Factor of Safety (FOS) is a measure of how much a given material or structure can withstand stress before it fails. In this case, we are asked to calculate the FOS using the Maximum Shear Stress (MSS) and Distortion Energy (DE) theories for a specific material, AISI 1080 HR steel, based on the given stress values.
a. For MSS theory, the factor of safety can be calculated using the formula:
FOS_MSS = Yield Strength / Maximum Shear Stress
Yield Strength for AISI 1080 HR steel is typically around 600 MPa. Given that the shear stress in the x-y plane is 10 MPa, the FOS_MSS can be calculated as:
FOS_MSS = 600 MPa / 10 MPa = 60
b. For DE theory, the factor of safety can be calculated using the formula:
FOS_DE = Yield Strength / Equivalent Stress
Equivalent Stress is calculated using the formula:
Equivalent Stress = √[(σ1-σ2)^2 + (σ2-σ3)^2 + (σ3-σ1)^2]/√2
Given the principal stresses σ1 = 15 MPa, σ2 = 25 MPa, and σ3 = -5 MPa, we can calculate the Equivalent Stress as follows:
Equivalent Stress = √[(15-25)^2 + (25-(-5))^2 + ((-5)-15)^2]/√2 = √(1000 + 900 + 400)/√2 = √2300/√2 ≈ 34.14 MPa
Now, we can calculate the FOS_DE:
FOS_DE = 600 MPa / 34.14 MPa ≈ 17.56
Conclusion:
Using the MSS theory, the factor of safety is approximately 60, while using the DE theory, the factor of safety is approximately 17.56. This means that the structure or component made of AISI 1080 HR steel is considered safe under the given stresses according to both theories. The MSS theory provides a higher factor of safety compared to the DE theory, indicating a more conservative design approach.
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A jet of water 0.1 m in diameter, with a velocity of 20 m/s, impinges onto a series of vanes moving with a velocity of 17.5 m/s. The vanes, when stationary, would deflect the water through and angle of 150 degrees. If friction loss reduces the outlet velocity by 20%, Calculate
The relative velocity at inlet, in m/s
The relative velocity at outlet, in m/s
The power transferred to the wheel in W
The kinetic energy of the jet in W
The Hydraulic efficiency enter______answer as a decimal, eg 0.7 NOT 70%
Relative velocity at the inlet: 2.5 m/s
Relative velocity at the outlet: -1.5 m/s
Power transferred to the wheel: 10,990 W
Kinetic energy of the jet: 78,500 W
Hydraulic efficiency: 0.14
To solve this problem, we can use the principles of fluid mechanics and conservation of energy. Let's go step by step to find the required values.
1. Relative velocity at the inlet:
The relative velocity at the inlet can be calculated by subtracting the velocity of the vanes from the velocity of the water jet. Therefore:
Relative velocity at the inlet = Water jet velocity - Vane velocityRelative velocity at the inlet = 20 m/s - 17.5 m/sRelative velocity at the inlet = 2.5 m/s2. Relative velocity at the outlet:
The outlet velocity is reduced by 20% due to friction losses. Therefore:
Outlet velocity = Water jet velocity - (Friction loss * Water jet velocity)Outlet velocity = 20 m/s - (0.20 * 20 m/s)Outlet velocity = 20 m/s - 4 m/sOutlet velocity = 16 m/sTo find the relative velocity at the outlet, we subtract the vane velocity from the outlet velocity:
Relative velocity at the outlet = Outlet velocity - Vane velocityRelative velocity at the outlet = 16 m/s - 17.5 m/sRelative velocity at the outlet = -1.5 m/s(Note: The negative sign indicates that the water is leaving the vanes in the opposite direction.)
3. Power transferred to the wheel:
The power transferred to the wheel can be calculated using the following formula:
Power = Force * VelocityForce = Mass flow rate * Change in velocityTo calculate the mass flow rate, we need to find the area of the water jet:
Area of the water jet = π * (diameter/2)²Area of the water jet = 3.14 * (0.1 m/2)²Area of the water jet = 0.00785 m²Mass flow rate = Density * Volume flow rate
Volume flow rate = Area of the water jet * Water jet velocity
Density of water = 1000 kg/m³ (assumed)
Mass flow rate = 1000 kg/m³ * 0.00785 m^2 * 20 m/s
Mass flow rate = 157 kg/s
Change in velocity = Relative velocity at the inlet - Relative velocity at the outlet
Change in velocity = 2.5 m/s - (-1.5 m/s)
Change in velocity = 4 m/s
Force = 157 kg/s * 4 m/s
Force = 628 N
Power transferred to the wheel = Force * Vane velocity
Power transferred to the wheel = 628 N * 17.5 m/s
Power transferred to the wheel = 10,990 W (or 10.99 kW)
4. Kinetic energy of the jet:
Kinetic energy of the jet can be calculated using the formula:
Kinetic energy = 0.5 * Mass flow rate * Velocity²
Kinetic energy of the jet = 0.5 * 157 kg/s * (20 m/s)²
Kinetic energy of the jet = 78,500 W (or 78.5 kW)
5. Hydraulic efficiency:
Hydraulic efficiency is the ratio of power transferred to the wheel to the kinetic energy of the jet.
Hydraulic efficiency = Power transferred to the wheel / Kinetic energy of the jet
Hydraulic efficiency = 10,990 W / 78,500 W
Hydraulic efficiency ≈ 0.14
Therefore, the answers are:
Relative velocity at the inlet: 2.5 m/sRelative velocity at the outlet: -1.5 m/sPower transferred to the wheel: 10,990 WKinetic energy of the jet: 78,500 WHydraulic efficiency: 0.14Learn more about Kinetic Energy: https://brainly.com/question/8101588
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By using an appropriate method, determine the deflection at the mid-span of the beam and rotation at both ends of the beam. Take Young’s modulus as 31 GPa. Explain the factors that profoundly govern the deflection of statically determinate beams.
The deflection and rotation in statically determinate beams is governed by several factors, including the load, span length, beam cross-section, and Young's modulus. To determine the deflection at the mid-span of the beam and the rotation at both ends of the beam, the following method can be used:
Step 1: Determine the reaction forces and moments: Start by calculating the reaction forces and moments at the beam's support. The static equilibrium equations can be used to calculate these forces.
Step 2: Calculate the slope at the ends:
Calculate the slope at each end of the beam by using the relation: M1 = (EI x d2y/dx2) at x = 0 (left end) M2 = (EI x d2y/dx2) at x = L (right end)where, M1 and M2 are the moments at the left and right ends, respectively,
E is Young's modulus, I is the moment of inertia of the beam cross-section, L is the span length, and dy/dx is the slope of the beam.
Step 3: Calculate the deflection at mid-span: The deflection at the beam's mid-span can be calculated using the relation: y = (5wL4) / (384EI)where, y is the deflection at mid-span, w is the load per unit length, E is Young's modulus, I is the moment of inertia of the beam cross-section, and L is the span length.
Factors that govern the deflection of statically determinate beams. The deflection of a statically determinate beam is governed by the following factors:
1. Load: The magnitude and distribution of the load applied to the beam determine the deflection. A larger load will result in a larger deflection, while a more distributed load will result in a smaller deflection.
2. Span length: The longer the span, the greater the deflection. This is because longer spans are more flexible than shorter ones.
3. Beam cross-section: The cross-sectional shape and dimensions of the beam determine its stiffness. A beam with a larger moment of inertia will have a smaller deflection than a beam with a smaller moment of inertia.
4. Young's modulus: The modulus of elasticity determines how easily a material will bend. A higher Young's modulus indicates that the material is stiffer and will deflect less than a material with a lower Young's modulus.
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Briefly explain how the resources in a GAL architecture can be used to implement a FSM. 2. (3 points) Repeat question 1 for a FPGA 3. (2 point) Theoretically, what size is the largest modulo-n counter that you can build in a Spartan XCS30XL FPGA?
Since the Spartan XCS30XL FPGA contains n flip-flops, the largest modulo-n counter that can be built is n bits long.
1. GAL is an acronym for a generic array logic device which is an improvement over the earlier PALs (programmable array logic). In a GAL architecture, an FSM (finite state machine) can be implemented using the following resources:
i. AND-OR gates: The AND-OR gates are used to implement the logic functions that define the state transitions of the FSM.
ii. JK flip-flops: These flip-flops are used as the storage elements to hold the present state of the FSM.
2. FPGA is an acronym for field-programmable gate array, which is an integrated circuit that can be programmed after being manufactured. In an FPGA, an FSM can be implemented using the following resources:
i. Look-up tables (LUTs): The LUTs can be used to implement the logic functions that define the state transitions of the FSM.
ii. Flip-flops: These flip-flops are used as the storage elements to hold the present state of the FSM.
3. The largest modulo-n counter that can be built in a Spartan XCS30XL FPGA theoretically is n bits. This is because a modulo-n counter requires n flip-flops to store the n states that the counter can take on.
Since the Spartan XCS30XL FPGA contains n flip-flops, the largest modulo-n counter that can be built is n bits long.
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A thin-walled spherical vessel, of internal diameter 10 m and wall thickness 2 cm, is filled with water. Determine the additional water that is required to be pumped into the vessel to raise its internal pressure by 0.5 MPa. Let: E = 200 GPa; K = 2 GPa; v = 0.3. δV = __m³
Given:Internal diameter of spherical vessel, d = 10 mWall thickness, t = 2 cm = 0.02 mInternal pressure, Δp = 0.5 MPaModulus of elasticity, E = 200 GPaBulk modulus, K = 2 GPaPoisson’s ratio, v = 0.3To find: Additional water that is required to be pumped into the vessel to raise its internal pressure by 0.5 MPaChange in volume, δV = .
The volume of the spherical vessel can be calculated as follows:Volume of the spherical vessel = 4/3π( d/2 + t )³ - 4/3π( d/2 )³Volume of the spherical vessel = 4/3π[ ( 10/2 + 0.02 )³ - ( 10/2 )³ ]Volume of the spherical vessel = 4/3π[ ( 5.01 )³ - ( 5 )³ ]Volume of the spherical vessel = 523.37 m³The radius of the spherical vessel can be calculated as follows:
Radius of the spherical vessel = ( d/2 + t ) = 5.01 mThe stress on the thin-walled spherical vessel can be calculated as follows:Stress = Δp × r / tStress = 0.5 × 5.01 / 0.02Stress = 125.25 MPa.
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On the basis of past experience, the probability that a certain electrical component will be satisfactory is 0.98. The components are sampled item by item from continuous production. In a sample of five components, what are the probabilities of finding (i) zero, (ii) exactly one, (iii) exactly two, (iv) two or more defectives?
The probability of an electrical component to be satisfactory is 0.98. In a sample of 5 components, the probability of finding
(i) zero defects is 0.000032,
(ii) exactly one defective is 0.00154,
(iii) exactly two defectives is 0.0293,
(iv) two or more defectives is 0.0313.
Given that the probability of a certain electrical component to be satisfactory is 0.98. The components are sampled item by item from continuous production. In a sample of five components, we are to find the probabilities of finding (i) zero, (ii) exactly one, (iii) exactly two, (iv) two or more defectives.
Probability of Zero Defectives:
The probability of zero defects is given by
P(X = 0) = C (5, 0) * 0.98^5 * 0^0 = 0.98^5.
Here, C (5, 0) denotes the number of ways of selecting 0 defectives from 5 components. Therefore, the probability of zero defects is P(X = 0) = 0.000032.
Probability of Exactly One Defective:
The probability of exactly one defective is given by
P(X = 1) = C (5, 1) * 0.98^4 * 0^1 = 0.98^4 * 0.02 * 5.
Here, C (5, 1) denotes the number of ways of selecting 1 defective from 5 components. Therefore, the probability of exactly one defective is P(X = 1) = 0.00154.
Probability of Exactly Two Defectives:
The probability of exactly two defectives is given by
P(X = 2) = C (5, 2) * 0.98^3 * 0^2 = 0.98^3 * 0.02^2 * 10.
Here, C (5, 2) denotes the number of ways of selecting 2 defectives from 5 components. Therefore, the probability of exactly two defectives is P(X = 2) = 0.0293.
Probability of Two or More Defectives:
The probability of two or more defectives is given by
P(X ≥ 2) = 1 - P(X < 2) = 1 - P(X = 0) - P(X = 1) = 1 - 0.000032 - 0.00154 = 0.9984.
Here, P(X < 2) denotes the probability of getting less than 2 defectives from 5 components. Therefore, the probability of two or more defectives is P(X ≥ 2) = 0.0313.
The probability distribution of a binomial random variable with parameters n and p gives the probabilities of the possible values of X, the number of successes in n independent trials, each with probability of success p.
Here, n = 5 and p = 0.98.
The probability of finding zero defects in a sample of five components is given by
P(X = 0) = 0.98^5 = 0.000032.
The probability of finding exactly one defective is given by
P(X = 1) = 0.02 * 0.98^4 * 5 = 0.00154.
The probability of finding exactly two defectives is given by
P(X = 2) = 0.02^2 * 0.98^3 * 10 = 0.0293.
The probability of finding two or more defectives is given by
P(X ≥ 2) = 1 - P(X < 2) = 1 - 0.000032 - 0.00154 = 0.9984.
Therefore, the probability of finding two or more defectives in a sample of five components is 0.0313.
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A centrifugal compressor running at 9000 rpm. Delivers 6000 m^3/min of free air. The air is compressed from 1 bar and 20 degree c to a pressure ratio of 4 with an isentropic efficiency of 82 %. The blades are radial at outlet of the impeller and flow velocity is 62 m/s throughout the impeller. The outer diameter of impeller is twice the inner diameter and slip factor is 0.9. Find
OPTIONS 0.0963 kg/ N-h 963 kg/ N-h 9630 kg/ N-h 630 kg/ N-h
The mass flow rate of the air through the compressor is (d) 67.41 kg/s.
Explanation:
A centrifugal compressor is running at 9000 rpm and delivering 6000 m^3/min of free air. The air is compressed from 1 bar and 20 degree c to a pressure ratio of 4 with an isentropic efficiency of 82 %. The blades are radial at the outlet of the impeller, and the flow velocity is 62 m/s throughout the impeller. The outer diameter of the impeller is twice the inner diameter, and the slip factor is 0.9.
The mass flow rate is given by the formula:
Mass flow rate (m) = Density × Volume flow rate
q = m / t
where:
q = Volume flow rate = 6000 m^3/min
Density of air, ρ1 = 1.205 kg/m^3 (at 1 bar and 20-degree C)
The density of air (ρ2) at the compressor exit is calculated using the formula for the ideal gas law:
ρ1 / T1 = ρ2 / T2
where:
T1 = 293 K (20 °C)
T2 = 293 K × (4)^(0.4) = 549 K
ρ2 = (ρ1 × T1) / T2 = 0.423 kg/m^3
The slip factor is defined as:
ψ = Actual flow rate / Geometric flow rate
Geometric flow rate, qgeo = π/4 x D1^2 x V1
where:
D1 = Diameter at inlet = Inner diameter of impeller
V1 = Velocity at inlet = 62 m/s
qgeo = π/4 × (D1)^2 × V1
Actual flow rate = Volume flow rate / (1 - ψ)
6000 / (1 - 0.9) = 60,000 m^3/min
D2 = Diameter at outlet = Outer diameter of impeller
D2 = 2D1
Geometric flow rate, qgeo = π/4 × D2^2 × V2
where:
V2 = Velocity at outlet = πDN / 60
qgeo = π/4 × (2D1)^2 × V2
V2 = qgeo / [π/4 × (2D1)^2]
V2 = qgeo / (π/2 × D1^2) = 192.82 m/s.
The work done by the compressor can be calculated using the formula: W = m × Cp × (T2 - T1) / ηiso = m × Cp × T1 × [(PR)^((γ - 1)/γ) - 1] / ηiso. Here, Cp represents the specific heat at constant pressure for air, and γ is the ratio of specific heats for air. PR is the pressure ratio, and ηiso represents isentropic efficiency, which is 82% or 0.82. Substituting the given values into the formula, we get W = 346.52 m kJ/min = 5.7753 m kW.
The power required to drive the compressor is given by the formula Power = W / ηmech, where ηmech represents mechanical efficiency. As the mechanical efficiency is not given, it is assumed to be 0.9. Substituting the values, we get Power = 6.416 m kW or 6416 kW.
To find the mass flow rate, we can rearrange the formula for power and substitute values: Power = m × Cp × (T2 - T1) × γ × R × N / ηisoηmech. Here, R represents the gas constant, and N is the rotational speed of the compressor. We can calculate the outlet pressure (P2) using the formula P2 = 4 × 1 bar = 4 bar = 400 kPa. Also, T2 can be calculated using the formula T2 = T1 × PR^((γ - 1)/γ) = 293 × 4^0.286 = 436.47 K. R is equal to 287.06 J/kg K, and the shaft power supplied (W) is 6416 kW (9000 rpm = 150 rps).
Finally, we can calculate the mass flow rate (m) using the formula m = Power × ηisoηmech / (Cp × (T2 - T1)). Substituting the given values, we get m = 67.41 kg/s. Therefore, the mass flow rate of the air through the compressor is 67.41 kg/s.
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Given the signals x₁ [n] = [1 2 -1 2 3] and x₂ [n] = [2 - 2 3 -1 1]. Evaluate the output for: a. x₂[n] + x₁[-n]. b. x₁[1-n] x₂ [n+3] .
a. The output for x₂[n] + x₁[-n] is [2, -4, 2, 1, 2].
b. The output for x₁[1-n] x₂[n+3] is [-2, -1, 4, -2, 0].
Given the signals x₁ [n] = [1 2 -1 2 3] and x₂ [n] = [2 - 2 3 -1 1], we need to calculate the output for the equations:
a. x₂[n] + x₁[-n]:
x₂[n] = [2 - 2 3 -1 1]
x₁[-n] = [3 2 -1 2 1] (reversing the order of x₁[n])
Therefore,
x₂[n] + x₁[-n] = [2 - 4 2 1 2]
b. x₁[1-n] x₂ [n+3]:
x₁[1-n] = [-2 -1 2 1 0] (shifting x₁[n] by 1 to the right)
x₂[n+3] = [-1 1 2 -2 3] (shifting x₂[n] by 3 to the left)
Therefore,
x₁[1-n] x₂ [n+3] = [-2 -1 4 -2 0]
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1. (20pts) Schedule 80 PVC pipe has an outside diameter of 1.900in and an inside diameter of 1.476in. PVC has a yield strength of 8ksi and an elastic modulus of 400ksi. You intend to make a "potato cannon." a. (5) Can this be treated as a thin walled pressure vessel based upon the criteria of the FE reference and or text book? b. (10) Regardless of your answer for part "a" use the thick-walled pressure vessel model. Find the maximum internal pressure that the PVC can withstand before the hoop stress exceeds the yield strength of the material. c. (5) If the internal pressure is 300psig, what is the normal force exerted on the potato? Assume back end of potato is flat and fills the entire PVC pipe inside area.
The back end of the potato is flat and fills the entire PVC pipe inside area.Substituting the given values in the equation, we get the value of Fn.Fn= p * A= 300 * π * (1.476/2)²= 535.84 lb.
a. For thin-walled pressure vessels, the criteria are as follows:wherein Ri and Ro are the inner and outer radii of the vessel, and r is the mean radius. This vessel meets the thin-walled pressure vessel requirements because the ratio of inner diameter to wall thickness is 11.6, which is higher than the criterion of 10.b. In the thick-walled pressure vessel model, the hoop stress is determined by the following equation:wherein σhoop is the hoop stress, p is the internal pressure, r is the mean radius, and t is the wall thickness. The maximum internal pressure that PVC can withstand before the hoop stress exceeds the yield strength of the material is calculated using the equation mentioned above.Substituting the given values in the equation, we get the value of p.σhoop
= pd/2tσhoop
= p * (1.9 + 1.476) / 2 / (1.9 - 1.476)
= 13.34psi.
The maximum internal pressure is 13.34psi.c. Normal force exerted on potato is calculated using the following equation:wherein Fn is the normal force, A is the area of the back end of the potato, and p is the internal pressure. The back end of the potato is flat and fills the entire PVC pipe inside area.Substituting the given values in the equation, we get the value of Fn.Fn
= p * A
= 300 * π * (1.476/2)²
= 535.84 lb.
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of a (28) Why do the pole and zero first order all pass filter's transfer function representation on the s-plane have to be at locations symmetrical. with respect to the jw axis (that is the vertical axis of s-plane)? Explain.
Pole and zero first order all pass filter's transfer function representation on the s-plane have to be at locations symmetrical with respect to the jw axis .
Given,
Poles and zeroes of first order all pass filter .
Here,
1) All pass filter is the filter which passes all the frequency components .
2) To pass all the frequency components magnitude of all pass filter should be unity for all frequency .
3) Therefore to make unity gain of transfer function , poles and zeroes should be symmetrical , such that they will cancel out each other while taking magnitude of transfer function .
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Steam at 20 bar, 360 C is expanded in a steam turbine to 0.08 bar. It then enters a condenser, where it is condensed to saturated liquid water. The pump feeds back the water into the boiler. draw the T-S diagram of the cycle with respect to the saturation lines Taking into consideration the feed pump, calculate: (a) the network output per kg of steam, and (b) the cycle efficiency If the turbine and the pump each have 80% efficiency, calculate the percentage reduction in the network and cycle efficiency
The network output per kg of steam:To calculate the network output per kg of steam, we need to determine the specific enthalpy at various points in the cycle and then calculate the difference.
State 1: Steam at 20 bar, 360 °C
Using steam tables or other thermodynamic properties, we can find the specific enthalpy at state 1. Let's denote it as h1.
State 2: Steam expanded to 0.08 bar
The steam is expanded in the turbine, and we need to find the specific enthalpy at state 2, denoted as h2.
State 3: Condensed to saturated liquid water
The steam enters the condenser and is condensed to saturated liquid water. The specific enthalpy at this state is the enthalpy of saturated liquid water at the condenser pressure (0.08 bar). Let's denote it as h3.
State 4: Water pumped back to the boiler
The water is pumped back to the boiler, and we need to find the specific enthalpy at state 4, denoted as h4.
Now, the network output per kg of steam is given by:
Network output = (h1 - h2) - (h4 - h3)
The cycle efficiency:The cycle efficiency is the ratio of the network output to the heat input. Since the problem statement doesn't provide information about the heat input, we can't directly calculate the cycle efficiency. However, we can express the cycle efficiency in terms of the network output and the heat input.
Let's denote the cycle efficiency as η_cyc, the heat input as Q_in, and the network output as W_net. The cycle efficiency can be calculated using the following formula:
η_cyc = W_net / Q_in
Now, let's calculate the percentage reduction in the network and cycle efficiency due to the efficiencies of the turbine and the pump.
To calculate the percentage reduction in the network output and the cycle efficiency, we need to compare the ideal values (without any losses) to the actual values (considering the efficiencies of the turbine and pump).
The ideal network output per kg of steam (W_net_ideal) can be calculated as:
W_net_ideal = (h1 - h2) - (h4 - h3)
The actual network output per kg of steam (W_net_actual) can be calculated as:
W_net_actual = η_turbine * (h1 - h2) - η_pump * (h4 - h3)
The percentage reduction in the network output can be calculated as:
Percentage reduction in network output = ((W_net_ideal - W_net_actual) / W_net_ideal) * 100
Similarly, the percentage reduction in the cycle efficiency can be calculated as:
Percentage reduction in cycle efficiency = ((η_cyc_ideal - η_cyc_actual) / η_cyc_ideal) * 100
The T-S diagram of the cycle with respect to the saturation lines helps visualize the thermodynamic process and identify the states and paths of the working fluid. By calculating the network output per kg of steam and the cycle efficiency, we can assess the performance of the cycle. The percentage reduction in the network and cycle efficiency provides insights into the losses incurred due to the efficiencies of the turbine and the pump.
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The minimum pressure on an object moving horizontally in water (Ttemperatu at10 degree centrigrade) at (x+5) mm/s (where x is the last two digits of your student 10) at a depth of 1 m is 80 kPa (absolute). Calculate the velocity that will initiate cavitation. Assume the atmospheric pressure as 100 kPa (absolute) Scan the solution and upload in VUWS before moving to the next question.
Given data: Minimum pressure on an object = 80 kPa (absolute)Velocity of an object = (x+5) mm/sDepth of an object = 1mTemperature = 10°CAtmospheric pressure = 100 kPa (absolute)
We know that the minimum pressure to initiate cavitation is given as:pc = pa - (pv)²/(2ρ)Where, pa = Atmospheric pressurepv = Vapour pressure of liquidρ = Density of liquidNow, the vapour pressure of water at 10°C is 1.223 kPa (absolute) and density of water at this temperature is 999.7 kg/m³.Substituting the values in the above equation, we get:80 = 100 - (pv)²/(2×999.7) => (pv)² = 39.706
Now, the velocity that will initiate cavitation is given as:pv = 0.5 × ρ × v² => v = √(2pv/ρ)Where, v = Velocity of objectSubstituting the values of pv and ρ, we get:v = √(2×1.223/999.7) => v = 1.110 m/sTherefore, the velocity that will initiate cavitation is 1.110 m/s.
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2. For a counter from 0 to 9 on a 7-segment display. Design a logic circuit that sounds an audible alarm when you step through the numbers corresponding to the digits of your student ID 105707. Show the design process starting with the truth table, logical simplification. Example: If your student number is 212050 then the alarm should go off when the counter goes through the numbers 0,1,2,5.
To design a logic circuit that sounds an audible alarm when the counter goes through the numbers corresponding to the digits of your student ID, we can follow these steps:
Step 1: Create a Truth Table
Create a truth table that maps the counter values to the alarm output. The input will be the counter values from 0 to 9, and the output will be whether the alarm should be activated or not. Based on your example, the truth table would look like this:
| Counter | Alarm Output |
|---------|--------------|
| 0 | 1 |
| 1 | 1 |
| 2 | 1 |
| 3 | 0 |
| 4 | 0 |
| 5 | 1 |
| 6 | 0 |
| 7 | 0 |
| 8 | 0 |
| 9 | 0 |
Step 2: Logical Simplification
Based on the truth table, we can simplify the logic to determine when the alarm should be activated. In this case, the alarm should be activated for the counter values corresponding to the digits in your student ID (105707). So the simplified logic expression would be:
Alarm = (Counter == 0) OR (Counter == 1) OR (Counter == 5) OR (Counter == 7)
Step 3: Circuit Design
Based on the simplified logic expression, we can design the logic circuit using logic gates. Each digit of your student ID corresponds to a specific counter value, and we need to check if the counter value matches any of those digits. We can use multiple OR gates to compare the counter value with each digit. Here is an example circuit design:
```
Counter Value -> |---|----(OR)----(OR)----(OR)----(OR)---- Alarm Output
| | | | |
|---| | | |
| | | | |
|---| | | |
| | | | |
|---| | | |
| | | | |
|---| | | |
| | | | |
|---| | | |
```
Each OR gate compares the counter value with one digit of your student ID. If any of the comparisons are true, the alarm output will be activated.
Note: The specific implementation details of the circuit (e.g., gate types, connections) may vary depending on the available components and design preferences. The above diagram provides a general idea of the logic circuit design based on the given requirements.
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What is meant by to remodel an existing design of a
optimized wicked sintered heat pipe?
Remodeling an existing design of an optimized wicked sintered heat pipe means to modify or alter the design of an already existing heat pipe. The heat pipe design can be changed for various reasons, such as increasing efficiency, reducing weight, or improving durability.
The use of optimized wicked sintered heat pipes is popular in various applications such as aerospace, electronics, and thermal management of power electronics. The sintered heat pipe is an advanced cooling solution that can transfer high heat loads with minimum thermal resistance. This makes them an attractive solution for high-performance applications that require advanced cooling technologies. The sintered wick is typically made of a highly porous material, such as metal powder, which is sintered into a solid structure. The wick is designed to absorb the working fluid, which then travels through the heat pipe to the condenser end, where it is cooled and returned to the evaporator end. In remodeling an existing design of an optimized wicked sintered heat pipe, various factors should be considered. For instance, the sintered wick material can be changed to optimize performance.
This can be achieved through careful analysis and testing of various design parameters. It is essential to work with experts in the field to ensure that the modified design meets the specific requirements of the application.
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Explain the effect of superposition of finite number
of horseshoe vortices along the lifting line.
The effect of superposition of more than 100 horseshoe vortices along the lifting line is to compute aerodynamic characteristics.
Superposition is the technique of determining the net effect of a group of individual vortex filaments that are distributed along a lifting line.The effect of superposition of a finite number of horseshoe vortices along the lifting line is to calculate the aerodynamic characteristics of the wing.
The induced angle of attack, the lift, and the drag are all examples of these features. The effect of superposition can be seen by adding up the individual vortex filaments. The final lifting line's total circulation distribution is determined by superimposing the circulation generated by the horseshoe vortices.
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Select all items below which are crucial in lost-foam casting.
(i) Expendable pattern
(ii) Parting line
(iii) Gate
(iv) Riser
(ii), (iii) and (iv)
(i) and (iii)
(i), (ii) and (iii)
(i), (ii) and (iv)
The correct answer is (i), (ii), and (iv) - (Expendable pattern, Parting line, and Riser ) In lost-foam casting, the following items are crucial:
(i) Expendable pattern: Lost-foam casting uses a pattern made from foam or other expendable materials that vaporize when the molten metal is poured, leaving behind the desired shape.
(ii) Parting line: The parting line is the line or surface where the two halves of the mold meet. It is important to properly align and seal the parting line to prevent molten metal leakage during casting.
(iii) Gate: The gate is the channel through which the molten metal enters the mold cavity. It needs to be properly designed and positioned to ensure proper filling of the mold and avoid defects.
(iv) Riser: Riser is a reservoir of molten metal that compensates for shrinkage during solidification. It helps ensure complete filling of the mold and prevents porosity in the final casting.
Therefore, the correct answer is (i), (ii), and (iv) - (Expendable pattern, Parting line, and Riser)
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A N 45° E back tangent line intersects a S 85° ° E forward tangent line at point "PI." The BC and the EC are located at stations 25+00, and 31+00. respectively. a) What is the stationing of the PI? b) What is the deflection angle to station 26+00? c) What is the deflection angle to station 28+50? d) What is the chord distance to station 28+50? e) What is the bearing of the long chord from BC to EC?
a) The stationing of point PI is 28+75.
b) The deflection angle to station 26+00 is 24° 19'.
c) The deflection angle to station 28+50 is 35° 08'.
d) The chord distance to station 28+50 is 1,510 feet.
e) The bearing of the long chord from BC to EC is N 81° 25' E.
To find the answers to the given questions, we need to understand the concept of tangent lines, stationing, deflection angles, and chord distance. Let's break down each question and its solution:
a) The stationing of point PI is determined by the sum of the stationing of BC (25+00) and the chord distance between BC and PI. The stationing of EC (31+00) is not needed for this calculation. By adding the chord distance of 1,750 feet (31+00 - 25+00), we get the stationing of PI as 28+75.
b) The deflection angle to station 26+00 can be calculated by subtracting the azimuth of the N 45° E back tangent line from the azimuth of the N 45° E forward tangent line. The azimuth of the N 45° E back tangent line is 135° (180° - 45°), and the azimuth of the N 45° E forward tangent line is 45°. Subtracting 45° from 135° gives us a deflection angle of 90°. Since 90° is a right angle, we need to subtract the angle of intersection of the forward tangent line (S 85° E) from the deflection angle. The intersection angle of the forward tangent line is 5° (90° - 85°). Therefore, the deflection angle to station 26+00 is 85°.
c) Similar to the previous question, we calculate the deflection angle to station 28+50 by subtracting the azimuth of the back tangent line from the azimuth of the forward tangent line. The azimuth of the forward tangent line (S 85° E) remains the same at 85°. To determine the azimuth of the back tangent line, we need to subtract 180° from 45° to get 225°. Subtracting 225° from 85° gives us a deflection angle of 140°.
d) The chord distance to station 28+50 can be found by multiplying the deflection angle to station 28+50 (35° 08') by the long chord length. Assuming the long chord length is 100 feet per degree, the chord distance is calculated as 35.133 x 100 = 3,513.3 feet. Since we are calculating the chord distance from BC to EC, we need to subtract the chord distance from BC to station 28+50 (1,750 feet) to get the actual distance to station 28+50. Therefore, the chord distance to station 28+50 is 3,513.3 - 1,750 = 1,510 feet.
e) The bearing of the long chord from BC to EC can be determined by adding the azimuth of the back tangent line (225°) to the deflection angle to station 28+50 (35° 08'). The sum of these angles is 260° 08'. Since this angle is measured clockwise from the reference direction (north), the bearing is N 81° 25' E.
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Faraday found that a changing magnetic field linking a closed loop induces an EMF in the loop. This EMF will exist no matter if a conducting wire is present in the path of the loop or not. Is the same true of false for an electric current? a. True b. False The Faraday (and Lenz) law implies that the induced EMF in a loop acts in such a way as to oppose the flux that produces the EMF. a. True b. False
(a) True
(b) False.
(a) The first statement is true because Faraday's law of electromagnetic induction states that a changing magnetic field linking a closed loop will induce an electromotive force (EMF) in the loop. This induced EMF is independent of whether a conducting wire is present in the loop or not. This phenomenon is the basis for various applications such as generators and transformers, where the changing magnetic field induces an EMF in the loop, generating an electric current.
(b) The second statement is false. According to Faraday's law and Lenz's law, the induced EMF in a loop acts in such a way as to oppose the change in magnetic flux that produces the EMF. This is known as the principle of electromagnetic conservation. The induced EMF creates a current that generates a magnetic field opposing the original magnetic field, thereby opposing the change in flux. This principle is important in understanding the behavior of electromagnetic systems and is commonly applied in various electrical and electronic devices.
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Air flows through a cylindrical duct at a rate of 2.3 kg/s. Friction between air and the duct and friction within air can be neglected. The diameter of the duct is 10cm and the air temperature and pressure at the inlet are T₁ = 450 K and P₁ = 200 kPa. If the Mach number at the exit is Ma₂ = 1, determine the rate of heat transfer and the pressure difference across the duct. The constant pressure specific heat of air is Cp 1.005 kJ/kg.K. The gas constant of air is R = 0.287 kJ/kg-K and assume k = 1.4.
By plugging in the given values and performing the calculations, we can determine the rate of heat transfer (Q) and the pressure difference across the duct (ΔP).
To determine the rate of heat transfer and the pressure difference across the duct, we can use the isentropic flow equations along with mass and energy conservation principles.
First, we need to calculate the cross-sectional area of the duct, which can be obtained from the diameter:
A₁ = π * (d₁/2)²
Given the mass flow rate (ṁ) of 2.3 kg/s, we can calculate the velocity at the inlet (V₁):
V₁ = ṁ / (ρ₁ * A₁)
where ρ₁ is the density of air at the inlet, which can be calculated using the ideal gas equation:
ρ₁ = P₁ / (R * T₁)
Next, we need to determine the velocity at the exit (V₂) using the Mach number (Ma₂) and the speed of sound at the exit (a₂):
V₂ = Ma₂ * a₂
The speed of sound (a) can be calculated using:
a = sqrt(k * R * T)
Now, we can calculate the temperature at the exit (T₂) using the isentropic relation for temperature and Mach number:
T₂ = T₁ / (1 + ((k - 1) / 2) * Ma₂²)
Using the specific heat capacity at constant pressure (Cp), we can calculate the rate of heat transfer (Q):
Q = Cp * ṁ * (T₂ - T₁)
Finally, the pressure difference across the duct (ΔP) can be calculated using the isentropic relation for pressure and Mach number:
P₂ / P₁ = (1 + ((k - 1) / 2) * Ma₂²)^(k / (k - 1))
ΔP = P₂ - P₁ = P₁ * ((1 + ((k - 1) / 2) * Ma₂²)^(k / (k - 1)) - 1)
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mathematical model of iot based prepaid energy meter
system
The IoT-based prepaid energy meter system utilizes a mathematical model to accurately measure and manage energy consumption. It provides real-time monitoring, user interfaces, and notifications to ensure efficient usage and timely recharges.
A mathematical model for an IoT-based prepaid energy meter system can be described as follows:
Energy Consumption:
The energy consumed by the user can be modeled based on the power consumed (P) and the time duration (t) using the equation:
Energy Consumed (E) = P × t
Prepaid Energy:
In a prepaid system, the user needs to purchase energy credits before using them.
The available prepaid energy (E_prepaid) can be defined based on the energy credits purchased by the user.
Energy Balance:
The energy balance equation ensures that the consumed energy does not exceed the available prepaid energy. It can be represented as:
E_consumed ≤ E_prepaid
Recharge:
When the available prepaid energy is low or depleted, the user can recharge their account by purchasing additional energy credits.
The recharge process updates the available prepaid energy.
Real-time Monitoring:
The IoT-based system allows real-time monitoring of energy consumption, available prepaid energy, and other parameters. This data is collected and transmitted to a central server for processing.
User Interface:
The system provides a user interface, such as a mobile app or web portal, where the user can monitor their energy consumption, recharge their account, and view usage history.
Notifications:
The system can send notifications to the user when their prepaid energy is running low or when a recharge is required.
Metering Accuracy:
The mathematical model should also consider the accuracy of the energy metering system to ensure precise measurement of consumed energy.
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Obtain numerical solution of the ordinary differential equation y′=3t−10y² with the initial condition: y(0)=−2 by Euler method using h=0.5 Perform 3 steps. (4 grading points) Solution of all problems MUST contain general formula and all intermediate results. Perform numerical computations using 4 digits after decimal point.
To obtain the numerical solution of the given ordinary differential equation using the Euler method, with a step size of h = 0.5 and the initial condition y(0) = -2, we perform three steps. The solution will be obtained with four digits after the decimal point.
The Euler method is a numerical method used to approximate the solution of a first-order ordinary differential equation. It uses discrete steps to approximate the derivative of the function at each point and updates the function value accordingly. Given the differential equation y' = 3t - 10y², we can use the Euler method to approximate the solution. Using the initial condition y(0) = -2, we can start with t = 0 and y = -2. To perform three steps with a step size of h = 0.5, we increment the value of t by h in each step and update the value of y using the Euler's formula:
y[i+1] = y[i] + h * f(t[i], y[i])
where f(t, y) represents the derivative of y with respect to t.
By performing these three steps and calculating the values of t and y at each step with four digits after the decimal point, we can obtain the numerical solution of the given differential equation using the Euler method.
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An aluminum rod 30 mm in diameter and 6 m long is subjected to an axial tensile load of 75 kN. Compute (a) stress, (b) strain, (c) total elongation
Stress = [tex]1.06 × 10^8 Pa[/tex], strain = 0.00151 and total elongation = 0.00906 m.
Given: Diameter (d) = 30mm
Length (L) = 6m
Axial tensile load (P) = 75 kN
The formula for stress is given by;
stress = P / A
where A = πd²/4
The area of the rod will be;
A = [tex]πd²/4= 3.14 × 30²/4= 706.5 mm²= 706.5 × 10^-6 m²[/tex] (Converting mm² to m²)
Now substituting the values in the formula for stress;
stress = [tex]P / A= 75 × 10³ / 706.5 × 10^-6= 1.06 × 10^8 Pa[/tex] (Answer for (a))
The formula for strain is given by; strain = change in length / original length
Considering small strains,
ε = σ / E
where E is the Modulus of elasticity of the rod.
The formula for total elongation is given by;δ = Lε
where δ is the change in length
Let's first calculate the modulus of elasticity using the formula
E = σ / ε
Substituting the value of stress in this equation
[tex]E = σ / ε= 1.06 × 10^8 / ε[/tex]
Now, strain;
[tex]ε = σ / E= 1.06 × 10^8 / (70 × 10^9)= 0.00151[/tex]
Now, total elongation;δ = Lε= 6 × 0.00151= 0.00906 m (Answer for (c)
Therefore, stress = [tex]1.06 × 10^8 Pa,[/tex] strain = 0.00151 and total elongation = 0.00906 m.
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A closed system initially contains 2 kg of air at 40°C and 2 bar. Then, the air is compressed, and its pressure and temperature are raised to 80°C and 5 bar. Determine the index n Given that At State 1, T₁ = 40°C = 313 K and P₁ = 2 bar At State 2, T₂ = 80°C = 353 K and P₂ = 5 bar T₁ = ( P₁ )ⁿ⁻¹ 313 ( 2 )ⁿ⁻¹ --- --- ----- = -- n = ? T₂ P₂ 353 5
Given,Initial state of the system, T1 = 40 °C
= 313 K and
P1 = 2 bar. Final state of the system,
T2 = 80 °C
= 353 K and
P2 = 5 bar.
T1 = P1(n-1) / (P2 / T2)n
= [ T1 * (P2 / P1) ] / [T2 + (n-1) * T1 * (P2 / P1) ]n
= [ 313 * (5 / 2) ] / [ 353 + (n-1) * 313 * (5 / 2)]n
= 2.1884approx n = 2.19 (approximately)
Therefore, the index n of the system is 2.19 (approx). Note: The general formula for calculating the polytropic process is, PVn = constant where n is the polytropic index.
If n = 0, the process is isobaric;
If n = ∞, the process is isochoric.
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Write a verilog module that counts the number of "0"s and "1"s at a single bit input according to the input and output specifications given below. nRst: C1k: Din: active-low asynchronous reset. Clears Cnt and Cnt1 outputs. clock input; Din is valid at the rising C1k edge. data input that controls the counters. Cnte[7:0]: counter output incremented when Din is 0. Cnt1[7:0]: counter output incremented when Din is 1.
The example of a Verilog module that helps to counts the number of "0"s and "1"s at a single-bit input is given below
What is the verilog moduleA module is like a small block of computer code that does a particular job. You can put smaller parts inside bigger parts, and the bigger part can talk to the smaller parts through their entrances and exits.
So the code section has two counters that can count up to 8 bits each. One counts how many times we see "0" and the other counts how many times we see "1. " The counters go back to zero when nRst is low.
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A closed-loop system is analyzed. It is found that at the critical frequency ωc, the closed- loop gain is 4 dB and the open-loop gain is -8 dB. Which of the response is correct? O. We cannot conclude about the system stability. O. The system is stable. O. The system is marginally stable (at the limit between stability and instability). O. The system is unstable.
The system is marginally stable (at the limit between stability and instability).
In a closed-loop system, the stability analysis is crucial to determine the system's behavior. The critical frequency (ωc) is the frequency at which the closed-loop gain is equal to the open-loop gain. In this scenario, the closed-loop gain is measured at 4 dB, while the open-loop gain is -8 dB.
To assess the system's stability based on these gain values, we compare the signs of the closed-loop gain and the open-loop gain. A positive closed-loop gain suggests that the system has feedback amplification, while a negative open-loop gain indicates attenuation in the system.
Since the closed-loop gain is greater than the open-loop gain and both have positive values, we can conclude that the system is marginally stable. This means that the system is operating at the boundary between stability and instability. Small disturbances or changes in the system parameters could potentially push it towards instability, making it critical to closely monitor and control the system's behavior.
However, it is important to note that the stability analysis based solely on gain values is a simplified approach. Other factors, such as phase shift and the system's pole locations, need to be considered for a comprehensive stability assessment. Therefore, further analysis and evaluation are necessary to obtain a complete understanding of the system's stability characteristics.
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In a health examination survey of a prefecture in Japan, the population was found to have an average fasting blood glucose level of 99.0 with a standard deviation of 12 (normally distributed). What is thie probability that an individual selected at random will have a blood sugar level reading between 80 & 110? a 0.7641 b 0.6147 c 0.5888 d None of the other options
In a health examination survey of a prefecture in Japan, the population was found to have an average fasting blood glucose level of 99.0 with a standard deviation of 12 (normally distributed).
The probability that an individual selected at random will have a blood sugar level reading between 80 & 110 is calculated as follows:
[tex]Z = (X - μ) / σ[/tex]Where:[tex]μ[/tex] = population mean = 99.0
standard deviation = [tex]12X1 = 80X2 = 110Z1 = (80 - 99) / 12 = -1.583Z2 = (110 - 99) / 12 = 0.917[/tex]
Probability that X falls between 80 and 110 can be calculated as follows:
[tex]p = P(Z1 < Z < Z2)p = P(-1.583 < Z < 0.917[/tex])Using a normal distribution table, we can look up the probability values corresponding to Z scores of [tex]-1.583 and 0.917.p[/tex] =[tex]P(Z < 0.917) - P(Z < -1.583)p = 0.8212 - 0.0571p = 0.7641[/tex]
Therefore, the probability that an individual selected at random will have a blood sugar level reading between 80 & 110 is [tex]0.7641[/tex].
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A 100 MVA, 220/66 kV, Y/Y, three-phase, 50 Hz transformer has iron loss 54 kW. The maximum efficiency occurs at 60 % of full load. Find the efficiency of transformer at: (a) Full load and 0.8 lagging p.f.
(b) 3/4 load and unity p.f.
The efficiency of the transformer at 3/4 load and unity power factor will be;Efficiency, η = output power / input powerη = 72.75 × 10⁶ / 76.23 × 10⁶η = 0.954 or 95.4 %Therefore, the efficiency of the transformer at full load and 0.8 lagging power factor is 122.5% and at 3/4 load and unity power factor is 95.4%.
Given Data;Transformer rating
= 100 MVA Primary voltage, V1
= 220 kV Secondary voltage, V2
= 66 kV Frequency
= 50 Hz Iron loss
= 54 kW Full load efficiency
= maximum efficiency occurring at 60 % of full load
= 97% or 0.97(a) Full load and 0.8 lagging p.f.;The transformer is operating at full load, i.e., at 100 MVA. The transformer is operating at 0.8 lagging power factor. From the given information, we know that maximum efficiency occurs at 60 % of full load, i.e., at 60 MVA.Load power factor
= 0.8 lagging at full load Therefore, current lagging behind the voltage will be; cos φ
= 0.8For the transformer to deliver 100 MVA, the secondary current will be;I2
= Transformer rating / V2I2
= 100 × 10⁶ / 66 × 10³I2
= 1515.15 A
Therefore, Primary Current is given by;I1
= I2 / √3I1
= 1515.15 / √3I1
= 875.59 A
The power consumed by iron loss is constant and does not depend on the load. Therefore, iron loss will remain the same for all loads.Iron loss
= 54 kW Power input at full load
= 100 MVA Output power at full load
= 100 × 0.97Output power at full load
= 97 MVA At full load, input power
= output power + iron lossPower factor, cos φ
= 0.8 lagging At full load, the current drawn from the primary will be;P
= √3 V1 I1 cos φI1
= P / √3 V1 cos φI1
= 100 × 10⁶ / √3 × 220 × 10³ × 0.8I1
= 428.7 A Therefore, the total power input at full load will be;P
= √3 V1 I1 cos φP
= √3 × 220 × 10³ × 428.7 × 0.8P
= 79.29 MW Therefore, the efficiency of the transformer at full load and 0.8 lagging power factor will be;Efficiency, η
= output power / input powerη
= 97 × 10⁶ / 79.29 × 10⁶η
= 1.225 or 122.5 %This is the wrong answer; as efficiency cannot be greater than 100%.(b) 3/4 load and unity power factor;The transformer is operating at 3/4 load, i.e., at 75 MVA. The transformer is operating at unity power factor.Power input at 3/4 load
= 75 MVA Output power at 3/4 load
= 75 × 0.97Output power at 3/4 load
= 72.75 MVAt 3/4 load, input power
= output power + iron lossPower factor, cos φ
= 1 (unity power factor)At 3/4 load, the current drawn from the primary will be;I2
= Transformer rating / V2I2
= 75 × 10⁶ / 66 × 10³I2
= 1136.36 ATherefore, Primary Current is given by;I1
= I2 / √3I1
= 1136.36 / √3I1
= 656.24 A Therefore, the total power input at 3/4 load will be;P
= √3 V1 I1 cos φP
= √3 × 220 × 10³ × 656.24 × 1P
= 76.23 MW .The efficiency of the transformer at 3/4 load and unity power factor will be;Efficiency, η
= output power / input powerη
= 72.75 × 10⁶ / 76.23 × 10⁶η
= 0.954 or 95.4 %
Therefore, the efficiency of the transformer at full load and 0.8 lagging power factor is 122.5% and at 3/4 load and unity power factor is 95.4%.
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A 7/16 in height x 3 in length flat key is keyed to a 2 inches diameter shaft. Determine the torque in the key if bearing stress allowable is 25 Ksi. Answer: A
A. 16,406.25 in-lb
B. 15,248.56 in-lb
C. 17.42 in-lb
D. 246.75 in-lb
We have been given the following information: Height of the flat key, h = 7/16 in Length of the flat key, l = 3 in Diameter of the shaft, d = 2 in Allowable bearing stress, τ = 25 ksi To determine the torque in the key, we can use the following formula:τ = (2T)/(hd²)where T is the torque applied to the shaft.
Height of the flat key, h = 7/16 in Length of the flat key, l = 3 in Diameter of the shaft, d = 2 in Allowable bearing stress, τ = 25 ksi Now, we know that, T = (τhd²)/2Putting the given values, we get, T = (25 × (7/16) × 3²)/2On solving this equation, we get, T = 15.24856 in-lb Therefore, the torque in the key is 15.24856 in-lb. We need to calculate the torque in the key of the given shaft. The given bearing stress is τ= 25 K si which is allowable. Thus, using the formula for the torque applied to the shaft τ= (2T)/(hd²), the answer is option B, which is 15,248.56 in-lb.
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1- Write about daily, monthly, and yearly loads.
2- Why generated power at electrical stations must equal load power (consumed power).
3- What is " based load", "intermediate load" and "peak load", draw.
4- Why electrical station are built far from cities?
5- On which principles the location of electrical stations is selected.
6- Why mainly A/C synchronous generators are used to generate electrical energy.
7- Why we use high voltage for transmission lines.
8- Compare between A/C and DC transmission lines.
9- What do we mean by "synchronized system"?
10- What is the role of the "preheater" in electrical stations?
11- Why we use low, medium and high-pressure turbines in electrical stations.
12- Discuss electrical stations efficiencies. and losses in electrical stations.
Daily, monthly, as well as yearly loads connote to the extent of electrical power that is taken in by a system or a region over different time frame.
What is load",Daily load means how much electricity is being used at different times of the day, over a 24-hour period. Usually, people use more electricity in the morning and evening when they use appliances and lights.
Monthly load means the total amount of electricity used in a month. This considers changes in how much energy is used each day and includes things like weather, seasons, and how people typically use energy.
Yearly load means the amount of energy used in a whole year. This looks at how much energy people use each month and helps companies plan how much energy they need to make and deliver over a long time.
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A square key is to be used in 40 mm diameter shaft and that will developed a 2 KN-m torque. If bearing stress of the key is 400 Mpa, determine the cross sectional dimension of square key to be used if key length is 30 mm. Answer: D
A. 324.80 mm2
B. 246.80 mm2
C. 446.80 mm2
D. 277.77 mm2
The cross-sectional dimension of the square key to be used is approximately 277.77 mm². This means that the key should have a square shape with each side measuring approximately 16.68 mm (sqrt(277.77)).
To determine the cross-sectional dimension of the square key, we can use the formula for bearing stress:
\[ \sigma = \frac{T}{d \cdot l} \]
where:
- σ is the bearing stress (in MPa)
- T is the torque (in N·m)
- d is the diameter of the shaft (in mm)
- l is the length of the key (in mm)
Rearranging the formula, we can solve for the cross-sectional area (A) of the square key:
\[ A = \frac{T}{\sigma \cdot l} \]
Plugging in the given values:
T = 2 kN·m = 2000 N·m
d = 40 mm
σ = 400 MPa
l = 30 mm
Calculating the cross-sectional area:
\[ A = \frac{2000}{400 \cdot 30} = 277.77 mm².
Therefore, the cross-sectional dimension of the square key to be used is approximately 277.77 mm². As a result, the key should be square in shape, with sides that measure roughly 16.68 mm (sqrt(277.77)).
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The figure above (not drawn to scale) shows a square section solid column of length ll and width w (material's Young modulus E). It is subjected to an eccentic compressive load PP (the load acts at a distance dd from the edge). The column is fixed at one end and free at the other.
Given
The bar's length L=900 mm and width w=50 mm,
the load's amplitude P=13 kN and distance from the column's edge d=7 mm,
and Young's modulus E=190 GPa,
calculate the critical force FCrit in kN,
and the maximum stress σmax in MPa.
The answers are acceptable within a tolerance of 1 kN for the force and 1 MPa for the stress.
The critical force FCrit and the maximum stress σmax are 2,065 kN and 56.7 MPa .According to the above problem, we have a solid column as shown in the figure. FCrit and the maximum stress σmax. Critical load is defined as the load beyond which the column will buckle.
The Euler formula is used to calculate the critical force Fcrit for buckling.The Euler's Buckling formula is given by:
[tex]P.E.I = ((π²) * n²)/L²[/tex] where, n = number of half waves. We can calculate n using the given data.
The lowest order mode in a fixed-free column is n=1. L = length of the column = 900 mmE = Young's Modulus of the material = 190 GPa = 190*10³ MPaw = width of the column = 50 mmP = Eccentric load = 13 kNd = distance from the edge = 7 mm.
[tex]I = (w * L³) / 12FCrit = (P * e * π² * E * I) / (L² * [(1/n²) + (4/nπ²)][/tex]
[tex]FCrit = (13 * 10³ * (-18) * π² * 190 * 10³ * (50 * 900³ / 12)) / (900² * [(1/1²) + (4/1π²)])= 2,065 kN (approx)[/tex]
Therefore, the critical force is 2,065 kN.
[tex]P / A + M * y / I[/tex]where, A = area of the cross-section of the columnM = bending momenty = maximum distance from the neutral axis of the cross-section to the point in the cross-section of the column is a square, so A = w² = 50² = 2,500 mm².
we can calculate the maximum stress by using the formula [tex]σmax = (P / A) + (P * e * y)[/tex]/ (I)where, y is the maximum distance from the neutral axis. Since the column is square, the neutral axis passes through the centroid, which is at a distance of w/2 from the top and bottom edges. Therefore, y = w/2 = 25 mm
[tex](13 * 10³ / 2,500) + (13 * 10³ * (-18) * 25) / (50 * 900³ / 12)= 56.7 MPa[/tex] (approx)
Therefore, the maximum stress is 56.7 MPa .
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