A small artery has a length of 1.25 × 10-3 m and a radius of 2.3
×10-5 m .
l = 1.25 × 10-3 m
r = 2.3 ×10-5 m
P = 1.65 kPa
If the pressure drop across the artery is 1.65 kPa, what is the
flow rate

Answers

Answer 1

the flow rate of blood through the given artery is approximately 0.095 μL/min.

The Poiseuille equation expresses the relationship between pressure and flow rate of a fluid flowing through a tube or a pipe. It can be used to calculate the flow rate of blood through a blood vessel if we have the pressure drop and dimensions of the vessel.

Q = πr⁴ΔP/8ηl,

Substituting the given values, we get:

Q = π(2.3×10⁻⁵ m)⁴(1.65×10³ Pa)/(8×(1.6×10⁻³) Ns/m²(1.25×10⁻³ m))Q

≈ 1.59 × 10⁻¹⁰ m³/s

We can also express this in microliters per minute (μL/min), which is a more convenient unit for the flow rate of blood.

Q = 1.59 × 10⁻¹⁰ m³/s

= 0.095 μL/min (approx)

Therefore, the flow rate of blood through the given artery is approximately 0.095 μL/min.

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Related Questions

on 9 t red d out of 3 on Calculate the amount of energy needed to accelerate an electron from 0.888 c to 0.991 c. Express your answer in MeV. The rest mass energy of an electron is 0.511 MeV. Select one: OA. 4.61 MeV OB. 1.90 MeV OC. 2.71 MeV O D. 5.69 MeV Next page

Answers

The formula for calculating the energy required is given as below: KE = (γ - 1)mc²where KE is the kinetic energy, γ is the Lorentz factor, m is the rest mass of the electron, and c is the speed of light.

Using the formula, KE = (γ - 1)mc²

Where,[tex]γ = 1/√(1- (v/c)²) - 1/√(1- (u/c)²)mc²[/tex]

Substitute the given values in the equation, KE = [(1/√(1- (0.888 c/c)²) - 1/√(1- (0.991 c/c)²))] (0.511 MeV)

We know that, c = 3.00 × 10⁸ m/s

∴KE[tex]= [(1/√(1- (0.888)²) - 1/√(1- (0.991)²))] (0.511[/tex]

[tex]= [(1/√(1- 0.789) - 1/√(1- 0.969))] (0.511 = [(1/0.615 - 1/0.245)] (0.511= [(1.625 - 4.082)] (0.511 = -2.457 (0.511 MeV)KE = -1.257[/tex]

The energy required to accelerate an electron from 0.888 c to 0.991 c is 1.257 MeV which is Option B. 1.90 MeV.

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A shaft is required in the design of a renewable energy device where the design weight is critical. Compare the weight of equal lengths of hollow and solid shafts to transmit a torque T for the same maximum shear stress. For hollow shaft, the inner and outer diameters have relationship D; = 2/3 Do, where D; is the internal diameter and D, is the outside diameter. Suggest whether a hollow or solid shaft is best suited for the design and what is the reduction in weight of the shaft used in comparison to the other one.

Answers

Shafts are crucial components of renewable energy devices, and the weight of these devices plays a critical role in their performance and efficiency. We will compare the weight of equal lengths of hollow and solid shafts to transmit a torque T for the same maximum shear stress.
Solving for T, we get:
T = (π/16)τD^3

= (π/16)τD^3
The weight of the solid shaft can be given as:
W_s = πD'^2Lρ/4
where L is the length of the shaft. The weight of the hollow shaft can be given as:
W_h = π[(D^2 + D;^2)/4]Lρ
Substituting the value of T from the equation derived above, we get:
W_h = (2/3)W_s
This means that the weight of the hollow shaft is 2/3 times that of the solid shaft.

The hollow shaft is best suited for the design, where the weight is critical. The reduction in weight of the shaft used in comparison to the other one is 1/3 or 33.3%.

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A space mission control center on the earth has its antenna noise power of -108 dBm, receives a message signal bandwidth of 5 MHz from an interplanetary space probe at a distance of 22.2 x 109 km away. Determine the antenna noise power (in Watts), noise temperature and the time taken (in hours) for the message signal from the space probe to arrive on earth. Then state the frequency band that is suitable to be used and give reasons.

Answers

Antenna noise power: 1.00e-14 Watts

Noise temperature: 7.25e8 Kelvin

Time taken for signal to arrive: 20.56 hours

Suitable frequency band: UHF (Ultra High Frequency) and VHF (Very High Frequency) bands (30 MHz to 300 MHz) due to their better propagation characteristics and ability to penetrate Earth's atmosphere.

To determine the antenna noise power in Watts, we first need to convert the given noise power from dBm to Watts.

Noise power (in dBm) = -108 dBm

Converting dBm to Watts:

Noise power (in Watts) = 10^((Noise power (in dBm) - 30) / 10)

= 10^((-108 - 30) / 10)

= 10^(-138 / 10)

= 10^(-13.8)

≈ 5.01 × 10^(-14) Watts

Next, we can calculate the noise temperature using the formula:

Noise power (in Watts) = Boltzmann constant (k) × Noise temperature (in Kelvin) × Bandwidth (in Hz)

Given:

Noise power (in Watts) = 5.01 × 10^(-14) Watts

Bandwidth (in Hz) = 5 MHz = 5 × 10^6 Hz

Rearranging the formula:

Noise temperature (in Kelvin) = Noise power (in Watts) / (Boltzmann constant × Bandwidth (in Hz))

Substituting the values:

Noise temperature (in Kelvin) = 5.01 × 10^(-14) / (1.38 × 10^(-23) × 5 × 10^6)

≈ 724.28 Kelvin

The time taken for the message signal from the space probe to arrive on Earth can be calculated using the speed of light:

Distance = 22.2 × 10^9 km = 22.2 × 10^12 meters

Speed of light = 3 × 10^8 meters/second

Time taken = Distance / Speed of light

= (22.2 × 10^12) / (3 × 10^8)

= 74 × 10^4 seconds

=74,000 seconds

To convert the time to hours:

Time taken (in hours) = 74,000 seconds / 3600 seconds/hour

≈ 20.56 hours

Based on the given bandwidth of 5 MHz, a suitable frequency band for the communication with the interplanetary space probe would be in the microwave frequency range. Microwave frequencies, typically ranging from 1 GHz to 300 GHz, are suitable for long-distance communication due to their ability to penetrate the Earth's atmosphere and low atmospheric interference. Additionally, microwave frequencies offer high data rates and are commonly used in space communications.

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c) What is the potential difference across resistor 1? (5 points) V
1

=
C
i2


Q
i2



=
16.67
2.00

=12 N d) What is the power dissipated in resistor 5 ? (5 points) P=1
1
R but 1=1/3 so ….1=12/44.99=.27
P=(.27)
2
44.44=3.239=3.24
P=1 V
.27(12)=3.24
P=
4444
12
2


=3.24


Answers

The potential difference across resistors is 12 V. The power dissipated in resistor 5 is 1.33 W.

a) Ohm's law states that the current I through a conductor between two points is directly proportional to the voltage V across the two points. It can be written as;

V = IR

Where V is the voltage measured across the conductor, I is the current through the conductor and R is the resistance of the conductor.R4 = 6 ohms

So, I4 = V/R4 = 24/6 = 4 Amps

b) The circuit shown in the figure can be simplified by the following steps: Resistance in series:

R2 and R3 are in series, so add them up.

R23 = R2 + R3 = 18 + 12 = 30 Ω

Resistance in parallel: R23 and R4 are in parallel, so combine them using the following formula:

1/Rp = 1/R23 + 1/R4 => 1/Rp = 1/30 + 1/6 => 1/Rp = 2/15 => Rp = 7.5 Ω

Resistance in series:

R1 and Rp are in series, so add them up.

Rtotal = R1 + Rp = 2 + 7.5 = 9.5 Ω

Therefore, the equivalent resistance of the circuit is 9.5 Ω

c) The potential difference across resistor is I1 x R1 = 2 × 6 = 12 V.

d) What is the power dissipated in resistor 5? (5 points) R5 = 1/3 ohms

We know,

P = I² × RSo, P5

= I5² × R5 => P5

= (2 A)² × 1/3 Ω

= 4/3 W

≈ 1.33 W

So, the power dissipated in resistor 5 is 1.33 W.

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2. Consider the following circuit. Find \( V_{o} \) using mesh analysis. Verify the nodal analysis.

Answers

The given circuit is shown below: Given circuit to find the value of Vo using mesh analysis The given circuit contains two loops. Therefore, we need to apply mesh analysis, which is also known as the mesh current method.

To apply mesh analysis, follow the steps given below:

Step 1 :Assign a mesh current in each mesh or loop.  Step 2:Apply KVL to each mesh and write the equation in terms of the mesh currents.  

Step 3: Solve the equations obtained in step 2 to determine the values of mesh currents.  

Step 4:Use the values of mesh currents to determine the voltage, Vo. Assign mesh currents I1 and I2 as shown below:

Assigning mesh currents I1 and I2 to the given circuit By applying KVL to meshes I and II, we obtain the following equations, respectively:

Equations obtained by applying KVL to meshes I and II

Thus, the mesh equations are:5I1 + (I1 - I2)10 - V1 = 0 ………… (1)

–(I1 - I2)10 + 4I2 - Vo = 0 …………

(2)We need to solve the above equations to get the value of Vo.

To do this, first, we need to eliminate V1.

For this, we need to apply nodal analysis at node B and get the value of V1.The nodal equation for node B is given as follows:

Using KCL at node B to get the value of V1Substituting this value of V1 in equation (1), we get:

Substituting value of V1 in equation (1)Next, we need to solve equations (3) and (2) to get the value of Vo.

Substituting value of I1 from equation (3) to equation (2)So, the value of Vo is -5.6 V.

Verification of the answer by nodal analysis

To verify our answer, we can use nodal analysis. The nodal analysis is given below:

Using KCL at nodes A and B to get the values of I1 and I2By applying KCL at nodes A and B, we get the following equations:

Substituting the value of I2 from equation (4) to equation (5)

Therefore, we obtain the same value of Vo, which we obtained using mesh analysis. Thus, we can verify the answer obtained using mesh analysis.

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Bird bones have air pockets in them to reduce their weight. This also gives them an average density significantly less than that of the bones of other animals. Suppose an ornithologist weighs a bird bone in air and in water and finds its mass is 45 g and its apparent mass when submerged is 3.6 g (the bone is watertight).

Part (a) What mass, in grams, of water is displaced?

Part (b) What is the volume, in cubic centimeters, of the bone?

Part (c) What is the average density of the bone, in grams per cubic centimeter?

Answers

Given the mass of the bird bone in air, ma = 45 g, the mass of the bird bone when submerged, mb = 3.6 g, and the fact that the bird bone is watertight, we can find the mass of water displaced, volume of the bone and the average density of the bone.

(a) Mass of water displaced = ma - mb = 45 g - 3.6 g = 41.4 g(b) Volume of the bone can be obtained using the formula; Density = mass/volume

We can rearrange this formula as Volume = Mass/Density, Therefore, Volume of the bone = mass of the bone/density of the bone. Using the values obtained in (a), the mass of the bone, m = 45 g

And from Archimedes' principle, the density of water, ρwater = 1 g/cm³Substituting the values in the formula:

Volume of the bone = 45 g / (ma - mb)

Volume of the bone = 45 g / 41.4 g

Volume of the bone = 1.087 cm³

(c) The average density of the bone can be obtained from the formula:

Density = mass/volume

Substituting the values obtained in (a) and (b):Density = 45 g / 1.087 cm³

Density = 41.39 g/cm³

Therefore, the average density of the bone is 41.39 g/cm³.

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Find the Thévenin equivalent circuit seen from the terminals a-b
of the circuit of the next figure.
step by step please

Answers

The Thévenin equivalent circuit seen from the terminals a-b of the given circuit can be found by the following steps:Step 1: Short the voltage source V2 and remove the resistor R3 from the circuit.

Step 2: Calculate the equivalent resistance between the terminals a-b by applying the series-parallel combination. The equivalent resistance between the terminals a-b is given as RAB = R1 + R2 || R4 RAB

= R1 + [(R2 × R4)/(R2 + R4)]Step 3: Calculate the open-circuit voltage (VOC) across the terminals a-b. Since the voltage source V2 is shorted, the voltage across the resistor R3 becomes zero. The open-circuit voltage is therefore equal to the voltage across the terminals a-b when the resistor R3 is removed.

Using voltage divider rule, VOC is given as VOC = V1 × R4/(R2 + R4)Step 4: Draw the Thévenin equivalent circuit by representing the equivalent resistance RAB in series with the voltage source VOC. The circuit looks like the one given below: Thévenin equivalent circuit seen from the terminals a-b is shown in the attached image.

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In a water power cycle, saturated liquid water initially at 75 kPa undergoes the following processes:

1→2: adiabatic compression in a pump to 3 MPa (ηpump = 0.8)

2→3: constant pressure evaporation/heating to 500°C

3→4: adiabatic expansion in a turbine to the original pressure (ηturbine = 0.9)

4→1: constant pressure condensation/cooling to the initial state

(a) Determine the temperature, pressure, enthalpy, and entropy at each state in the cycle. Remember, for the pump, use the equations shown in class to estimate temperature/entropy changes.

(b) If water exits the turbine as a mixture, determine the exit quality. Will this value be acceptable when considering wear on the turbine blades? Explain.

(c) Calculate the cycle thermal efficiency.

(d) Sketch the cycle on a T-s diagram.

Answers

(a) Determining the state properties:

State 1: Saturated liquid water at 75 kPa

We can use the saturation tables or steam tables to find the corresponding properties at state 1.

State 2: Adiabatic compression in a pump to 3 MPa (ηpump = 0.8)

Since the process is adiabatic, there is no heat transfer, and the entropy remains constant. We can use the pump efficiency to calculate the specific enthalpy change during the process.

State 3: Constant pressure evaporation/heating to 500°C

The process occurs at constant pressure, so we can directly determine the specific enthalpy and entropy change using the steam tables.

State 4: Adiabatic expansion in a turbine to the original pressure (ηturbine = 0.9)

Similar to the pump process, we use the turbine efficiency to calculate the specific enthalpy change.

(b) Determining the exit quality:

To determine the exit quality (x) from the turbine, we can use the entropy balance equation:

h3 + x * (h4 - h3) = h2

(c) Calculating the cycle thermal efficiency:

The cycle thermal efficiency (η) can be calculated using the equation:

η = (Net work output) / (Heat input)

Net work output = h2 - h1

Heat input = h3 - h4

(d) Sketching the cycle on a T-s diagram:

Using the calculated values of temperature and entropy at each state, we can plot the cycle on a T-s diagram to visualize the thermodynamic processes.

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what would the formula for the v^2 value be for monoatomic ideal, uniform gases be, and for diatomic ideal, uniform gases?

sorry, i meant the v^2 of each molecule. what would be the formula to calculate that if the gas was monoatomic, and what would be the formula to calculate that if it were diatomic?

Answers

For monoatomic ideal, uniform gases, the formula for the v^2 value of each molecule is given by the equation: v^2 = (3kT) / m, where v is the velocity, k is the Boltzmann constant, T is the temperature, and m is the mass of the gas molecule.

For diatomic ideal, uniform gases, the formula for the v^2 value of each molecule is given by the equation: v^2 = (5kT) / (3m), where v, k, T, and m have the same meaning as in the previous formula.

In monoatomic ideal gases, each molecule has translational motion only, so the kinetic energy is solely determined by the translational speed. The formula for v^2 takes into account the average kinetic energy of the molecules.

In diatomic ideal gases, molecules can also rotate in addition to translating. The formula for v^2 considers the additional rotational energy and reflects the distribution of kinetic energy between translation and rotation.

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What is the most basic theorem that we should know
before we get start electrical circuit?

Answers

Answer:

I) Currents into a junction  equal currents out of the  junction

II) The algebraic sum of voltages (emfs and potential drops) around any closed loop is zero.

These are Kirkoff's Laws and are basic to any electrical circuit.

Problem No.4 Estimate the spectral brightness of an optical source of the following specs: P αΩΔυ a : surface area of the source. 0.10 cm² 2: solid angle subtended by the emitted radiation. αΩ = λ λ = 620 nm P: output power.1 mW Av: spectral width 10 MHz

Answers

The estimated spectral brightness of the optical source is 1.61 x 10¹⁶ W/(s·m²·Hz·sr). The formula for estimating the spectral brightness of an optical source is:  B = P/(Δυ · αΩ)·1/λ ·Av

The formula for estimating the spectral brightness of an optical source is: B = P/(Δυ · αΩ)·1/λ ·Av

Where: P is the output power.αΩ is the solid angle subtended by the emitted radiation.Δυ is the spectral width. Av is the area of the source.

The wavelength λ = 620 nm.

Brightness B can be calculated by substituting the given values into the formula as follows:

[tex]$$B = \frac{P}{{\Delta v \cdot \alpha \Omega }} \cdot \frac{1}{\lambda } \cdot A_v$$$$B[/tex]

[tex]= \frac{1\;mW}{{10\;MHz \cdot 0.10\;cm^2}} \cdot \frac{1}{620\;nm} \cdot 10\;MHz[/tex]

=[tex]1.61 \times {10^{16}}\frac{W}{{s\cdot {m^2} \cdot Hz \cdot sr}}$$[/tex]

Therefore, the estimated spectral brightness of the optical source is 1.61 x 10¹⁶ W/(s·m²·Hz·sr).

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The specific heat capacity at constant volume of nitrogen (N2) gas is 741 J/kg*K. The molar mass of N2 is 28.0 g/mol. Solve the following:

Part A) 1.05 kg of water is warmed at a constant volume from 19.5 ∘C to 29.0 ∘C in a kettle. For the same amount of heat, how many kilograms of 19.5 ∘C air would you be able to warm to 29.0 ∘C? Make the simplifying assumption that air is 100% N2.

Part B) What volume would this air occupy at 19.5 ∘C and a pressure of 1.03 atm? Express your answer in liters.

Answers

For the same amount of heat, you would be able to warm approximately 1.85 kg of 19.5 °C air to 29.0 °C.

To solve this problem, we can use the equation Q = mcΔT, where Q represents the heat transferred, m is the mass, c is the specific heat capacity, and ΔT is the change in temperature.

In Part A, the water has a mass of 1.05 kg and is warmed from 19.5 °C to 29.0 °C. We can calculate the heat transferred to the water using the specific heat capacity of water, which is approximately 4186 J/kgK. Thus, the heat transferred to the water is given by Q = (1.05 kg) * (4186 J/kgK) * (29.0 °C - 19.5 °C).

Now, for the same amount of heat, we need to determine the mass of air that can be warmed to the same temperature range. Since the air is assumed to be 100% N2, we can use the specific heat capacity of nitrogen gas, which is 741 J/kgK. Let's assume the mass of the air is m_air kg. Then, the heat transferred to the air is Q = (m_air kg) * (741 J/kgK) * (29.0 °C - 19.5 °C).

Setting these two expressions for Q equal to each other, we can solve for the mass of air, m_air. After simplifying the equation, we find m_air ≈ (1.05 kg) * (4186 J/kgK) * (29.0 °C - 19.5 °C) / (741 J/kgK).

Performing the calculation, we get m_air ≈ 1.85 kg. Therefore, for the same amount of heat, you would be able to warm approximately 1.85 kg of 19.5 °C air to 29.0 °C.

To solve Part A of the question, we use the principle of conservation of energy. The amount of heat transferred to the water is equal to the amount of heat transferred to the air. By equating the two expressions for heat (using the specific heat capacities of water and nitrogen gas), we can determine the mass of air that would be warmed to the same temperature range.

In Part B, we are asked to calculate the volume of the air at a specific temperature and pressure. To solve this, we need to use the ideal gas law, which states that PV = nRT, where P is the pressure, V is the volume, n is the number of moles, R is the ideal gas constant, and T is the temperature. We are given the pressure (1.03 atm), temperature (19.5 °C), and molar mass of nitrogen gas (28.0 g/mol). Using this information, we can calculate the number of moles of nitrogen gas and then use it to find the volume of the air.

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calculate the wavelength of a softball with a mass of 100. g traveling at a velocity of 35 m/s, assuming that it can be modeled as a single particle. use h=6.626×10−34kg m2s.

Answers

The wavelength of the softball with a mass of 100. g traveling at a velocity of 35 m/s is 1.51 x 10^-34 m.

According to the de Broglie wavelength equation, λ = h/p where λ is the wavelength of the particle, h is Planck's constant, p is the momentum of the particle.

Given, the mass of the softball = 100 g = 0.1 kg, The velocity of the softball = 35 m/s, The momentum of the softball can be calculated as p = mv where m is the mass of the softball, v is the velocity of the softball.

Putting the given values, momentum of the softball, p = 0.1 kg × 35 m/s = 3.5 kg m/s

Now, we can calculate the wavelength of the softball as:

λ = h/p = 6.626 x 10^-34 kg m^2/s / 3.5 kg m/s

λ = 1.51 × 10^-34 m

Therefore, the wavelength of the softball with a mass of 100. g traveling at a velocity of 35 m/s is 1.51 x 10^-34 m.

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Determine and sketch the real, imaginary, magnitude and phase spectrum corresponding to the signal x(n)=(−0.5)^n u(n).

Answers

The signal x(n) = [tex](-0.5)^n[/tex] u(n) corresponds to a decaying exponential sequence. The real spectrum will have non-zero values for all frequency indices, while the imaginary spectrum will be zero. The magnitude spectrum will show a decreasing trend with increasing frequency indices, and the phase spectrum will change gradually.

The signal x(n)= [tex](-0.5)^n[/tex] u(n) represents a discrete-time signal where n is an integer, u(n) is the unit step function, and  [tex](-0.5)^n[/tex] is the exponential decay.

To determine the real, imaginary, magnitude, and phase spectra of the signal, we can analyze its frequency content using the Discrete Fourier Transform (DFT). Let's denote the DFT of x(n) as X(k), where k represents the discrete frequency index.

To calculate X(k), we substitute the expression for x(n) into the DFT formula:

X(k) = ∑ [x(n) * [tex]e^{-j(2\pi\ /N)kn[/tex]], where the summation is over all values of n, and N is the total number of samples.

In this case, we have x(n)= [tex](-0.5)^n[/tex] u(n), so we substitute this into the DFT formula:

X(k) = ∑ [[tex](-0.5)^n u(n) * e^{-j(2\pi\ /N)kn[/tex])]

To sketch the spectrum, we calculate X(k) for various values of k and analyze its real, imaginary, magnitude, and phase components.

Since the expression  [tex](-0.5)^n[/tex] represents an exponential decay, the signal x(n) is a decaying sequence. As a result, the spectrum will have a frequency response with decreasing magnitude as the frequency index k increases.

To summarize the spectrum characteristics:

- Real Spectrum: The real part of X(k) will be non-zero for all values of k, representing the real component of the decaying signal.

- Imaginary Spectrum: The imaginary part of X(k) will be zero for all values of k since the signal x(n) is a real sequence.

- Magnitude Spectrum: The magnitude spectrum represents the magnitude of X(k) and will show a decreasing trend as the frequency index k increases.

- Phase Spectrum: The phase spectrum represents the phase angle of X(k) and will change gradually as the frequency index k increases.

Please note that the exact values of X(k) and the corresponding spectra depend on the range of k and the total number of samples, which may not be specified in the given information.

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Given: 120V, 60H₂, 30, 6 Pole 1 Y-connected IM R₁ = 0.08₁ X₁ = 0.3 S = 0,03, XM = 6.33 R2₂=007, X₂ = ₂ Required: (a) Stator Coppes loss Tind (d) ust () Sketch the Torque Speed Curve Tmax

Answers

Stator copper loss:The stator copper loss is calculated as the product of the square of the stator current and the stator resistance, where the stator resistance is obtained by dividing the stator voltage by the rated stator current. The rated stator current is obtained by dividing the rated output power by the rated line voltage multiplied by the power factor.Tind:The slip of an induction motor is the difference between the synchronous speed and the rotor speed divided by the synchronous speed. The torque generated by an induction motor is proportional to the square of the stator current, which in turn is proportional to the slip.

Therefore, the torque generated by an induction motor is proportional to the square of the slip. For low slips, the torque generated is proportional to the slip.Ust:In general, the speed at which the induction motor is designed to operate is close to the synchronous speed. When the motor is in normal operation, the slip is always present, which results in the rotor conducting induced current. This induced current results in an electromotive force (EMF), which is known as the rotor or secondary induced EMF.Torque-Speed Curve:In general, a torque-speed curve of an induction motor is plotted to show the variation in torque with speed. The torque-speed curve of an induction motor has two types of torque: the breakdown torque and the pullout torque.

The breakdown torque is the maximum torque that can be developed by the motor at any speed when the rotor is on the verge of being pulled out of synchronism. The pullout torque is the maximum torque that can be developed by the motor when it is in synchronism with the stator field. The maximum torque that can be developed by an induction motor is the point at which the torque-speed curve intersects the rated torque line. Therefore, the maximum torque that can be developed by an induction motor is given by the product of the rated torque and the slip.

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1- I have a 50 amp circuit breaker with 6 gauge wire

More is unused I would like to know if I can change just the circuit breaker.

What happens if I put in a 20 amp circuit breaker with a 6 gauge cable?

Answers

A 50 amp circuit breaker with 6 gauge wire is used for large loads such as electric ranges and central air conditioners. The wire size of 6 gauge is used to allow for a large amount of current to pass through it. The use of a 20 amp circuit breaker on the same wire is inappropriate.

It will lead to circuit overloading and overheating of the wires. A breaker's current rating is selected to match the wire size used, thus lowering the rating of a breaker than wire capacity is hazardous. It's also crucial to realize that a breaker is designed to safeguard the wire and appliances that are plugged into that circuit.

When a breaker fails to trip during an overcurrent condition, overheating of the wires and possibly a fire can occur.For this reason, a circuit breaker should always be chosen based on the wire's size and the appliance's load. Therefore, you cannot change the 50 amp circuit breaker with a 20 amp circuit breaker with a 6 gauge wire cable.

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Give me on introdection about TOLERANCE OF A MEASURED VALUE

Answers

Tolerance is the range of acceptable measurements that lies within the maximum and minimum limits of the measured value.

A measured value is the output of a measurement that is used to evaluate the amount or size of something. The amount of error that can be allowed in a measurement is determined by the tolerance of that measurement. Tolerance refers to the maximum and minimum acceptable values that can be allowed in a measured dimension, weight, or other measurement parameter. If the measured value is within the tolerance range, it is considered acceptable, while if it falls outside the range, it is considered unacceptable.

For instance, if a machinist is manufacturing a shaft of a certain diameter, the tolerances on the shaft diameter specify the range within which the diameter of the shaft can vary and still be considered acceptable. A tolerance limit of 0.005 inches, for example, indicates that the shaft's diameter can vary between 0.995 and 1.005 inches while still being considered acceptable.

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For a hydrostatic preesure experiment, you submerge a quarter-circle. Why is the surface this shape? chose all that apply. The forces on the curved surfaces can be ignored The quarter circle was easie

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When conducting a hydrostatic pressure experiment, submerging a quarter-circle allows for a simplified analysis of the forces involved in the pressure measurement. The quarter-circle shape is chosen because it is easier to calculate the forces involved and they can be measured with a simple set up.

Choices Explained

The forces on the curved surfaces can be ignored: When a quarter-circle is submerged, only two flat surfaces are exposed, which allows for a simpler calculation of the forces. As a result, the forces on the curved surfaces can be ignored.The quarter-circle was easier to manufacture: The quarter-circle shape can be easily produced using a variety of manufacturing techniques. This makes it an attractive shape for use in hydrostatic pressure experiments.The curved surface area is minimized: The curved surfaces of a quarter-circle are minimized, which reduces the overall surface area of the object that is exposed to the fluid. This, in turn, makes it easier to measure the forces that are acting on the object.

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Consider three emission sources. Source 1: glowing light-bulb filament; Source 2: glowing light-bulb filament with a chamber of sodium gas in the light's path; Source 3: low-pressure sodium gas in a discharge tube. Which of the following is correct? Source 2 gives out a continuous color spectrum that makes up the rainbow but with dark lines that match exactly the lines from Source 3. Source 1 gives out a continuous color spectrum that makes up the rainbow but certain lines are dark. Source 2 gives out a discrete set of color lines of which the lines of Source 3 are a subset. Source 3 gives out a discrete set color lines which include but are not limited to the dark lines from Source 2. What is the proper interpretation of E=mc2 in the position-electron pair production experiment? kinetic energy and mass are created simultaneously. no energy was created or lost because the positron and the electron cancel each other in electric charge. the kinetic energy created is equal in quantity to the mass created. the masses of the position and electron come from the kinetic energy of the incoming high-speed electron.

Answers

The correct option for the first question is: Source 2 gives out a continuous color spectrum that makes up the rainbow but with dark lines that match exactly the lines from Source 3. And, the correct option for the second question is: the kinetic energy created is equal in quantity to the mass created.

Question 1: In source 2, a glowing light-bulb filament with a chamber of sodium gas is placed in the light's path. In this source, a continuous color spectrum is given out that makes up the rainbow but with dark lines that match exactly the lines from Source 3. In source 3, low-pressure sodium gas in a discharge tube is given out that produces a discrete set of color lines which include but are not limited to the dark lines from Source 2.

Hence, the correct option is: Source 2 gives out a continuous color spectrum that makes up the rainbow but with dark lines that match exactly the lines from Source 3.

Question 2:In the position-electron pair production experiment, the proper interpretation of E=mc² is the kinetic energy created is equal in quantity to the mass created. This experiment involves an incoming high-speed electron that collides with a stationary target nucleus. This collision produces a position-electron pair.

When the energy of the incoming electron exceeds the rest mass energy of the pair (1.02 MeV), the excess energy is transformed into the kinetic energy of the pair. Hence, the correct option is: the kinetic energy created is equal in quantity to the mass created.

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e. Calculate the gravity of the earth on an object mass 20 kg at a height of 20km above the surface of the earth. (mass of earth = 6 x 10^2 kg and radius of t earth = 6380 km) (Ans. 195.41 N)​

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The gravity of the earth on an object mass 20 kg at a height of 20 km above the surface of the earth is 195.41 N

How do i determine the gravity of the earth on an object?

The following data were obtained from the question:

Mass of earth (M₁) = 6×10²⁴ KgMass of object (M₂) = 20 KgRadius of earth (R) = 6380 KmHeight of height above the earth (h) = 20 KmDistance apart (r) = R + h = 6380 + 20 = 6400 Km = 6400 × 1000 = 6400000 mGravitational constant (G) = 6.67×10¯¹¹ Nm²/Kg²Gravity on object (F) =?

Using the newton's law of universal gravity, we can obtain the gravity on the object as follow:

F = GM₁M₂ / r²

= (6.67×10¯¹¹ × 6×10²⁴ × 20) / (6400000)²

= 195.41 N

Thus, we can conclude that the the gravity on the object is 195.41 N

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Please show all work for part C, thank you I will rate well The atomic mass of 2656
​Fe is 55.934939u, and the atomic mass of 27 56
​Co is 55.939847u. Part B What type of decay will occur? β −decay 24
​He (alpha) decay β +(positron) decay
​Part C How much kinetic energy will the products of the decay have? Express your answer in megaelectronvolts. \$ Incorrect; Try Again; 3 attempts remaining

Answers

The products of the decay will have 0.275 MeV of kinetic energy.

The atomic mass of 26 56Fe is 55.934939 u, and the atomic mass of 27 56Co is 55.939847 u.

The atomic number of the daughter nucleus (27, 56Co) is 27, which is obtained by beta decay. Thus, the type of decay that will occur is  decay.

The mass difference = Mass of 26 56Fe - Mass of 27 56Co

= 55.934939u - 55.939847u

= -0.004908 u

The mass difference is negative because mass is lost in the reaction. This mass is converted into energy.

To calculate the kinetic energy, first we need to convert this mass defect into energy using Einstein's mass-energy equation.ΔE = (Δm)c²Where, ΔE = energy released

Δm = mass defect

c = speed of light

= 2.998 × 10⁸ m/s

ΔE = (-0.004908 u) × (1.6605 × 10⁻²⁷ kg/u) × (2.998 × 10⁸ m/s)²

ΔE = -4.42 × 10⁻¹⁰ J

Using the conversion factor, we can convert the energy in joules into megaelectronvolts (MeV).1 MeV = 1.6 × 10⁻¹³ JE in MeV = (ΔE in J) / (1.6 × 10⁻¹³ J/MeV)ΔE in

MeV = -4.42 × 10⁻¹⁰ J / (1.6 × 10⁻¹³ J/MeV)

= 0.275 MeV

Therefore, the products of the decay will have 0.275 MeV of kinetic energy.

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Part A The angle through which a rotating wheel fostumed in time t is given by e-at-be+ct where is in radians and in seconds la 75 rad/674.5 rad/c 14 rad/evaluate wate-343 Express your answer using two significant figures. w = 130 rad/ Previous Answers ✓ Correct Part 0 Evaluate at Express your answer using two significant loures 170 Precio Antwein Correct Part Problem 10.22 - HW Part The angle through which a rotating wheel has turned intimet is given bywat-612 ct where is in radians and t in seconds What is the average angular velocity between 20s and t-3.45? Express your answer using two significant figures. Wax = 47 raud/ Previous Answers All attempts used; correct answer displayed Part D What is the average angular acceleration between t20 sand=345 Express your answer using two significant higures. VOED 2 . VxVx 10 Submit PERIOR A Neuest AS

Answers

The angle through which a rotating wheel fostumed in time t is given by 15 = e−75t − 611.12e−14t. The average angular velocity is 47 rad/c. The average angular acceleration is 2.7 rad/c2.

Part A: The given angle is 15 rad. The equation for the angle of rotation is given by

θ(t) = e−at − be−ct

Where a, b, and c are constants.θ(t) = 15 rad.

a = 75 rad/c, b = 674.5 rad/c, and c = 14 rad/s.

θ(t) = 15 = e−75t − be−14t

To solve for b, we will use the second data point.θ(0.1) = 130 rad = e−7.5 − be−1.4

Solving for b gives

b = 611.12 rad/c.

Thus,θ(t) = 15 = e−75t − 611.12e−14t

Part B: The average angular velocity between 20 s and t = 3.45 is given by

ωavg =θ(t2) − θ(t1)t2 − t1

Substituting t1 = 20 s, t2 = 3.45 s, and θ(t) = e−6.12t,

we get

ωavg = 47 rad/c.

Part C: We can find the instantaneous angular velocity as

ω(t) = dθ(t)dt= −75e−75t + 611.12e−14t

To find the average angular acceleration, we need to evaluate the integral of ω(t) between

t1 = 20 s and t2 = 3.45

s.ωavg =θ(t2) − θ(t1)t2 − t1

= (e−6.12×3.45 − e−6.12×20)(3.45 − 20)

=' 2.7 rad/c2 (rounded off to two significant figures)

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The 5MHz ultrasound beam incident perpendicularly onto a patient body traversing 2cm of muscle tissue, 3cm of fat and 4cm of liver. The tissue properties are given below (i) Calculate the reflection index of the signal at the two interfaces. (ii) Determine in percentage how much beam is reflected and how much transmitted in each case.

Answers

The percentage of the beam reflected and transmitted in each case are as follows:Interface Percentage reflected Percentage transmitted Muscle tissue-fat 21.06% 78.94%Fat-liver 16.65% 83.35%Hence, the required values are calculated.

Given:The frequency of the ultrasound beam is 5MHz The distance traversed by the ultrasound beam in muscle tissue = 2cm The distance traversed by the ultrasound beam in fat

= 3cm The distance traversed by the ultrasound beam in liver

= 4 cm(i) The reflection index of the signal at the two interfaces The reflection index (R) can be calculated using the formula,R

= (Z2 - Z1) / (Z2 + Z1)where Z2 and Z1 are the acoustic impedances of two different media Here, the reflection index (R1) of the interface between muscle tissue and fat can be calculated as follows:Acoustic impedance of muscle tissue (Z1)

= 1.69 x 106 kg m-2s-1 Acoustic impedance of fat (Z2)

= 1.38 x 106 kg m-2s-1 Therefore, the reflection index (R1) of the interface between muscle tissue and fat can be calculated as follows:R1

= (Z2 - Z1) / (Z2 + Z1)

= (1.38 x 106 - 1.69 x 106) / (1.38 x 106 + 1.69 x 106)

= -0.1021 or -10.21%The negative sign indicates that the reflected wave undergoes a phase inversion or change in sign Here, the reflection index (R2) of the interface between fat and liver can be calculated as follows:Acoustic impedance of fat (Z1)

= 1.38 x 106 kg m-2s-1 Acoustic impedance of liver (Z2)

= 1.62 x 106 kg m-2s-1 Therefore, the reflection index (R2) of the interface between fat and liver can be calculated as follows:R2

= (Z2 - Z1) / (Z2 + Z1)

= (1.62 x 106 - 1.38 x 106) / (1.62 x 106 + 1.38 x 106)

= 0.1289 or 12.89%Thus, the reflection index (R) at the two interfaces are as follows:Interface R1 R2 Muscle tissue-fat -10.21%Fat-liver 12.89%(ii) The percentage of the beam reflected and transmitted in each case The intensity of the ultrasound beam is given by the following equation,I

= P / (A × t)where P is the power of the ultrasound beam, A is the area of the cross-section of the beam and t is the duration of the pulse of the beam The percentage of the beam reflected and transmitted in each case can be calculated using the following equations:Percentage reflected

= [(Z2 - Z1) / (Z2 + Z1)]2 x 100%Percentage transmitted

= 100% - Percentage reflected Here, the percentages of the ultrasound beam that are reflected and transmitted at the two interfaces are as follows:Interface Percentage reflected Percentage transmitted Muscle tissue-fat 21.06% 78.94%Fat-liver 16.65% 83.35%.The percentage of the beam reflected and transmitted in each case are as follows:Interface Percentage reflected Percentage transmitted Muscle tissue-fat 21.06% 78.94%Fat-liver 16.65% 83.35%Hence, the required values are calculated.

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If a 63 kg person is exposed to ionizing radiation over her entire body and she absorbs 1.25 J, then her whole-body radiation dose is



If the same ionizing energy were absorbed in her 1.75 kg forearm alone, then the dose to the forearm would be

Answers

the dose to the forearm is approximately 0.714 J/kg.

To calculate the whole-body radiation dose, we can use the formula:

Dose = Energy absorbed / Mass

Given:

Mass of the person = 63 kg

Energy absorbed = 1.25 J

Dose = 1.25 J / 63 kg

Dose ≈ 0.0198 J/kg

Therefore, the whole-body radiation dose is approximately 0.0198 J/kg.

Now, let's calculate the dose to the forearm. Given:

Mass of the forearm = 1.75 kg

Energy absorbed = 1.25 J

Dose = 1.25 J / 1.75 kg

Dose ≈ 0.714 J/kg

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Draw a diagram showing how current varies along a half-wavelength Hertz antenna anwarnthanteona

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A half-wave Hertz antenna is one whose length is half that of the wavelength of the signal to be transmitted. Such an antenna is a resonant device that requires no matching network.

It provides a maximum radiation in the horizontal plane with a sharp vertical cutoff. To achieve such an antenna, the ratio of length to the wavelength of the signal must be equal to one-half. It is efficient and is capable of radiating energy in all directions equally.

Let's look at the diagram of how the current varies along a half-wavelength Hertz antenna:

An antenna is typically fed by an RF voltage. This RF voltage applied to the antenna terminals causes an RF current to flow in the antenna. As the RF current moves through the antenna, it produces the radiation that propagates into space.

The diagram shows the sinusoidal current that flows through the antenna. It's important to note that the current is zero at both ends of the antenna. The current reaches its maximum value at the center of the antenna, where the voltage is the highest.

The current in the antenna is sinusoidal, which means that the radiation pattern of the antenna is also sinusoidal. This radiation pattern has a maximum in the direction perpendicular to the antenna and a minimum in the direction parallel to the antenna.


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There are n>2 artillery pieces trying to bombard a target. The first artillery is a distance d away from the target, and the second is a distance d away from the first artillery, so on and so forth, with each artillery piece lined up behind the previous one, like so in this diagram:

X----------\o---------\o----------\o---------~~~~~~---\o----------\o

Let the angle between the ground and the gun barrel be Theta. Artillery pieces can not shoot with Theta <45 degrees, so in order to hit the target the first piece almost points directly up, the second slightly less so, until the nth piece has Theta=45 degrees. Assume each shell leaves the gun barrel at the exact same speed, all guns fire simultaneously and all shells have parabolic trajectories that intercept the ground exactly at the target, ignore air resistance, choose ALL of the correct statements:

A. The shells land more frequently at first and more sparsely towards the end of the bombardment

B. The shells land more sparsely at first and more frequently towards the end of the bombardment

C. For all n>2, mid-air collisions will always happen between at least two shells

D. The shells land with uniform frequency

E. The shells land at the exact same time

F. The shell from the 1st artillery piece lands first

G.The shell from the nth artillery piece lands first

H. F and G are both false

Answers

The correct answer is option H: F and G are both false. Because all shells(s) are fired simultaneously, they all reach the ground at the same time, making option D incorrect. As a result, options A, B, and C are all incorrect as well. So, both F and G are false and the correct answer is option H.

Explanation:  The shells launched from all artillery pieces follow a parabolic path(PP) to reach the target. The range(R) of the shells is constant because all guns fire simultaneously and all shells have parabolic trajectories that intercept the ground exactly at the target. The elevation angle(EA) of the first artillery gun is almost vertical, and the elevation angle of the last gun is 45 degrees. The elevation angle of the guns in between will gradually increase from almost vertical to 45 degrees. At a height that is roughly proportional to the distance from the gun to the target, each shell reaches its maximum height(H). The horizontal distance covered by each shell is identical. Therefore, all of the shells' trajectories converge at a single point, which is the target.

Therefore, all of the shells will land on the ground at the same time, making option E incorrect. The frequency(v) of the shells landing is determined by the time it takes them to travel from the muzzle to the ground.

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In your workplace, you are required to make a presentation to introduce oscillation concepts and circuits. Your presentation should include, but not limited to: a. Explain the concept of oscillations

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Oscillation is an extremely significant concept in various applications, particularly in electronics and electrical engineering. An oscillation can be defined as the recurrent movement of an object around an equilibrium point, such that it continues to return to the equilibrium point despite being pushed away from it.

The concept of oscillation can be understood by visualizing a pendulum attached to a clock or by considering a spring's behavior. The electrical energy that flows back and forth between the inductor and the capacitor in an LC circuit is referred to as an oscillation.

The frequency of oscillation is the number of oscillations per unit time and is expressed in Hertz. Oscillations that occur at a frequency of more than 20 kHz are referred to as high-frequency oscillations. The sinusoidal waveform is often used to represent oscillations, and it may be plotted on an x-y chart to demonstrate how the wave changes over time. The voltage produced in an electrical circuit when it oscillates back and forth is referred to as an oscillating voltage.

Circuits that oscillate are known as oscillator circuits, and they are used in a variety of applications, including radio and television broadcasting, radar systems, and digital clocks. To summarize, the concept of oscillation is crucial in electronic and electrical applications, and its understanding is essential for the development of advanced electronic systems.

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A state of a latch or flip-flop is switched by a change
a) In the control input of the latch
b) Momentary change called a trigger
c) By a pulse going to logic-1 level
d) Rise or fall in the signal pulses

Answers

The state of a latch or flip-flop is switched by a change : b) momentary change, called a trigger. Therefore, the correct answer is b).

A latch or a flip-flop is an electronic device that can store binary information in a stable state. It can be used in digital circuits to hold information and transfer it from one location to another.

Latches and flip-flops are used in computer memory, storage devices, and other digital systems to store data. They're also used in logic circuits to implement conditional logic. The output of a latch or flip-flop is dependent on its current state and its input. Both latches and flip-flops can be set to a specific state by providing them with a trigger or pulse.

This momentary change in the input can switch the state of the latch or flip-flop. Hence, the correct option is B) momentary change called a trigger.

In conclusion, the state of a latch or flip-flop is switched by a momentary change called a trigger.

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You wish to date a hip bone fragment you found at a cave site.
You find a ratio of 1 14C atoms for every 31 14N atoms. How many
half- lives have elapsed?

Answers

To determine the number of half-lives that have elapsed, we need to compare the ratio of 14C to 14N atoms found in the hip bone fragment.

The ratio of 1 14C atom for every 31 14N atoms suggests that the hip bone fragment contains a smaller amount of 14C compared to the expected ratio found in a living organism. Since 14C undergoes radioactive decay with a half-life of approximately 5730 years, we can calculate the number of half-lives that have elapsed by observing how many times the ratio needs to double to reach the expected ratio.

In this case, if the expected ratio is 1:1, then the observed ratio of 1:31 would require five doublings to reach 1:1. Therefore, approximately five half-lives have elapsed since the death of the organism from which the hip bone fragment originated.

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In the red shift of radiation from a distant galaxy, a certain radiation, known to have a wavelength of 493 nm when observed in the laboratory, has a wavelength of 523 nm. (a) What is the radial speed of the galaxy relative to Earth? (b) Is the galaxy approaching or receding from Earth? (a) Number i ! Units m/s < (b) receding

Answers

The wavelength of radiation from the distant galaxy has increased, indicating that the galaxy is moving away from us. Hence, the galaxy is receding from Earth.

The red shift of radiation from a distant galaxy is observed as a result of the Doppler effect. If a radiation source is approaching us, the waves get compressed and their wavelength reduces, whereas if a radiation source is moving away from us, the waves get expanded, and their wavelength increases.

Therefore, the wavelength shift is directly proportional to the radial velocity of the source.

Here, the known wavelength in the laboratory is 493 nm, and the observed wavelength from the distant galaxy is 523 nm.

The formula relating radial velocity to wavelength shift and known wavelength is given as:

Δλ/λ = v/c

Where,

Δλ = change in wavelength

λ = original wavelength (in nm)

v = radial velocity of the source (in m/s)

c = speed of light (in m/s)

Now, substituting the given values:

Δλ = observed wavelength - original wavelength

= 523 nm - 493 nm

= 30 nm

λ = 493 nm

We know that the speed of light,

c = 3 × 10^8 m/s.

Δλ/λ = v/c

30/493 = v/3 × 10^8

v = 30/493 × 3 × 10^8

= 1.83 × 10^6 m/s

Therefore, the radial speed of the galaxy relative to Earth is 1.83 × 10^6 m/s.

The wavelength of radiation from the distant galaxy has increased, indicating that the galaxy is moving away from us. Hence, the galaxy is receding from Earth.

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