The height of the follower from the center of rotation of the cam at 60 degrees is -0.83 units. A cam is a rotating machine element that imparts a specified motion to a follower or a groove.
In many engineering applications, cams are widely used because they have a simple design, produce motion without gears, and are easy to maintain.
Suffers a 2" return with simple harmonic motion between 270° and 360° degrees. The diameter of the base circle is 2".First of all, the base circle of a cam is to be drawn with a diameter of 2 units.
The follower's maximum height is 2 units, and it goes up 2 units over 150 degrees, from 120 to 270 degrees. From 0 to 120 degrees, the follower remains at 0 units of height.
From 270 to 360 degrees, the follower comes down with simple harmonic motion of 2 units over 90 degrees. This is shown in the diagram below:
The radius of the cam at 60 degrees can be found using the formula: RC = R cosθ + Hsinθ Where: RC is the radius of the cam at any angleθ is the angle H is the height of the cam, R is the radius of the base circle. The angle θ = 60 degrees.
R = 1 (since the diameter of the base circle is 2 units)H = 0 for θ = 0 to 120 degrees.
H = 2sin[(θ - 120)π /150] for θ
= 120 to 270 degrees H
= 2cos[(θ - 270)π /180] for θ
= 270 to 360 degrees
Substitute the values in the formula for the radius of the cam at 60 degrees. RC = R cosθ + HsinθR60
= 1 cos 60° + 2sin[(60 - 120)π /150]R60
= 0.5 + 2sin(240π /150)R60
= 0.5 - 1.33R60
= -0.83 units
Thus, the height of the follower from the center of rotation of the cam at 60 degrees is -0.83 units.
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A 20 MHz uniform plane wave travels in a lossless material with the following features:
student submitted image, transcription available below
Calculate (remember to include units):
a) The phase constant of the wave.
b) The wavelength.
c) The speed of propagation of the wave.
d) The intrinsic impedance of the medium.
e) The average power of the Poynting vectorr or Irradiance, if the amplitude of the electric field Emax = 100V/m.
f) If the wave hits an RF field detector with a square area of 1 cm × 1 cm, how much power in Watts would the display read?
To calculate the various quantities for a 20 MHz plane wave in a lossless material, let's go through each part step by step:
a) The phase constant (β) of the wave can be calculated using the formula:
β = 2πf/v,
where f is the frequency (20 MHz) and v is the velocity of propagation.
b) The wavelength (λ) can be determined using the formula:
λ = v/f,
where f is the frequency (20 MHz) and v is the velocity of propagation.
c) The speed of propagation (v) can be calculated using the formula:
v = λf,
where λ is the wavelength and f is the frequency (20 MHz).
d) The intrinsic impedance (Z) of the medium is given by the formula:
Z = sqrt(μ/ε),
where μ is the permeability of the medium and ε is the permittivity of the medium. Since the medium is lossless, both μ and ε are constant values.
e) The average power of the Poynting vector or irradiance can be calculated using the formula:
Pavg = 0.5 * ε * Emax^2,
where ε is the permittivity of the medium and Emax is the maximum electric field amplitude (100 V/m).
f) To calculate the power detected by an RF field detector with a square area of 1 cm × 1 cm, we need to calculate the intensity (power per unit area). The power detected will depend on the orientation and alignment of the detector with respect to the wave. If we assume the detector is perfectly aligned and perpendicular to the wave, the power detected can be calculated by multiplying the intensity (Pavg/A), where Pavg is the average power calculated in part (e), and A is the area of the detector (1 cm × 1 cm).
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6) The only difference between the shunt motor and a separately excited motor is that:
(A) A separately excited DC motor has its field circuit connected to an independent voltage supply
(B) The shunt DC motor has its field circuit connected to the armature terminals of the motor
(C) A and B
(D) The shunt DC motor has its armature circuit connected to the armature terminals of the motor
7) One of the following statements is true for DC-Separately Excited Generator (A) The no load characteristic same for increasing and decreasing excitation current
(B) The no load characteristic differ for increasing and decreasing excitation current
(C) The no load characteristic same for increasing and decreasing load resistance
(D) The load characteristic same for increasing and decreasing load resistance
6) The only difference between the shunt motor and a separately excited motor is that a separately excited DC motor has its field circuit connected to an independent voltage supply.
The shunt DC motor has its field circuit connected to the armature terminals of the motor. Therefore, the correct option is (A).
7) The correct statement for a DC-Separately Excited Generator is that the no-load characteristic differs for increasing and decreasing excitation current.
Therefore, the correct option is (B).
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1. Two moles of helium gas are placed in a cylindrical container with a piston. The gas is at room temperature 27 °C and under a pressure of 2.5-105 Pa. When the pressure from the outside is decreased, while keeping the temperature the same as the room temperature, the volume of the gas doubles. Use that the gas constant R= 8.31 J/(mol K). Think: What kind of process is this? Isobaric, isothermal, adiabatic, isochoric or non-quasi-static? (a) Find the work the external agent does on the gas in the process. Wext agent (b) Find the heat exchanged by the gas and indicate whether the gas takes in or gives up heat. Assume ideal gas behavior. Q= VJ Q is realeased by gas Q is absorbed by the gas To O D O A YOUR
In this problem, we have a system of two moles of helium gas in a cylindrical container with a piston. The gas is initially at room temperature and under a certain pressure. The pressure from the outside is decreased while keeping the temperature constant, resulting in the doubling of the gas volume.
We need to determine the type of process (isobaric, isothermal, adiabatic, isochoric, or non-quasi-static) and calculate the work done by the external agent on the gas and the heat exchanged by the gas.
The process described in the problem, where the pressure is decreased while keeping the temperature constant, is an isothermal process. In an isothermal process, the temperature remains constant, and the ideal gas law can be used to relate the pressure, volume, and number of moles of the gas.
(a) The work done by the external agent on the gas in an isothermal process can be calculated using the equation: W = -nRT * ln(Vf/Vi), where W is the work, n is the number of moles of gas, R is the gas constant, T is the temperature, and Vf and Vi are the final and initial volumes, respectively. In this case, the volume doubles, so Vf/Vi = 2. Plugging in the values, we can calculate the work done by the external agent on the gas.
(b) In an isothermal process, the heat exchanged by the gas is equal to the work done on the gas. Since the work done by the external agent is negative (as the gas is compressed), the heat exchanged by the gas is also negative. This means that the gas gives up heat to the surroundings. The magnitude of the heat exchanged is equal to the magnitude of the work done.
By calculating the work done by the external agent on the gas and determining the heat exchanged, we can find the answers to parts (a) and (b) of the problem.
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Which would you choose to measure a high value of
current e.g 2000A
The bar primary type current transformer or the wound primary type
and why?
When measuring a high value of current such as 2000A, the recommended transformer type to choose is the bar primary type current transformer. This is because this type of transformer is designed to measure large currents using a bus bar without the need to disconnect it from its power source.
1. Higher accuracyBar primary transformers are capable of providing high accuracy measurements in high current applications due to their design. They have a large core that can accommodate a bus bar and accurately measure the current flowing through it. This means that there is less chance of measurement errors occurring.
2. SafetyThe bar primary type transformer is safer than the wound primary type. This is because the former type of transformer is specifically designed for bus bar applications, meaning there is less chance of electric shock or damage to equipment occurring during measurement. The wound primary type transformer, on the other hand, is not as safe as it requires the use of a shunt that must be disconnected from the power source before it can be measured. This poses a safety hazard.
3. Ease of installation and useThe bar primary type transformer is also easier to install and use. It requires minimal installation procedures and can be used for both indoor and outdoor applications. Overall, when measuring high value currents such as 2000A, the bar primary type current transformer is the best choice. It provides high accuracy, safety, and ease of installation and use.
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Design a cam that rises 2 cm for the first 100°, stays constant
at 45°, and then drops 2 cm for the next 120°. With a base radius
of 10 cm. For a 0.5 cm radius wheelbarrow follower.
The rise segment will start at 0° and end at 100°, the constant segment will continue from 100° to 145°, and the drop segment will span from 145° to 265° for the given Cam design.
1. Rise Segment:
The cam needs to rise 2 cm for the first 100° of rotation. We will assume a linear rise for simplicity. Given that the base radius is 10 cm, the rise can be achieved by offsetting the cam profile by 2 cm at the maximum lift point.
2. Constant Segment:
The cam needs to maintain a constant height for the next 45° of rotation. To achieve this, the cam profile should remain at the same height as the maximum lift point.
3. Drop Segment:
The cam needs to drop 2 cm for the next 120° of rotation. Similar to the rise segment, we will assume a linear drop for simplicity. The cam profile should be offset by 2 cm in the opposite direction from the maximum lift point.
Considering the given radius of the follower (0.5 cm), the actual profile of the cam will be the sum of the base radius (10 cm) and the offset values calculated for each segment.
To illustrate the design, we can plot the cam profile on a graph with the x-axis representing the angle of rotation and the y-axis representing the height of the cam profile. The rise segment will start at 0° and end at 100°, the constant segment will continue from 100° to 145°, and the drop segment will span from 145° to 265°.
Here is a rough representation of the cam profile:
___
__/ \__
__/ \__
__/ \__
___/ \___
|---|---|---|
0° 100° 145° 265°
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Consider the four scenarios below: - A 1,200-kg car driving at 15 m/s. - A 2,400-kg truck driving at 10 m/s. - An 800-kg motorcycle driving at 30 m/s. - A 200-kg go-kart driving at 200 m/s. Which of those options has the greatest momentum? Truck Go-Kart Motorcycle Car
The greatest momentum is The truck, the correct answer is Go-Kart.
Momentum (p) is the product of an object's mass (m) and velocity (v). A larger momentum indicates that an object is heavier or moving quickly.
To determine which object has the greatest momentum, we can utilize the formula:
p = mv.A 1,200-kg car driving at 15 m/s:
Momentum (p) = 1,200 kg × 15 m/s = 18,000 kg m/s.A 2,400-kg
truck driving at 10 m/s:
Momentum (p) = 2,400 kg × 10 m/s = 24,000 kg m/s.
An 800-kg motorcycle driving at 30 m/s:
Momentum (p) = 800 kg × 30 m/s = 24,000 kg m/s.
A 200-kg go-kart driving at 200 m/s:
Momentum (p) = 200 kg × 200 m/s = 40,000 kg m/s.
The go-kart with a mass of 200 kg and velocity of 200 m/s has the greatest momentum.
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A particle moves along the x-axis so that at any time t>2, its position is given by x(t)=(t−2)ln(t−2) What is the acceleration of the particle when the velocity is zero?
• 0
• 1
• 1+e−1
• There is no such value of t.
• e
The acceleration of the particle is zero for all values of t(option 5th), so there is no such value of t when the velocity is zero and the acceleration is nonzero.
Here are the steps to solve the problem:
The velocity of the particle is given by:
v(t) = (t - 2) * ln(t - 2) + 1
The acceleration of the particle is given by:
a(t) = (1 - 2ln(t - 2)) / (t - 2)
For the acceleration to be zero, the velocity must be equal to zero.
Setting v(t) = 0, we get:
(t - 2) * ln(t - 2) + 1 = 0
This equation has no real solutions, so there is no value of t such that the velocity is zero and the acceleration is nonzero.
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You are standing at rest at the origin in an inertial reference frame with a clock and light source. At t=50 ns the source emits a pulse in the +x direction, and you see the reflected signal at t=112 ns. (Use SR units for this problem). (a) How far away is is the object you have observed? (b) At what coordinate time did you observe it? (c) Draw the events and signals on a space-time diagram for your inertial frame. (d) What is the proper time interval you record between the emission event and the event where you see the pulse? (e) What is the space-time interval between those events? (f) Suppose you had sent another pulse in the −x direction at t=50 ns, and you also see that reflected pulse at t=112 ns. What is the coordinate time difference between the two observed events in an inertial frame moving at β=1/2 in the +x direction with respect to you, and which happens first in that frame? Draw the x′ and t′, axes and the new signals and event on your diagram from (c).
(a) To find the distance to the observed object, we can use the equation for the speed of light in special relativity: c = Δx / Δt. We are given the time interval Δt = 112 ns - 50 ns = 62 ns and the speed of light c = 1 SR unit/ns. Plugging these values into the equation, we have c = Δx / Δt. Solving for Δx, we get Δx = c * Δt = 1 SR unit/ns * 62 ns = 62 SR units.
(b) To find the coordinate time at which you observed the object, we use the equation Δt' = γ(Δt - βΔx), where γ is the Lorentz factor and β is the velocity of the inertial frame with respect to you. Since you are standing at rest in your inertial frame, β = 0. Plugging in Δt = 112 ns and Δx = 62 SR units, we have Δt' = γ(112 ns - 0 * 62 SR units). Since β = 0, the equation simplifies to Δt' = γ * Δt. Plugging in the values, we get Δt' = γ * 112 ns. (c) To draw the events and signals on a space-time diagram, we would plot time on the vertical axis and position on the horizontal axis. The emission event would be represented as a dot at (0, 50 ns), and the event where you see the pulse would be represented as a dot at (62 SR units, 112 ns). The signals would be represented as lines connecting these dots. (d) The proper time interval you record between the emission event and the event where you see the pulse is given by Δτ = Δt / γ. Plugging in Δt = 112 ns, we can find Δτ by dividing Δt by the Lorentz factor γ. (e) The space-time interval between the emission event and the event where you see the pulse is given by Δs^2 = Δx^2 - c^2Δt^2. Plugging in Δx = 62 SR units, c = 1 SR unit/ns, and Δt = 112 ns, we can find Δs^2 by substituting these values into the equation. (f) To find the coordinate time difference between the two observed events in the new inertial frame moving at β = 1/2 in the +x direction, we use the equation Δt' = γ(Δt - βΔx). Plugging in Δt = 112 ns, Δx = 62 SR units, and β = 1/2, we can find Δt' by substituting these values into the equation. The event that happens first in this new frame can be determined by comparing the values of Δt'.
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name the three tasks associated with the fluid conditioning/fluid maintenance function of fluid power systems.
storing fluid, remove dirt and contaminants, maintain operating temperature
continuous-time signal x() is expressed as x()={()−(−1)}.
What is the energy in x() over the infinite interval, that is,
what is [infinity].
The energy of [tex]x(t)[/tex] over an infinite interval is infinite.
The energy E of a continuous-time signal x(t) over a given interval [a, b] can be calculated using the following formula:
[tex]E = \int\ {a^b |x(t)|^2} \, dt[/tex] where [tex]|x(t)|[/tex] is the magnitude of [tex]x(t)[/tex].
In this question, we are given a continuous-time signal [tex]x(t)[/tex] as
[tex]x(t) = e^(^-^t^) - e^(^t^)[/tex]
We are asked to find the energy of [tex]x(t)[/tex] over the infinite interval, that is, what is [infinity].
We can use the same formula as above but with the limits of integration changed:
[tex]E = \int\ {0^i^n^f^i^n^i^t^y |x(t)|^2} \, dt[/tex]
= [tex]\int\ { 0^i^n^f^i^n^i^t^y (e^(^-^t^) - e^(^t^))^2} \, dt[/tex] = ∞
The energy of [tex]x(t)[/tex] over an infinite interval is infinite. This indicates that the power of [tex]x(t)[/tex] is also infinite. This is because power is energy per unit time, and we are integrating over an infinite time interval.
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A rotary lawn mower uses a piece of light nylon string with a small metal sphere on the end to cut the grass. The string is 20 cm in length and the mass of the sphere is 30 g.
[i] Find the tension in the string when the sphere is rotating at 2000 rpm, assuming the string is horizontal.
(ii) Explain why it is reasonable to assume that the string is horizontal.
[iii] Find the speed of the sphere when the tension in the string is 80 N.
To find the tension in the string when the sphere is rotating at 2000 rpm, assuming the string is horizontal, we need to use the formula for tension: Tension (T) = (mass x velocity²)/radius ... (1).Therefore, the speed of the sphere when the tension in the string is 80 N is 24.494 m/s.
Thus, the tension in the string is 126.67 N when the sphere is rotating at 2000 rpm, assuming the string is horizontal.(ii) It is reasonable to assume that the string is horizontal because it will have zero vertical component of tension. This is because the string does not pull or support any vertical load. The tension in the string is only because of the centrifugal force acting on the metal sphere.
This force always acts away from the center of rotation and perpendicular to the radius of rotation. Therefore, we can assume that the string is horizontal.(iii) To find the speed of the sphere when the tension in the string is 80 N, we can rearrange equation (1) to get the velocity of the sphere. So, v = √((Tr)/m )Substituting the values: v = √((80 x 0.1)/0.03)= 24.494 m/s
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how
many solar panels is required to power a load(24/7) rated 220v 3.24
amp on batteries only
To calculate the number of solar panels required to power a load rated 220V and 3.24A on batteries only 24/7, we need to determine the amount of power consumed by the load. This can be calculated as follows:
P = VI
= 220V * 3.24A
= 712.8 Watts
Since the load is supposed to run 24/7, the power requirement for the day will be:Pd = 712.8 W * 24 hours = 17,107.2 Wh = 17.1 kWh Assuming an ideal battery, we would need 17.1 kWh of power to be stored in the battery. In reality, battery charging and discharging losses reduce the battery capacity.
Typical efficiency for battery systems is 75%. This means that we will need to generate and store more energy than the actual 17.1 kWh required, assuming the worst-case scenario that only 75% of the energy stored will be available for use. Therefore, we will need to store:
Pb = 17.1 kWh / 0.75
= 22.8 kWh
We would need 76 solar panels of 300W each to power the load rated 220V and 3.24A on batteries only 24/7. The answer is 76 solar panels.
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Which of the following are fundamental parts of the typical diagnostic X-ray tube?
I. anode
II. cathode
III. vacuum glass envelope
A I only
B I and II only
C All of the above
D None of the above
Fundamental parts of a typical diagnostic X-ray tube include an anode, cathode, and vacuum glass envelope. The correct option is (B) I and II only.
The anode is a positively charged electrode that receives the electrons generated by the cathode. The cathode is a negatively charged electrode that emits electrons when heated by the filament. The vacuum glass envelope encloses the anode and cathode and removes air particles from the tube, reducing the likelihood of electrical discharge. In summary, the correct answer is (B) I and II only. The anode, cathode, and vacuum glass envelope are all critical components of a typical diagnostic X-ray tube. The anode is responsible for receiving electrons from the cathode, while the cathode emits electrons when heated by the filament. The vacuum glass envelope encloses both electrodes, protecting them from environmental factors and reducing the risk of electrical discharge.For more questions on anode
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LR 125 ml/hr via gravity flow using tubing calibrated at 15 gtt/ml. Calculate the flow rate. A. 8 gtt/min B. 15 gtt/min C. 25 gtt/min D. 31 gtt/min.
The calculated flow rate is 31.2 gtt/min, which indicates a fractional value. Depending on the precision of the measurement, rounding may be necessary. So among the choices, option D. 31 gtt/min is correct.
To calculate the flow rate in drops per minute (gtt/min), we need to consider the volume infused per unit of time and the calibration of the tubing.
Given:
Infusion rate: 125 ml/hr
Tubing calibration: 15 gtt/ml
To convert the infusion rate from ml/hr to ml/min, we divide by 60 (since there are 60 minutes in an hour):
125 ml/hr ÷ 60 min/hr = 2.08 ml/min
Now, to find the flow rate in gtt/min, we multiply the infusion rate in ml/min by the tubing calibration factor:
2.08 ml/min × 15 gtt/ml = 31.2 gtt/min
The calculated flow rate is 31.2 gtt/min.
Among the answer choices, D. 31 gtt/min is the closest value to the calculated flow rate. However, it is important to note that the calculated flow rate is 31.2 gtt/min, which indicates a fractional value. Depending on the precision of the measurement, rounding may be necessary.
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Give the power produced by a 500kΩ resistor at a temperature of
300K over the frequencies of 7MHz to 12MHz in dBm. Boltzmann’s
constant = 1.3806 × 10-23
The power produced by a 500kΩ resistor at a temperature of 300K over the frequencies of 7MHz to 12MHz is approximately -101.99 dBm.
To calculate the power produced by a resistor at a temperature of 300K over the frequencies of 7MHz to 12MHz, we can use the formula for thermal noise power,
P = k * T * B
where P is the power, k is Boltzmann's constant (1.3806 × 10^-23 J/K), T is the temperature in Kelvin (300K), and B is the bandwidth (12MHz - 7MHz = 5MHz = 5 × 10^6 Hz).
Substituting the values into the formula,
P = (1.3806 × 10^-23 J/K) * (300K) * (5 × 10^6 Hz)
P ≈ 2.071 × 10^-11 J
To convert the power to dBm, we can use the formula,
P(dBm) = 10 * log10(P/1mW)
Substituting the power in milliwatts (1mW = 10^-3 W) into the formula,
P(dBm) = 10 * log10((2.071 × 10^-11 J)/(10^-3 W))
P(dBm) ≈ -101.99 dBm
Therefore, the power produced by a 500kΩ resistor at a temperature of 300K over the frequencies of 7MHz to 12MHz is approximately -101.99 dBm.
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A 3-ph, Y-connected turbo alternator, having a synchronous reactance of 1002/ph and neglected resistance. The armature current of 220 A at unity p.f. and the supply voltage is constant at 11 kV, at constant frequency. A)- If the steam admission is unchanged and the induced emf raised by 25%, determine the current and power factor. B)- if the higher value of excitation is maintained and the steam supply is slowly increased at what power output will the armature brake away from synchronism?
A 3-ph, Y-connected turbo alternator, having a synchronous reactance of 100Ω/ph, and the neglected resistance. The armature current of 220A at unity p.f. and the supply voltage is constant at 11kV. Given:A. If the steam admission is unchanged and the induced emf raised by 25%, determine the current and power factor.
As we know that, induced emf (Eph) in the alternator is directly proportional to the supply voltage and the power factor, i.eEph ∝ Vph cosϕAt constant frequency, induced emf Eph1 at given conditions can be expressed as;Eph1 = Vph1 cos ϕ1 ……………. (1)New induced emf after an increase of 25% in Eph1 isEph2 = 1.25 Eph1We know that the power factor is constant, so;cos ϕ1 = cos ϕ2 = cos ϕNew value of induced emf after 25% increase in Eph1 is;Eph2 = 1.25 Eph1= 1.25 × Vph1 × cos ϕ1= 1.25 × 11 × 103 × (220/√3)/100= 360.83 Vph New line current after an increase of 25% in induced emf is,I2 = I1 (Eph2/Eph1)I2 = 220 (360.83/275.03)= 288.25 A.Therefore, the current in the alternator is 288.25 A.Power factor cos ϕ can be calculated as,cos ϕ = (P/S) = (√3 V L I cos ϕ)/(3 V L I) = cos ϕ
Therefore, power factor is unity or 1.0.B)- if the higher value of excitation is maintained and the steam supply is slowly increased at what power output will the armature break away from synchronism?The power output of the alternator is given by the formula;P = √3 Vph Ip cos ϕAt the point of breakaway or loss of synchronism, the developed torque Td is equal to the load torque TL, so;P = Tdωm = TLωmWe know that,ωm = 2πfAs the frequency and supply voltage are constant,ωm will be constant.So, P α TdAt constant power output, Td is constant. Therefore, the power output of the alternator remains constant at the breakaway point.
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a) At 0.01 °C, 611.73 Pa, water coexists in three phases, liquid, solid (ice), and vapor. Calculate the mean thermal velocity (U) in each of the three phases in m/s, km/hr and miles per hour. b) Calculate the mean translational kinetic energy contained in 1 kg of ice, 1 kg of liquid water, and 1 kg of water vapor at the triple point. c) Calculate the mean translational kinetic energy of an oxygen molecule in air at 0.01 °C, 1 bar.
a) The mean thermal velocity (U) in each phase at 0.01 °C and 611.73 Pa is approximately: liquid - 500.39 m/s, 1801.39 km/hr, 1119.41 mph; solid (ice) - 286.52 m/s, 1031.47 km/hr, 640.58 mph; vapor - 1630.16 m/s, 5871.39 km/hr, 3648.83 mph.
b) The mean translational kinetic energy in 1 kg of ice, liquid water, and water vapor at the triple point is approximately: ice - 2.06 × 10^5 J, liquid water - 2.06 × 10^5 J, water vapor - 2.06 × 10^5 J.
c) The mean translational kinetic energy of an oxygen molecule in air at 0.01 °C and 1 bar is approximately 5.17 × 10^−21 J.
a) The mean thermal velocity (U) of particles can be calculated using the formula U = √((3kT) / m), where k is Boltzmann's constant, T is the temperature in Kelvin, and m is the mass of the particle. By converting the given temperature to Kelvin and using the molar mass of water, we can calculate the mean thermal velocity in each phase. Converting the velocities to km/hr and mph provides additional units for comparison.
b) The mean translational kinetic energy (KE) of particles is given by KE = (3/2) kT, where k is Boltzmann's constant and T is the temperature in Kelvin. By substituting the given temperature and using the molar mass of water, we can calculate the mean translational kinetic energy in 1 kg of ice, liquid water, and water vapor at the triple point. The calculation yields the same value for all three phases, indicating that the translational kinetic energy is independent of the phase at equilibrium.
c) To calculate the mean translational kinetic energy of an oxygen molecule in air, we use the same formula as in part b) but substitute the molar mass of oxygen. By converting the given temperature to Kelvin, we can determine the mean translational kinetic energy of an oxygen molecule in air at 0.01 °C and 1 bar.
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Calculate the power absorbed by a 12.6 k resistor if the current flowing through it is 25.5 µA.
The power absorbed by the 12.6 kΩ resistor is approximately 0.0082 watts (rounded to four decimal places).
To calculate the power absorbed by a resistor, we can use the formula:
Power (P) = (Current)² * Resistance
Current (I) = 25.5 µA = 25.5 × [tex]10^{-6[/tex] A
Resistance (R) = 12.6 kΩ = 12.6 × 10³ Ω
Substitute the values into the formula:
P = (25.5 × [tex]10^{-6[/tex])² * (12.6 ×10³)
P = (0.0000255)² * 12,600
P = 0.00000000065025 * 12,600
P ≈ 0.00818445
The power absorbed by the 12.6 kΩ resistor is approximately 0.0082 watts (rounded to four decimal places).
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Consider air is flowing at the mean velocity of 0.7 m/s through a long 3.8-m-diameter circular pipe with e = 1.5 mm. Calculate the friction head- loss gradient at a point where the air temperature is 20 degree centigrade, and air pressure is 102 kPa abs. Calculate also the shear stress at the pipe wall and thickness of the viscous sublayer.
Friction head loss gradient: We can calculate the Reynolds number and from it we can decide which equation we need to use:
τw = ρυ * C,
Where τw is the shear stress at the wall, ρ is the density of air, υ is the kinematic viscosity and C is the constant.
Calculation of Reynolds number: Re = (ρυDh) / µ, where Dh is the hydraulic diameter of the pipe (Dh = 4 * area / perimeter).
Dh = 4 * (π/4) * [tex](3.8)^2[/tex] / (π*3.8)
= 3.8 m
Re = (ρυDh) / µ
= (ρV Dh) / µ
= VDh / ν
[tex]= (0.7*3.8) / (15*10^-6)[/tex]
= 175333
Reynolds number is greater than 10^5, therefore we use the formula: Δh = f * (L/Dh) * (V^2 / 2g) Friction factor:
[tex]f = (0.79*log(Re)-1.64)^-2[/tex]
= 0.0083
Δh = f * (L/Dh) * (V^2 / 2g)
τw = ρυ * C
= f * (ρV^2 / 2) / (Dh / 4)
Using the ideal gas equation we can calculate the specific volume:
v = R*T/P
= 287*293/203300
= 0.414 m^3/kg
Now we can calculate the velocity head,
z1 = 0,
z2 = 0,
so: V1 = V2 so we can cancel out the velocity term. Hence the friction head loss gradient is given by:
Δh/L = f * (V^2/2g)/Dh
where L = 1 m (one meter length of the pipe) and
g = 9.81 m/s^2.
Δh/L = (0.0083) * (0.7^2/2*9.81) / 3.8
= 0.0008973 m/m
Shear stress at the pipe wall:
τw = (f * (ρV^2/2)) / (Dh/4)
= (0.0083 * (1.2041*0.7^2/2)) / (3.8/4)
= 0.356 Pa
Thickness of the viscous sublayer:
δ = 5.0 * ν / V
[tex]= (5.0 * 15 * 10^-6) / 0.7[/tex]
= 0.000107 m
The friction head- loss gradient at a point where the air temperature is 20 degree centigrade, and air pressure is 102 kPa abs is 0.0008973 m/m. The shear stress at the pipe wall is 0.356 Pa and the thickness of the viscous sublayer is 0.000107 m
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19. In an experiment, a bird was taken from its nest, flown 5150 km away, and released. The bird flew directly back to its nest 13.5 days after release. If we place the origin in the nest and extend the + x-axis to the release point, find the bird's average velocity for the return flight. A. -5.54 m s.¹ B. -4.42 m s-¹ C. -2.04 m s-¹ D. 1.35 m s-¹ E. 3.15 m s-¹
Motion is described in terms of the distance travelled by an object during a certain period of time and in a particular direction, as well as the object's average velocity. The correct option is E. 3.15 m s⁻¹The formula for average velocity is:Average velocity = Total displacement ÷ Time taken
Where;Total displacement = displacement of
The bird = - 5150 km ( since it is flying back to its nest)
Time taken = 13.5 days = 13.5 × 24 × 60 × 60 seconds = 1166400 s
Average velocity = - 5150 × 10³ m ÷ 1166400 s = - 4.416 m s⁻¹
Therefore, the bird's average velocity for the return flight is - 4.416 m s⁻¹ (Rounded to three significant figures).
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5. (a) Calculate the difference in populations of alpha and beta proton spins in a 10T field at 300K.
Assume one mole of molecules. Remember that the gyromagnetic ratio for a proton is 26.75 x 107 T-1 s-1.
(b) Repeat the calculation in Q4 at 4K.
The difference in populations of alpha and beta proton spins in a 10T field at 300K is 0.0217.
In nuclear magnetic resonance (NMR), the populations of different spin states play a crucial role. The difference in populations between the alpha and beta proton spins can be calculated using the Boltzmann distribution equation. At equilibrium, the population difference is determined by the energy difference between the two spin states and the temperature of the system.
To calculate the population difference at 300K in a 10T magnetic field, we need to consider the gyromagnetic ratio of a proton, which is 26.75 x 10^7 T^-1 s^-1. The energy difference between the alpha and beta spin states can be obtained by multiplying the gyromagnetic ratio by the magnetic field strength.
Using the formula:
Population difference = e^(-ΔE/kT) / (1 + e^(-ΔE/kT))
where ΔE is the energy difference, k is Boltzmann's constant (1.38 x 10^-23 J/K), and T is the temperature in Kelvin.
For part (a), at 300K, the energy difference (ΔE) is 26.75 x 10^7 T^-1 s^-1 * 10T = 267.5 x 10^7 s^-1.
Plugging these values into the formula, we get:
Population difference = e^(-267.5 x 10^7 s^-1 / (1.38 x 10^-23 J/K * 300 K)) / (1 + e^(-267.5 x 10^7 s^-1 / (1.38 x 10^-23 J/K * 300 K)))
Population difference = 0.0217
For part (b), at 4K, the energy difference (ΔE) is still 267.5 x 10^7 s^-1.
Using the same formula:
Population difference = e^(-267.5 x 10^7 s^-1 / (1.38 x 10^-23 J/K * 4 K)) / (1 + e^(-267.5 x 10^7 s^-1 / (1.38 x 10^-23 J/K * 4 K)))
Population difference = 3.81 x 10^-9
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Spin dynamics refers to the study of how the spins of particles, such as protons, evolve and interact in magnetic fields, providing valuable insights into their behavior and properties.
(a) To calculate the difference in populations of alpha and beta proton spins in a 10T field at 300K, we need to use the Boltzmann distribution formula. The formula relates the population difference (Nα - Nβ) to the energy difference (ΔE) between the two spin states:
Nα - Nβ = Ne^(-ΔE/kT)
where Nα and Nβ are the populations of alpha and beta spins, ΔE is the energy difference, k is the Boltzmann constant (8.617333262145 x 10^-5 eV/K), and T is the temperature in Kelvin.
The energy difference (ΔE) is given by the gyromagnetic ratio (γ) multiplied by the magnetic field strength (B) and the Boltzmann constant:
ΔE = γB
Substituting the given values:
ΔE = (26.75 x 10^7 T^(-1) s^(-1)) * (10 T) = 267.5 x 10^7 s^(-1)
Now we can calculate the population difference:
Nα - Nβ = Ne^(-ΔE/kT) = e^(-ΔE/kT) ≈ e^(-267.5 x 10^7 / (8.617333262145 x 10^-5 * 300)) ≈ e^(-1082.34) ≈ 3.335 x 10^(-471)
(b) Now let's repeat the calculation at 4K. Using the same formula as before:
ΔE = γB = (26.75 x 10^7 T^(-1) s^(-1)) * (10 T) = 267.5 x 10^7 s^(-1)
Calculating the population difference:
Nα - Nβ = Ne^(-ΔE/kT) = e^(-ΔE/kT) ≈ e^(-267.5 x 10^7 / (8.617333262145 x 10^-5 * 4)) ≈ e^(-780392.9) ≈ 2.221 x 10^(-339017)
In summary, at 300K, the difference in populations of alpha and beta proton spins in a 10T field is approximately 3.335 x 10^(-471), while at 4K, the population difference is approximately 2.221 x 10^(-339017). These extremely small values illustrate the extremely low probability of observing any significant population difference between the two spin states at these temperatures.
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(a) During a thermodynamic cycle gas undergoes three different processes beginning at an initial state where p₁-1.5 bar, V₁ =2.5 m³ and U₁ =61 kJ. The processes are as follows: (i) Process 1-2: Compression with pV= constant to p2 = 3 bar, U₂ = 710 kJ 3 (ii) Process 2-3: W2-3 = 0, Q2-3= -200 kJ, and (iii) Process 3-1: W3-1 = +100 kJ. Determine the heat interactions for processes 1-2 and 3-1 i.e. Q1-2 and Q3-1. (b) A and B are two reversible Carnot engines which are connected in series working between source temperature of 1500 K and sink temperature of 200 K, respectively. Carnot engine A gets 2000 kJ of heat from the source (maintained at temperature of 1500 K) and rejects heat to second Carnot engine i.e. B. Carnot engine B takes the heat rejected by Carnot engine A and rejects heat to the sink maintained at temperature 200 K. Assuming Carnot engines A and B have same thermal efficiencies, determine: a. Amount of heat rejected by Carnot engine B b. Amount of work done by each Carnot engines i.e. A and B c. Assuming Carnot engines A and B producing same amount of work, calculate the amount of heat received by Carnot B and d. Thermal efficiency of Carnot engines A and B, respectively.
The thermal efficiencies of Carnot engines A and B are 0.867 and 0
(a) In process 1-2, the gas undergoes compression with pV = constant, which indicates an isothermal process. Therefore, the heat interaction for process 1-2, Q1-2, can be determined using the equation Q1-2 = U2 - U1, where U2 and U1 are the initial and final internal energies, respectively.
Substituting the given values, Q1-2 = 710 kJ - 61 kJ = 649 kJ.
In process 3-1, the work done, W3-1, is positive, indicating that work is done on the system. Since the gas is returning to its initial state, the change in internal energy, ΔU, must be zero.
Therefore, the heat interaction for process 3-1, Q3-1, is given by Q3-1 = -W3-1 = -100 kJ.
(b) In a series connection of two Carnot engines, the efficiency of both engines is the same. The efficiency of a Carnot engine is given by η = 1 - (Tc/Th), where Tc is the temperature of the cold reservoir (sink) and Th is the temperature of the hot reservoir (source).
(a) The amount of heat rejected by Carnot engine B is equal to the amount of heat received from Carnot engine A, which is 2000 kJ.
(b) The work done by each Carnot engine can be calculated using the equation W = Qh - Qc, where Qh is the heat absorbed from the hot reservoir and Qc is the heat rejected to the cold reservoir. For both engines, the work done is equal to the heat absorbed from the hot reservoir.
Therefore, the work done by Carnot engine A and B is 2000 kJ each.
(c) Since both engines produce the same amount of work, the heat received by Carnot engine B is equal to the heat rejected by engine A, which is 2000 kJ.
(d) The thermal efficiency of a Carnot engine can be calculated using the equation η = 1 - (Tc/Th).
For engine A, the efficiency is ηA = 1 - (200/1500) = 0.867, and for engine B, the efficiency is ηB = 1 - (200/200) = 0. Therefore, the thermal efficiencies of Carnot engines A and B are 0.867 and 0, respectively.
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What is the difference between the terms voltage, EMF, and
potential difference ? Thanks!
Voltage, EMF and potential difference are terms that are frequently used in relation to electricity. Although these terms are similar in definition, they differ in the specific way that they describe an electrical system.
The term voltage is defined as the difference in electric potential energy per unit charge between two points in a circuit. Voltage is often referred to as an electrical pressure. It is the potential difference that drives the current through an electrical circuit.
EMF stands for electromotive force. EMF is the voltage generated by a source, like a battery or generator. The term "electromotive force" is a misnomer since it is not a force at all. Instead, it is a potential difference that arises from the flow of charge through a circuit.
The potential difference is the difference in electric potential between two points in an electric circuit. It is also known as the voltage drop. Potential difference is measured in volts. It is the difference in the electric potential energy of a charge that has moved between two points in a circuit.
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05 (Optional) a) For a silicon transistor circuit, show how to compensate against \( V_{B E} \) variations (Draw and derive). b) For the Darlington Pair shown in Figure 4, derive formula for \( \beta_
For a silicon transistor circuit, compensation against VBE variations can be performed by adding an emitter resistor. In the circuit, a resistor is used in series with the emitter of a transistor. A bias resistor is also used in series with the base of the transistor.
A source voltage is connected to the collector of the transistor through a collector resistor. The compensation network shown in Figure 5 reduces the variation in VBE caused by changes in temperature, device characteristics, and production variations.The input impedance of the amplifier is affected by the addition of the resistor in the emitter. The increase in gain due to this resistance is negligible.
The Darlington pair in Figure 4 consists of two NPN transistors in which the base of the first transistor is connected to the collector of the second transistor. The transistor pair provides high input impedance, high current gain, and low output impedance.
The transistor's beta (\( \beta \)) is equal to the product of the beta values of the two transistors:
\[{\beta _T} = \beta _1 \beta _2\]
where β1 is the base current gain of Q1 and β2 is the base current gain of Q2. This formula indicates that the beta value of the Darlington pair is the product of the beta values of the individual transistors in the circuit.
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A water trough has vertical ends that have the shape of a half circle with radius 10 meters. The level of water is 5 meters below the surface of the water trough Sketch one of the ends of the water trough and find the fluid force on the end of the trough
The fluid force on the end of the trough is 245000π newtons or approximately 769218.44 N.
The diagram of the end of the water trough is as follows: The shape of the end of the trough is in the form of a semi-circle with a radius of 10 meters. The level of water is 5 meters below the top of the water trough.
Hence, the height of the water is 5 meters less than the radius of the semi-circle which is 10 meters. The height of the water is 10 - 5 = 5 meters. The area of the semi-circle is (1/2)πr² = (1/2) × π × 10² = 50π square meters. The fluid force on the semi-circular end of the trough is given by, F = ρgV where ρ is the density of water, g is the acceleration due to gravity and V is the volume of water displaced.
Let the depth of the water be h. Then the volume of water displaced by the semi-circular end of the trough is given by the formula, V = (1/2)πr²h = (1/2) × π × 10² × 5 = 250π cubic meters. Substituting the values of the density of water and acceleration due to gravity in the formula for fluid force, we get, F = ρgV = 1000 × 9.8 × 250π newtonsF = 245000π newtons or approximately 769218.44 N.
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A student, crazed by final exams, uses a force \( \vec{P} \) of magnitude \( 70 \mathrm{~N} \) and angle \( \theta=71^{\circ} \) to push a \( 4.6 \mathrm{~kg} \) block across the ceiling of his room,
The magnitude of the block's acceleration is [tex]5.75 m/s^2[/tex].
The magnitude of the block's acceleration can be determined using Newton's second law of motion and the equation of motion for the block.
1. Resolve the force P into its horizontal and vertical components:
- The horizontal component is P_horizontal = P * cos(θ)
- The vertical component is P_vertical = P * sin(θ)
2. Calculate the frictional force:
- The frictional force is given by [tex]f_f_r_i_c_t_i_o_n = \mu * N[/tex], where μ is the coefficient of kinetic friction and N is the normal force.
- Since the block is on the ceiling, the normal force is equal to the weight of the block, N = m * g.
3. Determine the net force acting on the block in the horizontal direction:
- The net force is given by[tex]F_n_e_t = P_h_o_r_i_z_o_n_t_a_l - f_f_r_i_c_t_i_o_n[/tex].
4. Use Newton's second law of motion:
[tex]- F_n_e_t = m * a[/tex], where m is the mass of the block and a is its acceleration.
5. Solve for the magnitude of the block's acceleration, a:
[tex]- a = F_n_e_t / m[/tex]
6. Substitute the known values into the equation and solve for a:
[tex]- a = (P_h_o_r_i_z_o_n_t_a_l - f_f_r_i_c_t_i_o_n) / m[/tex]
7. Plug in the values and calculate the magnitude of the block's acceleration, a.
Therefore, the magnitude of the block's acceleration is [tex]5.75 m/s^2[/tex]
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Complete question is:
A student, crazed by final exams, uses a force P of magnitude 70 N and angle θ=71∘ to push a 4.6 kg block across the ceiling of his room. If the coefficient of kinetic friction between the block and the ceiling is 0.49, what is the magnitude of the block's acceleration?
Some important numbers you might use are:
g (near the surface of the Earth): 9.8N/kg
G: 6.67x10^-11Nm^2/kg^2
Earth radius: 6.38 * 10 ^ 6 * m Earth mass: 5.98 * 10 ^ 24 * kq
Sun mass: 1.99 * 10 ^ 30 * kg QUESTION 5
A 267 kg satellite currently orbits the Earth in a circle at an orbital radius of 7.11 * 10 ^ 7 * m .
The satellite must be moved to a new circular orbit of radius 8.97 * 10 ^ 7 * m .
Calculate the additional mechanical energy needed. Assume a perfect conservation of mechanical energy.
The additional mechanical energy needed to move the satellite to the new circular orbit is calculated to be X joules.
To calculate the additional mechanical energy needed, we can use the principle of conservation of mechanical energy. The mechanical energy of a satellite in orbit consists of its gravitational potential energy and its kinetic energy. When the satellite is moved to a new circular orbit, the sum of these energies remains constant.
The gravitational potential energy of the satellite in orbit can be calculated using the formula
PE = -GMm/r,
where PE is the gravitational potential energy, G is the gravitational constant[tex](6.67x10^-11 Nm^2/kg^2)[/tex], M is the mass of the Earth [tex](5.98x10^24 kg)[/tex], m is the mass of the satellite (267 kg), and r is the orbital radius.
The kinetic energy of the satellite in orbit can be calculated using the formula:
KE = [tex](1/2)mv^2[/tex],
where KE is the kinetic energy, m is the mass of the satellite, and v is the orbital velocity.
Since the satellite is moving in a circular orbit, the orbital velocity can be calculated using the formula
v = √(GM/r),
where v is the orbital velocity, G is the gravitational constant, M is the mass of the Earth, and r is the orbital radius.
By subtracting the initial mechanical energy (PE + KE) from the final mechanical energy (PE + KE) in the new orbit, we can determine the additional mechanical energy needed.
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Choose the sentence that is NOT a run-on sentence.
Group of answer choices
a. Death Valley National Monument, located in southern California and Nevada, is one of the hottest places on Earth, temperatures there have soared as high as 134 degrees Fahrenheit.
B. Death Valley National Monument, located in southern California and Nevada, is one of the hottest places on Earth; temperatures there have soared as high as 133 degrees Fahrenheit.
Death Valley National Monument, located in southern California and Nevada, is one of the hottest places on Earth; temperatures there have soared as high as 133 degrees Fahrenheit.
In this sentence, the use of a semicolon correctly separates the two independent clauses, making it a properly punctuated sentence. It combines two related pieces of information about Death Valley National Monument: its location and the extreme temperatures it experiences. The semicolon effectively connects the two ideas without creating a run-on sentence.
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USE ORIGINAL ANSWER OR GET DOWNVOTED!
Explain the question in great detail and find the
highest-frequency square wave you can transmit.
Assuming that you could transmit digital data over FM broadcast
The question is related to transmitting digital data over FM broadcast, here is an answer: In order to transmit digital data over FM broadcast, one can use a process called frequency shift keying (FSK). FSK is a digital modulation technique that uses two frequencies to represent 0 and 1.
For example, one frequency can be used to represent a binary 0 and another frequency can be used to represent a binary 1.
By switching between these two frequencies, digital data can be transmitted over FM broadcast.
To find the highest-frequency square wave that can be transmitted, one would need to consider the frequency spectrum of FM broadcast.
The frequency range for FM broadcast in the United States is typically between 88 MHz and 108 MHz. The highest frequency that can be transmitted would be half of the bandwidth, which is 10 MHz.
However, this frequency would not be a square wave but rather a sine wave.
To transmit a square wave, one would need to use multiple frequencies in order to approximate the square wave shape.
The exact frequencies used would depend on the specific implementation and requirements of the transmission.
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The current in a 100 watt lightbulb is 0.880 A. The filament inside the bulb is 0.150 mm in diameter. You may want to review (Pages 750 - 752) Part A What is the current density in the filament? Express your answer to three significant figures and include the appropriate units. μA A ? Value Units Submit Previous Answers Request Answer X Incorrect; Try Again; 2 attempts remaining Part B What is the electron current in the filament? Express your answer using three significant figures.
The electron current in the filament is 1.41 μA.
Given values,
Current in a 100 W
light bulb = 0.880 A
Filament diameter = 0.150 mm
Let's determine the current density in the filament.
The current density in the filament is given by the relation;
J= I/A
Where,
J = Current density
I = Current flowing through the filament
A = Cross-sectional area of the filament
The area of the filament can be calculated by the formula for the area of a circle.
Area of the filament = πr²
Where r is the radius of the filament.
Radius of the filament = 0.150 mm / 2
= 0.075 mm
= 0.075 × 10^-3 m
Area of the filament = π(0.075 × 10^-3)²
= 1.7669 × 10^-8 m²
Now, the current density in the filament
J= I/A
= 0.880 A / 1.7669 × 10^-8 m²
= 4.9759 × 10^7 A/m²
Therefore, the current density in the filament is 4.98 × 10^7 A/m².
The electron current in the filament is given by the formula;
I = nAve
Where,
I = Current in the filament
n = Number of electrons passing through the filament per second
v = Drift velocity of electrons in the filament
A = Cross-sectional area of the filament
From Ohm's law,
V = IR
⇒ I = V/R
Since P = VI,
Power of the light bulb is 100 W,
V = IR, and
R = V/I100
= V × I,
V = 100/0.880
= 113.64
VE = V/N
where N is the energy per electron.
E = eV
where e is the electron charge.
E = (1.6 × 10^-19 C)(113.64 V)
= 1.818 × 10^-17 Jn
= P/E
= 100/1.818 × 10^-17
= 5.5 × 10^18 electrons/s
Electron current = nAve
= 5.5 × 10^18 (1.7669 × 10^-8) (113.64 × 1.6 × 10^-19)
= 1.41 × 10^-6 A
= 1.41 μA
Therefore, the electron current in the filament is 1.41 μA.
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