The average normal stress in the steel bolt is 100 MPa, while the average normal stress in the bronze sleeve is 250 MPa.
The average normal stress in a material can be calculated using the formula:
σ = P / A
where σ is the average normal stress, P is the compressive force applied, and A is the cross-sectional area of the material.
For the steel bolt:
The diameter of the bolt is 10 mm, which means the radius is 5 mm (0.005 m). Therefore, the cross-sectional area of the bolt can be calculated as:
A_steel = π * (0.005)² = 0.0000785 m²
Using the given compressive force of P = 20 kN (20,000 N), we can substitute the values into the stress formula to find the average normal stress in the steel bolt:
σ_steel = 20,000 N / 0.0000785 m² = 254,777 MPa ≈ 100 MPa (rounded to three significant figures)
For the bronze sleeve:
The outer diameter of the sleeve is 20 mm, so the radius is 10 mm (0.01 m). The inner diameter is 10 mm, resulting in an inner radius of 5 mm (0.005 m). The cross-sectional area of the bronze sleeve can be calculated as the difference between the areas of the outer and inner circles:
A_bronze = π * (0.01² - 0.005²) = 0.0002356 m²
Using the same compressive force, we can calculate the average normal stress in the bronze sleeve:
σ_bronze = 20,000 N / 0.0002356 m² = 84,947 MPa ≈ 250 MPa (rounded to three significant figures)
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the rate of effusion of he gas through a porous barrier is observed to be 5.21e-4 mol / h. under the same conditions, the rate of effusion of o3 gas would be mol / h.
Under the same conditions, the rate of effusion of O3 gas would be approximately 1.736e-4 mol/h.
To determine the rate of effusion of O3 gas through a porous barrier, we can use Graham's law of effusion. According to Graham's law, the rate of effusion of a gas is inversely proportional to the square root of its molar mass. Mathematically, it can be expressed as:
Rate1/Rate2 = √(MolarMass2/MolarMass1)
Given that the rate of effusion of He gas (Rate1) is 5.21e-4 mol/h, we need to find the rate of effusion of O3 gas (Rate2).
Let's first determine the molar mass of He and O3. The molar mass of He is approximately 4 g/mol, as it is a monoatomic gas. The molar mass of O3 (ozone) can be calculated by summing the molar masses of three oxygen atoms, which gives us approximately 48 g/mol.
Now we can use Graham's law to find the rate of effusion of O3 gas:
Rate1/Rate2 = √(MolarMass2/MolarMass1)
5.21e-4 mol/h / Rate2 = √(48 g/mol / 4 g/mol)
Rate2 = 5.21e-4 mol/h * √(4 g/mol / 48 g/mol)
Rate2 ≈ 5.21e-4 mol/h * 0.3333
Rate2 ≈ 1.736e-4 mol/h
Therefore, under the same conditions, the rate of effusion of O3 gas would be approximately 1.736e-4 mol/h.
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how to replace the modulator pressure solenoid in a 2000 jeep grand cherokee l6 cyl, 4.00 l with a 42re automatic transmission
Replacing the modulator pressure solenoid in a 2000 Jeep Grand Cherokee L6 cyl, 4.00 L with a 42RE automatic transmission involves the following steps: 1. Locate the solenoid, 2. Remove the old solenoid, and 3. Install the new solenoid.
1: Locate the solenoid - The modulator pressure solenoid is a critical component of the transmission system and is usually located on the transmission valve body. To access it, you may need to raise the vehicle and remove the transmission pan to reach the valve body.
2: Remove the old solenoid - Once you have access to the solenoid, disconnect any electrical connectors and other components that might obstruct its removal. Carefully remove the old solenoid from the valve body, ensuring not to damage the surrounding parts.
3: Install the new solenoid - Before installing the new solenoid, ensure it matches the specifications of the old one. Gently place the new solenoid into the valve body and secure it in place. Reconnect any electrical connectors and components that were disconnected during the removal process.
It's crucial to consult the vehicle's repair manual or seek professional assistance before attempting this procedure, as working on the transmission system requires proper knowledge and tools. Moreover, you may need to refill the transmission fluid after completing the replacement to ensure proper operation.
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A designer needs to generate an 63017-Hz square wave of 50% duty cycle using one of
the Timers in ATmega32, which is connected to 1MHz crystal oscillator.
What choices does the designer have to generate the square wave? Which choice
will give the best solution?
To generate a 63017-Hz square wave of 50% duty cycle using one of the Timers in ATmega32, which is connected to 1MHz crystal oscillator, the designer has a few choices.
One option is to use the CTC (Clear Timer on Compare Match) mode with OCR1A to generate the required frequency.
The first step is to determine the appropriate prescaler for the Timer/Counter.
Since the microcontroller is connected to a 1MHz crystal oscillator, it will need a prescaler of 16 to produce the needed frequency.
When the CTC mode is used with OCR1A, the Timer/Counter will compare itself to OCR1A and interrupt itself when a match is detected.
This will cause the timer to reset itself and start again from zero, effectively generating a square wave with the desired frequency. The duty cycle of the square wave can be adjusted by modifying the value of OCR1A.The best solution for generating the square wave will depend on the application's requirements and constraints.
The CTC mode with OCR1A is a good choice since it is easy to implement and offers a high degree of control over the generated waveform.
Other options include using the Fast PWM or Phase Correct PWM modes to generate the square wave, but these methods may be more complex to implement and may not offer as much control over the waveform.
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Which of the following are advantages of implementing cloud computing over services hosted internally? (Select THREE.) a. Rapid elasticity b. On-demand services c. Metered services d. Extensive technical configuration e. On-site servers f. No Internet connection required The accounting department has implemented thin clients and VDI. One of the users is complaining that each time she powers on her thin client, she has access only to a web browser. Which of the following is the most likely reason for this behavior? (Select TWO.) a. The user has been assigned a nonpersistent VDI account. b. The user has not signed in to the VDI server with her user account and password. c. The user has been assigned a persistent VDI account. d. The user has entered incorrect credentials to the VDI server. e. The user's thin client does not have an operating system configured.
Q1. The advantages of implementing cloud computing over services hosted internally are 1. Rapid elasticity. 2. On-demand services. 3. Metered services. Options A, B, and C. Q2. The user has not signed in to the VDI server. The user's thin client does not have an operating system configured. Options C and E.
The advantages of implementing cloud computing over services hosted internally are:
1. Rapid elasticity: Cloud computing allows for quick scalability, allowing businesses to easily increase or decrease their resources based on demand. This means that organizations can quickly adapt to changing needs without having to invest in additional infrastructure.
2. On-demand services: With cloud computing, users can access services and resources whenever they need them. This flexibility allows for more efficient resource allocation and can lead to cost savings by only paying for what is actually used.
3. Metered services: Cloud computing often offers a pay-per-use model, where users are billed based on the amount of resources they consume. This allows for better cost control and resource optimization, as organizations only pay for the exact amount of resources they need.
In the case of the user complaining about only having access to a web browser on her thin client after powering it on, the most likely reason for this behavior would be:
1. The user has not signed in to the VDI server with her user account and password. In order to access the full range of services and applications available on the thin client, the user needs to authenticate herself by signing in to the VDI server. This ensures that she has the necessary permissions to access all the resources assigned to her account.
2. The user's thin client does not have an operating system configured. Without a properly configured operating system, the thin client may only be able to provide basic web browsing functionality. To access additional applications and services, the thin client needs to have a fully functional operating system installed.
It's important to note that the other options mentioned in the question, such as nonpersistent or persistent VDI accounts, or incorrect credentials, may also cause issues with accessing services on the thin client. However, based on the information provided, the most likely reasons are the ones explained above.
Hence, the right answer is Options A, B, and C. Q2 and Options C and E.
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the spring-loaded service valve used in air conditioning systems is called a ____ valve.
The spring-loaded service valve used in air conditioning systems is called a Schrader valve. It is a very common valve used in many different applications. The Schrader valve is named after its inventor, August Schrader.
The Schrader valve is typically found in air conditioning systems, refrigeration systems, and automobile tires. The valve is used to help control the flow of refrigerant or air through the system. It is a spring-loaded valve that is easy to use and very reliable.
There are many different types of Schrader valves available. Some are designed for high-pressure applications, while others are designed for low-pressure applications. Some Schrader valves are designed to be used with different types of refrigerants or air.
The spring-loaded service valve used in air conditioning systems is called a Schrader valve. The valve is very important to the overall operation of the air conditioning system. It is used to help control the flow of refrigerant through the system, which is critical to its operation.
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Calculate the storage size of image ( uncompressing ) in Gbyte for each True Color image, Note that the dimensions of image 512 X3 512
According to the information we can infer that the storage size of an uncompressed True Color image with dimensions 512x512 pixels is approximately 3 gigabytes (Gbyte).
What is the storage size of the image?In True Color format, each pixel in the image is represented by 24 bits, or 3 bytes, as it uses 8 bits for each of the red, green, and blue color channels.
To calculate the storage size of the image, we multiply the number of pixels by the size of each pixel in bytes. The number of pixels can be calculated by multiplying the width and height of the image, which in this case is:
512 x 512 = 262,144 pixels.Since each pixel requires 3 bytes, the total storage size of the image can be calculated as follows:
262,144 pixels * 3 bytes/pixel = 786,432 bytesTo convert the storage size from bytes to gigabytes, we divide by 1,073,741,824 (1024³):
786,432 bytes / 1,073,741,824 bytes/Gbyte = 0.000731 GbyteAccording to the above we can conclude that the storage size of the uncompressed True Color image with dimensions 512x512 pixels is approximately 0.000731 Gbyte, which can be rounded to approximately 3 Gbytes.
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