The maximum compressive load experienced by the same truss member would occur when the live load is __________. The magnitude of the maximum compressive load would be __________ the magnitude of the maximum tensile load.

Answer:

Thermal Conductivity (K) = 33.33 W/m. ° C

The value of the convection heat transfer coefficient = 3 W/m².° C

Explanation:

The attached document file gives a detailed and clear explanation about the question.

Answer:

The code is as below whereas the output is attached herewith

Explanation:

package brainly.priorityQueue;

class PriorityJobQueue {

   Job[] arr;

   int size;

   int count;

   PriorityJobQueue(int size){

       this.size = size;

       arr = new Job[size];

       count = 0;

   }

   // Function to insert an element into the priority queue

   void insert(Job value){

       if(count == size){

           System.out.println("Cannot insert the key");

           return;

       }

       arr[count++] = value;

       heapifyUpwards(count);

   }

   // Function to heapify an element upwards

   void heapifyUpwards(int x){

       if(x<=0)

           return;

       int par = (x-1)/2;

       Job temp;

       if(arr[x-1].getPriority() < arr[par].getPriority()){

           temp = arr[par];

           arr[par] = arr[x-1];

           arr[x-1] = temp;

           heapifyUpwards(par+1);

       }

   }

   // Function to extract the minimum value from the priority queue

   Job extractMin(){

       Job rvalue = null;

       try {

           rvalue = arr[0].clone();

       } catch (CloneNotSupportedException e) {

           e.printStackTrace();

       }

       arr[0].setPriority(Integer.MAX_VALUE);

       heapifyDownwards(0);

       return rvalue;

   }

   // Function to heapify an element downwards

   void heapifyDownwards(int index){

       if(index >=arr.length)

           return;

       Job temp;

       int min = index;

       int left,right;

       left = 2*index;

       right = left+1;

       if(left<arr.length && arr[index].getPriority() > arr[left].getPriority()){

           min =left;

       }

       if(right <arr.length && arr[min].getPriority() > arr[right].getPriority()){

           min = right;

       }

       if(min!=index) {

           temp = arr[min];

           arr[min] = arr[index];

           arr[index] = temp;

           heapifyDownwards(min);

       }

   }

   // Function to implement the heapsort using priority queue

   static void heapSort(Job[] array){

       PriorityJobQueue object = new PriorityJobQueue(array.length);

       int i;

       for(i=0; i<array.length; i++){

           object.insert(array[i]);

       }

       for(i=0; i<array.length; i++){

           array[i] = object.extractMin();

       }

   }

}

package brainly.priorityQueue;

import java.io.BufferedReader;

import java.io.IOException;

import java.io.InputStreamReader;

import java.util.Arrays;

public class PriorityJobQueueTest {

   // Function to read user input

   public static void main(String[] args) {

       BufferedReader br = new BufferedReader(new InputStreamReader(System.in));

       int n;

       System.out.println("Enter the number of elements in the array");

       try{

           n = Integer.parseInt(br.readLine());

       }catch (IOException e){

           System.out.println("An error occurred");

           return;

       }

       System.out.println("Enter array elements");

       Job[] array = new Job[n];

       int i;

       for(i=0; i<array.length; i++){

           Job job  =new Job();

           try{

               job.setJobId(i);

               System.out.println("Element "+i +"priority:");

               job.setJobName("Name"+i);

               job.setSubmitterName("SubmitterName"+i);

               job.setPriority(Integer.parseInt(br.readLine()));

               array[i] = job;

           }catch (IOException e){

               System.out.println("An error occurred");

           }

       }

       System.out.println("The initial array is");

       System.out.println(Arrays.toString(array));

       PriorityJobQueue.heapSort(array);

       System.out.println("The sorted array is");

       System.out.println(Arrays.toString(array));

       Job[] readyQueue =new Job[4];

   }

}

Answer:

Explanation:

For each instance, the `MachineStatus` class should store: the label of a vending machine the total amount of beverages the vending machine was previously stocked with the total amount of beverages currently in stock in the vending machine the total income of the machine from the last time it was stocked until now.

Answer:

Using the above algorithm matches one pair of Ghostbuster and Ghost. On  each side of the line formed by the pairing, the number of Ghostbusters and Ghosts are  the same, so use the algorithm recursively on each side of the line to find pairings. The  worst case is when, after each iteration, one side of the line contains no Ghostbusters  or Ghosts. Then, we need n/2 total iterations to find pairings, giving us an P([tex]n^{2} lg n[/tex])-  time algorithm.

The described problem requires creating non-crossing pairings between points in a plane, utilizing a divide and conquer algorithm similar to finding the closest pair of points. The algorithm involves sorting, recursively pairing, checking for potential crossings, and merging pairs in O(n^2  lg n) time.

The problem described is one of computational geometry, specifically related to the pairing of points (representing Ghostbusters and ghosts) in the plane so that the lines (streams) connecting the pairs do not cross. An O(n^2  lg n)-time algorithm to solve this can be designed by utilizing a divide and conquer strategy similar to the one used in the closest pair of points problem.

Steps 4 to 6 are critical in ensuring that no streams cross and contribute to the O(n lg n) complexity for pairing across the divide. The overall complexity is O(n^2  lg n) due to the recursive nature of the algorithm and the added complexity of checking for crossing streams.

Explanation of rewriting code from for loop to while loop in Python.

To rewrite the given code using a while loop instead of a for loop, you can iterate over the list indices and manually accumulate the total.

Here is the code:

By using this code snippet, the sum accumulated using the while loop will be stored in the variable sum2, which should equal the sum1 calculated using the for loop.

Answer:

Explanation:

The detailed steps and appropriate calculation with analysis is as shown in the attachment.

Determine the string's length.

[tex]S_A +2S_B +2S_C = Constant[/tex]

Calculate the equation in terms of time.

[tex]v_A+2v_B +2v_c =0 \\\\6 +2v_B +2(18)=0 \\\\2v_B = -42 \\\\V_B =-21 \frac{ft}{s}[/tex]

Calculate the relative velocity of B with respect to C.[tex]V_B = v_c + V_{\frac{B}{C}} \\\\-21=18+ V_{\frac{B}{C}} \\\\ V_{\frac{B}{C}}= -39 \ \frac{ft}{s} = 39 \ \frac{ft}{s} \uparrow[/tex]

Find out more information about the velocity here:

brainly.com/question/15088467

Answer:

Detailed solution is given below:

In engineering, the maximum load a structure can withstand while maintaining a factor of safety can be calculated based on material properties and stress limits. Analyzing stress distributions in rods and pins under maximum loads is crucial for ensuring the structural integrity of a system.

The maximum distributed load magnitude w that may be applied to the structure can be determined using the concept of factor of safety, which is the ratio of the materials' strength to the maximum stress it is subjected to. The factor of safety is given as 2.10, limiting stress in rod (1) as 370 MPa, and limiting stress in each pin as 220 MPa. By setting up equations based on these data, you can calculate the maximum load w.

To calculate the stresses in the rod and each pin at the maximum w, you would need to consider the equilibrium of forces acting on the structure with the maximum load applied. By analyzing the forces acting on the rod and pins, you can determine the stresses within them when the structure is subjected to the maximum load.

Example: Assuming the structure consists of multiple rods and pins, each experiencing different loads, you can analyze the stress distribution within the structure by considering the individual material properties and load distributions to ensure structural integrity.

Answer:

L_f = 26.025 ft

v_f = 51.77 ft/min

Explanation:

Given:-

- The thickness of the slab initially, t_o = 2 in

- The width of the slab initially, w_o = 10 in

- The Length of the slab initially, L_o = 12.0 ft

- The reduction in thickness in each of three steps, r = 75%

- The widening of the slab in each of three steps , m = 3%

- The entry speed vi = 40 ft/min

- The roll speed remains the same

Find:-

a) length

b) exit velocity

Of the final slab

Solution:-

- The final thickness (t_f) after three passes is as follows:

                      t_f =  ( r / 100 )^n * t_o

Where, n = number of passes.

                     t_f = ( 75 / 100 ) ^3 * ( 2.0 )

                    t_f = 0.844 in

- The final width (w_f) after three passes is as follows:

                      w_f =  ( m / 100 + 1 )^n * w_o

Where, n = number of passes.

                     w_f = ( 3 / 100 + 1 ) ^3 * ( 10.0 )

                     w_f = 10.927 in

- Assuming the Volume of the slab remains the same. Zero material Loss. The final length of slab can be determined:

                    t_o*w_o*L_o = t_f*w_f*L_f

                    L_f = ( 2 * 10 * 12 ) / ( 0.844 * 10.927 )

                    L_f = 26.025 ft

- We can use the volume rate equation as the roll speed remains constant i.e change in rate of volume is zero. Hence, we can write the before and after the 3rd step formulation:

                   t_i*w_i*v_i = t_f*w_f*v_f

Where, v_i : The entry step speed

            v_f : Third step exit speed.

                   (0.75)^2 * 2 * (1.03)^2 * 10 * 40 =  (0.844)*(10.927)*v_f

                  v_f = 51.77 ft/min    

Answer:

import java.awt.Color;

import java.awt.Canvas;

import java.awt.Button;

import java.awt.Image;

import java.awt.Graphics;

import java.awt.Frame;

import java.awt.event.*;

import java.util.*;

/**

  * Check attached images for the continuation of the code

  * 5000 characters exceeded

  * It appears that your answer contains either a link or inappropriate words error

  */

Answer and Explanation:

the answer is attached below

The power that must be supplied to the motor is 136 hp

Explanation:

Given-

weight of the elevator, m = 1000 lb

Force on the table, F = 500 lb

Distance, s = 27 ft

Efficiency, ε = 0.65

Power  = ?

According to the equation of motion:

F = ma

[tex]3(500) - 1000 = \frac{1000}{32.2} * a[/tex]

a = 16.1 ft/s²

We know,

[tex]v^2 - u^2 = 2a (S - So)\\\\v^2 - (0)^2 = 2 * 16.1 (27-0)\\\\v = 29.48m/s[/tex]

To calculate the output power:

Pout = F. v

Pout = 3 (500) * 29.48

Pout = 44220 lb.ft/s

As efficiency is given and output power is known, we can calculate the input power.

ε = Pout / Pin

0.65 = 44220 / Pin

Pin = 68030.8 lb.ft/s

Pin = 68030.8 / 500 hp

     = 136 hp

Therefore, the power that must be supplied to the motor is 136 hp

To calculate the power supplied to the motor, we use the work done by the motor and the motor efficiency. However, without the time, it takes to lift the elevator, a crucial piece of information is missing, thus preventing an exact calculation.

To determine the power that must be supplied to the motor at the instant the 1000-lb elevator has been hoisted 27 ft from rest, we must first calculate the useful power output. Since the motor has an efficiency of 0.65 and exerts a constant force of 500 lb, we can use the work-energy principle along with the efficiency to find the required power.

The work done by the motor on the elevator is the force applied times the distance moved. The useful work is W = force × distance = 500 lb × 27 ft.

The useful power output, or work done per unit time, can be found by P = W / t. However, the time is not provided directly in this scenario; we assume this process occurs instantaneously, which is not realistic for real-world scenarios.

Since power supplied is equal to the useful power output divided by the efficiency, we have Power supplied = Useful power / ε.

Due to missing time information, the exact numerical answer cannot be provided without assumptions or additional data concerning how quickly the elevator is lifted.

Answer:

solution attached below

Explanation:

Answer:

Explanation:

We would be taking a breakdown of the following entities.

online music platform database can have the following entities:

1. Artist

has the following attributes:

Artists Name

Artist ID

Debut Date

2. Albums

has the following attributes

:

Album ID

Title

Release Date  

Price

3. Song

 has the following attributes

:

Song ID

Play Time

Title

genres

4. Items

This represents the items the customers purchased with several albums and quantity.

this shows the following attributes

Album ID

Qty

5. Orders

has the following attributes

The Order ID

The Order Date

Total Price

Payment Method

Delivery Option

6. Customer

has the following attributes

Customer ID

Customer Name

Address - City, State, Postal code

Phone Number

Birthday

Registration Date

NB. the uploaded image shows the ER Diagram.

cheers i hope this helps.

Answer:

The curve length (L) will be = 1218 ft

The elevations and stations for PVC and PVI

a. station of PVC = 103 + 91.00

b. station of PVI = 116 + 09.00

c. elevation of PVC = 432.18ft

d. elevation of PVI = 426.09ft

Explanation:

First calculate for the length (L)

To calculate the length, use the formula of "elevation at any point".

where, elevation at any point = 424.5.

and ∴ PVC Elevation = (420 + 0.01L)

Then, calculate for Station of PVC and PVI and elevation of PVC and PVI

Answer:

Explanation:

The detailed steps and careful analysis is as shown in the attached file.

Based on the calculations, the Reynolds number is equal to [tex]2.9 \times 10^3[/tex]

Given the following data:

Reynolds number has a direct relationship with friction factor. Thus, we would determine the friction factor by using this formula:

[tex]f=\frac{2 \Delta P D}{ \rho Lu^2}[/tex]

Where:

Substituting the given parameters into the formula, we have;

[tex]f=\frac{2 \times 78.86 \times 10^3 \times 0.0508}{ 1000 \times 40 \times 3^2}\\\\f=\frac{8012.176}{360000}[/tex]

f = 0.0223.

For the Reynolds number:

[tex]N_{Re}=\frac{64}{f} \\\\N_{Re}=\frac{64}{0.0223}[/tex]

Reynolds number = [tex]2.9 \times 10^3[/tex]

Note: Fluid flow is turbulent when Reynolds number is greater than 2000 ([tex]N_{Re} > 2000[/tex]) and it is laminar when it is lesser than 2000 ([tex]N_{Re} < 2000[/tex]).

b. The flow of this liquid is turbulent.

c. To determine the viscosity:

[tex]V=\frac{\rho uD}{N_{Re}} \\\\V=\frac{1000 \times 3 \times 0.0508}{2.9 \times 10^3} \\\\V=\frac{152.4}{2.9 \times 10^3}[/tex]

V = 0.0526 Kgm/s.

d. To determine the mass flow rate:

[tex]m=\rho A u=\rho u\frac{\pi}{4} D^2\\\\m=1000 \times 3 \times 0.7854 \times 0.0508^2[/tex]

m = 6.081 Kg/s.

Read more on Reynolds number here: https://brainly.com/question/14306776

Answer: boundary work is 1.33kJ and heat lost is 200kJ

Explanation: mass of water m = 5kg

Molar mass of water mm = 18kg/mol

No of moles n = 5/18 = 0.28

Pressure P = 500x10^3

Temperature T = 300°c = 573K

R = 8.314pa.m3/mol/k a constant.

Using PV = nRT

V = nRT/P

V = (0.28x8.314x573)÷(500x10^3)

V = 0.00266m3

Work on boundary w = PV

W = 500x10^3 x 0.00266 = 1330 J

= 1.33kJ

Heat lost on cooling is equal to electrical heat Q used to heat the water initially

Q =Ivt

I = current = 4A

v = voltage = 100

T = time = 500sec

Q = 4x100x500 = 200000 = 200kJ

The codes for the files are:

File: Artist.py

This file will contain the Artist class with a constructor initializing the artist's name, birth year, and death year.

# Artist. py

class Artist:

   def __init__(self, name="None", birth_year=0, death_year=0):

       self.name = name

       self. birth_year = birth_year

       self. death_year = death_year

File: Artwork.py

This file will define the Artwork class and import the Artist class from Artist.py. It initializes the artwork's title, year of creation, and artist.

# Artwork. py

from Artist import Artist

class Artwork:

   def __init__(self, title="None", year_created=0, artist=Artist()):

       self. title = title

       self. year_created = year_created

       self. artist = artist

File: main. py

This file will import both Artist and Artwork classes and create instances of them to demonstrate their usage.

# main. py

from Artist import Artist

from Artwork import Artwork

# Creating an instance of Artist

artist1 = Artist("Vincent van Gogh", 1853, 1890)

# Creating an instance of Artwork using the artist instance

artwork1 = Artwork("Starry Night", 1889, artist1)

# Printing artist and artwork details to verify

print(f"Artist: {artwork1. artist. name}, Born: {artwork1. artist. birth_year}, Died: {artwork1. artist. death_year}")

print(f"Artwork: {artwork1. title}, Created in: {artwork1. year_created}")

Execution and Output

When you run the main.py script, it will create an Artist object for Vincent van Gogh and an Artwork object for one of his most famous pieces, "Starry Night". The script will then print the details of both the artist and the artwork.

Expected Output:

Artist: Vincent van Gogh, Born: 1853, Died: 1890

Artwork: Starry Night, Created in: 1889

Answer:

Explanation:if you stretch the hose more tightly the speed of the pulse will reduce..

Answer:

183.75 cubic inches.

Explanation:

The volume of the wood board is determine by means of this expression:

[tex]V = w \cdot h \cdot l[/tex]

By replacing variables:

[tex]V = (7.5 in) \cdot (14 in) \cdot (1.75 in)\\V = 183.75 in^{3}[/tex]

Answer:

(εtrue/εengr) = (1.3481/2.85) = 0.473

This shows that the engineering strain is truly a bit far off the true strain.

Explanation:

εengr

Engineering strain is a measure of how much a material deforms under a particular load. It is the amount of deformation in the direction of the applied force divided by the initial length of the material.

ε(engineering) = ΔL/L₀

Lf = final length = 3.85 L₀

L₀ = original length = L₀

ΔL = Lf - L₀ = 3.85 L₀ - L₀ = 2.85 L₀

ε(engineering) = ΔL/L₀ = (2.85L₀)/L₀ = 2.85

εtrue

True Strain measures instantaneous deformation. It is obtained mathematically by integrating strain over small time periods and Running them up. Hence,

ε(true) = In (Lf/L₀)

Lf = 3.85L₀

L₀ = L₀

ε(true) = In (Lf/L₀) = In (3.85L₀/L₀) = In 3.85 = 1.3481

(εtrue/εengr) = (1.3481/2.85) = 0.473

Answer:

The part I called command in the first diagram has been renamed to opcode, or operation code. This is a set of bits (a number) that will tell the ALU which action to perform. I can get the LC-3 opcodes for ADD and NOT and ADD from the book, so I'm not too worried.

Note the #? comment by the switch above opcode. This means I'm not sure how many switches I will need. How many bits do I need to perform all the operations I want? The textbook will tell me.

Materials

Now I make a list of all the materials you have accumulated so far. This list is just an example; yours may be different.

Two 4-bit inputs

One 4-bit output

Two keypads for 4-bit input

Three 7-segment displays (2 for input, 1 for output)

A bunch of switches for opcode (could use a keypad, I guess, but switches are so much more geeky)

A bunch of lights too

The "is zero" LED

One button for clock

One button for reset

One switch for carry-in

Include logic to perform a SUB instruction. That is, subtract the second operand from the first (out = in1 - in2). All three values -- both inputs and the output -- must be two's complement numbers (negative numbers must be represented). Your design may work in one (8 points) or two (4 points) clock cycles.

Explanation:

You are allowed to use the Logisim built-in registers.

The clear input of the register should not be used (do not connect anything to

them).

Custom ALU

Use the provided subcircuit in the template to implement your ALU. You do not have to create additional subcircuits to do this. The ALU has a total of three inputs: First number, second number and select operation input. And one output: Result. The first and second number are used as input for the operations the ALU performs. The select input decides which operation result will be on the single output of the ALU. The ALU is supposed to calculate: NumberA OPERATION NumberB. Register 1 of the storage contains NumberA and Register 2 contains NumberB. The ALU must be able to compute signals with a 4-bit width. Make sure to add labels to all inputs and outputs.

The following operations should be performed for each select input combination (s1s0): • 00: Logic Bitwise XOR

• 01: Multiplication

• 10: Division

• 11: Addition Notes:

You can change the inputs bit width / data bits of any gate to more that 1-bit.

The Logic Bitwise XOR operation can be done with a single XOR gate.

You are also allowed to use the built-in arithmetic logic components and multi- plexer provided by Logisim.

If the result is larger than 4 bits, it will be truncated (only 4 LSB will be shown). This behavior is intended for this assignment. Also, negative results do not have to be considered.

Once you have implemented the ALU circuit, connect the wires in the main circuit properly and test all four operations of your ALU in combination with the storage component.

Answer:True

Explanation:Rotor matching is a term used to describe the process through a brake rotor is aligned to the hub and bearing assembly to produce a smooth, flat, and straight friction surface.

Rotor matching is an essential process which is required to prevent swirling of a break when a vehicle is stopping, rotor matching is needed for efficient and effective break system performance as it is one of the main determinant factors for accidents arising from break failures.

Answer:

Explanation:

The detailed calculation and appropriate equation with substitution is as shown in the attached file.

Complete Question

The complete question is shown on the first uploaded image

Answer:

(a) the pressure drop is [tex]\Delta P_L = 100.185\ kPa[/tex]

(b) the head loss is the [tex]h_L =10.22\ m[/tex]

(c) the pumping power requirement to overcome this pressure drop [tex]W_p = 901.665\ W[/tex]

Explanation:

So the question we are told that the water is at a temperature of 15°C

 And also we are told that the density of the water is [tex]\rho=999.1\ kg/m^3[/tex]

 We are also told that the dynamic viscosity of the water is                                        [tex]\mu = 1.138 *10^{-3} kg/m \cdot s[/tex]

   From the diagram the length of the pipe is [tex]L=[/tex] 30 m    

  The diameter is given as [tex]D=[/tex] 5 cm [tex]\frac{5}{100} m = 0.05m[/tex]

   The volumetric flow rate is given as  [tex]Q=[/tex] 9 L/s [tex]= \frac{9}{1000} m^3/ s = 0.009\ m^3/s[/tex]

Now the objective of this solution is to obtain

      i the pressure drop,  ii the head loss iii  the pumping power requirement to overcome this pressure drop

to obtain this we need to get the cross-sectional area of the pipe which will help when looking at the flow analysis

       So mathematically the cross-sectional area is

                               [tex]A_s =\frac{\pi}{4} D^2[/tex]

                                    [tex]= \frac{\pi}{4} (5*10^{-2})[/tex]

                                   [tex]=1.963*10^{-3} m^2[/tex]

Next thing to do is to obtain average flow velocity which is mathematically represented as

                 [tex]v = \frac{Q}{A_s}[/tex]

                 [tex]v =\frac{9*10^{-3}}{1.963*10^{-3}}[/tex]

                  [tex]=4.585 \ m/s[/tex]

 Now to determine the type of flow we have i.e to know whether it a laminar flow , a turbulent flow or an intermediary flow

  We use the Reynolds number

if it is below [tex]4000[/tex] then it is a laminar flow but if it is higher then it is a turbulent flow ,now when it is exactly the value then it is an intermediary flow

     This Reynolds number is mathematically represented as

                           [tex]Re = \frac{\rho vD}{\mu}[/tex]

                                [tex]=\frac{(999.1)(4.585)(0.05)}{1.138*10^{-3}}[/tex]

                               [tex]=2.0127*10^5[/tex]

Now since this number is greater than 4000 the flow is turbulent

So we are going to be analyse the flow using the Colebrook's  equation which is mathematically represented as

                [tex]\frac{1}{\sqrt{f} } =-2.0\ log [\frac{\epsilon/D_h}{3.7} +\frac{2.51}{Re\sqrt{f} } ][/tex]

 Where f is the friction  factor , [tex]\epsilon[/tex] is the surface roughness ,

Now generally the surface roughness for stainless steel is

                                             [tex]\epsilon = 0.002 mm = 2*10^{-6} m[/tex]

Now substituting the values into the equation we have

                                   [tex]\frac{1}{\sqrt{f} } =-2.0\ log [\frac{2*10^{-6}/5*10^{-2}}{3.7} +\frac{2.51}{(2.0127*10^{5})\sqrt{f} } ][/tex]

So solving to obtain f we have

                                  [tex]\frac{1}{\sqrt{f} } =-2.0\ log [\frac{4*10^{-5}}{3.7} +\frac{2.51}{(2.0127*10^{5})\sqrt{f} } ][/tex]

                                 [tex]= -2.0log[1.0811 *10^{-5} +\frac{1.2421*10^{-5}}{\sqrt{f} } ][/tex]

                              [tex]f = 0.0159[/tex]

Generally the pressure drop is mathematically represented as

                                            [tex]\Delta P_L =f\ \frac{L}{D} \ \frac{\rho v^2}{2}[/tex]

Now substituting values into the equation

                                           [tex]= 0.0159 [\frac{30}{5*10^{-5}} ][\frac{(999.1)(4.585)}{2} ][/tex]

                                           [tex]=100.185 *10^3 Pa[/tex]

                                           [tex]=100.185 kPa[/tex]  

Generally the head loss in the pipe is mathematically represented as

                        [tex]h_L =\frac{\Delta P_L}{\rho g}[/tex]

                            [tex]= \frac{100.185 *10^3}{(999.1)(9.81)}[/tex]

                             [tex]=10.22m[/tex]

Generally the power input required to overcome this pressure drop is mathematically represented as

                     [tex]W_p = Q \Delta P_L[/tex]

                         [tex]=(9*10^{-3}(100.185*10^3))[/tex]

                         [tex]= 901.665\ W[/tex]

Answer:

Explanation: see attachment

Answer:

[tex] T_C = 27+273.15 = 300.15 K[/tex]

[tex] T_H = 477+273.15 = 750.15 K[/tex]

And replacing in the Carnot efficiency we got:

[tex] e= 1- \frac{300.15}{750.15}= 0.59988 = 59.98 \%[/tex]

[tex] W_{max}= e* Q_H = 0.59988 * 65000 \frac{KJ}{min}= 38992.2 \frac{KJ}{min}[/tex]

Explanation:

For this case we can use the fact that the maximum thermal efficiency for a heat engine between two temperatures are given by the Carnot efficiency:

[tex] e = 1 -frac{T_C}{T_H}[/tex]

We have on this case after convert the temperatures in kelvin this:

[tex] T_C = 27+273.15 = 300.15 K[/tex]

[tex] T_H = 477+273.15 = 750.15 K[/tex]

And replacing in the Carnot efficiency we got:

[tex] e= 1- \frac{300.15}{750.15}= 0.59988 = 59.98 \%[/tex]

And the maximum power output on this case would be defined as:

[tex] W_{max}= e* Q_H = 0.59988 * 65000 \frac{KJ}{min}= 38992.2 \frac{KJ}{min}[/tex]

Where [tex] Q_H[/tex] represent the heat associated to the deposit with higher temperature.

Answer:

a) the velocity of the implant immediately after impact is 20 m/s

b) the average resistance of the implant is 40000 N

Explanation:

a) The impulse momentum is:

mv1 + ∑Imp(1---->2) = mv2

According the exercise:

v1=0

∑Imp(1---->2) = F(t2-t1)

m=0.2 kg

Replacing:

[tex]0+F(t_{2} -t_{1} )=0.2v_{2}[/tex]

if F=2 kN and t2-t1=2x10^-3 s. Replacing

[tex]0+2x10^{-3} (2x10^{-3} )=0.2v_{2} \\v_{2} =\frac{4}{0.2} =20m/s[/tex]

b) Work and energy in the system is:

T2 - U(2----->3) = T3

where T2 and T3 are the kinetic energy and U(2----->3) is the work.

[tex]T_{2} =\frac{1}{2} mv_{2}^{2} \\T_{3} =0\\U_{2---3} =-F_{res} x[/tex]

Replacing:

[tex]\frac{1}{2} *0.2*20^{2} -F_{res} *0.001=0\\F_{res} =40000N[/tex]

Answer:

note:

solution is attached in word form due to error in mathematical equation. furthermore i also attach Screenshot of solution in word due to different version of MS Office please find the attachment

The amount of work produced by 1 kg of steam and 1 kg of R–134a would be the same in a closed system at the given conditions.

In a closed system, the amount of work produced depends on the change in internal energy of the system. The change in internal energy is given by the formula ΔU = Q - W, where Q is the heat added to the system and W is the work done by the system. Since both 1 kg of steam and 1 kg of R–134a are at the same temperature and pressure, their internal energy changes would be the same for the same amount of heat added. Therefore, the amount of work produced by both substances would also be the same in a closed system.

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Answer:

P=3.31 hp (2.47 kW).

Explanation:

Solution

Curve A in Fig1. applies under the conditions of this problem.

S1 = Da / Dt ; S2 = E / Dt ; S3 = L / Da ; S4 = W / Da ; S5 = J / Dt and S6 = H / Dt

The above notations are with reference to the diagram below against the dimensions noted. The notations are valid for other examples following also.

32.2

Fig. 32.2 Dimension of turbine agitator

The Reynolds number is calculated. The quantities for substitution are, in consistent units,

D a =2⋅ft

n= 90/ 60 =1.5 r/s

μ = 12 x 6.72 x 10-4 = 8.06 x 10-3 lb/ft-s

ρ = 93.5 lb/ft3 g= 32.17 ft/s2

NRc = (( D a) 2 n ρ)/ μ = 2 2 ×1.5×93.5 8.06× 10 −3 =69,600

From curve A (Fig.1) , for NRc = 69,600 , N P = 5.8, and from Eq. P= N P × (n) 3 × ( D a )5 × ρ g c

The power P= 5.8×93.5× (1.5) 3 × (2) 5 / 32.17 =1821⋅ft−lb f/s requirement is 1821/550 = 3.31 hp (2.47 kW).