(332-40(B)) Where MI cable terminates, a _____ shall be provided immediately after stripping to prevent the entrance of moisture into the insulation.

The total mechanical energy of the apple is of a 0.100-kilogram apple hangs in a tree 1.50 meters above the ground. Ignoring frictional effects, the total mechanical energy of the apple is 1.47 J (joules)

To find the total mechanical energy, we need to consider both the potential energy and kinetic energy of the apple. Since the apple is not moving, its kinetic energy is zero. However, it does have gravitational potential energy due to its height above the ground. The formula for gravitational potential energy is:
PE = mgh
where m is the mass of the object (0.100 kg), g is the acceleration due to gravity [tex](9.81 m/s^{2})[/tex], and h is the height above the ground (1.50 m).
Plugging in these values, we get:
[tex]PE = (0.100 kg)(9.81 m/s^{2})(1.50 m)[/tex]

= 1.47 J
Therefore, the total mechanical energy of the apple is 1.47 J.
In summary, the total mechanical energy of the apple hanging in the tree is 1.47 J, which is solely due to its gravitational potential energy.

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The initial moments after the Big Bang and the current universe have a few things in common like Expansion; Radiation; Structure formation; etc.

Expansion: The universe has been expanding since the Big Bang, and this expansion is still happening. The initial moments after the Big Bang were characterized by a period of rapid inflation, and this expansion has continued to shape the structure of the universe we see today.

Radiation: The universe was filled with intense radiation in the initial moments after the Big Bang, and this radiation still exists in the form of the cosmic microwave background (CMB) radiation.

This radiation is thought to have been produced about 380,000 years after the Big Bang and has been traveling through space ever since, providing us with valuable information about the early universe.

Formation of structure: The initial moments after the Big Bang set the stage for the formation of the large-scale structure of the universe we observe today, such as galaxies, stars, and planets. The tiny fluctuations in the density of matter in the early universe were amplified by gravitational attraction over time, leading to the formation of these structures.

However, there are also many differences between the early universe and the universe as it exists now. For example, the universe was much hotter and denser in the early moments after the Big Bang, and there were no stars or galaxies yet.

The universe has also undergone many complex physical processes over billions of years, such as the formation of black holes and the evolution of stars, that were not present in the early universe.

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The correct answer is: D.) 22 degrees CelsiusThe formula for converting Fahrenheit to Celsius is (°F - 32) x 5/9.

At night, the temperature is 35°F, which is (35-32) x 5/9 = 1.67°C.

During the day, the temperature is 75°F, which is (75-32) x 5/9 = 23.89°C.

The temperature change on the Celsius scale is the difference between the two, which is 23.89°C - 1.67°C = 22.22°C.

So the answer is D.) 22 degrees Celsius.
To find the temperature change on the Celsius scale, first convert the initial and final temperatures from Fahrenheit to Celsius using the formula: Celsius = (Fahrenheit - 32) * 5/9.

Initial temperature in Celsius: (35°F - 32) * 5/9 = 1.67°C
Final temperature in Celsius: (75°F - 32) * 5/9 = 23.89°C

Now, find the temperature change by subtracting the initial temperature from the final temperature:

Temperature change = 23.89°C - 1.67°C = 22.22°C

Rounded to the nearest whole number, the temperature change on the Celsius scale is approximately 22 degrees Celsius. Therefore, the correct answer is:

D.) 22 degrees CelsiusThe formula for converting Fahrenheit to Celsius is (°F - 32) x 5/9.

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Two notes are sounding, one of which is 440 Hz. If a beat frequency of 5 Hz is heard, the other notes frequency is 435 Hz and 445 Hz.

The difference in frequency between the two original waves is referred to as the beat frequency. Accordingly, the smaller the beat frequency (i.e., fewer beats per second) is, the easier it is for the human ear to discern between the two frequencies. Contrarily, the faster the beat frequency and the more difficult it is to discern, the farther apart the two sine waves are in frequency, to the point where the amplitude modulation brought on by very fast beat frequencies can't truly be distinguished by the human ear. Beat frequencies that result in subjective tones and the effects they can have on the listener include multiphonics and the missing fundamental effect.

The other notes frequency is 435 Hz and 445 Hz.

This can be calculated by subtracting 5 Hz from 440 Hz. 440 Hz - 5 Hz = 435 Hz and by adding 5 Hz to 440 Hz.

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The weightlifter has done 900 Joules of work to move the weight over her head. Work is a measure of the energy transferred when a force is applied over a distance. In this case, the weightlifter has transferred 900 Joules of energy to the weight.

The work done by the weightlifter to move the weight over her head can be calculated by multiplying the force applied to the weight by the distance it is moved. In this case, the force applied is 500N and the distance moved is 1.8m.

So, the work done is:

Work = Force x Distance

Work = 500N x 1.8m

Work = 900 Joules

It's important to note that the weightlifter's own weight and the force of gravity also played a role in the overall work done to move the weight. The weightlifter had to overcome the force of gravity to lift the weight off the ground, and her own weight contributed to the force required to lift the weight. However, for the purpose of this calculation, we have assumed that the weight was lifted in a smooth and controlled motion without any effort or sudden movements.

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When the accumulated count exceeds the preset count in a counter system, the correct response is that the D. counter done bit becomes true.

In this situation, the accumulated value represents the total count that has been recorded, while the preset count serves as a threshold or target value. Once the accumulated count surpasses this threshold, the counter's done bit is set to true, signaling that the desired count has been reached. This done bit is typically used to trigger other actions within a control system or to provide feedback to the operator.

It is important to note that the accumulated value is not reset to zero (A) and the preset value is not set to zero (B) when the accumulated count exceeds the preset count. These values remain unchanged unless the system is manually reset or a specific reset command is given. Furthermore, the reset state itself does not change (C) solely due to the accumulated count surpassing the preset count.

In summary, when the accumulated count exceeds the preset count, the counter done bit becomes true, providing an indication that the desired counting threshold has been reached. This signal can then be used to initiate further actions within the system or provide feedback to the operator. Therefore the correct option is D

The Question was Incomplete, Find the full content below :

When the accumulated count exceeds the preset count,the:

A)accumulated value is set to zero.

B)preset is set to zero.

C)reset changes state.

D)counter done bit is true.

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Using everyday objects like a paperclip or a cent, monitoring the development of droplets, or using a soap bubble, one can illustrate surface tension at home or in the lab.

With a force tensiometer and a Du Noüy ring or Wilhelmy plate, surface tension can be detected. Or you might use an optical tensiometer and the pendant drop technique.

A stalagmometer is a device used to calculate surface tension using the stalagmometric method. . A stactometer or stalogometer is another name for it. A hygrometer is a type of weather instrument used to gauge the humidity level in the air.

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Answer:

2.56 N/m

Explanation:

The force exerted by a spring is given by the equation:

[tex]F_s = kx[/tex]

where [tex]k[/tex] is the spring constant, and [tex]x[/tex] is the distance that the spring is stretched or compressed from its equilibrium.

To find [tex]x[/tex], we will simply subtract the spring's initial position from its final position:

[tex]x = 1.50 m - 0.25 m\\x = 1.25 m[/tex]

It is given in the problem that the force exerted by the spring is 3.20 Newtons. So, we can solve the equation for [tex]k[/tex] and calculate the spring constant.

[tex]k = \frac{F_s}{x} \\k = \frac{3.20N}{1.25m} \\k = 2.56 N/m[/tex]

True. According to the Terminal Rating (110-14(C)(1)) in the National Electrical Code (NEC), terminals for equipment rated over 100 ampere and pressure connector terminals for conductors larger than No. 1

It must have the conductor sized according to the 75 degree C temperature rating as listed in Table 310-15(a)(16). This is to ensure that the terminals and connectors are properly sized and can handle the electrical load without overheating. The statement "Terminal Rating (110-14(C)(1)): Terminals for equipment rated over 100 ampere and pressure connector terminals for conductors larger than No. 1 shall have the conductor sized according to 75 degree C temperature rating as listed in Table 310-15(a)(16)" is True.

According to the National Electrical Code (NEC), terminals for equipment rated over 100 ampere and pressure connector terminals for conductors larger than No. 1 are required to have their conductors sized based on the 75 degree C temperature rating listed in Table 310-15(a)(16). This ensures proper conductor sizing and safe operation under the specified temperature and pressure conditions.

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The solve this problem, we need to use the formula ω² = ω₀² + 2αθ where ω is the final angular speed, ω₀ is the original angular speed, α is the angular deceleration use a negative value since it's deceleration, and θ is the angle through which the wheel has turned.

To solve this problem, we can use the following angular motion equationω² = ω₀² + 2αθ where ω is the final angular speed, ω₀ is the original angular speed, α is the angular deceleration use a negative value since it's deceleration, and θ is the angle through which the wheel has turned.ω₀ = 126 rad/s originally α = -5.00 rad/s² (angular deceleration)θ = 628 rad angle Now, plug in the values into the equation ω² = 126 rad/s² + 2-5.00 rad/s² 628 radω² = 15876 - 6280ω² = 9596To find ω, take the square root of 9596:ω = √9596 ≈ 98 rad/s So, the final angular speed after turning through an angle of 628 radians is approximately 98 rad/s. The correct answer is C 98 rad/s.

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The frequency of light in a vacuum that has a wavelength of 71200 m is 4.213 kHz.

The frequency of light is obtained from the ratio of the speed of light and wavelength of light. The frequency,ν = c / λ, where c is the speed of the light in vacuum and is equal to 3×10⁸ m/s and λ is the wavelength of light.

From the given,

the wavelength of light = 71200 m

speed of light = 3×10⁸ m/s

Frequency =?

ν = c / λ

=  3×10⁸ / 71200

= 4.213 kHz.

The frequency of light in a vacuum is 4.213 kHz.

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When a charged capacitor is connected in series to a switch and a light bulb, it forms a circuit.

The capacitor is like a temporary battery that stores electrical charge. When the switch is closed, the circuit is completed, and the electrical charge stored in the capacitor is released, causing a current to flow through the light bulb. As a result, the light bulb will light up. However, once the capacitor discharges completely, the light bulb will go out. So, in summary, the charged capacitor in this circuit acts as a temporary power source, and the switch controls the flow of electricity to the light bulb.

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The correct answer is d. aluminum. Beta radiation consists of high-energy electrons that can be stopped by materials with moderate levels of atomic number and density, such as aluminum.

Lead is a better shield against gamma radiation, while glass and plastic can stop alpha radiation.

An electron current with a kinetic energy between 0.2 MeV and 3.2 MeV that is released at a rate faster than the speed of light is known as beta radiation. Less than 200 ion pairs typically form in each centimetre of air passage due to the fact that interactions between -particles and the atoms of pass-through materials occur much less frequently than interactions between 5×10⁵-particles due to their lower mass, which is approximately 5.5×10₄ amu (9.13010(24)g).

An extremely high energy positron or electron is generated during the beta radioactive disintegration of a nucleus. Beta radiation is another name for this emitted particle.

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a. Venturi meter. A Venturi meter is a pressure-differential type of water meter that measures the flow rate of a fluid by creating a pressure difference through a constriction in the flow path.

It consists of a converging section followed by a throat and then a diverging section. The diameter of the throat is smaller than the diameter of the pipe, which causes the velocity of the fluid to increase as it passes through the throat.

As the fluid passes through the throat, its velocity increases while the pressure decreases due to Bernoulli's principle. This pressure difference can be measured using pressure taps located before and after the throat. By measuring the pressure difference, the flow rate of the fluid can be calculated using Bernoulli's equation.Venturi meters are widely used in various industries such as chemical, oil and gas, and

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The final adjusted ampacity of nonmetallic sheath cable should not exceed that of a 60°C rated conductor.

According to the National Electrical Code (NEC) 334-80, the ampacity of nonmetallic sheath cable should be based on the 60°C rating as listed in Table 310-15(A)(16). However, the 90°C ampacity listed in the same table can be used for ampacity adjustment purposes, provided that the final adjusted ampacity does not exceed that of a 60°C rated conductor.

This is because the insulation of nonmetallic sheath cable is rated for a maximum temperature of 60°C, and exceeding this temperature can cause the insulation to degrade or melt, leading to electrical hazards. Therefore, the final adjusted ampacity should not exceed the ampacity of a 60°C rated conductor to ensure safe operation.

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Therefore, the ampacity of four current-carrying No. 8 THHN conductors installed in an ambient temperature of 100 degrees F is approximately 45.5 amps per conductor. The ampacity of four current-carrying No. 8 THHN conductors installed in an ambient temperature of 100 degrees F is determined by referring to the National Electrical Code (NEC) table 310.15(B)(16). For No. 8

THHN conductors, the base ampacity is 50 amps at 30°C (86°F). However, since the ambient temperature is 100°F, we need to apply a temperature correction factor.

For THHN insulation with a 90°C rating, the temperature correction factor at 100°F (38°C) is approximately 0.91. To calculate the adjusted ampacity, multiply the base ampacity by the temperature correction factor:

Adjusted Ampacity = Base Ampacity × Temperature Correction Factor
Adjusted Ampacity = 50 amps × 0.91
Adjusted Ampacity ≈ 45.5 amps

Therefore, the ampacity of four current-carrying No. 8 THHN conductors installed in an ambient temperature of 100 degrees F is approximately 45.5 amps per conductor.

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The closest answer choice is D) 87 in3, which is only 0.6 cubic inches more than the actual volume.

To find the volume of the brick, we need to multiply its length, width, and height.

V = l x w x h

Plugging in the given dimensions, we get:

V = 4.0 in x 2.7 in x 8.0 in
V = 86.4 cubic inches

Therefore, the volume of the brick is 86.4 cubic inches.

The closest answer choice is D) 87 in3, which is only 0.6 cubic inches more than the actual volume.

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The transportation mode typically carries bulk food, mining, and chemicals is (e). rail is the correct option.

Rail ranks highest in the capacity/capability category for its ability to move the widest range of commodities and materials in significant numbers. It frequently transports bulk food, mining materials, and chemicals. The enormous carrying capacity of rail transportation makes it ideal for moving vast quantities of goods, including bulk food, mining supplies, and chemicals. Rail transportation frequently makes use of specialized railcars made for particular types of cargo, making it possible to move these commodities in huge quantities across great distances efficiently and affordably.

Additionally, due to its lower carbon emissions compared to other modes of transportation, rail transportation is often regarded as being environmentally friendly, making it a favored choice for the transportation of large and bulky products.

Therefore, the correct option is (e).

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A simple test to determine the overall amount of particles of extremely small size in a water sample is the turbidity test.

The simple test to determine the overall amount of particles of extremely small size in a water sample is known as a turbidity test.

Turbidity is a measure of the cloudiness or haziness of a fluid caused by the presence of suspended particles, such as sediment, algae, or other microscopic matter.

The test involves shining a light through a water sample and measuring the amount of light that is scattered or absorbed by the particles in the water.

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The magnitude of the total magnetic field at the center of the loop, when the current is reversed, is twice the magnitude of the magnetic field due to the solenoid alone.

To help you understand the situation, let's break down the problem into steps:
1. Determine the magnetic field at the center of the loop when the total field is zero.
2. Calculate the magnitude of the total magnetic field when the current in the loop is reversed.
Step 1: When the total field is zero, it means that the magnetic field due to the loop ([tex]B_{loop}[/tex]) and the magnetic field due to the solenoid ([tex]B_{solenoid}[/tex]) are equal in magnitude but opposite in direction. In other words:
B_loop = [tex]-B_{solenoid}[/tex]
Step 2: Now, let's reverse the direction of the current in the loop. The magnetic field due to the loop will also reverse its direction:
[tex]B_{loop}_{reversed}[/tex]= [tex]-B_{loop}[/tex]
Now, we want to find the total magnetic field when the current is reversed:
[tex]B_{total}[/tex] = [tex]B_{loop}_{reversed} + B_{solenoid}[/tex]
Since [tex]B_{loop}[/tex] = [tex]-B_{solenoid}[/tex], we have:
[tex]B_{total}[/tex] = [tex]-(-B_{solenoid}) + B_{solenoid}[/tex]
[tex]B_{total}[/tex] = 2 * [tex]B_{solenoid}[/tex]
When the current is reversed, the total magnetic field at the center of the loop is twice as strong as the magnetic field caused by the solenoid alone.

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False. Once an object is in motion in the absence of any external forces, it will remain in motion with the same speed and direction. This is known as the law of inertia, one of Newton's laws of motion.

An external force is required only to change the motion of an object. For example, if a ball is rolling on a frictionless surface, it will continue to roll indefinitely in a straight line with a constant speed if there are no other forces acting on it. However, if a force such as friction or gravity acts on the ball, it will change its motion by slowing down or changing its direction. In such cases, an external force is required to maintain the motion of the object in a specific way. Therefore, the statement is false as an object in motion can remain in motion without the application of a force.

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a. True. Almost all sounds contain multiple frequencies because most sounds are a combination of different pitches and tones.

This means that various vibrations occur at different rates, producing a complex sound wave with multiple frequencies.These waves contain different frequencies, amplitudes, and wavelengths that combine to create the sound. Each sound has its own unique spectrum of frequencies, and the combination of these frequencies creates the sound we hear.

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True. Various heat-related disorders can be brought on by inadequate hydration combined with exposure to extreme heat and humidity.

One of three disorders brought on by excessive heat, with heat cramps being the least dangerous and heatstroke being the most serious, is heat exhaustion. High temperatures, particularly when there is also a high humidity level, and intensive physical activity are the main causes of heat illness.

According to T8 CCR Section 3395, "Heat Illness" refers to a dangerous medical illness caused by the body's incapacity to handle a specific amount of heat. Examples of this ailment include heat cramps, heat exhaustion, heat syncope, and heat stroke.

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A straight bar magnet is initially 4 cm long. If you cut the magnet in half, the right half will no longer contain any poles.

Option A is correct.

The length of the bar magnet 4cm, assuming we cut into a portion of the right half will have same shafts. By splitting the bar magnet in half, two smaller but still complete magnets with north and south poles are produced. Each piece of a magnet remains a complete magnet with two poles regardless of how small they are cut, even down to the microscopic level.

Therefore, magnets always have two poles. There is no such thing as a unipole.

A magnet made of ferromagnets is called a bar magnet. The magnet's magnetism is derived from ferromagnetic materials. As the name recommends, a Bar Magnet is a rectangular piece of the Magnet which, as different Magnets when suspended openly, adjusts itself along the Attractive field of the earth.

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Since the red ball attains twice the speed of the blue ball, we know that it also travels twice the distance in the same amount of time.

Since both balls have the same mass, we can use the equation:
work = force x distance
to compare the work done on each ball.
Let's call the force applied to the red ball F1 and the force applied to the blue ball F2.
We know that the red ball attains twice the speed of the blue ball, so we can write:
v1 = 2v2
Using the equation for acceleration:
a = F/m
we can rearrange to solve for the net force on each ball:
F1 = m*a1
F2 = m*a2

We can then substitute the equation for acceleration:

F1 = m*(v1/t)

F2 = m*(v2/t)

where t is the time it takes for each ball to reach its final speed.
We can then compare the work done on each ball:
work1 = F1*d
work2 = F2*d

where d is the distance each ball travels during the time it takes to reach its final speed.

d1 = 2d2
Substituting this into the equations for work:
work1 = F1*2d2
work2 = F2*d2

Dividing these two equations:
work1/work2 = (F1*2d2)/(F2*d2)
Simplifying:
work1/work2 = F1/F2

Since we know that the red ball attains twice the speed of the blue ball, we can also conclude that the net force applied to the red ball is twice that of the blue ball:

F1 = 2F2
Substituting this into the equation for work ratio:
work1/work2 = 2F2/F2
work1/work2 = 2

Therefore, the work done on the red ball is twice that of the blue ball.
When comparing the work done on the red ball to the blue ball, the work done on the red ball is four times greater than the work done on the blue ball. Since both balls have the same mass and the red ball attains twice the speed of the blue ball, the kinetic energy (which is proportional to the work done) is greater for the red ball by a factor of 2^2, as kinetic energy is calculated as (1/2)mv^2.

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D) the combined effect of spiral density waves can cause a galactic fountain.

Galactic fountains are a phenomenon where gas is ejected from the disk of a galaxy into the halo and then falls back onto the disk. The gas is heated and ionized by various processes, including winds and jets from newly-formed protostars and supernovae occurring in the halo. However, the primary mechanism that drives the gas out of the disk is the combined effect of spiral density waves, which can create areas of higher pressure and density that cause the gas to move outward. Once in the halo, the gas can cool and fall back onto the disk, contributing to the formation of new stars.

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A. the 22 W lightbulb draws 0.2 A of current when it is plugged directly into a 110 V outlet.

B. the internal resistance of the lightbulb is approximately 550 ohms.

A. The power (P) drawn by an electrical device can be calculated using the equation:

P = V x I

where P is power in watts (W), V is voltage in volts (V), and I is current in amperes (A).

In this case, a 22 W lightbulb is plugged directly into a 110 V outlet. To determine how much current it draws, we can rearrange the equation to solve for I:

I = P / V

Plugging in the values given, we get:

I = 22 W / 110 V = 0.2 A

Therefore, the 22 W lightbulb draws 0.2 A of current when it is plugged directly into a 110 V outlet.

B.

To determine the internal resistance (r) of the lightbulb, we can use Ohm's law:

V = IR + V_internal

where V is the voltage across the lightbulb, I is the current flowing through the lightbulb, r is the internal resistance of the lightbulb, and V_internal is any additional internal voltage drop within the lightbulb.

Since the lightbulb is plugged directly into a 110 V outlet, V is equal to 110 V, and we know from part A that I is 0.2 A. Therefore, we can rewrite the equation as:

110 V = 0.2 A x r + V_internal

To solve for r, we need to know the value of V_internal, which is not given in the problem. However, we can make an assumption that the internal voltage drop is negligible compared to the voltage across the lightbulb, which is often the case for simple resistive devices like lightbulbs.

Assuming V_internal is negligible, the equation simplifies to:

110 V = 0.2 A x r

Solving for r, we get:

r = 110 V / 0.2 A = 550 ohms

Therefore, the internal resistance of the lightbulb is approximately 550 ohms.

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The efficiency of the engine is 20.37%. To calculate the efficiency of the engine, we can use the formula: Efficiency = 1 - (Tc/Th)

Where Tc is the temperature of the cold reservoir and Th is the temperature of the hot reservoir. We know that Th = 964 K and Tc = 622 K.

However, we also know that the engine operates at three-fifths of its maximum efficiency, so we need to take that into account. Let's call the maximum efficiency of the engine Emax. Then, the actual efficiency of the engine can be expressed as:

Efficiency = (3/5) * Emax

Substituting the values we have:

(3/5) * Emax = 1 - (622/964)

Solving for Emax:

Emax = (1 - (622/964)) / (3/5)

Emax = 0.3395

Therefore, the maximum efficiency of the engine is 0.3395.

To find the actual efficiency of the engine, we can substitute this value into the equation we derived earlier:

Efficiency = (3/5) * 0.3395

Efficiency = 0.2037 or 20.37%

So, the efficiency of the engine is 20.37%.

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phenomenon is known as electrostatic induction.

When a rubber rod is rubbed with fur, the rubber rod becomes negatively charged due to the transfer of electrons from the fur to the rubber. If the fur is then quickly brought near the bulb of an uncharged electroscope, the negative charge on the fur will induce a positive charge on the leaves of the electroscope by repelling electrons to the bottom of the leaves. Therefore, the sign of the charge on the leaves of the electroscope will be positive. This is because opposite charges attract each other and the positively charged leaves are attracted to the negatively charged fur. This phenomenon is known as electrostatic induction.

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Since the two charges are symmetrically positioned with regard to the origin and have equal magnitudes but opposite signs, the location where the electric field is zero is at the origin.

Using the formula for the electric field produced by a point charge, we can determine the location on the x-axis where the electric field is zero:

[tex]E = k*q/r^2[/tex]

where r is the distance between the point charge and the location where the electric field is being measured, q is the charge of the point charge, E is the electric field, k is Coulomb's constant, and so on. The total electric field for the two charges in this issue may be determined at any location along the x-axis using the principle of superposition. The electric field vectors produced by the two charges will cancel out at some point along the x-axis because they are symmetrically positioned with respect to the origin and have opposite signs. We may determine the electric field vectors produced by each charge at various locations along the x-axis using the formula for the electric field produced by a point charge. We can determine the overall electric field at each place by combining these vectors together. We may determine the location where the electric field is zero by charting the total electric field as a function of the x-axis position. We discover that in this instance, the two charges produce identical, opposing electric fields that cancel one another out at the origin. Because of this, the origin is where the electric field is zero.

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