In Visual C++, the PTR directive cannot be used in inline assembly code.a. Trueb. False

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Answer 1

It is true that In Visual C++, the PTR directive cannot be used in inline assembly code.

The PTR directive is specific to the MASM assembler syntax, which is not compatible with Visual C++ inline assembly syntax. The long answer is that in Visual C++, you can still access memory locations using other directives and operators, such as MOV, LEA, and [] brackets, which allow you to manipulate pointers and memory addresses without using the PTR directive.

In Visual C++, the PTR directive can indeed be used in inline assembly code. The PTR directive is used to override the default operand size or data type of an operand in assembly language. This allows for greater control and flexibility when writing inline assembly code.

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Related Questions

a.) Say whether the following statement is true or false: For any single tape Turing machine M, there is a single tape Turing machine M' such that L(M) = L(M') and for all inputs x, if M halts on x, then M' halts on x, with x written on the tape when it is finished (and nothing else). Defend your answer.

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The statement is true that for any single tape Turing machine M, there is a single tape Turing machine M' such that L(M) = L(M') and for all inputs x, if M halts on x, then M' halts on x, with x written on the tape when it is finished (and nothing else).

The concept being described is known as "tape simulation." It states that for any single tape Turing machine M, there exists another single tape Turing machine M' that is capable of simulating the behavior of M. This simulation includes accepting the same language L(M) and halting on the same inputs x, with x written on the tape when M' finishes, and no additional content.

The proof of this statement lies in constructing M' based on M's behavior. Since M is a Turing machine, it follows a specific set of rules and transitions for each state and symbol encountered on its tape. M' can be designed to mimic these rules and transitions, effectively simulating the behavior of M. By doing so, M' will accept the same language as M and halt on the same inputs.

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In a turbulent flow measurement, if the density of oil is 250kg/m³ and the kinematic velocity is 6.5m²/s. Calculate the dynamic visicousity

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The correct answer is  the dynamic viscosity of the oil is 1625 kg/(m·s).To calculate the dynamic viscosity in a turbulent flow measurement, we can use the formula:

Dynamic Viscosity (μ) = Density (ρ) × Kinematic Viscosity (ν)

Given:

Density of oil (ρ) = 250 kg/m³

Kinematic velocity (ν) = 6.5 m²/s

Substituting the given values into the formula, we can calculate the dynamic viscosity:

Dynamic Viscosity (μ) = 250 kg/m³ × 6.5 m²/s

Dynamic Viscosity (μ) = 1625 kg/(m·s)

In a turbulent flow measurement, if the density of oil is 250kg/m³ and the kinematic velocity is 6.5m²/s.

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To calculate the dynamic viscosity in a turbulent flow measurement, we can use the formula:, the dynamic viscosity of the oil is 1625 kg/(m·s).

Dynamic Viscosity (μ) = Density (ρ) × Kinematic Viscosity (ν)

Given:

Density of oil (ρ) = 250 kg/m³

Kinematic velocity (ν) = 6.5 m²/s

Substituting the given values into the formula, we can calculate the dynamic viscosity:

Dynamic Viscosity (μ) = 250 kg/m³ × 6.5 m²/s

Dynamic Viscosity (μ) = 1625 kg/(m·s)

In a turbulent flow measurement, if the density of oil is 250kg/m³ and the kinematic velocity is 6.5m²/s.

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when 1.5 kg of an ideal gas ( specific heat at constant volume is 0.8216 kj/kg.k ) is heated at constant volume to a final temperature of 425°c, the total entropy increase is 0.4386 kj/k. the

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The initial temperature of the gas was 402.33 °C.

What are some effective time management strategies for improving productivity?

To solve this problem, we can use the formula for entropy change in an ideal gas:

ΔS = Cv ˣ ln(T2/T1) + R ˣ ln(V2/V1)

where ΔS is the entropy change, Cv is the specific heat at constant volume, T1 and T2 are the initial and final temperatures, R is the gas constant, and V1 and V2 are the initial and final volumes.

Since the gas is heated at constant volume, V2/V1 = 1, so the second term of the equation is zero. Thus, we can simplify the equation to:

ΔS = Cv ˣ ln(T2/T1)

Plugging in the given values, we have:

0.4386 kJ/kg·K = 0.8216 kJ/kg·K ˣ ln(425 + 273.15)/(T1 + 273.15)

Solving for T1, we get:

T1 = (425 + 273.15) / exp(0.4386 kJ/kg·K / (0.8216 kJ/kg·K)) - 273.15 = 402.33 °C

Therefore, the initial temperature of the gas was 402.33 °C.

Note that we used the absolute temperature scale (Kelvin) in the calculations, since the logarithm of a ratio of temperatures is independent of the temperature scale used.

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Air enters the turbine of an ideal Brayton cycle at a temperature of 1200 °C. If the cycle pressure ratio is 8:1, find the net work output (kJ/kg) of the turbine. Assume the cold air standardO 580O 831O 474O 538O.660

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The net work output of the turbine is approximately 474 kJ/kg.

The Brayton cycle is a thermodynamic cycle used in gas turbine engines. The cycle consists of four processes: isentropic compression, constant pressure heat addition, isentropic expansion, and constant pressure heat rejection.

Given that the cycle pressure ratio is 8:1, the pressure ratio across the turbine is also 8:1. Assuming an ideal Brayton cycle, the net work output of the turbine can be calculated using the following equation:

W_turbine = cp(T3 - T4)

where cp is the specific heat at constant pressure, T3 is the temperature at the turbine inlet, and T4 is the temperature at the turbine outlet.

To calculate T3, we can use the following equation:

T3 = T2 (PR)^((γ-1)/γ)

where T2 is the temperature at the compressor outlet, PR is the pressure ratio, and γ is the ratio of specific heats.

Assuming a cold air standard and using the given values, we obtain:

γ = 1.4 (for air)

T2 = T1 (PR)^(γ-1) = 1200°C (8)^(1.4-1) = 2645.5 K

T3 = 2645.5 K (8)^(0.4/1.4) = 1571 K

To calculate T4, we can use the fact that the turbine is isentropic, which means that the entropy remains constant. Therefore, we can use the following equation:

s3 = s4

where s is the specific entropy. Assuming a cold air standard, the specific entropy can be calculated using the following equation:

s = cp ln(T/T0) - R ln(p/p0)

where T0 and p0 are reference values (usually taken to be 298 K and 1 atm), and R is the gas constant. Substituting the given values, we obtain:

s3 = 1.005 ln(1571/298) - 0.287 ln(8/1) = 5.84 J/kg.K

Using the fact that s4 = s3 and assuming a cold air standard, we can calculate T4 using the following equation:

T4 = T0 exp((s3 - cp ln(T0/T4))/cp) = 563 K

Finally, substituting the calculated values into the equation for the network output, we obtain:

W_turbine = 1.005 (1571 - 563) = 474 kJ/kg

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.8. Consider a file that is contiguously allocated on disk starting from disk block number 1,705. What is the physical block number that stores byte number 44,898 of the file? Assume that disk block is 4 KB.
9. Consider a file that is contiguously allocated on disk starting from disk block number 594. What is the physical offset of byte number 3,679 of the file inside the disk block that stores that byte? Assume that disk block is 6 KB.

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To determine the average profit generated by orders in the ORDERS table, we first need to calculate the total profit for each order. The ORDERS table contains information on each order, including the order ID, customer ID, order date, and total cost. However, we also need to know the total revenue generated by the order to calculate the profit.

To calculate the revenue for each order, we can join the ORDERS table with the ORDER_ITEMS table, which contains information on each item included in the order, including the item ID, quantity, and price. By multiplying the quantity and price for each item and summing the results, we can determine the total revenue for the order. Once we have the total revenue and total cost for each order, we can calculate the profit by subtracting the cost from the revenue. Finally, we can find the average profit by dividing the sum of all profits by the total number of orders. In SQL, the query to calculate the average profit would look something like this: SELECT AVG(revenue - cost) AS avg_profit FROM ( SELECT o.order_id, o.total_cost AS cost, SUM(oi.quantity * oi.price) AS revenue FROM orders o JOIN order_items oi ON o.order_id = oi.order_id GROUP BY o.order_id, o.total_cost ) subquery; This will return the average profit for all orders in the ORDERS table.

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Chrysoberyl is A. A light green-yellow form of Beryl B. very common throughout the world C. only formed in beryllium-poor environments D. the 3rd hardest natural gemstone E. Faceted to produce "cyclic twins"

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Chrysoberyl is a rare and valuable gemstone that is known for its unique characteristics. The options that match are:

A. A light green-yellow form of Beryl

C. It is only formed in specific beryllium-poor environments

D. It is the 3rd hardest natural gemstone, making it a highly durable and long-lasting option for jewelry

E. When faceted, chrysoberyl can produce "cyclic twins," which create a mesmerizing optical effect

Chrysoberyl is a mineral composed of beryllium aluminum oxide (BeAl2O4). It is valued for its attractive colors and exceptional hardness. The name "chrysoberyl" comes from the Greek words "chrysos" meaning "golden" and "beryllos" meaning "beryl."

Chrysoberyl is best known for its varieties that display chatoyancy, an optical phenomenon called "cat's eye effect." This effect is caused by the presence of microscopic parallel inclusions that reflect light, creating a narrow band of light resembling the slit pupil of a cat's eye. This variety is appropriately named "cat's eye chrysoberyl."

Overall, chrysoberyl is a highly sought-after gemstone that is prized for its rarity and beauty.

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In a real two stroke internal combustion engine, the intake, compression, expansion, and exhaust operations are accomplished in two revolutions of crankshaft. True or False?

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True, In a real two stroke internal combustion engine, the intake, compression, expansion, and exhaust operations are accomplished in two revolutions of the crankshaft.

This is because the two-stroke engine has fewer stages in the combustion cycle compared to a four-stroke engine. In a two-stroke engine, the piston moves up and down twice in one complete cycle, compared to four strokes in a four-stroke engine.

During the first stroke, the air/fuel mixture is drawn into the cylinder through the intake port, and the mixture is compressed during the second stroke. In the third stroke, combustion occurs, and the expanding gases push the piston down. Finally, the exhaust gases are expelled through the exhaust port in the fourth stroke.

Therefore, the entire combustion cycle is completed in two strokes, and the engine requires fewer revolutions of the crankshaft to complete a cycle, resulting in a higher power output.

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when a binary search tree is balanced, it provides o(n^2) search, addition, and removala. trueb. false

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A balanced binary search tree ensures that the height of the tree is minimized, allowing for efficient operations. In a balanced tree, the number of nodes doubles as we move down each level, which results in a logarithmic relationship between the height of the tree and the number of nodes. This is why the time complexity of these operations is O(log n) rather than O(n^2).

When a binary search tree is balanced, it provides O(log n) search, addition, and removal time complexity. This is because a balanced binary search tree has roughly the same number of nodes on both its left and right subtrees, which ensures that the height of the tree is logarithmic with respect to the number of nodes in the tree.

As a result, the time complexity of operations performed on a balanced binary search tree is O(log n), which is much faster than O(n^2) time complexity. In contrast, an unbalanced binary search tree can have a height that is linear with respect to the number of nodes in the tree, resulting in O(n) time complexity for search, addition, and removal operations.

Therefore, maintaining balance in a binary search tree is crucial for ensuring efficient operations.
Hi! The answer to your question is:

b. False
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Vehicles arrive at a stop sign with an average rate of 200 vph (vehicles per hour). It is estimated that the average departure rate from this stop sign is 250 vph. (a) Assume both the arrival and departure processes are Poisson. Compute [3 points) i, the average waiting time in queue, ii. the average time spent in the system, iii. and the average queue length at this stop sign. (b) Suppose that the stop sign was converted into a yield sign and the average departure rate stays the same, but the departure is now uniform. Compute 3 points i. the average waiting time in queue, ii. the average time spent in the system, iii. and the average queue length at this stop sign. (c) In order to further reduce the wait time, a traffic light was installed to replace the yield sign. Assume the departure process after the light was installed remained uniform (deterministic). It was found that the average waiting time in the queue after the traflic light was installed was 8 sec/veh. What is the average departure rate (in vph) from the traffic light if the average arrival rate remains the same?

Answers

Installing the traffic light further reduced the waiting time in the queue, resulting in a higher departure rate from the traffic light.

What is the average departure rate (in vph) from a traffic light that replaced a yield sign, given an average arrival rate of 200 vph and an average waiting time in the queue of 8 seconds per vehicle after the installation of the traffic light?

 Assuming both arrival and departure processes are Poisson, the average waiting time in queue is 0.4 minutes, the average time spent in the system is 0.5 minutes, and the average queue length is 80 vehicles.

If the stop sign is converted to a yield sign and the departure is now uniform, the average waiting time in queue is 0.083 minutes, the average time spent in the system is 0.1 minutes, and the average queue length is 16.67 vehicles.

 After installing the traffic light, if the average waiting time in the queue is 8 seconds per vehicle and the average arrival rate remains the same, the average departure rate is 270 vph.

In summary, converting the stop sign to a yield sign reduced the average waiting time in queue and the average time spent in the system. Installing the traffic light further reduced the waiting time in the queue, resulting in a higher departure rate from the traffic light.

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let 3 be the maclaurin polynomial of ()=. use the error bound to find the maximum possible value of |(1.6)−3(1.6)|. (use decimal notation. give your answer to four decimal places.)

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To begin with, let's recall that the Maclaurin polynomial of a function f(x) is the Taylor polynomial centered at x = 0.

In this case, we're given that the third-degree Maclaurin polynomial of f(x) is:
P3(x) = f(0) + f'(0)x + (f''(0)/2!)x^2 + (f'''(0)/3!)x^3We don't know what the function f(x) is, but we do know that its Maclaurin polynomial is P3(x), so we can use this to approximate f(x) near x = 0. Specifically, we can use P3(x) to estimate the value of f(x) at x = 1.6.However, since P3(x) is only an approximation, there will be some error involved in using it to estimate f(x). This error is given by the remainder term R3(x), which is given by:
R3(x) = f^(4)(c)x^4/4!
where c is some number between 0 and x. We don't know what c is, but we can use the fact that |f^(4)(x)| <= M for all x in an interval containing x = 1.6 to find an upper bound for R3(x). Let's assume that M = 5.Then, the error bound for our approximation of f(1.6) using P3(x) is given by:
|f(1.6) - P3(1.6)| <= |R3(1.6)| <= (5/4!)(1.6)^4
This simplifies to:
|f(1.6) - 3| <= 0.0128So the maximum possible value of |(1.6)−3(1.6)| is 0.0128. We can express this to four decimal places as 0.0128.

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true or false: with segmentation, we can have different access rights for different segments.

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True.

With segmentation, we can have different access rights for different segments. Segmentation is a technique used to divide a larger system or network into smaller subgroups or segments for easier management, control, and security. Each segment can be assigned specific access controls and permissions based on the level of security required for that particular segment. This means that users or devices within one segment may have different access rights than those in another segment. For example, in a corporate network, the finance department may have access to sensitive financial data, while other departments may not. By implementing segmentation, the finance department's segment can be isolated and given additional security controls, ensuring that only authorized personnel can access that data. Overall, segmentation is an effective way to increase security and control access to sensitive information.

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Using the MATLAB Help menu, discuss how the following functions are used. Create a simple example, and demonstrate the proper use of the function. a. ABS (X) b. TIC, TOC c. SIZE (x) d. FIX (x) e. FLOOR (x) f. CEIL (x) g. CALENDAR

Answers

Explanations and examples for the following MATLAB functions:  ABS(X): This function calculates the absolute value of X. For example:

X = -3;
absolute_value = abs(X); % Returns 3
TIC, TOC: These functions are used to measure the elapsed time between tic and toc commands.

tic; % Starts the timer
% Some code here
toc; % Displays the elapsed time in seconds
SIZE(x): This function returns the dimensions of a matrix or array x.

matrix = [1 2; 3 4];
matrix_size = size(matrix); % Returns [2 2]
FIX(x): This function rounds the elements of x towards zero.

number = 3.7;
fixed_number = fix(number); % Returns 3
FLOOR(x): This function rounds the elements of x towards minus infinity.

number = 3.7;
floored_number = floor(number); % Returns 3
CEIL(x): This function rounds the elements of x towards positive infinity.

number = 3.2;
ceiled_number = ceil(number); % Returns 4
CALENDAR: This function returns a matrix representing the calendar for a specified month and year.
cal = calendar(2022, 10); % Returns the calendar for October 2022

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plot the crossbar output throughput of eq. (2.195) as a function of p for a = b from 2 through 30 in steps of 2.

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The plot of the crossbar output throughput as a function of p for a = b from 2 through 30 in step 2 can provide insights into the performance of crossbar switches under different traffic loads.

To plot the crossbar output throughput of equation (2.195) as a function of p for a = b from 2 through 30 in step 2, we need to plug in the values of a and b in the equation and solve for the throughput. The equation for the crossbar output throughput is given by:

Throughput = (p²)/(2a)  (1 - (1 - 2a/p)ᵇ)

We can use this equation to calculate the throughput for different values of p, a, and b. For a = b and p ranging from 2 to 30 in steps of 2, we can generate a table of throughput values. We can then plot these values on a graph to visualize how the throughput changes with p.

As we increase the value of p, the throughput initially increases, reaches a maximum, and then starts to decrease. This is because as p increases, the number of input ports increases, allowing more packets to be transmitted simultaneously. However, beyond a certain point, the crossbar becomes congested, and the throughput starts to decrease.

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how can top down approach be used to make a surface with nanoroughness

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The top-down approach is a methodology that involves creating nanoscale features by removing or modifying larger structures. In the context of surface engineering, the top-down approach can be used to create surfaces with nanoroughness by selectively removing material from a larger surface. There are several techniques that can be used to achieve this, including etching, milling, and polishing.

Etching is a common top-down technique that involves using a chemical solution to selectively remove material from a surface. This can be done with various chemicals, including acids and bases, depending on the properties of the material being etched. For example, silicon can be etched with a solution of potassium hydroxide (KOH) to create a surface with nanoroughness.

Milling is another top-down technique that involves using a milling machine to remove material from a surface. This can be done using various types of milling tools, including drills, end mills, and routers. Milling can be used to create nanoroughness on a variety of materials, including metals, plastics, and ceramics.

Polishing is a top-down technique that involves using abrasive particles to remove material from a surface. This can be done using various types of polishing materials, including diamond paste and alumina powder. Polishing can be used to create nanoroughness on a variety of materials, including metals, glass, and ceramics.

In summary, the top-down approach can be used to create surfaces with nanoroughness by selectively removing material from a larger surface using techniques such as etching, milling, and polishing. These techniques are widely used in the field of surface engineering and can be applied to a variety of materials to create surfaces with specific properties and characteristics.

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A top-down approach can be used to make a surface with nanoroughness by starting with a larger structure and gradually reducing its size through various techniques. One way to achieve this is by using lithography, which involves creating a pattern on a larger scale using techniques like photolithography or electron beam lithography and then transferring this pattern onto a smaller scale using techniques like etching or deposition. By repeating this process multiple times, the desired nanoroughness can be achieved.

The top-down approach involves starting with a larger structure and gradually reducing its size to achieve the desired features. In the context of creating a surface with nanoroughness, this can be achieved through a variety of techniques such as lithography.

In photolithography, a pattern is created on a larger scale by selectively exposing a photoresist material to light through a mask. The exposed areas become more or less soluble in a developer solution, allowing the pattern to be transferred onto the surface of a substrate through a series of chemical processes such as etching or deposition.

Electron beam lithography works in a similar way but uses a focused beam of electrons to create the pattern on the photoresist material. The pattern can then be transferred onto the substrate using the same chemical processes as in photolithography.

By repeating these processes multiple times and gradually reducing the size of the pattern, the desired nanoroughness can be achieved. For example, a pattern created on a millimeter scale can be transferred onto a substrate at the micron scale, and then further reduced to the nanometer scale through additional rounds of lithography and etching.

Overall, the top-down approach can be a powerful tool for creating surfaces with nanoroughness, as it allows for precise control over the size and shape of the features on the surface.

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how to use matlab to calculate toughness from stress strain curve

Answers

To calculate toughness from a stress-strain curve using MATLAB, you can follow these steps: Load the stress-strain data into MATLAB using the "xlsread" command or by importing the data using the "Import Data" tool.

2. Plot the stress-strain curve using the "plot" command.

3. Use the "trapz" command to calculate the area under the stress-strain curve, which represents the toughness.

4. The toughness can be calculated using the following formula:

  Toughness = ∫(σdε)

  where σ is the stress, ε is the strain, and ∫ represents the integral over the entire stress-strain curve.

5. The "trapz" command can be used to perform the numerical integration and calculate the toughness value.

  Syntax: toughness = trapz(strain, stress)

  where "strain" and "stress" are the vectors containing the strain and stress values from the stress-strain curve.

6. Finally, display the toughness value using the "disp" command.

  Syntax: disp(toughness)

This method can be used to calculate toughness for various materials and can help in evaluating the material's resistance to fracture or deformation under stress.

1. Import the stress-strain data into MATLAB, either as a .txt or .csv file. Ensure that your data is organized in two columns, with the first column containing strain values and the second column containing stress values.

```matlab
data = readtable('stress_strain_data.csv'); % Replace with your file name
strain = data(:, 1);
stress = data(:, 2);
```

2. Calculate the area under the stress-strain curve, which represents the toughness. You can use the `trapz` function in MATLAB to find the area using the trapezoidal numerical integration method.

```matlab
toughness = trapz(strain, stress);
```

3. Display the result.

```matlab
fprintf('The toughness of the material is: %.2f units\n', toughness);
```

Make sure to replace the file name with your data file and adjust the units as needed. This will give you the toughness of the material from the stress-strain curve.

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how to subtract the value of the first element of an array from the value of the last element in javascrip

Answers

To subtract the value of the first element of an array from the value of the last element in JavaScript, you can use the following steps

Here is an example code snippet that demonstrates this process:
let myArray = [2, 4, 6, 8, 10]; // Example array
let firstElement = myArray[0]; // Retrieve first element value
let lastElement = myArray[myArray.length - 1]; // Retrieve last element value
let result = lastElement - firstElement; // Subtract first from last element
console.log(result); // Output: 8

In this example, we created an array with values `[2, 4, 6, 8, 10]`. We then retrieved the value of the first element using the index notation `[0]` and stored it in a variable called `firstElement`. Similarly, we retrieved the value of the last element using the index notation `myArray.length - 1` and stored it in a variable called `lastElement`. We then subtracted the value of the first element from the value of the last element and stored the result in a variable called `result`. Finally, we printed the result to the console using the `console.log()` function.

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Suppose that σx = 415 MPa , σy = 295 MPa , τxy = 465 MPa . The stress components act in the directions shown in the figure below. (Figure 1)
Part A
Determine the principal stress.
Express your answers using three significant figures separated by a comma.

Answers

The principal stresses are σ1 = 823.85 MPa and σ2 = -113.85 MPa. So, answer is: 823.85, -113.85

The principal stresses can be found using the following equations:
σ1,2 = 1/2(σx + σy) ± √[(1/2(σx - σy))^2 + τxy^2]
Plugging in the given values, we get:
σ1,2 = 1/2(415 MPa + 295 MPa) ± √[(1/2(415 MPa - 295 MPa))^2 + (465 MPa)^2]
σ1 = 594 MPa and σ2 = 116 MPa
Therefore, the principal stresses are 594 MPa and 116 MPa.
σ_avg = (σx + σy) / 2
R = √[((σx - σy) / 2)^2 + τxy^2]
σ1 = σ_avg + R
σ2 = σ_avg - R
Given, σx = 415 MPa, σy = 295 MPa, and τxy = 465 MPa. Now, let's calculate the principal stresses:
σ_avg = (415 + 295) / 2 = 710 / 2 = 355 MPa
R = √[((415 - 295) / 2)^2 + 465^2] = √[60^2 + 465^2] = √(3600 + 216225) = √219825 = 468.85 MPa
σ1 = 355 + 468.85 = 823.85 MPa
σ2 = 355 - 468.85 = -113.85 MPa

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Water at 20°C flows through a 50 mm diameter smooth horizontal pipe with an area average velocity of 6 m/s. A pressure drop of 51.4 kPa is measured along a 10 m length. Assume fully developed flow. a. Verify that the flow is turbulent. b. Consider a power-law velocity profile to represent the velocity distribution. Determine the cen- terline velocity, Vc [m/s]. c. Determine the wall shear stress, Tw. Why is it not possible to determine Tw from the power-law profile in part b.? d. Sketch the radial profile of the shear stress, T. Determine the viscous and turbulent shear stress components, Tvisc and Tturb [N/mº], within the fluid at (i) r = 10 mm and (ii) r = 20 mm from the centerline of the pipe. Show appropriate analysis for each case. Comment on their relative magnitudes.

Answers

Water flows turbulently through a smooth horizontal pipe with a pressure drop of 51.4 kPa; using a power-law velocity profile, the centerline velocity and shear stress components are determined.

How to determine flow properties?

a. The Reynolds number can be used to determine if the flow is turbulent flow or not. The Reynolds number, Re, is given by:

                      Re = (ρVD)/μ

where ρ is the density of water, V is the velocity, D is the diameter of the pipe, and μ is the viscosity of water.

Substituting the given values, we get:

         Re = (1000 kg/m³x 6 m/s x 0.05 m)/(0.001 kg/m.s) = 300,000

Since the Reynolds number is greater than 4000, the flow is turbulent.

b. The power-law velocity profile is given by:

                    u(r) = Vc (r/R)[tex]^(n-1)[/tex]

where u(r) is the velocity at a distance r from the centerline, Vc is the centerline velocity, R is the radius of the pipe, and n is the flow behavior index.

We can use the continuity equation to determine the centerline velocity:

                            A = πR²

                           Q = AV

                   6 m³/s = π(0.05 m)² x Vc

                         Vc = 7.63 m/s

c. The wall shear stress, Tw, can be determined using the following equation:

                 Tw = τw = μ (du/dy)|y=0

where du/dy is the velocity gradient at the wall.

However, the power-law velocity profile does not provide information about the velocity gradient at the wall. Therefore, it is not possible to determine Tw from the power-law profile in part b.

d. The radial profile of the shear stress, T, is given by:

                 T = τ(r) = μ (du/dr)

The viscous shear stress component, Tvisc, is given by:

              Tvisc = μ (du/dr)|turb = μ (Vc/R)[tex]^(n-1) (n-1)[/tex]/R

The turbulent shear stress component, Tturb, is given by:

             Tturb = ρ u′²

where u′ is the fluctuating component of the velocity.

At r = 10 mm, we have:

           Tvisc = (0.001 kg/m.s) x (7.63 m/s/0.01 m)[tex]^(0.5-1)[/tex] x (0.5-1)/0.01 m

                                    = 7.77 N/m²

          Tturb = (1000 kg/m³ ) x (0.16 m²/s²) = 160 N/m²

At r = 20 mm, we have:

         Tvisc = (0.001 kg/m.s) x (7.63 m/s/0.02 m)[tex]^(0.5-1)[/tex] x (0.5-1)/0.02 m

                            = 1.94 N/m²

         Tturb = (1000 kg/m³ ) x (0.025 m²/s²) = 25 N/m²

The turbulent shear stress component is much larger than the viscous shear stress component.

This is because the flow is turbulent, and the turbulent eddies are generating additional shear stress.

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Familiarize yourself with the TCP header: d. How many bits are there for the Sequence Number?

Answers

The TCP header contains 32 bits for the Sequence Number.

Explanation:

The Sequence Number field is a 32-bit unsigned integer that identifies the sequence number of the first data octet in a segment. It is used to help the receiving host to reconstruct the data stream sent by the sending host.

The Sequence Number field is located in the TCP header, which is added to the data being transmitted to form a TCP segment. The TCP header is located between the IP header and the data payload.

When a TCP segment is sent, the Sequence Number field is set to the sequence number of the first data octet in the segment. The sequence number is incremented by the number of data octets sent in the segment.

When the receiving host receives a TCP segment, it uses the Sequence Number field to identify the first data octet in the segment. It then uses this information to reconstruct the data stream sent by the sending host.

If a segment is lost or arrives out of order, the receiving host uses the Sequence Number field to detect the error and request retransmission of the missing or out-of-order segment.

The Sequence Number field is also used to provide protection against the replay of old segments. When the receiving host detects a duplicate Sequence Number, it discards the segment and sends a duplicate ACK to the sender.

The Sequence Number field is a critical component of the TCP protocol, as it helps to ensure the reliable and ordered delivery of data over the network.

Overall, the Sequence Number field plays a crucial role in the TCP protocol, as it helps to identify and order data segments transmitted over the network and provides protection against data loss and replay attacks.

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the manpage for /etc/exports describes the sync and async options. discuss the differences and why you might choose one versus the other.

Answers

The manpage for /etc/exports describes both the sync and async options for exporting file systems. The main difference between these two options is the way in which data is written to the exported file system.


The sync option ensures that all data is written to the file system before any further operations are allowed. This means that all file system updates are completed before any new requests are accepted. This option provides more data consistency, but can result in slower performance due to the added overhead of waiting for data to be written before continuing.



The decision to choose one option versus the other depends on the specific needs of the system and the importance of data consistency versus performance. In general, if data consistency is the top priority, then the sync option should be used. If performance is more important and data consistency can be sacrificed, then the async option may be a better choice. However, it's important to consider the potential risks and consequences of using each option before making a decision.

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When passive earth pressure conditions exist in a backfill, the wall is said to move toward the soil. in passive conditions, the horizontal pressure of the soil:_________(A) decreases (B) stays the same (C) increases (D) becomes equal to the vertical pressure

Answers

When passive earth pressure conditions exist in a backfill, the wall is said to move toward the soil. This is because the soil exerts a force on the wall that is greater than what the wall can withstand, causing it to move. In passive conditions, the horizontal pressure of the soil increases.


Passive pressure occurs when the soil is compacted and has little or no room to settle. This means that the soil is exerting pressure on the wall without any movement or settling taking place. As the soil pushes against the wall, it increases the horizontal pressure, which can cause the wall to fail if it is not designed to handle the pressure.

Backfill refers to the soil that is placed behind a retaining wall or other structure. It is important to consider the type of soil used in the backfill, as well as the moisture content, when designing a retaining wall. If the soil is not properly compacted, or if there is too much moisture in the soil, it can cause the wall to fail.

In summary, when passive earth pressure conditions exist in a backfill, the wall is said to move toward the soil. Passive conditions cause the horizontal pressure of the soil to increase, which can cause the wall to fail if not designed properly. It is important to consider the type of soil and moisture content in the backfill when designing a retaining wall to prevent failure.
When passive earth pressure conditions exist in a backfill, the wall is said to move toward the soil. In passive conditions, the horizontal pressure of the soil:

(C) increases

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display a list of all books in the books table. if a book has been ordered by a customer, also list the corresponding order number and the state in which the customer resides.

Answers

If a book has been ordered, the query will return the corresponding order number and the state of the customer who placed the order.

To display a list of all books in the books table along with the corresponding order number and state of the customer, we need to join the books table with the orders and customers tables. Here's an example SQL query:

SELECT b.title AS book_title, o.order_number, c.state FROM books b LEFT JOIN order_items oi ON b.id = oi.book_id LEFT JOIN orders o ON oi.order_id = o.id LEFT JOIN customers c ON o.customer_id = c.id;

This query uses LEFT JOIN to ensure that all books in the books table are included in the result, even if they have not been ordered by a customer. If a book has been ordered, the query will return the corresponding order number and the state of the customer who placed the order.

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use the second-derivative test to classify the local extreme value(s) of the following function as either local minima or local maxima. g(x) = 1 x 4x

Answers

To use the second-derivative test to classify the local extreme value(s) of the function g(x) = 1 x 4x, we first need to find the critical points by setting the first derivative equal to zero:

g'(x) = 4x^3 - 4 = 0

Solving for x, we get x = 1 or x = -1. These are our critical points.

Now, we need to find the second derivative:

g''(x) = 12x^2

Plugging in x = 1 and x = -1, we get g''(1) = 12 and g''(-1) = 12.

Since both g''(1) and g''(-1) are positive, we can conclude that g(x) has local minima at x = 1 and x = -1.

To see why, consider the graph of g(x). At the critical points x = 1 and x = -1, the slope of the tangent line is zero, indicating a possible extreme value. The second derivative test tells us that if the second derivative is positive at these points, then the function is concave up and the critical points are local minima.

Therefore, we can conclude that g(x) has local minima at x = 1 and x = -1.

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For a packed bed containing cylinders where the diameter D of the cylinders is equal to the length h, do as follows for a bed having a void fraction . a. Calculate the effective bed diameter. b. Calculate the number of particles, n, of cylinders in 1 m of the bed.

Answers

For a packed bed containing cylinders with diameter D equal to the length h and a given void fraction ε, we can perform the following calculations:
a. Calculate the effective bed diameter (Deff):
Deff = D / (1 - ε)
b. Calculate the number of particles (n) of cylinders in 1 m of the bed:
First, we need to find the volume of one cylinder (Vcylinder):
Vcylinder = π(D/2)^2 * h
Now, we need to find the total volume of cylinders in 1 m of the bed (Vtotal), which is the bed volume (1 m³) multiplied by the solid fraction (1 - ε):
Vtotal = 1 m³ * (1 - ε)
To find the number of particles (n), we can divide the total volume of cylinders in the bed (Vtotal) by the volume of one cylinder (Vcylinder):
n = Vtotal / Vcylinder
By using these equations, you can calculate the effective bed diameter and the number of particles in 1 m of the packed bed. Make sure to use the given void fraction (ε) in the calculations.

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if a markov chain has the following transition matrix, then what are the long-term probabilities for each state? enter exact answers.

Answers


The long-term probabilities for each state can be found by solving the system of equations: π = πP  where π is the row vector of long-term probabilities and P is the transition matrix.

In a Markov chain, the long-term probabilities represent the proportion of time that the chain spends in each state as it runs infinitely. These probabilities can be found by solving the system of equations mentioned above. The equation π = πP is derived from the fact that the long-term probabilities are invariant under the transition matrix. In other words, if we multiply the current probabilities by the transition matrix, we get the same probabilities again.
To solve for π, we can rearrange the equation as:  π(I - P) = 0 where I is the identity matrix. This gives us a system of linear equations, which we can solve using row reduction or other methods. The resulting row vector of long-term probabilities will have one entry for each state in the chain.

Let's consider an example transition matrix: P = [0.6 0.3 0.1 0.2 0.7 0.1 0.1 0.1 0.8]  To find the long-term probabilities for each state, we need to solve the equation π = πP. We can set up the system of linear equations as: π1 = 0.6π1 + 0.2π2 + 0.1π3 π2 = 0.3π1 + 0.7π2 + 0.1π3 π3 = 0.1π1 + 0.1π2 + 0.8π3 We can simplify this system by subtracting each equation from the corresponding column of the identity matrix: 0.4π1 - 0.2π2 - 0.1π3 = 0 -0.3π1 + 0.3π2 - 0.1π3 = 0 -0.1π1 - 0.1π2 + 0.2π3 = 0 We can write this system in matrix form as:0.4 -0.2 -0.1 -0.3 0.3 -0.1 -0.1 -0.1 0.2] [π1 π2 π3]T = [0 0 0]T

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Denormalization eliminates _____ queries, and therefore, query performance is improved.
Group of answer choices
A. select
B. create
C. join
D. delete

Answers

Denormalization eliminates c) JOIN queries, and therefore, query performance is improved. JOIN queries are used to combine data from multiple tables based on a related column.

While normalization helps in reducing data redundancy and ensures data consistency, it can increase the number of JOIN queries required to retrieve data. This can result in slower query performance, especially in large databases. Denormalization involves adding redundant data to tables to eliminate the need for JOIN queries, resulting in faster query performance.

However, it should be used carefully as it can lead to data inconsistency and increased storage requirements. Denormalization is often used in data warehousing where query performance is a critical factor.

In summary, denormalization is used to optimize query performance by eliminating the need for JOIN queries, which can be time-consuming and resource-intensive.

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hedging one commodity by using a futures contract on another commodity is called group of answer choices surrogate hedging. correlative hedging. alternative hedging. cross hedging. proxy hedging.

Answers

Hedging is a risk management strategy used by investors to reduce the impact of potential losses in their investment portfolio. One approach to hedging is to use futures contracts, which are agreements to buy or sell a particular asset at a specific price and time in the future. Surrogate hedging is a strategy that involves using a futures contract on one commodity to hedge against risks associated with another commodity.

For example, let's say an investor is concerned about the price volatility of crude oil, which is the commodity they want to hedge. However, instead of using a crude oil futures contract, they opt to use a futures contract on gold as a surrogate hedge. This means that the investor is using gold futures as a substitute for crude oil futures to manage the risks associated with crude oil.

Surrogate hedging is commonly used when there is a strong correlation between the prices of two commodities. The goal is to find a commodity that is more liquid and has a more established futures market than the one being hedged. Cross hedging is another term that can be used interchangeably with surrogate hedging.

In conclusion, surrogate hedging or cross hedging is a strategy that investors use to hedge against the risks associated with one commodity by using a futures contract on another commodity that has a similar price correlation. It's a viable option when the desired commodity for hedging is illiquid or has a less established futures market.

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B) Three single-phase transformers, each rated at 10 kVA, 115/415 V, 50 Hz, are
connected to form a three-phase, 200/415 V transformer bank. The equivalent
impedance of each transformer referred to the high voltage side is (0.5 + j 1.0) Ω.
The three-phase transformer is connected to a three-phase source through threephase
feeders. The impedance of the feeder is (0.01 + j 0.03) Ω per phase. The
transformer delivers full load at rated voltage, and 0.8 lagging power factor, through a
three-phase load feeders of impedance (0.2 + j 0.3) Ω per phase.
i) Sketch the schematic diagram of the three-phase transformer connection.
ii) Solve the transformer winding currents.
iii) Solve the sending–end line voltage and the voltage regulation.
C ) A single-phase, 10 kVA, 400/200 V, 50 Hz transformer has Zeq = (0.02 + j 0.08) pu,
Rc = 30 pu and Xm = 10 pu.
i) Compute the equivalent circuit in ohmic values referred to low voltage side.
ii) If the high voltage side is connected to 400 V supply, and a capacitive load,
Zc = – j10 ohm, is connected to the low voltage side, compute the load current
and the load voltage

Answers

B)  i) The schematic diagram of the three-phase transformer connection can be shown as below:

yaml

Copy code

                  415V         415V         415V

                _______     _______     _______

               |       |   |       |   |       |

            ___|       |___|       |___|       |___

           |                                         |

      115V                                           115V

           |_________     _________     _________|

                     |   |         |   |

                  ___|___|         |___|___

                 |                          |

              200V                       200V

ii) We can start by finding the equivalent impedance of the transformer bank referred to the high voltage side:

scss

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Zeq = (0.5 + j1.0) ohm

Zeq_hv = Zeq * ((415/115)^2) = (5.5 + j11.0) ohm

We can now use the per-unit method to solve the transformer winding currents:

makefile

Copy code

S_base = 10 kVA

V_base_lv = 200 V

I_base_lv = S_base / V_base_lv = 50 A

Zeq_pu = Zeq_hv / ((415/1000)^2 * S_base) = (0.0114 + j0.0229) pu

Zfeeder_pu = (0.01 + j0.03) pu

Zload_pu = (0.2 + j0.3) pu

I_load_pu = V_base_lv / (Zeq_pu + Zfeeder_pu + Zload_pu) = 3.33 A

I_load_lv = I_load_pu * I_base_lv = 166.67 A

I_feeder_pu = I_load_pu * (Zload_pu / (Zeq_pu + Zfeeder_pu + Zload_pu)) = 1.93 A

I_feeder_lv = I_feeder_pu * I_base_lv = 96.67 A

I_transformer_pu = I_load_pu + I_feeder_pu = 5.26 A

I_transformer_hv = I_transformer_pu * ((415/1000) * S_base / 3) = 8.84 A

I_transformer_lv = I_transformer_hv / (415/200) = 4.25 A

iii) We can now solve for the sending-end line voltage and the voltage regulation:

makefile

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V_send = 415 V

V_receive = 200 V

V_feeder_lv = V_receive + (I_feeder_lv * Zfeeder_pu * V_base_lv) = 211.67 V

V_transformer_lv = V_feeder_lv + (I_transformer_lv * Zeq_pu * V_base_lv) = 208.13 V

V_transformer_hv = V_transformer_lv * (415/200) = 432.71 V

V_regulation = ((V_send - V_transformer_hv) / V_send) * 100% = 3.93%

Therefore, the sending-end line voltage is 415 V, the voltage regulation is 3.93%, and the transformer winding currents are 8.84 A (high voltage side) and 4.25 A (low voltage side).

C)

i) We can compute the equivalent circuit in ohmic values referred to the low voltage side as follows:

makefile

Copy code

S_base = 10 kVA

V_high = 400 V

V_low = 200 V

I_base = S_base / V_high =

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return of leaked ___ to blood by lymphatic system helps to restore osmotic balance

Answers

Return of leaked fluid to blood by lymphatic system helps to restore osmotic balance.

The lymphatic system plays a crucial role in maintaining fluid balance in the body. It collects excess fluid that leaks out of blood vessels and returns it to the bloodstream, helping to prevent swelling and maintain the proper osmotic balance. This fluid, called lymph, also carries immune cells and other substances that help fight infections and maintain overall health. Without the lymphatic system, excess fluid and waste products would accumulate in the tissues, leading to inflammation, infection, and other health problems.

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The return of leaked fluid to the blood by the lymphatic system helps to restore osmotic balance.

What is the lymphatic system?

Essential for maintaining healthy bodily function, the intricate lymphatic system comprises numerous vessels that collectively transport a transparent fluid known as lymphocytes through-out our bodies.

These highly significant immune-compounds include white blood cells, among others essential for disease prevention and overall health maintenance.

Typically originating due to fluids escaping out from within arterial walls into surrounding tissue spaces; it is crucial that any such accumulation is filtered off by these deeply interwoven channels so that metabolic waste materials can be eliminated efficiently as well- all while preserving internal physiological stability at all levels- including osmotic balance which pertains to optimizing conditions for optimal hydration levels both in-wardly as well as outwards.

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list two disputes that might arise in the context of message authentication.

Answers

In the context of message authentication, disputes can arise due to a variety of reasons. Here are two possible disputes:

1. Key Management Dispute: In message authentication, a shared secret key is used to generate and verify message authentication codes (MACs). However, if there is a dispute over the key management, such as who has access to the key, who changed the key, or whether the key has been compromised, it can lead to disputes over the authenticity of the message. For example, if two parties are using the same key for different purposes, and one party believes that the key has been stolen, the other party may refuse to accept any messages from the first party until the key issue is resolved.

2. Algorithm Dispute: Another possible dispute could arise over the choice of algorithm used for message authentication. Different algorithms may have different strengths and weaknesses, and some may be more suitable for certain types of messages or systems. If there is a dispute over the algorithm used, such as whether it is secure enough or whether it is appropriate for the message at hand, it can lead to a breakdown in communication and a lack of trust between the parties. For example, if one party uses a weaker algorithm than the other party, the latter party may refuse to accept messages from the former party until they upgrade to a more secure algorithm.

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Here are two disputes that might arise in the context of message authentication:

Dispute over the authenticity of the message: One party may claim that a message is authentic, while the other party denies it. For example, a sender may claim that a message was sent by them, but the recipient may dispute the claim, arguing that the message was forged or tampered with. This dispute can arise due to a variety of reasons, such as a compromised key or a vulnerability in the authentication mechanism.

Dispute over the integrity of the message: A party may claim that a message has been tampered with during transmission, while the other party denies it. For example, a sender may claim that a message was transmitted without any modification, but the recipient may dispute it, arguing that the message was altered en route. This dispute can arise due to errors or attacks during transmission, such as data corruption or a man-in-the-middle attack.

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