The region where a magnetic force is exerted is the ?

Answers

Answer 1

"The region where the magnetic force is exerted is known as the magnetic field."

The region with magnetic force surrounding a magnet is called the magnetic field. There are north and south poles on every magnet. The same poles resist one another while opposite poles are drawn to one another. The north-seeking poles of the iron's atoms line up in the same way when it is rubbed against a magnet.

The magnetic field is stationary and is referred to as a magnetostatic field when it surrounds a permanent magnet or a wire conducting a constant electric current in one direction.

North and south magnetic polarities are present in all magnets. The greatest magnetic fields are found at the poles. Magnetic energy is the force a magnet produces.

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Related Questions

The 0. 20 kg puck on the frictionless, horizontal table in the figure is connected by a string through a hole in the table to a hanging 1. 20 kg block. With what speed must the puck rotate in a circle of radius r = 0. 40 m if the block is to remain hanging at rest?

Answers

The puck must rotate with a speed of 3.44 m/s to keep the hanging block at rest.

To keep the hanging block at rest, the tension in the string must be equal to the weight of the block. We can start by finding the tension in the string using the weight of the hanging block:

T = mg = (1.20 kg)(9.81 m/s^2) = 11.77 N

The tension in the string provides the centripetal force that keeps the puck moving in a circle. The centripetal force is given by:

F = ma = m(v^2/r)

where m is the mass of the puck, v is its speed, r is the radius of the circle, and a is the centripetal acceleration.

Solving for v, we get:

v = sqrt(ra) = sqrt(r(T/m)) = sqrt((0.40 m) × (11.77 N)/(0.20 kg)) = 3.44 m/s

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What is the difference between energy transfer and energy store? I need proper explanation please!?

Answers

Energy transfer is the movement of energy from one location to another. ... Energy transformation is when energy changes from one form to another – like in a hydroelectric dam that transforms the kinetic energy of water into electrical energy.

Energy transfer in physics refers to the movement of energy from one object or system to another. Energy can take various forms such as kinetic energy, potential energy, thermal energy, electromagnetic radiation, and chemical energy, among others. The transfer of energy can occur through different mechanisms such as work, heat, and radiation.

Work is the transfer of energy that occurs when a force acts on an object and causes it to move a certain distance. Heat transfer is the flow of energy from a hotter object to a cooler object, driven by a temperature difference between the two objects. Radiation is the transfer of energy in the form of electromagnetic waves or particles. Energy transfer is a fundamental concept in physics as it governs many natural phenomena such as heat flow, electrical power generation, and energy conversion in machines.

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A metal cube with a negative charge -Q_1−Q

1



minus, Q, start subscript, 1, end subscript is brought into contact with a cylinder of a negative charge -Q_2−Q

2



minus, Q, start subscript, 2, end subscript, where |Q_1| > |Q_2|∣Q

1



∣>∣Q

2



∣vertical bar, Q, start subscript, 1, end subscript, vertical bar, is greater than, vertical bar, Q, start subscript, 2, end subscript, vertical bar

Answers

The metal cube will transfer some of its charge to the cylinder, causing both objects to have a net positive charge. This is because when two objects with opposite charges are brought into contact, they will exchange charges until they have the same magnitude and the same sign.

In this case, the cube with a greater charge will transfer charge until both objects have a positive charge.When an object has more electrons than protons is called a negative charge. A positive charge occurs when an atom has more protons than electrons. Electrons have a negative charge and protons have a positive charge. The unit of charge is the coulomb(C). Like charges repel each other.

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Question:

A metal cube with a negative charge -Q_1−Q 1 minus, Q, start subscript, 1, end subscript is brought into contact with a cylinder of a negative charge -Q_2−Q 2 minus, Q, start subscript, 2, end subscript, where

|Q_1| > |Q_2|Q1∣>∣Q 2∣vertical bar, Q, start subscript, 1, end subscript, vertical bar, is greater than, vertical bar, Q, start subscript, 2, end subscript, vertical bar.

which statement below is false? responses a weight depends on the force of gravity.weight depends on the force of gravity. b weight is a constant no matter where you are located.weight is a constant no matter where you are located. c mass is a constant no matter where you are located.mass is a constant no matter where you are located. d mass is the amount of matter in an object.

Answers

Answer:

(b) is false - a person on the moon would weight about 1/6 of the person's weight on earth - this is due to the smaller gravitational attraction of the person's mass even tho the mass is the same

The statement that is false is "b. weight is a constant no matter where you are located." Statements a, b and c are all true.

This is because weight is a measure of the force of gravity on an object, and the force of gravity varies depending on where you are located.

For example, an object will weigh less on the moon than it does on Earth because the force of gravity is weaker on the moon.

In contrast, mass is a measure of the amount of matter in an object and does not change depending on location.

Therefore, statements "a. weight depends on the force of gravity," "c. mass is a constant no matter where you are located," and "d. mass is the amount of matter in an object" are all true.

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please help me

sub -physics, topic-laws of motion ​

Answers

The maximum angular speed of the turntable to avoid slipping is option (2), √(µg/x).

How to determine angular speed?

The maximum angular speed of the turntable can be found by equating the centrifugal force with the frictional force acting on the block.

At maximum angular speed, the centrifugal force acting on the block is given by F = mRω², where R = x is the distance of the block from the center and ω is the angular speed of the turntable.

The frictional force acting on the block is f = µN, where N is the normal force on the block.

At maximum angular speed, the normal force N is equal to the weight of the block, N = mg.

Equating the centrifugal force and the frictional force:

mRω² = µN

mRω² = µmg

ω² = µg/R

ω = √(µg/R)

Substituting R = x:

ω = √(µg/x)

Therefore, the maximum angular speed of the turntable so that the block does not slip is given by √(µg/x).

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a stationary source of sound has a fundamental frequency of 500 hz. what frequency will you hear when you are approaching the source of sound at 20 m/s? the speed of sound is 340 m/s.

Answers

The frequency you will hear when you are approaching a stationary source of sound at 20 m/s is 537 Hz.

What is the fundamental frequency of sound?

The fundamental frequency of sound is the lowest frequency produced by a vibrating object or sound source.

What is the speed of sound? The speed of sound is the distance covered by a sound wave per unit of time.

The given values are as follows:

frequency of sound = 500 Hz

speed of sound = 340 m/s

velocity of the observer = 20 m/s

Formula to find the frequency heard by the observer

The formula for finding the frequency of a sound wave observed by a moving observer is:

[tex]f\prime = \frac{f \times (v + v_o)}{(v - v_S)}[/tex]

Where, f' is the frequency observed

v is the speed of sound

f is the frequency of the sound source

[tex]v_S[/tex] is the velocity of the sound source

v₀ is the velocity of the observer

Substituting the given values into the above formula, f' = [tex]\frac{500 \times (340 + 20)}{(340 - 20)}

Hence, f' = 537 Hz

Therefore, when you are approaching the source of sound at 20 m/s, you will hear a frequency of 537 Hz.

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need help asap pleasee

Answers

Answer:

I think it's moving towards the reference point

Stopping Distance Activity

Background: This activity involves observing the effect of original car speed upon the

skid distance. The simulation involves a toy car rolling down a hill, hitting a box, and

skidding to a stop. The height from which the car is released can be modified. The

speed of the car at the bottom of the hill (prior to contact with the box) is reported. The

distance that the car (and box) skid before stopping can be measured. Before answering

the questions, it would be useful to first run the simulation for each of the provided

heights and to record the corresponding pre-collision car speed and the stopping

distance. The background grid on the simulation screen can be used to determine the

stopping distance. Each square on the grid is 10 cm in length along its edge.

Data:

Initial Height Pre-Collision Speed Skid Distance

(m/s)

(cm)

(cm)

10. 0

20. 0

30. 0

40. 0

50. 0

60. 0

70. 0

80. 0

Answers

By using the formula:- [tex]mgh= \frac{1}{2} mv^{2} , v = \sqrt{2gh}[/tex], as the release height of the car increase the speed of the car increases.

As the release height of the car increases, the skid distance of the car increaseincrease due to increased velocity.

The directional speed of an object in motion, as measured by a specific unit of time and witnessed from a specific point of reference, is what is referred to as velocity.
Velocity can be defined as the rate at which something travels in a specific direction. Like the speed of a vehicle travelling north on a highway or the speed of a rocket after launch, for instance.
Less momentum with increased height. Less height, more speed. The rate at which it is exchanging height for velocity at any given moment in the fall is therefore equal to the velocity divided by the gravitational constant. As a result, at the top when its velocity is low, it loses only a tiny amount of height with each increase in velocity.
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complete question:-

An operating lamp draws a current of 0. 50 ampere. The amount of charge passing through the lamp in 10. Seconds is



please help asap

Answers

An operating lamp draws a current of 0. 50 ampere. the amount of charge passing through the lamp in 10 seconds is 5.00 Coulombs.

The amount of charge (Q) passing through a conductor is given by the product of current (I) and time (t):

Q = I * t

In this problem, we are given the following information:

The current passing through the lamp is I = 0.50 A

The time for which the current flows is t = 10 s

Using the above formula, we can calculate the amount of charge passing through the lamp as:

Q = I * t

Q = 0.50 A * 10 s

Q = 5.00 C

Thus, the amount of charge is 5.00 Coulombs.

The ampere, often shortened to amp, is the unit of electric current in the International System of Units.Ampere meter, commonly known as Ammeter is an electrical instrument used to measure electrical current in Amperes.

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In a physics lab experiment, a 6kg box is pushed across a flat table by a horizontal force F . What the magnitude of force F if the box is speeding up with a constant acceleration of 0.18ms^-2?​

Answers

Answer:

The F's accelerated

where m is the box's mass, an is its acceleration, and F net is the net force.

The net force in this situation is equal to the applied force less any potential frictional forces. The net force is just the force applied to the box, assuming the table is smooth and there is no friction:

F net = F

Thus, the equation can be rewritten as follows:

F = m * a

Inputting the values provided yields:

F = 6 kg times 0.18 m/s2 to get 1.08 N

As a result, 1.08 N of force F is needed to accelerate a 6 kilogramme box at a constant rate of 0.18 m/s2.

A pipe, 30 cm long, is open at both ends. Which harmonic mode of the pipe resonates with a 1. 1 kHz source? Speed of sound in air = 330 m/s

Answers

The harmonic mode of the pipe that resonates with a 1. 1 kHz source is second harmonic.

The length of the pipe is given as 30 cm = 30/100 m = 0.3 m

Speed of light is known to be 330 m/s

Frequency of the source is given as 1.1 kHz = 1100 Hz

We know the relation between frequency, harmonic mode and length as,

vn = n v / 2 l

where,

n is number of harmonic mode

v is speed of light

l is length

vn is frequency of nth harmonic in an open pipe

Putting in the values, by making n as subject we have,

n = vn × 2 l/v = 1100 × 2 × 0.3/330 = 2

Thus, the harmonic mode of the pipe is calculated to be 2nd harmonic mode.

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what is $12.7\ge s-5.3$ .

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The solution of expression $12.7\ge s-5.3$ is $s \leq 18$.

The expression $12.7\ge s-5.3$ is an inequality, which means that it expresses a range of values for the variable $s$. The symbol $\ge$ means "greater than or equal to," and in this context it indicates that $12.7$ is greater than or equal to $s-5.3$.

To solve for $s$, we can start by adding $5.3$ to both sides of the inequality:

\begin{align*}

12.7 &\ge s-5.3 \

12.7+5.3 &\ge s-5.3+5.3 \

18 &\ge s

\end{align*}

So the solution is $s \leq 18$. This means that any value of $s$ that is less than or equal to $18$ will satisfy the inequality. For example, $s=15$ would satisfy the inequality, because $12.7 \ge 15-5.3$. However, $s=20$ would not satisfy the inequality, because $12.7 \ngeq 20-5.3$.

What are the variables?

A variable is a symbol or letter that represents a value that can vary or change in a given context or problem. Variables are used to write mathematical expressions, equations, and functions.

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Complete question is: $12.7\ge s-5.3$ is $s \leq 18$.

the mechanical advantage of a pulley that requires 20 N of force to lift a 90 N box. here the answer choices 45, 4.5 , and 0.2

Answers

Answer:

Explanation:

The mechanical advantage (MA) of a pulley is defined as the ratio of the output force (the force exerted by the pulley system) to the input force (the force applied to the pulley system).

In this case, the input force is 20 N, and the output force (the force needed to lift the box) is 90 N. Therefore, the mechanical advantage of the pulley can be calculated as:

MA = output force / input force

MA = 90 N / 20 N

MA = 4.5

So the mechanical advantage of the pulley is 4.5. This means that for every 1 N of force applied to the pulley system, the pulley system can lift 4.5 N of weight.

Final answer:

The ratio of the output force to the input force is used to calculate the mechanical advantage of a pulley system. In this case, the Mechanical Advantage of the pulley used to lift a 90N box with 20N of force is 4.5.

Explanation:

The Mechanical Advantage (MA) of a machine is calculated by the ratio of output force (the force exerted by the machine) to the input force (the force applied on the machine). In this case, the output force is the weight of the box which is 90N, and the input force is the force required to lift the box which is 20N. Therefore, the mechanical advantage is calculated as MA = Output Force/Input Force = 90N/20N = 4.5. So, the Mechanical Advantage of the pulley system used to lift the box is 4.5.

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Pls help! Could you guys verify if the correct answer is B because of the v^2? See the attached image below :)

Answers

Answer:

It could either be b, or d, Your choice! (hint: I know the answer but pick one)

The correct answer is B) v_{2} = sqrt(1/2) * v_{1}.

The speed of the mass moving in a horizontal circle is given by:

v = sqrt(r * g)

where r is the radius of the circle and g is the acceleration due to gravity.

When the cord breaks, the mass will continue to move in a straight line tangent to the circle. The force causing this motion is the tension in the cord, which is proportional to the mass. Therefore, when the mass is doubled, the tension in the cord will also double.

The tension in the cord is given by:

T = M * v^2 / r

where T is the tension, M is the mass, v is the speed, and r is the radius of the circle.

Since the tension in the cord is doubled when the mass is doubled, we have:

2M * v_{2}^2 / r = M * v_{1}^2 / r

Simplifying and solving for v_{2}, we get:

v_{2} = sqrt(1/2) * v_{1}

Therefore, the new maximum speed at which the cord will break is equal to the square root of one-half times the original maximum speed.

Someone please help me!! Thanks so much i highly appreciate it

Answers

A cross-sectional area of the wire could conduct 2.00 C of charge in 400 seconds.

What is the rate at which a wire's cross sectional area conducts charge per second?

The amount of charge moving through a cross-section of a circuit in a certain amount of time is known as current. The ampere's definition is The ampere is the commonly used current unit in mathematics (abbreviated Amp or A).

We can use the formula: Q = I * t

Q stands for charge, I for current, and t for time. To solve for t, we obtain: t = Q / I

By entering the specified values, we obtain:

t = 2.00 C / 5.00 mA

To preserve consistent units, we must convert milliamperes (mA) to amperes (A). To accomplish this, divide by 1000., since 1 mA = 0.001 A.

Thus: t = 2.00 C / (5.00 mA / 1000)

Simplifying, we get:

t = 2.00 C / 0.005 A

t = 400 s

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as a van travels along a level stretch of road with constant speed, most of the power developed by the engine is used to compensate for the energy transformations due to friction forces exerted on the van by the air and the road. if the power developed by the engine is 2.01 hp, calculate the total friction force acting on the van (in n) when it is moving at a speed of 28 m/s. one horsepower equals 746 w.

Answers

When travelling at a speed of 28 m/s, the van experiences a total amount of friction force of 748 N.

Calculate the van's overall friction force (measured in N) at a speed of 28 m/s with an engine that produces 2.01 horsepower.

Engine power is calculated as

P = 2.01 hp, or 2.01 x 746, or 1502.46 W.

Van's top speed is 28 m/s.

The van's total work is equal to its change in kinetic energy, according to the work-energy theorem.

Hence, total work completed = Change in kinetic energy (K) -Change in kinetic energy (K)

= [tex](1/2) m (vf_2 - vi_2)[/tex] = [tex](1/2) m v^2[/tex]

where m is the van's mass

([tex]v_f[/tex]) = The van's final speed

([tex]v_i[/tex] )= The van's initial speed

As a result, the van is subject to a 748 N friction force (approx.). So, at a speed of 28 m/s, the van experiences a total friction force of 748 N.

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Exercise 2: Julie, the clown, carries two balloons that rub against a circus

elephant, causing the balloons to separate. Each balloon acquires 2. 0 x107 C of

in charge. How large is the electric force between them when they are separated by

a distance of 0. 50 m?

Answers

When the spheres are separated by 0.5 m, the electric force between them is 1.44 x [tex]10^{20}[/tex] N.

To determine the electric force between two balloons, we can use Coulomb's law:

F = k * (q₁ * q₂) / r²

where F is the electric force, k is Coulomb's constant (9 × [tex]10^{9}[/tex] N·m²/C²), q1 and q2 are the charges on the balloons (2.0 x [tex]10^{7}[/tex] C), and r is the distance between the balloons (0.5 m).

Plugging in these values, we get:

F = 9 × [tex]10^{9}[/tex] * (2.0 x [tex]10^{7}[/tex])² / (0.5)²

F = 1.44 x [tex]10^{20}[/tex] N

Therefore, the electric force between the balloons is 1.44 x [tex]10^{20}[/tex] N when they are separated by a distance of 0.5 m.

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Help as fast as you can please

Answers

Therefore, the components of vector M are approximately Mx = 3.98 and My = 3.02.

How to calculate vector of components ?

The vector M has a magnitude of 5.0 and a direction of 37.0° with respect to the x-axis, as seen in the attached figure.

The cosine of the angle between vector M and the x-axis can be used to determine the x-component of vector M:

Mx = 5.0 cos(37.0°) 3.98, where Mx = M cos(37.0°)

The sine of the angle between vector M and the x-axis can be used to calculate the y-component of vector M:

M sin(37.0°) = 5.0 sin(37.0°) 3.02; My = M sin(37.0°)

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Jodi made a list about electric current to help her study for a test. 1) Movement of electrons is continuous in a current. 2) Electrons move from areas of low to high electric potential. 3) Voltage causes current to flow. 4) Rate at which current flows is measured in amperes. Which best describes Jodi’s error?

Answers

The best description of Jodi's error is "The electrons move from areas of low to high electric potential." because the electrons actually move from areas of high to low electric potential. thus option 2 is the answer.

Jodi's error is in statement 2, which says that electrons move from areas of low to high electric potential. In reality, electrons move from areas of high to low electric potential. This is because electric potential represents the energy per unit charge, and electrons are negatively charged particles that naturally move from higher energy levels to lower ones. The direction of electron flow determines the direction of electric current, which is the flow of electric charge. The other statements on Jodi's list are generally correct, including the fact that voltage (or potential difference) is what drives current flow, and that current is measured in amperes.

However, it's important to note that the movement of electrons in a current is not always continuous, as they can be impeded by resistance, which causes them to lose energy and generate heat.

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The correct question Is:

Jodi made a list about electric current to help her study for a test.

1) Movement of electrons is continuous in a current.

2) Electrons move from areas of low to high electric potential.

3) Voltage causes current to flow.

4) Rate at which current flows are measured in amperes.

Which best describes Jodi’s error?

The movement of electrons is not always continuous.

Electrons move from areas of high to low electric potential.

Resistance causes current to flow.

The rate at which current flows is measured in ohms.

a particle with charge 18 nc travels from an equipotential line with 46 volts to another equipotential with 10 volts as part of miss frizzle's science experiment of the day for her students. what is the change in potential energy of the system during this time interval? answer in nj (nano-joules) to the nearest nj.

Answers

The change in potential energy of the system during this time interval is -648 nJ.

The change in potential energy of a particle with charge q that moves from a point with potential V1 to a point with potential V2 is given by:

ΔPE = q x (V2 - V1)

where q is the charge of the particle, and

V2 and V1 are the potentials at the final and initial positions.

Therefore, the charge of the particle is 18 nC, and it moves from a point with potential V1 = 46 V to a point with potential V2 = 10 V.

Therefore, the change in potential energy is:

ΔPE = q x (V2 - V1) = 18 nC x (10 V - 46 V) = -648 nJ

The negative sign indicates that the potential energy of the particle has decreased, which means that the particle has lost potential energy as it moved from the point with higher potential to the point with lower potential.

Therefore, the change in potential energy of the system during this time interval is -648 nJ

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Describe a complex (non-electrical) machine that you enjoy using? What makes it a complex machine, rather than a simple machine?

Answers

A simple machine is that a complex machine is made up of multiple simple machines that work together to perform a complex task.

One example of a complex machine is a car. A car is a complex machine because it consists of many simple machines that work together to perform a complex task. The simple machines in a car include the wheel and axle, pulleys, gears, levers, and inclined planes.

The engine in a car is a complex machine that converts the chemical energy of gasoline into the kinetic energy needed to move the car. The engine is made up of many simple machines, including pistons, cylinders, valves, and crankshafts. The transmission is another complex machine in a car that uses gears and levers to transfer power from the engine to the wheels.

Other components of a car, such as the steering system, brakes, and suspension, are also complex machines that use multiple simple machines to perform their functions.

What distinguishes a complex machine from a simple machine is that a complex machine is made up of multiple simple machines that work together to perform a complex task. In contrast, a simple machine performs a single task using only one or two basic mechanisms, such as the lever or the inclined plane.

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Use the diagram and the drop-down menu to answer the question.
If bulb C burns out, what will happen to bulbs A and B

Answers

Answer: They both will go out

Explanation:

How much work is done by an engine to accelerate an
800 kg vehicle from 10 m/s to 20 m/s?

Answers

We are unable to directly determine the work performed by the engine because the distance over which the force acts is unknown.

What work is involved in accelerating an 800 kg automobile from 5 meters per second to 10 meters per second?

This indicates that the effort expended to increase the car's speed will be equivalent to the change in kinetic energy of the vehicle. Thus, 30 kJ of effort must be performed.

What is the recipe for getting stuff done?

The work W is equal to the force f times the distance d, or W = fd, to mathematically describe this idea.

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A horizontal pipe of diameter 0.945 m has a smooth constriction to a section of diameter 0.567 m. the density of oil flowing in the pipe is 821 kg/m° if the pressure in the pipe is 8940 n/m° and in the constricted section is 6705 n/m?, what is the rate at which oil is flowing?

Answers

If the pressure in the pipe is 8940 n/m° and in the constricted section is 6705 n/m,  the rate at which oil is flowing through the pipe is 2.74 m^3/s.

The volume flow rate (Q) can be expressed as:

Q = Av

We can use the continuity equation to relate the velocities at the two different cross-sectional areas:

A1v1 = A2v2

Where:A1 and A2 are the cross-sectional areas at the two different points in the pipe

v1 and v2 are the fluid velocities at the two different points in the pipe

We can rearrange this equation to solve for v1 in terms of v2:

v1 = (A2/A1) * v2

Now we can use Bernoulli's equation to relate the pressure and velocity at the two different points in the pipe:

P1 + (1/2)ρv1^2 = P2 + (1/2)ρv2^2

We can rearrange this equation to solve for v2:

v2 = sqrt(2(P1 - P2) / ρ + v1^2)

Now we can plug in the given values to find v2:

v1 = ?

A1 = (π/4)(0.945 m)^2 = 0.664 m^2

A2 = (π/4)(0.567 m)^2 = 0.100 m^2

ρ = 821 kg/m^3

P1 = 8940 N/m^2

P2 = 6705 N/m^2

v2 = sqrt(2(8940 - 6705) / 821 + ((0.100/0.664) * v1)^2)

We can simplify this equation by assuming that the velocity at the wider section of the pipe (v1) is much smaller than the velocity at the constriction (v2), due to the principle of continuity. Therefore, we can neglect the second term in the equation, giving:

v2 = sqrt(2(8940 - 6705) / 821) = 11.98 m/s

Now we can use the continuity equation to find the volume flow rate:

Q = A1v1 = A2v2 = (π/4)(0.945 m)^2 * 11.98 m/s =2.74 m^3/s

Therefore, the rate at which oil is flowing through the pipe is 2.74 m^3/s.

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mike has a linear production possibilities frontier that shows maximum production of trucks or computers of 10 million each. debra also has a linear production possibilities curve that shows maximum production of 9 million trucks or 3 million computers.

Answers

Mike and Debra both have linear production possibilities frontiers (PPF), which show the maximum amount of two goods that can be produced given their resources and technology. However, their PPFs are different because they have different maximum production levels for trucks and computers.

Mike's PPF shows that he can produce a maximum of 10 million trucks or 10 million computers. This means that if he allocates all of his resources to producing trucks, he can produce 10 million of them, and if he allocates all of his resources to producing computers, he can produce 10 million of them. Debra's PPF, on the other hand, shows that she can produce a maximum of 9 million trucks or 3 million computers. This means that if she allocates all of her resources to producing trucks, she can produce 9 million of them, and if she allocates all of her resources to producing computers, she can produce 3 million of them.

Overall, Mike and Debra's PPFs show the trade-offs they face when deciding how to allocate their resources between producing trucks and computers. They must decide how much of each good to produce in order to maximize their production and meet their needs.

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A cheetah stalking her prey is moving at 1 m/s. She accelerates to a speed of
25 m/s to catch the zebra. Her acceleration is 10 m/s². Calculate the time
caken to reach her top speed.

Answers

The time taken to reach zebra's top speedis 2.4 second by the cheetah.

How to calculate time?using the suvat formulav=u+at 25=1+10t because of this, t=2.4 secondsWhat is the formula for Suvat?V = U + A T. It belongs to the family of equations known as the SUVAT. Their namesake motion in a straight line with constant acceleration involves the following variables: displacement (S), starting velocity (U), final velocity (V), acceleration (A), and time (T).The majority of the suvat equations are rather simple to construct once you realize that acceleration (, assumed constant) is the derivative of velocity () with respect to time and velocity is the derivative of position (), likewise with respect to time.Physics frequently mentions Issac Newton.

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the diagram provided shows a straight wire carrying a current between the poles (north and south) of a permanent magnet. in what direction is the magnetic force experienced by the wire?

Answers

In accordance with Fleming's left-hand rule, the wire tends to travel perpendicular to the plane of the paper upward when the magnetic field is directed from N-pole to S-pole.

How could one determine, just from qualitative observations, the direction of the magnetic force acting on a straight wire carrying a current?

Curling your fingers and directing your right thumb in the direction of the wire's current will help you find it. Your fingers will curl in the same direction due to the magnetic field surrounding the wire.

What does magnetic field mean when a current is flowing through a straight conductor?

Certain magnetic field characteristics Straight current-carrying conductor lines: Around the conductor, it creates concentric circles. It is situated in a plane parallel to conductor.

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Two cars are moving in the same direction. If the velocity of the first car is 55m/s & that of the second car is 40 m/s, calculate the relative velocity of the first car second car. If they were moving in the opposite direction, what would be the relative with respect to the velocity? Calculate.​

Answers

(a) The relative velocity of the second car with respect to the first car is -15 m/s.

(b) The relative velocity of the second car with respect to the first car is 95 m/s when they are moving in opposite directions.

What is the relative velocity of the cars?

When two objects are moving in the same direction, the relative velocity of the second object with respect to the first object is the difference between their velocities:

Relative velocity = Velocity of the second car - Velocity of the first car

Relative velocity = 40 m/s - 55 m/s

Relative velocity = -15 m/s

When the two cars are moving in opposite directions, the relative velocity of the second car with respect to the first car is the sum of their velocities:

Relative velocity = Velocity of the first car + Velocity of the second car

Relative velocity = 55 m/s + 40 m/s

Relative velocity = 95 m/s

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how is scientifical learn done and disuss​

Answers

Answer:

The six steps of the scientific method include: 1) asking a question about something you observe, 2) doing background research to learn what is already known about the topic, 3) constructing a hypothesis, 4) experimenting to test the hypothesis, 5) analyzing the data from the experiment and drawing conclusions, and 6) communicating the results to others.

*100 points* How does the bending of light depend on the two media and what is the mystery medium A? (This is a project where you have to find what medium A is, and use Snells law to calculate it)

Answers

The bending of light as it passes from one medium to another is governed by Snell's law, which depends on the indices of refraction of the two media and the angle of incidence

The bending of light as it travels from one medium to another is described by Snell's law, which states that the ratio of the sines of the angles of incidence and refraction is equal to the ratio of the indices of refraction of the two media:

n1 sin(theta1) = n2 sin(theta2)

where n1 and n2 are the indices of refraction of the two media, theta1 is the angle of incidence (the angle between the incident ray and the normal to the interface between the two media), and theta2 is the angle of refraction (the angle between the refracted ray and the normal).

The index of refraction of a medium is a measure of how much the speed of light is reduced when it travels through that medium compared to its speed in a vacuum.

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