Fuel Combustion and CO2 Sequestration [2016 Midterm Problem] Long-term storage of carbon dioxide in underground aquifers or old oil fields is one method to prevent release of CO2 to the atmosphere (to help mitigate climate change). This is referred to as carbon sequestration. A power plant burns fuel oil containing 39.0 mol% C, 60.3 mol% H, and 0.70 mol% S at a rate of 290 kmol/hr. An air stream flowing at 945 kmol/hr provides oxygen for the combustion process. Conversion of the fuel is 95%. Of the C that burns, 90% goes to CO2. The gases are then separated and the carbon dioxide is sequestered underground. Assume 100% separation of the CO2 from the other gases. (a) Draw a flowchart (reactor and separation unit) and label all streams. Incorporate all of the information given above (b) Calculate the percent excess air fed. (c) Determine the molar flowrate of the O2 in the stack gas leaving the plant (d) What is the mass flowrate of CO2 into the underground aquifer?

The revised isPalindrome function now considers uppercase and lowercase letters as the same, correctly identifying palindromes regardless of case. It first converts the input string to all lowercase and then checks for palindrome properties.

Understanding Palindromes in Programming

A palindrome is a sequence of characters that reads the same forwards and backwards. The provided isPalindrome function is designed to check if a given string is a palindrome. However, the function needs to be modified to disregard the case of the letters, allowing 'Madam' and 'madam' to both be recognized as palindromes.

To achieve this, we can modify the function by converting the input string to all lowercase or uppercase before the comparison. Here's the revised version of the function:

Now, when this modified function is tested with the strings 'madam', 'abba', '22', '67876', '444244', and 'trymeuemyrt', it will correctly identify the palindromes regardless of case.

Palindromes, isPalindrome function modification for case-insensitivity, Examples of palindromes.

Palindromes are sequences of letters or words that read the same forwards and backwards. They can be found in various contexts, including DNA sequences. The objective of the given program is to determine if a given string is a palindrome, which remains the same when read backward.

The modified function isPalindrome checks if a string is a palindrome while ignoring case differences, treating uppercase and lowercase letters as the same. This modification allows the function to correctly identify palindromes regardless of letter casing.

Examples such as 'madam', 'abba', 'trymeuemyrt' correspond to palindromes while considering the modified function's case-insensitive behavior, showcasing the effectiveness of the updated algorithm

The upper limit for the specific stiffness of this composite is approximately 20.208 GPa.

Specific stiffness of composite = Volume fraction of copper * Specific stiffness of copper + Volume fraction of tungsten * Specific stiffness of tungsten

Specific stiffness of composite = [tex](0.10 * (110 / 8.9)) + (0.90 * (407 / 19.3))[/tex]

Now, calculate the specific stiffness of the composite.

Specific stiffness of composite = [tex](0.10 * (110 / 8.9)) + (0.90 * (407 / 19.3))[/tex]

Specific stiffness of composite ≈[tex](0.10 * 12.36) + (0.90 * 21.08)[/tex]

Specific stiffness of composite ≈ [tex]1.236 + 18.972[/tex]

Specific stiffness of composite ≈ 20.208 GPa

So, the upper limit for the specific stiffness of this composite is approximately 20.208 GPa.

Answer:

6.4 m/s

Explanation:

From the equation of continuity

A1V1=A2V2 where A1 and V1 are area and velocity of inlet respectively while A2 and V2 are the area and velocity of outlet respectively

[tex]A1=\pi (r1)^{2}[/tex]

[tex]A2=\pi (r2)^{2}[/tex]

where r1 and r2 are radius of inlet and outlet respectively

v1 is given as 1.6 m/s

Therefore

[tex]\pi (0.01)^{2}\times 1.6 = \pi (0.005)^{2}v2[/tex]

[tex]V2=\frac {\pi (0.01)^{2}\times 1.6}{\pi (0.005)^{2}}=6.4 m/s[/tex]

Based on the higher male average weight and large sample sizes, we expect a relatively large positive t-statistic and a statistically significant p-value (low p-value).

Formulate the hypothesis:

Null hypothesis (H0): μm = μf (The mean weight of male spotted flounder (μm) is equal to the mean weight of female spotted flounder (μf))

Alternative hypothesis (H1): μm > μf (The mean weight of male spotted flounder is greater than the mean weight of female spotted flounder) (One-tailed test)

Calculate the pooled variance (assuming unequal variances):

Sp^2 = [(nf - 1) * σf^2 + (nm - 1) * σm^2] / (nf + nm - 2)

nf = Female sample size (482)

nm = Male sample size (614)

σf = Female standard deviation (14.5 g)

σm = Male standard deviation (15.6 g)

3. Calculate the t-statistic:

t = (xm - xf) / sqrt(Sp^2 * (1/nf + 1/nm))

xm = Male average weight (22.79 g)

xf = Female average weight (20.95 g)

Sp^2 (pooled variance) - calculated in step 2

4. Determine the p-value:

You'll need statistical software to find the p-value associated with the calculated t-statistic and the degrees of freedom (df = nf + nm - 2).

Statistical Measures:

t-statistic: This measures the difference between the means relative to the standard error of the sampling distribution. A positive value suggests the male mean is higher.

p-value: This represents the probability of observing a t-statistic as extreme or more extreme than the one calculated, assuming the null hypothesis is true.

A statistically significant p-value (typically less than 0.05) indicates we can reject the null hypothesis and conclude a difference between the means.

Based on the higher male average weight and large sample sizes, we expect a relatively large positive t-statistic and a statistically significant p-value (low p-value).

This would allow us to reject the null hypothesis (equal means) and conclude that male spotted flounder, on average, have a greater weight than females based on this data sample.

Answer:

MOV R1, $0A0C    ;

  MOV R2, #0 ;

L1 : MOV R1, R1, LSL #1 ;

  ADC R2, R2, #1 ;

  CMP R1, #0 ;

  BNE L1    ;

Answer:

Explanation:

1. The problems in the above pseudocode include (but not limited to) the following

1. The end year is not properly represented.

2. Though, the factor of 5 is declared, it's not implemented as increment in the pseudocode

3. Incorrect use of control structures. (While ...... And .......Endif)

2.

Start

Start_Year = 2017

Kount = 1

While Kount <= 30

Display Start_Year

Start_Year = Start_Year + 5

Kount = Kount + 1

End While

Stop

3. Yes, by doing the following

* Apply increment of 5 to start year within the whole loop, where necessary

* Use matching control structures

While statement ends with End While (not end if, as it is in the question)

4. Using VBA

Dim Start_Year: Start_Year = 2017 ' Declare and initialise year to 2017

Dim Counter: Counter = 1 ' Declare and Initialise Counter to 1

While Count <= 30 ' Test Value of Counter; to check if the desired number of year has gotten to 30. While the condition remains value, the following code will be executed.

msgbox Start_Year ' Display the value of start year

Start_Year = Start_Year + 5 'Increase value of start year by a factor of 5

Counter = Counter + 1 'Increment Counter

Wend

5. Yes

Answer:

magnitude of thrust uis  11061.65 lb/ft

location is 5 ft from bottom

Explanation:

Given data:

Height of vertical wall is 15 ft

OCR  is 1.5

[tex]\phi = 33^o[/tex]

saturated uit weight[tex] \gamma_{sat} = 115.0 lb/ft^3[/tex]

coeeficent of earth pressure [tex]K_o[/tex]

[tex]K_o = 1 -sin \phi[/tex]

        = 1 - sin 33 = 0.455

for over consolidate

[tex]K_{con} = K_o \times OCR[/tex]

            [tex] = 0.455 \times 1.5 = 0.683[/tex]

Pressure at bottom of wall is

[tex]P =K_{con} \times (\gamma_{sat} - \gamma_{w}) + \gamma_w \times H[/tex]

   [tex]= 0.683 \times (115 - 62.4) \times 15 + 62.4 \times 15[/tex]

P = 1474.88 lb/ft^3

Magnitude pf thrust is

[tex]F= \frac{1}{2} PH[/tex]

   [tex]=\frac{1}{2} 1474.88\times 15 = 11061.65 lb/ft[/tex]

the location must H/3 from bottom so

[tex]x = \frac{15}{3} = 5 ft[/tex]

Answer:

import java.util.HashMap;

import java.util.Map;

import java.util.Scanner;

public class PhoneBook {

   public static void main(String[] args) {

       Scanner in = new Scanner(System.in);

       Map<String, String> map = new HashMap<>();

       String name, number, choice;

       do {

           System.out.print("Enter name: ");

           name = in.next();

           System.out.print("Enter number: ");

           number = in.next();

           map.put(name, number);

           System.out.print("Do you want to try again(y or n): ");

           choice = in.next();

       } while (!choice.equalsIgnoreCase("n"));

       System.out.print("Enter name to search for: ");

       name = in.next();

       if (map.containsKey(name)) {

           System.out.println(map.get(name));

       } else {

           System.out.println(name + " is not in the phone book");

       }

   }

}

Answer:

Stories that discuss how he dealt with a crisis

Stories that illustrate how he went above and beyond expectations

Stories that discuss how he handled a tough interpersonal situation

Explanation:

For effective story-telling during an interview, Jamar needs to highlight stories by discussing how he dealt with certain crisis which relates to the job and tell the panel why he opted for a particular solution. The solution should provide a long-term solution to the crisis. He also needs to illustrate stories on how he went above and beyond expectations  to prove that he's creative. Moreover, it's important that he highlights how he handled a tough interpersonal situation to show how he deals with situations at a personal level.

Answer:The awnser is 5

Explanation:Just divide all of it

Answer:

q= 1.77 W

Explanation:

Given data, Dimensions = 20mm x 20mm, Unheated starting length (ε) = 20 mm, Air flow temperature = 25 C, Velocity of flow = 25m/s, Surface Temperature = 75 C

To find maximum allowed power dissipated use the formula Q = hA(ΔT), where Q = Maximum allowed power dissipated from surface , h = heat transfer coefficiant, A = Area of Surface, ΔT = Temperature difference between surface and surrounding

we need to find h, which is given by (Nu x K)/x, where Nu is the Nusselt's Number, k is the thermal conductivity at film temperature and x is the length of the substrate.

For Nu use the Churchill and Ozoe relation used for parallel flow over the flat plate , Nu = (Nux (ε=0))/[1-(ε/x)^3/4]^1/3

Nux (ε=0) = 0.453 x Re^0.5 x Pr^1/3, where Re is the Reynolds number calculated by [Rex = Vx/v, where V is the velocity and v is the kinematic velocity, x being the length of the substrate] and Pr being the Prandtl Number

The constants, namel Pr, k and v are temperature dependent, so we need to find the film temperature

Tfilm = (Tsubstrate + Tmax)/2 = (25 + 75)/2 = 50 C

At 50 C, Pr = 0.7228, k = 0.02735w/m.k , v = 1.798 x 10^-5 m2/s

First find Rex and keep using the value in the subsequent formulas until we reach Q

Rex = Vx/v = 25 x (0.02 + 0.02)/ 1.798 x 10^-5  = 55617.35 < 5 x 10^5, thus flow is laminar, (x = L + ε)

Nux = (Nux (ε=0))/[1-(ε/x)^3/4]^1/3 = 0.453 x Re^0.5 x Pr^1/3/[1-(ε/x)^3/4]^1/3

= 0.453 x 55617.35 ^0.5 x 0.7228^1/3/ [1 - (0.02/0.04)^3/4]^1/3 = 129.54

h = (Nu x K)/x = (129.54 x 0.02735)/0.04 = 88.75W/m2.k

Q = 88.75 x (0.02)^2 x (75-25) = 1.77 W

Answer:

Please see explanation below .

Explanation:

Since you have not provided the db schema, I am providing the queries by guessing the table and column names. Feel free to reach out in case of any concerns.

1. SELECT ISBN, TITLE, PUBLICATION_YEAR FROM BOOKS WHERE AUTHOR_ID = (SELECT AUTHOR_ID FROM AUTHOR WHERE AUTHOR_NAME = 'C.J. Cherryh');

2. SELECT COUNT(*) FROM BOOKS;

3. SELECT COUNT(*) FROM ORDERS WHERE CUSTOMER_ID = 11 AND order_filled = 'No';

Answer: 33.35 minutes

Explanation:

A(t) = A(o) *(.5)^[t/(t1/2)]....equ1

Where

A(t) = geiger count after time t = 100

A(o) = initial geiger count = 400

(t1/2) = the half life of decay

t = time between geiger count = 66.7 minutes

Sub into equ 1

100=400(.5)^[66.7/(t1/2)

Equ becomes

.25= (.5)^[66.7/(t1/2)]

Take log of both sides

Log 0.25 = [66.7/(t1/2)] * log 0.5

66.7/(t1/2) = 2

(t1/2) = (66.7/2 ) = 33.35 minutes

Answer:

\epsilon = 0.028*0.3 = 0.0084

Explanation:

\frac{P_1}{\rho} + \frac{v_1^2}{2g} +z_1 +h_p - h_l =\frac{P_2}{\rho} + \frac{v_2^2}{2g} +z_2

where P_1 = P_2 = 0

V1 AND V2  =0

Z1 =0

h_P = \frac{w_p}{\rho Q}

=\frac{40}{9.8*10^3*0.2} = 20.4 m

20.4 - (f [\frac{l}{d}] +kl) \frac{v_1^2}{2g} = 10

we know thaTV  =\frac{Q}{A}

V = \frac{0.2}{\pi \frac{0.3^2}{4}} =2.82 m/sec

20.4 - (f \frac{60}{0.3} +14.5) \frac{2.82^2}{2*9.81} = 10

f  = 0.0560

Re =\frac{\rho v D}{\mu}

Re =\frac{10^2*2.82*0.3}{1.12*10^{-3}} =7.53*10^5

fro Re = 7.53*10^5 and f = 0.0560

\frac{\epsilon}{D] = 0.028

\epsilon = 0.028*0.3 = 0.0084

Answer:

h=1.122652m

Explanation:

Assuming density of air = 1.2kg/m³

the differential pressure is given by:

[tex]h^{i} =h(\frac{density of manometer}{density of flowing air}-1)\\h^{i} =h(\frac{1000}{1.2}-1)\\ h^{i}=832.33h...(1)\\\\but\\ h^{i} =\frac{change in pressure}{air density*g} \\\\h^{i} =\frac{11*10^3}{1.2*9.81}\\\\h^{i}= 934.42...(2)\\\\equating, \\\\934.42=832.33h\\\\h=1.122652m[/tex]

The distance  h  between the two fluid levels of the water-filled manometer is approximately 1.121 meters.

To determine the distance  h  between the two fluid levels of the water-filled manometer, we need to use the pressure readings from both the pressure gauge and the manometer. Here's how we can approach the problem:

Given:

- Reading on the pressure gauge: [tex]\( P_{gauge} = 11 \, \text{kPa} \)[/tex]- Atmospheric pressure: [tex]\( P_{atm} = 101 \, \text{kPa} \)[/tex]

- Density of water: [tex]\( \rho = 1000 \, \text{kg/m}^3 \)[/tex]

- Acceleration due to gravity: [tex]\( g = 9.81 \, \text{m/s}^2 \)[/tex]

Step-by-Step Solution:

1. Convert the gauge pressure to absolute pressure:

[tex]\[ P_{absolute} = P_{gauge} + P_{atm} \][/tex]

[tex]\[ P_{absolute} = 11 \, \text{kPa} + 101 \, \text{kPa} = 112 \, \text{kPa} \][/tex]

2. Determine the pressure difference between the air tank and atmospheric pressure:

  The pressure difference [tex](\( \Delta P \))[/tex] that the manometer measures is equal to the gauge pressure:

[tex]\[ \Delta P = P_{absolute} - P_{atm} = 112 \, \text{kPa} - 101 \, \text{kPa} = 11 \, \text{kPa} \][/tex]

3. Use the pressure difference to find the height ( h ):

  The pressure difference is related to the height ( h ) of the water column by the hydrostatic equation:

 [tex]\[ \Delta P = \rho g h \][/tex]

  Solving for ( h ):

[tex]\[ h = \frac{\Delta P}{\rho g} \][/tex]

  Convert [tex]\(\Delta P\)[/tex] to Pascals [tex](since \(1 \, \text{kPa} = 1000 \, \text{Pa}\))[/tex]:

 [tex]\[ \Delta P = 11 \, \text{kPa} = 11000 \, \text{Pa} \][/tex]

  Now, calculate ( h ):

[tex]\[ h = \frac{11000 \, \text{Pa}}{1000 \, \text{kg/m}^3 \times 9.81 \, \text{m/s}^2} \][/tex]

[tex]\[ h \approx \frac{11000}{9810} \, \text{m} \][/tex]

[tex]\[ h \approx 1.121 \, \text{m} \][/tex]

Answer:

[tex]\dfrac{Q_B}{Q_A}=\sqrt{5}[/tex]

Explanation:

Lets take

Length of pipe B = L

Length of pipe A = 5 L

Discharge in pipe A = Q₁

Discharge in pipe B = Q₂

We know that head loss in the pipe given as

[tex]h_f=\dfrac{FLQ^2}{12.1d^5}[/tex]

F=Friction factor, Q=Discharge,L=length

d=Diameter of pipe

here all only Q and L is varying and all other quantity is constant

So we can say that

LQ²= Constant

L₁Q₁²=L₂Q²₂

By putting the values

5LQ₁²=LQ²₂

[tex]\dfrac{Q_2}{Q_1}=\sqrt{5}[/tex]

Therefore

[tex]\dfrac{Q_B}{Q_A}=\sqrt{5}[/tex]

Answer:

a) [tex]h_L=-3.331ft[/tex]

b) The flow would be going from section (b) to section (a)

Explanation:

1) Notation

[tex]p_a =31.1psi=4478.4\frac{lb}{ft^2}[/tex]

[tex]p_b =27.3psi=3931.2\frac{lb}{ft^2}[/tex]

For above conversions we use the conversion factor [tex]1psi=144\frac{lb}{ft^2}[/tex]

[tex]z_a =56.7ft[/tex]

[tex]z_a =68.8ft[/tex]

[tex]h_L =?[/tex] head loss from section

2) Formulas and definitions

For this case we can apply the Bernoulli equation between the sections given (a) and (b). Is important to remember that this equation allows en energy balance since represent the sum of all the energies in a fluid, and this sum need to be constant at any point selected.

The formula is given by:

[tex]\frac{p_a}{\gamma}+\frac{V_a^2}{2g}+z_a =\frac{p_b}{\gamma}+\frac{V_b^2}{2g}+z_b +h_L[/tex]

Since we have a constant section on the piple we have the same area and flow, then the velocities at point (a) and (b) would be the same, and we have just this expression:

[tex]\frac{p_a}{\gamma}+z_a =\frac{p_b}{\gamma}+z_b +h_L[/tex]

3)Part a

And on this case we have all the values in order to replace and solve for [tex]h_L[/tex]

[tex]\frac{4478.4\frac{lb}{ft^2}}{62.4\frac{lb}{ft^3}}+56.7ft=\frac{3931.2\frac{lb}{ft^2}}{62.4\frac{lb}{ft^3}}+68.8ft +h_L[/tex]

[tex]h_L=(71.769+56.7-63-68.8)ft=-3.331ft[/tex]

4)Part b

Analyzing the value obtained for [tex]\h_L[/tex] is a negative value, so on this case this means that the flow would be going from section (b) to section (a).

Answer:

#include <stdio.h>

#include <string.h>

#include <stdlib.h>

#define STRSIZ 30

#define MAXAPP 50

int alpha_first(char *list[], int min_sub, int max_sub);

void select_sort_str(char *list[], int * numbers[], int n);

int main()

{

   char applicants[MAXAPP][STRSIZ];

   int ages[MAXAPP];

   char* alpha[MAXAPP];

   int* numeric[MAXAPP];

   int num_app, i, j;

   char one_char;

   printf("Enter number of people (0 . . %d)\n> ", MAXAPP);

   scanf("%d", &num_app);

   for (i = 0; i < num_app; i++)

   {

       scanf("%c", &one_char);

       printf("\nEnter name %d (lastname, firstname): ", i + 1);      

       j = 0;

       while ((one_char = (char)getchar()) != '\n' && j < STRSIZ)

           applicants[i][j++] = one_char;

       applicants[i][j] = '\0';

       printf("Enter age %d: ", (i + 1));

       scanf("%d", &ages[i]);

       alpha[i] = (char*)malloc(strlen(applicants[i]) * sizeof(char));

       strcpy(alpha[i], applicants[i]);

       numeric[i] = &ages[i];

   }

   printf("\n\nOriginal list");

   printf("\n---------------------------\n");

   for (i = 0; i < num_app; ++i)

       printf("%-30s%2d\n", applicants[i], ages[i]);

   select_sort_str(alpha, numeric, num_app);

   printf("\n\nAlphabetized list");

   printf("\n---------------------------\n");

   for (i = 0; i < num_app; ++i)

       printf("%-30s%2d\n", alpha[i], *numeric[i]);

   printf("\n\nOriginal list");

   printf("\n---------------------------\n");

   for (i = 0; i < num_app; ++i)

       printf("%-30s%2d\n", applicants[i], ages[i]);

   return 0;

}

int alpha_first(char* list[], int min_sub, int max_sub)

{

   int first, i;

   first = min_sub;

   for (i = min_sub + 1; i <= max_sub; ++i)

       if (strcmp(list[i], list[first]) < 0)

           first = i;

   return (first);

}

void select_sort_str(char* list[], int* numbers[], int n)

{

   int fill, index_of_min;

   char* temp;

   int* tempNum;

   for (fill = 0; fill < n - 1; ++fill)

   {

       index_of_min = alpha_first(list, fill, n - 1);

       if (index_of_min != fill)

       {

           temp = (char*)malloc(strlen(list[fill]) * sizeof(char));

           strcpy(temp, list[index_of_min]);

           strcpy(list[index_of_min], list[fill]);

           strcpy(list[fill], temp);

           tempNum = numbers[index_of_min];

           numbers[index_of_min] = numbers[fill];

           numbers[fill] = tempNum;

       }

   }

}

Answer:

a. 149.74 KJ/KG

b. 97.9%

c. 0.81 kJ/kg K

Explanation:

Answer:

A soldering process

Explanation:

Given that ,The filler metal's melting point temperature is less than 450 ° C.

Usually, the brazing material has the liquid temperature of the melting point, the full melting point of the filler material approaching 450 degrees centigrade, while the filler material is less than 450 degrees centigrade in the case of soldering.

Therefore the answer is "A soldering process".

Answer:

Q = 2.532 x 10³ W

Explanation:

The properties of air at the film temperature of

T(f) = (T(s) + T()∞)/2

T(f) = (120 + 20)/2 = 70 °C

From the table of properties of air at T = 20 °C we know that ρ = 1.028 kg/m³ , k = 0.02881W/mK, Pr = 0.7177 , v = 1.995 x 10⁻⁵ m²/s

Calculate the Reynold’s Number

Re(l) = V x L/ν, where V is the speed of air flowing, L is the length of the surface in meters and ν is the kinematic viscosity

Re(l) = 62 x 0.45/(1.995 x 10⁻⁵) = 1.398 x 10⁶

Re(l) is greater than the critical Reynold Number. Thus, we have combined laminar and turbulent flow and the average Nusselt number for the entire plate is determined by

Nu = (0.037 x (Re(l)^0.8) - 871) x Pr^1/3, where Pr is the Prandtl’s Number

Nu = (0.037 x (1.398 x 10⁶)^0.8) – 871) x (0.7177)^1/3

Nu = 1952.85

We also know that

Nu = h x L/k, where h is the heat transfer coefficient, L is the length of the surface and  k is the thermal conductivity

Rearranging to solve for h

h = (Nu x k)/l

h = 1952.85 x 0.02881/0.45 = 125.03 W/m²C

The heat transfer rate Q, may be determined by

Q = h x A x (T(s) - T(∞))

Q = 125.03 x 0.45 x 0.45 x (120 - 20)

Q = 2.532 x 10³ W

The heat transfer rate is 2.532 x 10³ W to the air.

Answer:

False, True , True.

Explanation:

Buckling is defined as  large lateral deflection of member of under compression with slight increase in load beyond a critical load.  

1) Buckling occurs in axially loaded member in tension. is false as buckling occurs in tension.

2) Buckling is caused by lateral deflection of the member and not the axial  deflection. hence true.

3) Buckling is an instability phenomenon that can lead to failure. Hence True.

Answer:

D. Any of the above

Explanation:

All of the following strategies maximize insulation levels:

Answer:

Alternatively we produce a complex (hash) value for key which mean that "to obtain a numerical value for every single string" that we are looking for.  Then compare that values along the range of list, that turns out be numerical values so that comparison becomes faster.

Explanation:

Every individual key is a big character  so to compare every keys, it is required to conduct a quite time consuming string reference procedure at every node. Alternatively we produce a complex (hash) value for key which mean that "to obtain a numerical value for every single string" that we are looking for.  Then compare that values along the range of list, that turns out be numerical values so that comparison becomes faster.

Answer: Temperature T = 218.399K.

Explanation:

Q= 129W/m2

σ = 5.67 EXP -8W/m2K4

Q= σ x t^4

t = (Q/σ)^0.25

t= 218.399k

Answer:

[tex]\theta = 23.083 degree[/tex]

Explanation:

Given data:

yield stress [tex]\tau_y  = 15 Pa[/tex]

thickness t = 3 mm

[tex]\mu = 60 cP = 60\times 10^{-2} P[/tex]

G= 1.3

[tex]\rho_{point} = G \times \rho_{water}[/tex]

                     [tex]=1.3 \times 1000 = 1300 kg/m^3[/tex]

[tex]\tau = \tau_y + mu \frac{du}{dy}[/tex]

for point flow [tex]\frac{du}{dy} = 0[/tex]

[tex]\tau = \tau_y = 15 N/m^2[/tex]

[tex]\tau = \frac{force}{area}[/tex]

       [tex]= \frac{weight of point . sin\theta}{area} = \frac{\rho_{point} . volume. sin\theta}{area}[/tex][/tex]

[tex]15 = \frac{1300 \times 9.8 \times A\times t \times sin\theta}{A}[/tex]

solving for theta value

[tex]sin\theta = 0.392[/tex]

[tex]\theta =sin^{-1} 0.392[/tex]

[tex]\theta = 23.083 degree[/tex]

Answer:

Explanation:

given data

loading rate = 8.00 m/h

filtration rate = 7.70 m/h

dimensions = 10 m × 8 m

filter cycle duration = 52 h

time = 20 min

to find out

flow rate  and  volume of water is used for back washing plus rinsing the filter  

solution  

we consider here production efficiency is 96%

so here flow rate will be  

flow rate = area × rate of filtration  

flow rate = 10 × 8 × 7.7  

flow rate = 616 m³/h

and  

we know back washing generally 3 to 5 % of total volume of water per cycle so  

volume of water is = 616 × 52

volume of water is  32032 m³

and  

volume of water of back washing is = 4% of 32032  

volume of water of back washing is 1281.2 m³

Answer:

Mean.m

fid = fopen('input.txt');

Array = fscanf(fid, '%g');

Amean = AM(Array);

Gmean = GM(Array);

Rmean = RMS(Array);

display('Amlan Das Statistical Package')

display(['arithmetic mean = ', sprintf('%.5f',Amean)]);

disp(['geometric mean = ', sprintf('%.5f',Gmean)]);

disp(['RMS average = ', sprintf('%.5f',Rmean)]);

AM.m

function [ AMean ] = AM( Array )

n = length(Array);

AMean = 0;

for i = 1:n

AMean = AMean + Array(i);

end

AMean = AMean/n;

end

GM.m

function [ GMean ] = GM(Array)

n = length(Array);

GMean = 1;

for i = 1:n

GMean = GMean*Array(i);

end

GMean = GMean^(1/n);

end

RMS.m

function [ RMean ] = RMS( Array)

n = length(Array);

RMean = 0;

for i = 1:n

RMean = RMean + Array(i)^2;

end

RMean = (RMean/n)^(0.5);

end

This function remove_elements takes a dictionary d and a list lst as input and removes all key-value pairs from d where the key is an element of lst is written below

Writing the program in Python

The program can be written by iterating through the list and removing the corresponding key-value pairs from the dictionary.

The python function that removes all required elements from the dictionary is as follows

def remove_elements(d, lst):

   for key in lst:

       if key in d:

           del d[key]

   return d

# Example usage

d = {1: 2, 3: 4, 5: 6, 7: 8}

lst = [1, 7]

result = remove_elements(d, lst)

print(result)

Question

Given a dictionary d and a list lst, remove all elements from the dictionary whose key is an element of lst.

For example, given the dictionary {1:2, 3:4, 5:6, 7:8} and the list [1, 7], the resulting dictionary would be {3:4, 5:6}.

Assume every element of the list is a key in the dictionary.

Write the program in Python

Answer:

check attachments for answers

Explanation: