a given copper wire is 7.5m long and has a circular cross-section of diameter 0.5mm. calculate the resistance of this wire. calculate the resistance of a similar wire made of aluminum

Answers

Answer 1

The resistance of a similar wire made of aluminum is higher than the resistance of the copper wire. This is because aluminum has a higher resistivity than copper.

The resistance of a wire depends on its length, cross-sectional area, and the resistivity of the material it's made of. The resistivity of copper is [tex]1.68 x 10^-8 Ωm[/tex] , while the resistivity of aluminum is [tex]2.65 x 10^-8 Ωm.[/tex]

To calculate the resistance of the copper wire, we first need to calculate its cross-sectional area. The diameter of the wire is 0.5mm, so its radius is 0.25mm (or 0.00025m). The cross-sectional area of the wire is therefore:

[tex]A = πr^2 = π(0.00025)^2 = 1.96 x 10^-7 m^2[/tex]

The length of the wire is 7.5m. Therefore, the resistance of the copper wire is:

[tex]R = ρL/A = (1.68 x 10^-8 Ωm)(7.5m)/(1.96 x 10^-7 m^2) = 0.644 Ω[/tex]

To calculate the resistance of a similar wire made of aluminum, we can use the same formula but with the resistivity of aluminum. The diameter of the wire is the same, so its cross-sectional area is also the same. The length of the wire is also the same, so the resistance of the aluminum wire is:

[tex]R = ρL/A = (2.65 x 10^-8 Ωm)(7.5m)/(1.96 x 10^-7 m^2) = 0.819 Ω[/tex]

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Related Questions

Which of these is constant for ALL types of electromagnetic radiation in a vacuum?

Answers

In a vacuum, the Velocity of ALL forms of electromagnetic radiation remains constant. In contrast to mechanical waves, electromagnetic waves may travel without a medium.

This indicates that electromagnetic waves are capable of passing not just through solid objects like air and rock but also through a vacuum like space.

At the speed of light (2.998 108 m/s), electromagnetic radiation is an electric and magnetic disturbance that travels through space. It moves in radiant energy packets called photons or quanta and has neither mass nor charge. X-rays, infrared, ultraviolet, gamma, and radio waves are all types of electromagnetic radiation. The sun and other celestial bodies, radioactive substances, and man-made gadgets are some examples of sources of EM radiation. EM displays both a wave and a particle nature.

The medium's electric and magnetic characteristics affect the velocity of electromagnetic waves.

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Car 1 has a mass of m1 = 65 ✕ 103 kg and moves at a velocity of v01 = +0.68 m/s. Car 2, with a mass of m2 = 92 ✕ 103 kg and a velocity of v02 = +1.4 m/s, overtakes car 1 and couples to it. Neglect the effects of friction in your answer.
(a) Determine the velocity of their center of mass before the collision
m/s

(b) Determine the velocity of their center of mass after the collision
m/s
(c) Should your answer in part (b) be less than, greater than, or equal to the common velocity vf of the two coupled cars after the collision?

Answers

In physics, a collision is an event in which two or more bodies come together in a direct physical contact and exert forces on each other for a relatively short time. During a collision, there is a transfer of energy and momentum between the colliding bodies.

Describe Collision?

There are two types of collisions: elastic and inelastic. In an elastic collision, kinetic energy is conserved, meaning that the total kinetic energy of the system before the collision is equal to the total kinetic energy after the collision. In an inelastic collision, kinetic energy is not conserved, and some of the kinetic energy is transformed into other forms of energy, such as heat or sound.

Collisions can occur between objects of any size, from subatomic particles to astronomical bodies like stars and planets. They are important in various fields of study, such as mechanics, astrophysics, and particle physics. Understanding the physics of collisions is essential for designing safety devices, analyzing traffic accidents, and predicting the behavior of complex systems.

To solve this problem, we can use the conservation of momentum and the fact that the velocity of the center of mass of the two-car system remains constant before and after the collision.

(a) Before the collision, the velocity of car 1 is v01 = +0.68 m/s, and the velocity of car 2 is v02 = +1.4 m/s. The velocity of the center of mass of the two-car system is given by:

v0 = (m1v01 + m2v02) / (m1 + m2)

= (65 ✕ 103 kg ✕ 0.68 m/s + 92 ✕ 103 kg ✕ 1.4 m/s) / (65 ✕ 103 kg + 92 ✕ 103 kg)

= 1.06 m/s

Therefore, the velocity of their center of mass before the collision is 1.06 m/s.

(b) After the collision, the two cars stick together and move with a common velocity vf. The momentum of the system is conserved, so:

m1v01 + m2v02 = (m1 + m2)vf

We can solve for vf:

vf = (m1v01 + m2v02) / (m1 + m2)

= (65 ✕ 103 kg ✕ 0.68 m/s + 92 ✕ 103 kg ✕ 1.4 m/s) / (65 ✕ 103 kg + 92 ✕ 103 kg)

= 1.12 m/s

Therefore, the velocity of their center of mass after the collision is 1.12 m/s.

(c) The velocity of the center of mass of the two-car system remains the same before and after the collision, so it is equal to 1.06 m/s. Since the velocity of the coupled cars after the collision is 1.12 m/s, which is greater than 1.06 m/s, our answer in part (b) is greater than the common velocity of the two coupled cars.

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if you replaced the three resistors with a single resistor, what is the resistance req of this resistor?

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To find the equivalent resistance of a circuit, the circuit topology has to be considered, the values of the individual resistors, and how they are connected.

What is equivalent resistance of a circuit?

The equivalent resistance of a circuit is the single resistor that would replace all the resistors in the circuit and produce the same overall resistance as the original circuit.

In other words, when  the equivalent resistance of a circuit is calculated, the resistance of a single resistor could be found that would cause the same amount of current to flow through the circuit when the same voltage is applied as the original circuit. This single resistor is a theoretical construct and in reality, one would need to use multiple resistors to achieve the same overall resistance.

The equivalent resistance depends on the topology of the circuit, the values of the individual resistors, and how they are connected. For simple circuits, the equivalent resistance can be calculated using the formulas for resistors in series, resistors in parallel, or a combination of both. For more complex circuits, computer simulations or experimental measurements may be necessary to determine the equivalent resistance.

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Student 1: The speed of the block at its maximum height is zero because the kinetic energy is a minimum at the top of the trajectory. Student 2: Only the vertical component of the velocity is zero at the maximum height, because the vertical component of the acceleration is zero at the top of the trajectory.

Answers

It is true that the maximum speed of a block in a trajectory occurs at its maximum height, where the vertical component of the velocity is zero. This is due to the fact that at that point, the kinetic energy is minimized and the acceleration is zero. At this point, the block is at its highest point, and the velocity of the block is at its lowest. Therefore, the speed is zero at the top of the trajectory.

However, the horizontal component of the velocity is not zero at the maximum height. This is because the block is constantly subject to horizontal acceleration by gravity, even at its highest point. This means that the block has a nonzero velocity in the horizontal direction, even if it is at its maximum height. Therefore, the block is not at rest at the highest point; it is just moving horizontally at a constant speed.

23) if two equal charges, each of 1 c, were separated in air by a distance of 1 km, what would be the force between them?

Answers

So the force between the two charges would be 8.99 x 10^3 newtons.

define force ?

Force is a physical quantity that describes the interaction between objects or systems, causing a change in motion or deformation. It is typically measured in newtons (N) and is represented as a vector quantity with both magnitude and direction.

The force between two charges can be calculated using Coulomb's law:

F = kq1q2 / r^2

where k is Coulomb's constant (k = 8.99 x 10^9 N m^2/C^2), q1 and q2 are the charges of the two objects, and r is the distance between them.

In this case, q1 = q2 = 1 C, and r = 1 km = 1000 m. Plugging these values into the equation, we get:

F = (8.99 x 10^9 N m^2/C^2) * (1 C) * (1 C) / (1000 m)^2

= 8.99 x 10^3 N

So the force between the two charges would be 8.99 x 10^3 newtons.

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Sarah rides her horse with a constant speed of 20 km/h. How far can she travel in 4 hours

Answers

Answer:

Sarah can travel 80 km in 4 hours at a constant speed of 20 km/h.

Explanation:

The distance that Sarah can travel in 4 hours can be calculated by multiplying her speed (20 km/h) by the time (4 hours):

distance = speed x time

distance = 20 km/h x 4 hours = 80 km

Answer:

80 km

Explanation:

Speed = Distance / Time
20 = Distance / 4
Distance = Speed x Time
Distance = 20 x 4
Distance = 80 km

Hope it helps

. (3 points) the analog cathode ray oscilloscope described in the lab manual is related to the digital oscilloscope used in the lab in the same way that a 1950s era television is related to what device?

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The analog cathode ray oscilloscope in the lab manual is related to the digital oscilloscope used in the lab in the same way that 1950s era television is related to modern flat-screen television.

What is meant by a cathode ray oscilloscope?

Analog cathode ray oscilloscope and the 1950s era television are older technologies that use cathode ray tube (CRT) to display images or waveforms.

They operate by deflecting an electron beam on a phosphorescent screen to create visual display. And, in contrast, digital oscilloscope and modern flat-screen televisions use digital processing and display technologies to provide more precise and flexible visual representations.

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How many of the chemicals created when tobacco burns are known to cause cancer?
A. About 30 B. About 50 C. About 70 D. About 90

Answers

Answer:

I think about 70.

Explanation:

I hope I helped


The correct answer is C. About 70 of the chemicals created when tobacco burns are known to cause cancer. According to the Centers for Disease Control and Prevention, there are more than 7,000 chemicals in cigarette smoke, and at least 70 of them are known to cause cancer. These include benzene, formaldehyde, arsenic, and vinyl chloride. The other chemicals in cigarette smoke can also cause a range of other health problems, including heart and lung diseases. MORE

a 0.65 m long, 0.86 kg rod has a small 1.2 kg sphere attached to the lower end as shown. how far from the top of the rod is the center of mass of the system? treat the sphere as a point mass. enter your answer in meters.

Answers

0.67m from the top of the rod is the center of mass of the system located which is 0.65m long and 0.86kg.

Given the length of rod (d1) = 0.65m

The mass of rod (m1) =  0.86kg

The mass of sphere (m2) = 1.2kg

The distance from the top of the rod to the center of mass of the system can be found using the following equation:

Distance from the top of the rod to the center of mass = (m1*d1 + m2*d2) / (m1 + m2) where m1 is the mass of the rod, d1 is the length of the rod, m2 is the mass of the sphere, and d2 is the distance from the top of the rod to the center of the sphere.

Substituting the given values, we get:

Distance from the top of the rod to the center of mass =

[tex](0.86 * 0.65 + 1.2 * 0.65) / (0.86 + 1.2) = 0.67 m[/tex]

Therefore, the distance from the top of the rod to the center of mass of the system is 0.67 m.

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show answer no attempt 50% part (b) how much energy is lost to friction if the motorcycle only gains an altitude of 21 m before coming to rest?

Answers

From the information provided, the energy lost to friction if the motorcycle only gains an altitude of 21 m before coming to rest is approximately 65,954.64 J.

To calculate the energy lost to friction, we need to first determine the initial total mechanical energy of the motorcycle and the final total mechanical energy of the motorcycle after it has climbed to a height of 21 meters and come to rest. The difference between the initial and final energies will give us the energy lost to friction.

The initial total mechanical energy of the motorcycle is given by:

Ei = (1/2)mv² + mgh + 2(1/2)Iw²

where m is the mass of the motorcycle, v is its initial speed, h is the height it climbs, g is the acceleration due to gravity, I is the moment of inertia of the wheels, and w is their initial angular velocity.

We need to calculate the moment of inertia of each wheel:

I = (1/2)mr²

where m is the mass of the wheel and r is its radius. Substituting the given values, we get:

I = (1/2)(12 kg)(0.33 m)² = 0.6534 kg m²

The initial angular velocity of each wheel is not given, so we can assume that it is initially at rest (i.e., w = 0).

Substituting the given values into the equation for E, we get:

Ei = (1/2)(180 kg)(25 m/s)² + (180 kg)(9.81 m/s²)(36 m) + 2(1/2)(0.6534 kg m²)(0)²

= 101,812.44 J

The final total mechanical energy of the motorcycle is given by:

Ef = mgh

where m, g, and h are as before, and the speed and rotational energy of the wheels are both zero.

Substituting the given values, we get:

Ef = (180 kg)(9.81 m/s²)(21 m) = 35,857.8 J

The energy lost to friction is the difference between the initial and final energies:

Energy lost = Ei - Ef = 101,812.44 J - 35,857.8 J = 65,954.64 J

Question - Suppose a 180 kg motorcycle is heading toward a hill at aspeed of 25 m/s. The two wheels weigh 12 kg each and are each annular rings with an inner radius of 0.280 m and an outer radius of 0.330 m. Randomized Variables m 180 kg ˇ-25 m/s h 36 m. how much energy is lost to friction if the motorcycle only gains an altitude of 21 m before coming to rest?

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comets tend to be ________ than asteroids, and it is estimated that there are far ___________ large comets than large asteroids.A. Crust and MantleB. Faster and MoreC. Hydrogen and HeliumD. Change in climate and core

Answers

"Comets tend to be faster than asteroids, and it is estimated that there are far more large comets than large asteroids." Correct option is B.

As comets typically originate from farther out than asteroids do, they move at faster speeds when they cross Earth's orbit: An asteroid would need to be larger than 10 kilometres in diameter, whereas a comet would only need to be about 7 kilometres in diameter to hit Earth with enough energy to form Chicxulub crater.

Two factors that differentiate a comet from an asteroid are shape of the orbit and chemical composition.

There are asteroids that are spherical, curved, and even have satellites. A comet circles the Sun similarly to an asteroid, but unlike an asteroid, it is made of ice and dust. Therefore, a comet's ice and dust composition begin to vaporise as it approaches the Sun. Consequently, a comet looks fuzzy and/or has a tail when viewed through a telescope.

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Use the tools to measure and calculate the vertical momentum of the two-puck system before the collision. Show your process

Answers

To measure and calculate the vertical momentum of the two-puck system before the collision.

Set up the experiment: Place two pucks of known masses on a frictionless air hockey table, with one puck placed directly above the other. Ensure that the pucks are in contact with each other before the experiment begins.Measure the mass of the pucks: Use a scale to measure the masses of the two pucks. Let's assume the mass of the top puck is 0.1 kg and the mass of the bottom puck is 0.2 kg.Measure the initial velocity of the system: Use a motion sensor or a timer to measure the initial velocity of the system just before the collision. Let's assume the initial velocity of the system is 2 m/s.Calculate the initial momentum of the system: The momentum of the system before the collision can be calculated using the formula:

Initial momentum = (mass of top puck + mass of bottom puck) x initial velocity

Substituting the values we have:

Initial momentum = (0.1 kg + 0.2 kg) x 2 m/s

Initial momentum = 0.3 kg x 2 m/s

Initial momentum = 0.6 kg m/s

Therefore, the vertical momentum of the two-puck system before the collision is 0.6 kg m/s.

Define collision.

When two or more objects come into contact with one another and exchange energy, momentum, or other physical properties, the occurrence is called a collision. Depending on the nature of the items involved and how they interact with each other during the impact, a collision in physics can be either elastic or inelastic.

The complete kinetic energy of the colliding objects is preserved in an elastic collision, which means that none of the kinetic energy is converted into other kinds of energy like heat or sound. The items in this kind of collision bounce off one another with the same velocity and direction as before the collision.

On the other hand, in an inelastic collision, some or all of the kinetic energy of the colliding objects is transformed into other types of energy, such heat, sound, or object deformation. In this kind of collision, the items may cling together after impact or bounce off one another in a different direction or at a different speed than previously.

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a 2 kg mass has 40 j of potential energy with respect to the ground. approximately how high is it above the ground?

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The ground is chosen as a base for potential gravitational energy for the same reason. Compared to the gravitational potential at the center of the planet, the truth is that you even have gravitational potential energy.

What potential energy with respect to the ground?

Ep = mgh. An object has the same amount of stored gravitational potential energy as the work required to raise it. The gravitational potential energy (PEg) that is added to or obtained by the object-Earth system is how we describe this.

The force acting on the two objects affects the formula for potential energy. P.E. = mgh is the formula for gravitational force, where m is mass in kilograms, g is acceleration due to gravity (9.8 m/s2 at the earth's surface), and h is height in meters.

M= 2kg

P.E = 40j

g=10N

H=?

Using formula [tex]P.E. = mgh[/tex]

40 = 2 * 10* H

Therefore, approximately 2 meters it is above the ground.

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Edgar kicks the ball to Jerry across the soccer field. The ball stays on the ground. The ball has a mass of 21.79 kg. If the coefficient of friction between the grass and the ball is 1.45, what is the force of friction?

Answers

The force of friction between the ball and the grass is 309.98 N.

What is Friction?

It occurs as a result of the microscopic irregularities on the surfaces that interlock and resist relative motion. The amount of friction between two surfaces depends on factors such as the nature of the surfaces in contact, the force pressing the surfaces together, and the relative speed between the surfaces. Friction can be beneficial in some situations, such as in walking or driving a car, but it can also be a hindrance in others, such as in machines where it causes wear and tear on moving parts.

To calculate the force of friction, we can use the formula:

Friction force = coefficient of friction × normal force

The normal force is the force that the ground exerts on the ball and is equal to the weight of the ball, which is:

Weight = 21.79 kg × 9.81 m/s^2

Weight = 213.68 N

So, the normal force is 213.68 N.

Now we can calculate the friction force:

Friction force = 1.45 × 213.68 N

Friction force = 309.98 N

Therefore, the force of friction between the ball and the grass is 309.98 N.

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Read the list of sentences from the article.

1 In a physical change, the material involved is structurally the same
before and after the change.
2 A piece of metal may be heated in a fire until it glows, but the metal is
the same material before heating and after cooling.
3 Chemical changes require the breaking and forming of chemical bonds
during a chemical reaction.
4 The creation of a new, solid substance from two liquid substances
indicates that a reaction has taken place that has altered the original
substances.


Which two sentences, taken together, provide the BEST evidence to support the idea
that both physical and chemical changes can significantly change the appearance of a
substance?
(A) 1 and 3

(B) 1 and 4

(C) 2 and 3

(D) 2 and 4

Answers

The best evidence that a substance's appearance can be significantly altered by both chemical and physical changes is the combination of examples 1 and 3.

Option A is correct.

What exactly is a change in the body?

A substance undergoes a change in its physical characteristics when it undergoes a physical change. Most of the time, a physical change can be reversed. In the course of such a transformation, no chemical substance is produced.

What are two examples of physical and chemical changes?

Chemical changes include processes like burning, frying, rusting, and rotting. The processes of melting, freezing, shredding, and boiling are all examples of physical modifications. The majority of physical symptoms can be reversed with enough energy.

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semiconductors can simplistically be thought of as an intermediate state between insulators and conductors. in a semiconductor, charges are normally bound in place (like in an insulator), but when injected with enough energy, the charges can move freely (like in a conductor). given what we have observed about the behavior of conductors and insulators in this exploration, what would happen if we replaced the pvc rod with a semiconductor material? what mechanisms could we employ to inject energy into the bound charges in the semiconductor to force it to act like more of a conductor?

Answers

Replacing PVC rod with semiconductor material, its behavior would depend on specific properties. To inject energy we can apply a voltage.

If we replaced the PVC rod with a semiconductor material, the behavior of the rod would depend on the specific properties of the semiconductor. Semiconductors have a unique property called the bandgap, which is the energy difference between the highest occupied energy level (valence band) and the lowest unoccupied energy level (conduction band). When an external energy source, such as heat or light, is applied to a semiconductor, it can promote electrons from the valence band to the conduction band, creating a flow of free electrons that can conduct electricity.

To inject energy into the bound charges in the semiconductor and force it to act more like a conductor, we could use several mechanisms. One common approach is to apply a voltage across the semiconductor, which creates an electric field that can promote electron movement. Another approach is to expose the semiconductor to light, which can excite electrons to higher energy levels and promote conduction. Additionally, thermal energy can cause the semiconductor to act more like a conductor by promoting electron movement. These mechanisms can be used to tailor the conductivity of semiconductors, which is the foundation of many modern technologies such as transistors, solar cells, and light-emitting diodes (LEDs).

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which of the following actions does not affect the value of the capacitance of a parallel plate capacitor? multiple select question. halving the distance between the plates and sliding one plate such that the overlap between the plates is halved doubling the voltage difference between the plates and doubling the distance between them doubling the area of each plate and doubling the distance between them doubling the area of one of the plates while keeping the distance between them the same doubling the charge on each of the plates

Answers

The actions which does not affect the value of the capacitance of a parallel plate capacitor is doubling the voltage difference between the plates and doubling the distance between them.

A capacitor is a two-terminal electrical device that can store energy in the form of an electric charge. It consists of two electrical operators that are separated by a distance. The space between the operators may be filled by vacuum or with an separating material known as a dielectric. The capability of the capacitor to store charges is known as capacitance.

Capacitors store energy by holding piecemeal dyads of contrary charges. The simplest design for a capacitor is a resemblant plate, which consists of two essence plates with a gap between them. But, different types of capacitors are manufactured in numerous forms, styles, lengths, circumferences, and accoutrements .

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