135.84 mol × 0.016043 kg/molm = 18.21 kg

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Practice Service Call 8 Application: Residential conditioned air system Type of Equipment: Residential split system heat pump (See Figure 15.45.) Complaint: System heats when set to cool. Symptoms: 1. System heats adequately. 2. With thermostat fan switch on, the fan operates properly. 3. Outdoor fan motor is operating. 4. Compressor is operating. 5. System charge is correct. 6. R to O on thermostat is closed. 7. 24 volts are being supplied to reversing valve solenoid.

Answers

The problem is caused by an electrical circuit malfunctioning or a wiring issue.

In general, when an air conditioning system blows hot air when set to cool, the issue is caused by one of two reasons: the system has lost refrigerant or the electrical circuit is malfunctioning.

The following are the most likely reasons:

1. The thermostat isn't working properly.

2. The reversing valve is malfunctioning.

3. The defrost thermostat is malfunctioning.

4. The reversing valve's solenoid is malfunctioning.

5. There's a wiring issue.

6. The unit's compressor isn't functioning correctly.

7. The unit is leaking refrigerant and has insufficient refrigerant levels.

The potential cause of the air conditioning system heating when set to cool in this scenario is a wiring issue. The system is heating when it's set to cool, and the symptoms are as follows:

the system heats well, the fan operates correctly when the thermostat fan switch is turned on, the outdoor fan motor is running, the compressor is running, the system charge is correct, R to O on the thermostat is closed, and 24 volts are supplied to the reversing valve solenoid.

Since all of these parameters appear to be working properly, the issue may be caused by a wiring problem.

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12. 2 points Capacitive susceptance decreases as frequency increases O a. True O b. False 13. 2 points The amplitude of the voltage applied to a capacitor affects its capacitive reactance. O a. True O b. False 14. 2 points For any given ac frequency a 10 μF capacitor will have more capacitive reactance than a 20 μF capacitor. O a. True
O b. False 15. 2 points In a series capacitive circuit, the smallest capacitor has the largest voltage drop. O a. True O b. False 16. 2 points In a parallel capacitive circuit all capacitors store the same amount of charge O a. True O b. False

Answers

12. False 13. False 14. FALSE 15. true 16. true are the answers

12. False

Capacitive susceptance is the reciprocal of the capacitive reactance, and it varies with frequency. The higher the frequency of the AC, the lower the capacitive reactance.

13. False

Capacitive reactance is determined by the capacitance and frequency of the applied voltage, and it is not influenced by the voltage level.

14. False

Capacitive reactance varies with the capacitance and frequency of the applied voltage. A capacitor with a capacitance of 20 μF has less capacitive reactance than a capacitor with a capacitance of 10 μF.

15. True

The capacitive reactance is inversely proportional to the capacitance of the capacitor in a series capacitive circuit, so the capacitor with the lowest capacitance will have the largest voltage drop across it.

16. True

In a parallel capacitive circuit, all capacitors receive the same voltage because they are linked across the same voltage source, and they all store the same amount of charge.

Q = CV is the equation used to calculate the amount of charge stored in a capacitor,

where Q is the charge stored in coulombs, C is the capacitance in farads, and V is the voltage across the capacitor in volts.

Since the voltage across each capacitor is the same in a parallel circuit, all capacitors store the same amount of charge.

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2. Airflow enters a duct with an area of 0.49 m² at a velocity of 102 m/s. The total temperature, Tt, is determined to be 293.15 K, the total pressure, PT, is 105 kPa. Later the flow exits a converging section at 2 with an area of 0.25 m². Treat air as an ideal gas where k = 1.4. (Hint: you can assume that for air Cp = 1.005 kJ/kg/K) (a) Determine the Mach number at location 1. (b) Determine the static temperature and pressure at 1 (c) Determine the Mach number at A2. (d) Determine the static pressure and temperature at 2. (e) Determine the mass flow rate. (f) Determine the velocity at 2

Answers

The mass flow rate is 59.63 kg/s, and the velocity at location 2 is 195.74 m/s.

Given information:The area of duct, A1 = 0.49 m²

Velocity at location 1, V1 = 102 m/s

Total temperature at location 1, Tt1 = 293.15 K

Total pressure at location 1, PT1 = 105 kPa

Area at location 2, A2 = 0.25 m²

The specific heat ratio of air, k = 1.4

(a) Mach number at location 1

Mach number can be calculated using the formula; Mach number = V1/a1 Where, a1 = √(k×R×Tt1)

R = gas constant = Cp - Cv

For air, k = 1.4 Cp = 1.005 kJ/kg/K Cv = R/(k - 1)At T t1 = 293.15 K, CP = 1.005 kJ/kg/KR = Cp - Cv = 1.005 - 0.718 = 0.287 kJ/kg/K

Substituting the values,Mach number, M1 = V1/a1 = 102 / √(1.4 × 0.287 × 293.15)≈ 0.37

(b) Static temperature and pressure at location 1The static temperature and pressure can be calculated using the following formulae;T1 = Tt1 / (1 + ((k - 1) / 2) × M1²)P1 = PT1 / (1 + ((k - 1) / 2) × M1²)

Substituting the values,T1 = 293.15 / (1 + ((1.4 - 1) / 2) × 0.37²)≈ 282.44 KP1 = 105 / (1 + ((1.4 - 1) / 2) × 0.37²)≈ 92.45 kPa

(c) Mach number at location 2

The area ratio can be calculated using the formula, A1/A2 = (1/M1) × (√((k + 1) / (k - 1)) × atan(√((k - 1) / (k + 1)) × (M1² - 1))) - at an (√(k - 1) × M1 / √(1 + ((k - 1) / 2) × M1²)))

Substituting the values and solving further, we get,Mach number at location 2, M2 = √(((P1/PT1) * ((k + 1) / 2))^((k - 1) / k) * ((1 - ((P1/PT1) * ((k - 1) / 2) / (k + 1)))^(-1/k)))≈ 0.40

(d) Static temperature and pressure at location 2

The static temperature and pressure can be calculated using the following formulae;T2 = Tt1 / (1 + ((k - 1) / 2) × M2²)P2 = PT1 / (1 + ((k - 1) / 2) × M2²)Substituting the values,T2 = 293.15 / (1 + ((1.4 - 1) / 2) × 0.40²)≈ 281.06 KP2 = 105 / (1 + ((1.4 - 1) / 2) × 0.40²)≈ 91.20 kPa

(e) Mass flow rate

The mass flow rate can be calculated using the formula;ṁ = ρ1 × V1 × A1Where, ρ1 = P1 / (R × T1)

Substituting the values,ρ1 = 92.45 / (0.287 × 282.44)≈ 1.210 kg/m³ṁ = 1.210 × 102 × 0.49≈ 59.63 kg/s

(f) Velocity at location 2

The velocity at location 2 can be calculated using the formula;V2 = (ṁ / ρ2) / A2Where, ρ2 = P2 / (R × T2)

Substituting the values,ρ2 = 91.20 / (0.287 × 281.06)≈ 1.217 kg/m³V2 = (ṁ / ρ2) / A2= (59.63 / 1.217) / 0.25≈ 195.74 m/s

Therefore, the Mach number at location 1 is 0.37, static temperature and pressure at location 1 are 282.44 K and 92.45 kPa, respectively. The Mach number at location 2 is 0.40, static temperature and pressure at location 2 are 281.06 K and 91.20 kPa, respectively. The mass flow rate is 59.63 kg/s, and the velocity at location 2 is 195.74 m/s.

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Question 2 16 Points a (16) After inspection, it is found that there is an internal crack inside of an alloy with a full width of 0.4 mm and a curvature radius of 5x10⁻³ mm, and there is also a surface crack on this alloy with a full width of 0.1 mm and a curvature radius of 1x10⁻³ mm. Under an applied tensile stress of 50 MPa, (a) What is the maximum stress around the internal crack and the surface crack? (8 points)
(b) For the surface crack, if the critical stress for its propagation is 900 MPa, will this surface crack propagate? (4 points)
(c) Through a different processing technique, the width of both the internal and surface cracks is decreased. With decreased crack width, how will the fracture toughness and critical stress for crack growth change? (4 points)

Answers

(a) The maximum stress around the internal crack can be determined using the formula for stress concentration factor (Kt) for internal cracks. Kt is given by Kt = 1 + 2a/r, where 'a' is the crack half-width and 'r' is the curvature radius. Substituting the values, we have Kt = 1 + 2(0.4 mm)/(5x10⁻³ mm). Therefore, Kt = 81. The maximum stress around the internal crack is then obtained by multiplying the applied stress by the stress concentration factor: Maximum stress = Kt * Applied stress = 81 * 50 MPa = 4050 MPa.

Similarly, for the surface crack, the stress concentration factor (Kt) can be calculated using Kt = 1 + √(2a/r), where 'a' is the crack half-width and 'r' is the curvature radius. Substituting the values, we have Kt = 1 + √(2(0.1 mm)/(1x10⁻³ mm)). Simplifying this, Kt = 15. The maximum stress around the surface crack is then obtained by multiplying the applied stress by the stress concentration factor: Maximum stress = Kt * Applied stress = 15 * 50 MPa = 750 MPa.

(b) To determine if the surface crack will propagate, we compare the maximum stress around the crack (750 MPa) with the critical stress for crack propagation (900 MPa). Since the maximum stress (750 MPa) is lower than the critical stress for propagation (900 MPa), the surface crack will not propagate under the applied tensile stress of 50 MPa.

(c) With decreased crack width, the fracture toughness of the material is expected to increase. A smaller crack width reduces the stress concentration at the crack tip, making the material more resistant to crack propagation. Therefore, the fracture toughness will increase. Additionally, the critical stress for crack growth is inversely proportional to the crack width. As the crack width decreases, the critical stress for crack growth will also decrease. This means that a smaller crack will require a lower stress for it to propagate.

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