the 8.00 a current through a 4.00 mh inductor is switched off in 8.33 ms. what is the emf induced (in v) opposing this?

Answers

Answer 1

The induced emf opposing the current is approximately -3.84 V for the 8.00 A current through a 4.00 mH inductor is switched off in 8.33 ms.

To find the induced emf in the inductor, we can use the formula:
emf = -L * (ΔI/Δt)
where:
emf = induced electromotive force (in volts)
L = inductance of the inductor (in Henrys)
ΔI = change in current (in amperes)
Δt = time taken for the current to change (in seconds)
Given the information in your question:
L = 4.00 mH = 4.00 * [tex]10^{-3}[/tex] H (converting millihenry to henry)
ΔI = 8.00 A (since the current is switched off, the change is equal to the initial current)
Δt = 8.33 ms = 8.33 * [tex]10^{-3}[/tex] s (converting milliseconds to seconds)
Now, we can plug these values into the formula:
emf = - (4.00 * [tex]10^{-3}[/tex] H) * (8.00 A) / (8.33 * [tex]10^{-3}[/tex] s)
emf = - (32 * 10^-3) / (8.33 * [tex]10^{-3}[/tex])
emf ≈ -3.84 V
The induced emf opposing the current is approximately -3.84 V. The negative sign indicates that the induced emf opposes the change in current, as expected.

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Answer 2

The EMF induced in the inductor opposing the change in current is approximately 3.84 V.

To find the EMF induced in the inductor, we'll need to use the formula for the induced EMF in an inductor, which is:

EMF = -L × (ΔI / Δt)

Here, EMF is the induced electromotive force, L is the inductance, ΔI is the change in current, and Δt is the time interval during which the current changes.

Given the information in your question, we have:

[tex]L = 4.00 mH = 0.004 H[/tex] (converting millihenries to henries)
[tex]ΔI = 8.00 A[/tex] (the current goes from 8 A to 0 A)
[tex]Δt = 8.33 ms = 0.00833 s[/tex] (converting milliseconds to seconds)

Now, plug the values into the formula:

EMF =[tex]-0.004 H × (8.00 A / 0.00833 s)[/tex]

EMF = [tex]-3.8408 V[/tex]

Since we're looking for the magnitude of the induced EMF, we can ignore the negative sign:

EMF = 3.8408 V

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Related Questions

In general, as a reaction proceeds to make more products, reaction rate decreases
true or false?

Answers

The given statement "In general, as a reaction proceeds to make more products, reaction rate decreases" is true.

This is because as the concentration of reactants decreases, there are fewer collisions between particles, leading to a slower rate of reaction. Additionally, some reactions may also be limited by factors such as the availability of reactants or the presence of catalysts.

However, there are some reactions where the opposite may be true, such as in a chain reaction where the formation of one product can trigger the formation of more products, leading to an increase in reaction rate.

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In the primer extension technique of SNP identification described in lecture, what method was used to detect the reaction product?

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The gel electrophoresis method was used to detect the reaction product in the primer extension technique for SNP identification.

In the primer extension technique for single nucleotide polymorphism (SNP) identification, the reaction product is detected using a method called gel electrophoresis.

The primer extension technique involves designing a specific primer that hybridizes to a region of interest on a DNA template.

The primer is then extended using a DNA polymerase enzyme in the presence of a dideoxynucleotide triphosphate (ddNTP), which is labeled with a fluorescent dye. If the ddNTP matches the SNP, then the primer will be extended by one nucleotide, creating a product that is one base longer than the original primer.

The gel is then visualized using a fluorescent imaging system, which detects the fluorescence emitted by the labeled ddNTPs.

By comparing the size and fluorescent intensity of the reaction product with a set of size standards and controls, the presence or absence of the SNP can be determined.

In summary, the primer extension technique for SNP identification uses gel electrophoresis to separate and detect the reaction product, which is labeled with a fluorescent dye.

This technique is widely used in molecular biology and genetics research for SNP genotyping and other applications.

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If an organism is classified in the animal kingdom, then it MUST

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If an organism is classified in the animal kingdom, then it must Identify traits common to all animals and traits that can be used to distinguish groups of related animals.

Give a brief account on animal kingdom.

The animal kingdom is the taxonomic kingdom that includes all animals, living or extinct. All animals on earth can be found in the taxonomic classification of the animal kingdom. Animals are classified into various subcategories to further define them, named as division, class, order, family, genus and species. Each classification is physically, anatomically or behaviorally in some way Similarities narrow as one moves down through divisions, classes, etc. until a unique species is defined.

We need to identify traits that are common to all animals and traits that can be used to distinguish between related animal groups. Animal classification systems group animals based on anatomy, morphology, evolutionary history, developmental traits, and genetic makeup.

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The complete question is as follows:

Complete the given sentence.

If an organism is classified in the animal kingdom, then it MUST_______.

Inquiry Skill
A student constructs a model of a natural resource using a can with a small hole
in the bottom. With the hole plugged, the can is filled with sand. When the plug is
removed, the sand drains out. What kind of resource does this model illustrate?

Answers

Answer: here might helpExplanation:What are the 4 types of drainage system?corrugated and PVC slotted subsurface pipes.mole drainage (including mole drains, mole drains over collector pipe systems and gravel mole drains)interceptor drains.ground water pumps.

(240-3)(310-15(A)(16)What size conductor (75 degrees C) is required for a 70 ampere breaker that supplies a 70 ampere load?

Answers

A 4 AWG copper conductor would be suitable for this application.

The first step is to simplify the expression inside the parentheses:

(240-3)(310-15(A)(16)) = (237)(310-240A)

Then, we can use the formula I = P/V to determine the current (I) required for a 70 ampere load, given the power (P) and voltage (V). Assuming a standard voltage of 120V, we get:

I = P/V = 8400W/120V = 70A

Since the breaker and load are both 70A, we need a conductor that can handle at least 70A. To account for potential heat buildup, we will use the 75 degrees C ampacity rating for the conductor.

Consulting a wire ampacity chart, we find that a 4 AWG copper conductor has an ampacity of 85A at 75 degrees C, which is more than enough for the 70A load. Therefore, a 4 AWG copper conductor would be suitable for this application.

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What is defined as the Human Movement System's relative ability to produce, reduce, and dynamically stabilize forces in all three planes of motion

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The Human Movement System's relative ability to produce, reduce, and dynamically stabilize forces in all three planes of motion is defined as the system's neuromuscular efficiency. Neuromuscular efficiency refers to the ability of the nervous system and musculoskeletal system to work together to produce efficient movement patterns.


The human body moves in three planes of motion - sagittal (forward and backward), frontal (side-to-side), and transverse (rotational).

The neuromuscular system is responsible for controlling these movements and stabilizing the body during physical activity. Neuromuscular efficiency is essential for optimal performance, injury prevention, and overall functional movement.
The Human Movement System's ability to produce, reduce, and dynamically stabilize forces in all three planes of motion is referred to as neuromuscular efficiency.

This system plays a crucial role in movement patterns and physical activity and is essential for optimal performance and injury prevention.

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Conductors in Parallel: If we have an 800 ampere service with a calculated demand load of 750 ampere, what size 75 degree C conductors would be required if parallel in two raceways?

Answers

4/0 AWG conductors would be suitable for parallel runs in each raceway for an 800A service with a 750A demand.

To decide the size of the guides required for equal runs, the ampacity of every guide ought to be determined first. Since we have two raceways, the complete ampacity of the equal runs would be partitioned similarly between them.

Utilizing the 800 ampere administration and a determined interest heap of 750 amperes, we can compute the necessary ampacity for every guide by isolating the all out ampacity by the quantity of guides in equal (two).

800 amps/2 = 400 amps for every guide

Then, we want to allude to the NEC ampacity graph to decide the fitting wire size. For 75 degree Celsius guides, a 4/0 AWG guide has an ampacity of 405 amps. Thusly, a 4/0 AWG guide would be reasonable for the equal runs in every raceway, since it has an ampacity more prominent than the expected 400 amps for each guide.

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The complete question is:

If an 800A service has a calculated load of 750A, what size 75 degree C conductors are required if the conductors are paralleled in two raceways? All termanitions are 75 degree C.

a. 4/0 AWG

b. 250 kcmil

c. 500 kcmil

d. 750 kcmil

Which object would most likely absorb sound?
A. Bare rock
B. Solid floors
C. A blanket
D. A smooth wall​

Answers

The object that will most likely absorb sound would be a blanket. That is option C

What is a sound energy?

A sound energy is the type of energy that travels through vibrations in air and can be heard through human ears or detected using specialised equipments.

The properties of sound energy include the following:

Pitch, Dynamics (loudness or softness),Timbre (tone color), and Duration.

Blankets are less solid in nature than rocks,wall and floors in which sound waves can easily bound off from.

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A 5 kg ball is dropped from a height of 3 m onto a vertical spring, which has a spring constant of 800 N/m. How much will the spring compress

Answers

The spring will compress by 0.6 meters when the 5 kg ball is dropped from a height of 3 m onto it.

When the ball hits the spring, it applies a force on the spring equal to its weight, which is 5 kg x 9.81 m/s^2 = 49.05 N. The spring then starts to compress and the force it exerts on the ball increases according to Hooke's Law, which states that is proportional to the displacement of the spring from its equilibrium position. The spring constant in this case is 800 N/m, so the force on the ball will be 800 x the displacement of the spring. To calculate the compression of the spring, we can use the conservation of energy principle, which states that the initial potential energy of the ball at a height of 3 m is equal to the final potential energy of the compressed spring. Therefore, we have:
mgh = 1/2 kx^2
where m is the mass of the ball, g is the acceleration due to gravity, h is the initial height, k is the spring constant, and x is the compression of the spring. Plugging in the values, we get:
5 x 9.81 x 3 = 1/2 x 800 x x^2
which simplifies to:
x = sqrt((5 x 9.81 x 3)/(800 x 0.5)) = 0.6 meters

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Question 55
The presumptive evidence of the presence of coliform in the MPN test is:
a. The color change in the culture media
b. Turbidity of the culture broth
c. The presence of gas from the fermentation of the media
d. Metallic sheen on colonies

Answers

The correct answer is c. The presence of gas from the fermentation of the media is the presumptive evidence of the presence of coliform in the MPN (most probable number) test.

This is because coliform bacteria are capable of fermenting lactose, producing gas as a byproduct. The MPN test involves using multiple tubes of lactose broth that are inoculated with a water sample and incubated to see if any gas is produced, indicating the presence of coliform bacteria.

The presumptive evidence of the presence of coliform in the MPN test is:

c. The presence of gas from the fermentation of the media

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(310-60(C)(71)) Table 310-71 provides ampacities of an insulated three-conductor copper cable isolated in air, based on conductor temperature of 90 C (194 F) and ambient air temperature of 40 C (104 F) . If the conductor size is No. 4/0 AWG, MV-105, and the voltage range is 2001 to 5000, the ampacity is _____ amperes

Answers

Based on the information provided, the ampacity of the insulated three-conductor copper cable with a conductor size of No. 4/0 AWG, MV-105, and voltage range of 2001 to 5000 would depend on the temperature rating of the cable.
the calculation as they are not the operating conditions for the cable.

Therefore, the answer to the question cannot be determined with the given information. However, the given temperatures of 90 C (194 F) for the conductor and 40 C (104 F) for the ambient air are not applicable to the calculation as they are not the operating conditions for the cable. To determine the correct ampacity, the table 310-71 must be referenced using the correct temperature ratings for the cable's operating conditions. The ampacity is the maximum current that can be carried safely by the conductor without exceeding its temperature rating.

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Three charges are placed as shown below. Determine the magnitude and direction of the net electrostatic force on charge q1. As part of the solution, include a force diagram.
d1= 1.5m
d2= 3.0m
q1=2.0uC
q2=-3.5uC
q3=5uC

Answers

1.8 x 10-3 N to the left is the strength and guidance of the net electrostatic force on q1.

Where may one find electrostatic force?

The size of each charge & the separation between them determine how much electrostatic force there will be. When two charges of the same type are brought together, whether positive or Two charges positioned apart are subject to the electrostatic force., they repel one another.

What is electrostatic force, and what does it look like?

The mathematical formula for the electrostatic attraction between two objects was initially published by a Frenchman named Charles Coulomb. The force between the charged points can be calculated using Coulomb's law. Its formula is F=k|q1q2|r2, where q1 as well as q2 correspond to two point charges that are separated from one another by r, and where k=8.99109Nm2/C2.

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14 What are the solutions to the equation 3(x-4)^2 = 27?
(1) 1 and 7
(3) 4 ± √24
(2)-1 and -7
(4) -4 = √24
15

Answers

The answer is number 1

3(7-4)^2=27
3(3)^2=27
3(9)=27
27=27

3(1-4)^2=27
3(-3)^2=27
3(9)=27
27=27

heteroskedastic modelling focuses on modelling the unconditional variance of a time series. (True or False)

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The statement "heteroskedastic modeling focuses on modeling the unconditional variance of a time series" is true. Heteroskedasticity refers to the situation where the variance of a variable is not constant over time but instead varies with some underlying factor or condition.

When modeling a time series, it is important to account for heteroskedasticity because failing to do so can lead to biased and inefficient estimates of model parameters.

Heteroskedastic modeling involves modeling the variance of a time series as a function of some explanatory variables. This can be done using a variety of statistical techniques, such as generalized autoregressive conditional heteroskedasticity (GARCH) models.

By incorporating information about the factors that drive the variation in the variance of a time series, heteroskedastic modeling can improve the accuracy and reliability of predictions and forecasts.

Overall, understanding and accounting for heteroskedasticity is an important consideration when modeling time series data, and can lead to more robust and accurate analyses.

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True. Heteroskedastic modelling involves modeling the variance of a time series that is not constant over time, and this modeling is typically done in an unconditional manner, meaning that it is not conditioned on any specific values of the time series or other variables.
True, heteroskedastic modeling focuses on modeling the unconditional variance of a time series.

The statement "Heteroskedastic modelling focuses on modelling the unconditional variance of a time series" is generally true.

Heteroscedasticity refers to the unequal variance of a variable across different levels of another variable. In time series analysis, it means that the variance of the series changes over time. Heteroskedastic modeling is a method used to address the issue of varying variances in time series data.

The goal of heteroskedastic modeling is to estimate the unconditional variance of a time series, which means the variance is not conditioned on any other variables. The model can then be used to identify patterns in the variance over time and to make predictions about future variances.

Therefore, the statement is generally true, although it should be noted that the specific focus of heteroskedastic modeling may depend on the specific approach or methodology being used.

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a mother has four times the mass of her young son. both are running with the same kinetic energy. part a what is the ratio vs/vm other of their speeds? express your answer using two significant figures.

Answers

The ratio of their speeds (vs/vm) can be found by using the equation for kinetic energy, which is KE = 1/2 mv^2, where KE is kinetic energy, m is mass, and v is velocity/speed.

Since both the mother and son have the same kinetic energy, we can set their individual equations equal to each other and solve for the ratio of their speeds: 1/2 (4m) v_m^2 = 1/2 m v_s^2, Simplifying, we get: v_s/v_m = sqrt(4), v_s/v_m = 2
Therefore, the ratio of their speeds is 2.



Since the mother has four times the mass of her son (Mm = 4 * Ms), and both have the same kinetic energy, we can set up the following equation: 0.5 * Ms * Vs^2 = 0.5 * (4 * Ms) * Vm^2, Now, we can simplify the equation and solve for the ratio of their speeds (Vs / Vm): Vs^2 = 4 * Vm^2.


Taking the square root of both sides: Vs = 2 * Vm
Thus, the ratio of their speeds is Vs / Vm = 2 / 1 or 2.00, using two significant figures.

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in the winter activity of tubing, riders slide down snow covered slopes while sitting on large inflated rubber tubes. to get to the top of the slope, a rider and his tube, with a total mass of 90 kg , are pulled at a constant speed by a tow rope that maintains a constant tension of 370 n . part a how much thermal energy is created in the slope and the tube during the ascent of a 30-m -high, 120-m -long slope?

Answers

This is the 61,440 J of work done by the tow rope on the rider and tube to pull them up the slope.

Some of this energy will be converted into thermal energy due to friction between the tube and the snow.

The amount of thermal energy created depends on the efficiency of the conversion process, which we do not know.

To calculate the thermal energy created during the ascent of the slope, we need to consider the work done on the rider and tube by the tow rope. The work done is equal to the product of the force applied and the distance moved in the direction of the force.

First, let's calculate the force of gravity acting on the rider and tube as they are pulled up the slope. The force of gravity is equal to the mass times the acceleration due to gravity, which is approximately [tex]9.8 m/s^{2}[/tex] Force of gravity =[tex]90 kg * 9.8 m/s^{2}[/tex]

= 882 N Since the tow rope maintains a constant tension of 370 N, the net force acting on the rider and tube is equal to the difference between the force of gravity and the tension of the rope:

Net force = 882 N - 370 N

= 512 N

Next, let's calculate the work done by the tow rope. The work done is equal to the net force times the distance moved in the direction of the force, which is the length of the slope.

Work done = Net force x Distance moved Work done = 512 N x 120 m = 61,440 J This is the amount of work done by the tow rope on the rider and tube to pull them up the slope.

Some of this energy will be converted into thermal energy due to friction between the tube and the snow.

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A No. _____ THHN conductor is required for a 19.7 ampere load if the ambient temperature is 75F and there are nine current-carrying conductors in the raceway.

Answers

A No. 12 THHN conductor is required for a 19.7-ampere load if the ambient temperature is 75F and there are nine current-carrying conductors in the raceway.

To determine the size of the THHN conductor required for a 19.7-ampere load, we will need to use the ampacity tables from the National Electric Code (NEC).

The ampacity tables provide the maximum current-carrying capacity of various types and sizes of conductors based on factors such as ambient temperature and the number of current-carrying conductors in the raceway or cable.

Assuming a copper conductor, we can use NEC Table 310.15(B)(16) to find the ampacity of a No. 12 THHN conductor at an ambient temperature of 75F with nine current-carrying conductors. According to the table, the ampacity of a No. 12 THHN conductor with nine current-carrying conductors at 75F is 20 amperes.

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find the code word by completing the maze below. To complete the maze you must determine what type of triangle is formed by the given set of dimensions there are letters in each box that will form the code word you need to unlock puzzle four. the letters will go in order from the word

Answers

The dimensions given are 3, 4, and 5. This forms a right triangle, which is also known as an isosceles triangle. Therefore, the code word is "ISOSCELES".

What is dimensions?

Dimensions is a term used to describe the size and shape of an object. It is typically used in mathematics, physics, and engineering to measure the length, width, height, and depth of an object or surface. It is also used to describe the size, shape, and relative position of objects in space. Dimensions can be expressed in absolute units such as meters, centimeters, and inches, or in relative units such as proportions and ratios. In some cases, dimensions can also be expressed as angles, curves, or nonlinear equations. Knowing the dimensions of an object can help determine its volume, surface area, and other properties, and can be used to compare the size and shape of different objects.

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(110-14(C) Most terminals are rated 60C for equipment 100 ampere and less and 75C for equipment terminals rated over 100 ampere. Regardless of the conductor ampacity, conductors must be sized no smaller than the terminal temperature rating.(True/False)

Answers

True. Most terminals are rated 60C for equipment 100 ampere and less and 75C for equipment terminals rated over 100 ampere. Regardless of the conductor ampacity, conductors must be sized no smaller than the terminal temperature rating is true.

Valid. Guides should be estimated no more modest than the terminal temperature rating, no matter what the guide ampacity. This is on the grounds that utilizing guides that are excessively little for the terminal rating can prompt overheating of the terminals, which can cause harm or even make a fire risk.

Consequently, it is vital to guarantee that the guides utilized in a given establishment are properly measured to match the terminal temperature rating of the hardware being utilized. This can assist with guaranteeing protected and solid activity of the gear over its lifetime.

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a straight length of wire carries a current of 50 a in a region where a uniform magnetic field has a magnitude of 0.100 t. the field is directed at an angle of 30 degrees away from the wire. there is a force on the wire measured to be 10n. how long is the wire?

Answers

The equation F = BILsinθ, where F is the force on the wire, B is the magnitude of the magnetic field, I am the current in the wire, L is the length of the wire, and θ is the angle between the magnetic field and the wire. Plugging in the given values, we get10 = 50 Lsin30Simplifying this equation, we get. L = 4 meters Therefore, the length of the wire is 4 meters.


The solve this problem, we will use the formula for the magnetic force on a current-carrying wire.F = I * L * B * sin(θ)
where F is the force, I am the current, L is the length of the wire, B is the magnitude of the magnetic field, and θ is the angle between the magnetic field and the direction of the current. We are given the following information = 10 I = 50 A
B = 0.100 T θ = 30 degrees First, we need to convert the angle to radians θ = 30 degrees × π radians / 180 degrees = π/6 radians Now, we can plug the given values into the formula and solve for L10 N = 50 A * L * 0.100 T * sin(π/6) Divide both sides by 50 A * 0.100 T * sinπ/6 L = 10 N / 50 A * 0.100 T * sinπ/6 Calculate the length L ≈ 3.464 m So, the length of the wire is approximately 3.464 meters.

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12) All the following types of objects are found almost exclusively in the disk (rather than the halo) of the Milky Way except A) young stars.
B) globular clusters.
C) X-ray binaries.
D) high-mass, red supergiant stars.

Answers

B) Globular clusters. Globular clusters are found almost exclusively in the halo of the Milky Way, rather than the disk.

The other objects mentioned, such as young stars, X-ray binaries, and high-mass red supergiant stars, are typically found in the disk of the Milky Way. Globular clusters are ancient, densely packed collections of stars that are typically found in galactic halos, rather than in the disks of galaxies. They are composed of some of the oldest stars in the universe, and are typically found in the halo regions of galaxies. X-ray binaries, high-mass, red supergiant stars, and young stars, on the other hand, are all typically found in the disks of galaxies, rather than in their halos.

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the mars global surveyorlinks to an external site. orbits mars at an average altitude of 380 km. the average radius of mars is 3390 km. if it takes the spacecraft 1.95 hours to complete one orbit around the planet, what is it's tangential velocity in kilometers per hour?

Answers

The tangential velocity of the Mars Global Surveyor is 12,151.8 kilometers per hour.

To find the tangential velocity of the Mars Global Surveyor, we need to first determine the circumference of its orbit around Mars and then divide it by the time it takes to complete one orbit.



1. Calculate the total radius of the orbit (radius of Mars + altitude of the spacecraft):
Total radius = 3390 km (average radius of Mars) + 380 km (altitude of the spacecraft) = 3770 km



2. Calculate the circumference of the orbit using the formula C = 2πr:
Circumference (C) = 2 * π * 3770 km ≈ 23693.6 km


3. Calculate the tangential velocity using the formula v = distance/time:
Tangential velocity (v) = 23693.6 km / 1.95 hours ≈ 12151.8 km/h

So, the Mars Global Surveyor's tangential velocity is approximately 12,151.8 kilometers per hour.

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(300-14) An 8" x 8" x 4" deep junction/splice box would only require 6 inches of free conductor measured from the point in the box where the conductors enter the enclosure. The 3 inch outside the box rule _____ apply.

Answers

The 3 inch outside the box rule does not apply in this case. The requirement for 6 inches of free conductor measured from the point in the box where the conductors enter the enclosure is sufficient.

Any material's conductance directly relates to how easily electric current can flow through it. Resistance's opposite is conductance. Both are inversely proportional: the higher the conductance, the lower the resistance, and vice versa (the higher the resistance, the less conductance).

One of the wires required in an electrical circuit is referred to as a grounded conductor. In essence, it acts as a neutral conductor.  In the past, it carried the current when everything were normal. While grounding, on the other hand, refers to a safety wire that is connected to the earth but does not now transmit via it

Since grounding wire is also known as a safety wire, only extreme situations, such as a short circuit, for it to carry current.

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50. Through how many revolutions did the wheel rotate during the 5.0 seconds of braking?
A) 10 rev
B) 2.0 rev
C) 9.6 rev
D) 5.0 rev
E) 0.4 rev

Answers

The wheel rotated 150 revolutions during the 5.0 seconds of braking. The closest option is c.

To answer this question, we need to know the rate of rotation of the wheel. Let's call this rate "r". We can find "r" by dividing the initial speed of the wheel by its radius:

r = v / r

r = 20 m/s / 0.5

r = 40 rev/s

Now we can use the formula for rotational motion:

θ = ωt + 1/2 αt²

where θ is the angle of rotation, ω is the initial angular velocity (in rev/s), t is the time, and α is the angular acceleration (which is negative in this case, since the wheel is slowing down).

We want to find θ when t = 5.0 s. We know that ω = 40 rev/s and α = -4 rev/s² (since the wheel is slowing down at a rate of 4 rev/s every second).

θ = ωt + 1/2 αt²

θ = (40 rev/s)(5.0 s) + 1/2 (-4 rev/s²)(5.0 s)²

θ = 200 rev - 50 rev

θ = 150 rev

Therefore, the wheel rotated 150 revolutions during the 5.0 seconds of braking. The answer is not listed, but the closest option is C) 9.6 rev, which is incorrect.

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during the testing of a new light bulb, a sensor is located a distance of 51.5 cm from the bulb. it records an intensity of 373.9 w/m2 for the radiation emitted from the bulb. what is the rms value of the magnetic field at that location? (in t)

Answers

The RMS value of the magnetic field at the location of the sensor is approximately 0.0141 T, To calculate the RMS value of the magnetic field at that location,

we can use the formula for the intensity of electromagnetic radiation Intensity (I) = (1/2) * c * μ₀ * B², where c is the speed of light (3 × 10^8 m/s), μ₀ is the permeability of free space (4π × 10^-7 Tm/A), and B is the RMS value of the magnetic field.



First, we need to rearrange the formula to solve for B:
B = sqrt(2 * I / (c * μ₀))
Now we can plug in the given values:I = 373.9 W/m²
Distance = 0.515 m (convert 51.5 cm to meters)
Note that the distance is not relevant in this calculation, as we are given the intensity at the location of the sensor.



B = sqrt(2 * 373.9 / (3 × 10^8 * 4π × 10^-7))
B = sqrt(747.8 / (3.767 × 10^6))
B = sqrt(0.000198)
B ≈ 0.0141 T
The RMS value of the magnetic field at the location of the sensor is approximately 0.0141 T.

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(240) (210-20(A))The maximum continuous load permitted on an overcurrent protection device is limited to _____ of the device rating.

Answers

The maximum continuous load permitted on the overcurrent protection device is 192 amps.

What is the maximum continuous load permitted on overcurrent protection?

The maximum continuous load permitted on an overcurrent protection device is limited to 80% of the device rating.

To calculate this, first we need to find the value of 210-20(A) in the given expression:

240 - (210-20(A))

= 240 - 210 + 20(A)

= 30 + 20(A)

Now, according to the National Electrical Code (NEC), the maximum continuous load on an overcurrent protection device should not exceed 80% of the device rating. In other words, the device should be rated at least 125% of the continuous load.

In this case, the expression 30 + 20(A) represents the continuous load, and the overcurrent protection device is rated at 240 amps. Therefore, the maximum continuous load permitted on the device is:

80% of 240 = 0.8 x 240 = 192 amps

So, the maximum continuous load permitted on the overcurrent protection device is 192 amps.

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Question 91
Generic effects from radiation exposure are usually immediately evident.
a. True
b. False

Answers

The given statement "Generic effects from radiation exposure are usually immediately evident" is false.

Acute radiation syndrome, which is a group of symptoms that can occur within hours or days of high-level radiation exposure, is a possible immediate effect. However, other long-term effects such as cancer, genetic mutations, and organ damage may not be noticeable until years after the initial exposure.

The severity and duration of these effects can depend on various factors such as the type and amount of radiation exposure, the individual's age and overall health, and the protective measures taken.

Therefore, it is important to take precautions to minimize radiation exposure and monitor individuals who have been exposed to ensure any potential effects are detected and treated as early as possible.

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44. What is the magnitude of the centripetal acceleration of a point on the rim of the grindstone?
A) zero m/s2
B) 0.5 m/s2
C) 1.0 m/s2
D) 2.0 m/s2
E) 4.0 m/s2

Answers

The centripetal acceleration of a point on the rim of a grindstone is determined by the formula a = v^2/r, where a is the acceleration, v is the velocity, and r is the radius of the circle. In this case, we assume that the grindstone is rotating at a constant speed, which means that the velocity of any point on the rim is constant.

Therefore, the magnitude of the centripetal acceleration depends only on the radius of the circle.Since the question does not provide any information about the radius of the grindstone, we cannot determine the magnitude of the centripetal acceleration. However, we can conclude that options A and B are incorrect because the centripetal acceleration cannot be zero if the grindstone is rotating, and it cannot be less than 0.5 m/s^2 because that is the minimum acceleration required to keep an object moving in a circle.
Therefore, the correct answer must be either C, D, or E, depending on the radius of the grindstone. If the radius is relatively small, the acceleration will be closer to 4.0 m/s^2 (option E), while if the radius is relatively large, the acceleration will be closer to 1.0 m/s^2 (option C). The centripetal acceleration of a point on the rim of a grindstone is determined by the formula a = v^2/r, where a is the acceleration, v is the velocity, and r is the radius of the circle. In this case, we assume that the grindstone is rotating at a constant speed, which means that the velocity of any point on the rim is constant.
In summary, the magnitude of the centripetal acceleration of a point on the rim of a grindstone depends on the radius of the circle and is given by the formula a = v^2/r. We cannot determine the exact answer without knowing the radius of the grindstone, but we can eliminate options A and B as incorrect.

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What is the magnitude of the total magnetic flux Φfinal through the coil after it is rotated?Express your answer numerically, in webers, to at least three significant digits.

Answers

Unfortunately, without knowing more information about the specific situation and parameters of the coil being rotated, I cannot provide a numerical answer for the magnitude of the total magnetic flux Φfinal through the coil after it is rotated. However, I can explain some relevant concepts related to the terms you provided.

Magnitude refers to the size or quantity of a physical property or measurement. In the case of magnetic flux, the magnitude would refer to the strength or amount of the flux passing through a given area.

Rotated implies that the coil has been turned or twisted in some way, potentially changing the orientation of the magnetic field passing through it and thus affecting the magnitude of the magnetic flux.

Significant digits are the digits in a number that contributes to its precision or accuracy. When expressing an answer to a numerical problem, it is typically recommended to include a certain number of significant digits to reflect the precision of the measurement or calculation. In this case, the instruction to provide the answer "to at least three significant digits" means that the final numerical answer should include three digits that are considered significant, meaning they are not zeros and are contributing to the precision of the measurement.
To calculate the magnitude of the total magnetic flux (Φ_final) through the coil after it is rotated, I need more information about the coil, such as its area, the number of turns, and the magnetic field it is subjected to. Please provide these details, and I can help you with the calculation.

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Question 10
The measure that is used to determine the loudness of a sound is:
a. hertz
b. decibel
c. frequency
d. amplitude

Answers

The measure that is used to determine the loudness of a sound is the decibel.

Hertz refers to the frequency of a sound wave, while amplitude refers to the height of the wave.
 A person's perception of loudness is influenced by the amount of sound they hear. A sound's volume is determined by its intensity, which is itself governed by its frequency. Sounds are measured by their intensity or the energy they hold. Intensity is measured in decibels (dB). In this way, the loudness of sounds is determined by its intensity. There are two factors that determine how intense a sound is: the size of the sound waves and the distance from their source.

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