A 2 m long pendulum has a 100 g bob ties at one end and can oscillate freely.Don't forget to draw the diagrams FBDsa. Calculate the tension in the string in this equilibrium position when is is simply hanging. (Net force =0)The bob is moved to a side till the string makes an angle of 18 degrees with the vertical.b. Calculate the height to which the bob is raised (h=L(1-cos theta))c. Calculate the potential energy gained in the process PE=mghThe bob is now released to oscillate freely.d. Calculate the velocity with which the bob moves past the equilibrium position (v=sqrt(2gL))e. Calculate the tension in the string as bob moves past the equilibrium position (T-mg=mv2/r)

Answers

Answer 1

a. The tension in the string in the equilibrium position is 980 N.

In the equilibrium position, the bob is simply hanging and is not moving, so the net force on the bob is 0. The force acting on the bob is the tension in the string, which is equal to the weight of the bob (mg) in the opposite direction.

Therefore, the tension in the string in the equilibrium position is equal to the weight of the bob, which is [tex](100g)(9.8 m/s^2) = 980 N[/tex].

b. The height to which the bob is raised is 0.063 m.

It can be calculated using the equation h=L(1-cos theta).

Therefore, the angle theta is 18 degrees, so the height is (2m)(1-cos 18) = 0.063 m.

c. The potential energy gained in the process is 6.1 J

It can be calculated using the equation PE = mgh. The mass of the bob is 100g = 0.1 kg, the height is 0.063 m and the acceleration due to gravity is 9.8 m/s^2.

Therefore, the potential energy is [tex](0.1 kg)(9.8 m/s^2)(0.063 m)[/tex] = 6.1 J.

d. The velocity with which the bob moves past the equilibrium position is 4.5 m/s.

It can be calculated using the equation [tex]v = \sqrt{ (2gL)[/tex] The acceleration due to gravity is [tex]9.8 m/s^2[/tex] and the length of the pendulum is 2 m, so the velocity is [tex]\sqrt (2(9.8 m/s^2)(2m))[/tex] = 4.5 m/s.

e. The tension in the string as the bob moves past the equilibrium position is 24.7 N.

It can be calculated using the equation [tex]T - mg = mv^2/r[/tex]. The mass of the bob is 100g = 0.1 kg, the velocity is 4.5 m/s, and the radius is 2m, so the tension is [tex](0.1 kg)(4.5 m/s)^2/(2m) + (0.1 kg)(9.8 m/s^2)[/tex] = 24.7 N.

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Related Questions

In Fig. 22−35 the four particles form a square of edge length a=5.00 cm and have charges q 1​ =+10.0 nC,q 2​ =−20.0 nC,q 3​ =+20.0 nC, and q 4​ =−10.0 nC, In unit vector notation, what net electric field do not particles produce at the square's center?

Answers

Net electric field produced by the four particles at the square's center is zero.

What is electric field?

The physical field that surrounds electrically charged particles and exerts force on all other charged particles in the field, either attracting or repelling them is called an electric field.

Electric field produced by each particle at the center of the square can be calculated as:

E1 = k * q1 / (5/sqrt(2))^2 = 810^9 N/C * (1010^-9 C) / (5/sqrt(2))^2 = 410^9 N/C

E2 = k * q2 / (5/sqrt(2))^2 = 810^9 N/C * (-2010^-9 C) / (5/sqrt(2))^2 = -810^9 N/C

E3 = k * q3 / (5/sqrt(2))^2 = 810^9 N/C * (2010^-9 C) / (5/sqrt(2))^2 = 810^9 N/C

E4 = k * q4 / (5/sqrt(2))^2 = 810^9 N/C * (-1010^-9 C) / (5/sqrt(2))^2 = -410^9 N/C

So, E net = E1 + E2 + E3 + E4 = 410^9 N/C + (-810^9 N/C) + 810^9 N/C + (-410^9 N/C) = 0 N/C

Therefore,  net electric field produced by the four particles at the square's center is zero.

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hanging spring when a 0.30 kg mass is suspended from a massless spring, the spring stretches a distance of 2.0 cm. let 2.0 cm be the rest position for the mass-spring system. the mass is then pulled down an additional distance of 1.5 cm and released. results for question 7. 7 1.5 / 1.5 points calculate the period of resulting oscillation in si units. correct answer: 0.284 results for question 8. 8 0 / 1.5 points calculate the total mechanical energy of the system in si units. incorrect answer: 166

Answers

the total mechanical energy of the system is: 0.09187 Joule

What is spring constant?

"spring constant" (plural: "spring constants") a property of a spring that is determined by the force acting on the spring to the displacement it produces. The stiffness of the spring is quantified by the spring constant, k. For various materials and springs, it varies. The spring becomes stiffer and more challenging to stretch as the spring constant increases.

Given that,

mass (m) = 0.30 kg

distance (x) = 2.0 cm. = 2 × 10⁻² m

Thus, for balancing condition,

kx = mg

or, k = mg /x

or, k = (0.30 × 10) / (2 × 10⁻²)

or, k = 150 N/m

So, the value of spring constant is 150 N/m

Next, time period (T) = 2π √(m /k)

or, T =  2π √(0.30 / 150)

or, T = 0.2808 sec

Total stretches in spring constant = 2 cm + 1.5 cm = 3.5 cm

Total mechanical energy = 1/2 k x²

Total mechanical energy = 1/2 × (150) × (2 × 10⁻²)²

Total mechanical energy = 0.09187 Joule

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A bicycle tire is spinning clockwise at 2.30 rad/s. During a time period =1.95 s, the tire is stopped and spun in the opposite direction, also at 2.30 rad/s. Calculate the change in the tire’s angular velocity and the tire’s average angular acceleration

Answers

If a bicycle tire is spinning clockwise at 2.30 rad/s. the change in the tire’s angular velocity and the tire’s average angular acceleration is: 2.63 rad/s².

How to find the  average angular acceleration?

Change in angular velocity

Δw =  wf -wi

Δw = (2.30 rad/s) - (-2.30 rad/s)

= 4.60 rad/s

w_ is negative because it is in the clockwise direction.

Average angular acceleration:

Average angular acceleration = 4.60 rad/s/ 1.75s

Average angular acceleration = 2.63 rad/s²

Therefore the average angular acceleration is 2.63 rad/s².

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A car accelerates uniformly from rest and reaches a speed of 33.8 m/s in 4.7s the diameter of the tire is 64.6 cm find the number of revolutions the tire makes during this motion

Answers

The tire makes approximately 280.57 revolutions during this motion.

What are the revolutions?

Generally, To find the number of revolutions the tire makes during this motion, we first need to find the distance traveled by the car.

Distance = Initial velocity x time + (1/2) x acceleration x time^2

Since the car starts at rest, the initial velocity is 0 m/s.

The acceleration is uniform, so we can use the formula:

Final velocity = Initial velocity + acceleration x time

In this case, the final velocity is 33.8 m/s, and the time is 4.7s.

So, acceleration = (33.8 m/s - 0 m/s) / 4.7s

= 7.19 m/s^2

Now we can use this value of acceleration to find the distance traveled:

Distance = 0 m/s x 4.7s + (1/2) x 7.19 m/s^2 x (4.7s)^2

= 570.98 m

To find the number of revolutions of the tire, we divide the distance traveled by the circumference of the tire.

The circumference of the tire is equal to the diameter x pi.

Circumference = 64.6 cm x 3.14

= 203.5 cm

Number of revolutions = Distance / Circumference

= 570.98m / (203.5 cm)

=280.57

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A skater is standing still on a frictionless ice rink. Her friend throws a Frisbee straight to her. In which of the following cases is the largest momentum transferred to the skater?
(a) The skater catches the Frisbee and holds onto it.
(b) The skater catches the Frisbee momentarily, but then drops it vertically downward.
(c) The skater catches the Frisbee, holds it momentarily, and throws it back to her friend.

Answers

The largest momentum transferred to the skater is the skater catches the Frisbee, holds it momentarily, and throws it back to her friend.

The skater stands on a frictionless surface and his friend Frisbee starts moving behind him. The lack of friction makes the skater unstoppable.

However, when the skater returns to his friend through the Frisbee again, there is a backward force that increases the skater's speed. So and momentum is directly proportional to velocity, so as velocity increases so does momentum.

In Newtonian mechanics, momentum (more precisely, linear or translational momentum) is the product of an object's mass and velocity. A vector quantity that has magnitude and direction. If m is the object's mass and v is its velocity (which is also a vector quantity), then the object's momentum p is p = mv.

Advanced formulations of classical, Lagrangian and Hamiltonian mechanics allow the choice of coordinate systems containing symmetries and constraints. In these systems the conserved quantity is the generalized momentum, which is generally different from the momentum defined above. The generalized concept of momentum carries over into quantum mechanics and becomes the operator of the wavefunction. The momentum and position operators are related by the Heisenberg uncertainty principle.

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A swimmer capable of swimming with velocity v relative to water jumps in a flowing river having velocity u. The man swims a distance d downstream and returns back to the original position. Find out the time taken in complete motion.
a. 2dv/v^2 - u^2
b. dv/v^2 - u^2
c. 3dv/v^2 - u^2
d. 4dv/v^2 - u^2

Answers

The duration of the motion when a swimmer with a swimming velocity of v in relation to the water jumps into a river with a flowing velocity of u is measured as 2dv/v2 - u2.

What is motion?

Motion is the gradual change in an object's position over time. Displacement, distance, velocity, acceleration, time, and speed are all used to describe motion. In physics, motion is a function of a body's position or orientation over time. Translation is defined as movement along a line or a curve. Rotation is a motion that modifies a body's orientation. Motion is the shift in an object's position with respect to time. When an object's position changes over time, it is said to be in motion. By mentioning a reference point, we are able to describe the location of an object. Relative motion exists. An object's distance is defined as the length of its total path.

Here,

t1=d/(u+v)

t2=d/(u-v)

t=t1+t2

=d/(u+v)+d/(u-v)

t=2dv/v²-u²

When a swimmer with a swimming velocity of v jumps into a river with a flowing velocity of u, the length of the motion is calculated as 2dv/v2 - u2.

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Water is pumped from ground level to a reservoir of a roof of a building 15m high.The reservoir holds 12cm2 of water and it takes 40minutes to fill it by the pump, calculate the power of the pump assuming it's efficiency is 65%.
(Density of water=1000kg/M3 and g=10ms-2)​

Answers

Answer:

The power of the pump can be calculated using the following equation: Power = (Volume of water * Density of water * gravity * height) / (Time * Efficiency)

Therefore, the power of the pump is (12 * 1000 * 10 * 15) / (40 * 0.65) = 18,750 Watts.

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8. The Earth orbits the Sun at a distance of 1.46x1011 m from center to center. What is the strength of the Sun’s gravitational field at this distance?

Answers

The strength of the Sun's gravitational field at this distance is [tex]0.622m/s^2[/tex]

What is Gravitational field?

A gravitational field is defined as the model used to explain the effects that a massive body exerts in the space around it exerts a force on another massive body. Therefore, a gravitational field is used to explain gravitational phenomena, and it is measured in newtons per kilogram.

The acceleration due to gravity on the surface of the earth is given by;

[tex]g = GM/R^2[/tex]

Where, g is the acceleration due to gravity

G  is Gravitational constant [tex](6.673 * 10^-^1^1 Nm^2 kg^-^2)[/tex]

M is the mass of the planet [tex](1.99* 10^3^0 kg)[/tex]

R is the radius of planet

So, for above given information, [tex]g= \frac{6.022 * 10^-^1^1* 1.99* 10^-^3^0}{(1.46* 10^1^1)^2}[/tex]= [tex]0.622m/s^2[/tex]

Thus, the strength of the Sun's gravitational field at this distance is [tex]0.622m/s^2[/tex].

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Suppose' a tree branch falls down to the ground with constant acceleration and takes 2 seconds to hit the ground. Which of the following statements regarding the path of the branch is true? A. Its acceleration is increasing during the time it falls B. It covers the same distance during the first second as it does during the last second. C. It covers more distance during the last second. D. It covers less distance during the last second.

Answers

The correct statements is it covers more distance during the last second.

What is mean by acceleration? The rate at which an object's velocity alters over time is called its acceleration. It has both magnitude and direction because it is a vector quantity. The difference between the change in velocity and the change in time is known as acceleration. In physics, acceleration is the rate of change of velocity with respect to time. It is measured in meters per second squared (m/s2). Acceleration is a vector quantity and is therefore described by both the magnitude and direction of the change in velocity. In everyday terms, acceleration is the rate at which an object speeds up, slows down or changes direction. Acceleration can be caused by a number of things, including a push, a pull, gravity, or a change in the net force acting on an object. Acceleration can also be caused by a change in the mass or shape of an object. In some cases, acceleration can be caused by a change in the direction of velocity.

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If you push a particle of mass M inthe direction in which it is already moving, you expect theparticle's speed to increase. If you push with a constant forceF, then the particle will accelerate with accelerationa=F/M (from Newton's 2nd law).
A. Enter a one- or two-word answer that correctly completes thefollowing statement.
If the force is applied for a fixed interval of time t, then the _____ of the particle will increase by an amountat.
B. Enter a one- or two-word answer that correctly completes thefollowing statement.
If the force is applied over a given distance D, along the path of the particle, thenthe _____ of the particle will increase byFD.
C. If the initial kinetic energy of the particle isK1, and its final kinetic energy isKf, express Kfin terms of K1 and thework W done on theparticle.
D. Now, consider whether the following statements are true orfalse:
The dot product assures that the integrand is alwaysnonnegative.
The dot product indicates that only the component of theforce perpendicular to the path contributes to theintegral.
The dot product indicates that only the component of theforce parallel to the path contributes to the integral.
E. Assume that the particle has initial speedv1. Find its final kinetic energy Kf in terms ofv1, M, F, andD.
F. What is the final speed of the particle?

Answers

A. Speed ; B. kinetic energy ; C. Kf = K1 + W ; D. The statements are false. E. Kf = K1 + (FD) ; F. v = sqrt(2Kf/M).

What is kinetic energy?

In physics, kinetic energy of an object is the energy that it possesses due to motion.

A. If the force is applied for a fixed interval of time t, then speed of the particle will increase by an amount at.

B. If the force is applied over  given distance D, along the path of  particle, then kinetic energy of the particle will increase by FD.

C. Kf in terms of K1 and work W done on particle is : Kf = K1 + W

D. The statements are false. The dot product does not guarantee that the integrand is always nonnegative and also it does not indicate that only the component of force perpendicular or parallel to the path contributes to integral.

E.  Final kinetic energy Kf in terms of v1, M, F, and D is Kf = K1 + (FD)

F. Final speed can be determined using the formula, Kf = 1/2 * M * v^2. where v is final speed. It can be rearranged to find v = sqrt(2Kf/M).

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let the samples of the noise voltage, v (nt) be jointly gaussian random variables. show that x(t) is a gaussian process.

Answers

Since x(t) is a linear function of v(nt) which is jointly Gaussian, and the mean of x(t) is a linear function of t, x(t) is also a Gaussian process.

What is Gaussian process?A Gaussian process is a stochastic process whose realizations are Gaussian random variables. To show that x(t) is a Gaussian process, we need to show that:The mean of x(t) is a linear function of t.The covariance function of x(t) is a valid covariance function.The mean of x(t) is defined as E[x(t)], where E[] denotes the expectation operator. Since the noise voltage v(nt) is jointly Gaussian, it follows that x(t) = v(nt) is also Gaussian, and thus its mean is a linear function of t.The covariance function of x(t) is defined as C(s,t) = E[(x(s) - E[x(s)]) (x(t) - E[x(t)])].Since v(nt) is jointly Gaussian, the covariance function of x(t) is also a valid covariance function.Therefore, x(t) is a Gaussian processx(t) = v(nt) is jointly GaussianSince x(t) is a linear function of v(nt) which is jointly Gaussian, and the mean of x(t) is a linear function of t, x(t) is also a Gaussian process.The covariance function of x(t) is a valid covariance function, as it is derived from jointly Gaussian variables.

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A spring scale is used to exert a net force of 5.6 N on a cart, If the cart's mass is 340 grams, what is the cart's acceleration ?

Answers

Force = 5.6N

Mass = 340g = 0.34kg

Acceleration= Force/mass

= 5.6/0.34 = 16.4m/s²

PART ONE
A square plate is produced by welding together four smaller square plates, each of side a. The weight of each of the four plates is shown in the figure.
Find the x-coordinate of the center of gravity (as a multiple of a).
Answer in units of a.

PART TWO
Find the y-coordinate of the center of gravity (as a multiple of a).
Answer in units of a.

Answers

(a) The x coordinate of the center of the gravity is 1.48 a

(b) The y coordinate of the center of the gravity is 1.33 a.

What is the direction of the center of the gravity?

The direction of the weights of the four square plates is calculated as follows;

θ = arc tan ( dy / dx )

where;

dy is the displacement in vertical directiondx is the displacement in the horizontal direction

dy = 2a

dx = 2a

θ = arc tan ( dy / dx )

θ = arc tan ( 2a / 2a )

θ = arc tan ( 1 )

θ = 45⁰

The x coordinate of the center of the gravity is calculated as follows;

x = ( m₁x₁ + m₂x₂ ) / ( m₁ + m₂ )

x = ( (90 + 50)a  +  (40 + 90)2a ) / ( 90+50  + 40 + 90 )

x = (140a + 130(2a) ) / ( 140 + 130 )

x = (140a + 260a ) / (270)

x = 1.48 a

The y coordinate of the center of the gravity is calculated as follows;

y = ( m₁y₁ + m₂y₂ ) / ( m₁ + m₂ )

y = ((90 + 90)a + (50 + 40)2a ) / (90+90  +   50+40 )

y = (180a + 90(2a) ) / (180 + 90)

y = (180a + 180a) / (270)

y = (360a) / ( 270)

y = 1.33 a

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The chart shows the movement of a ball after several seconds. A 2-column table with 4 rows. The first column labeled A has entries 0, 4, 8, 12, 16. The second column labeled B has entries 0, 2.5, 6, 8, 10. Column A is on the x-axis, and Column B is on the y-axis. Which titles should replace A and B? Column A should be “Time,” and Column B should be “Position.” Column A should be “Position,” and Column B should be “Time.” Column A should be “Velocity,” and Column B should be “Speed.” Column A should be “Speed,” and Column B should be “Velocity.

Answers

The titles should replace A and B are Column A should be “Time,” and Column B should be “Position.”

What is the position of the ball after 4 seconds? How long does it take for the ball to reach a position of 8?At 4 seconds, the position of the ball is at (4,2.5). This is indicated on the chart by the intersection of the two lines on the 4th point of the x-axis (column A) and the 2.5th point of the y-axis (column B).It takes 4 seconds for the ball to reach a position of 8. This is evident from the chart as the 8th point of the x-axis (column A) intersects with the 10th point of the y-axis (column B). This intersection indicates the position of the ball at 8 seconds. Thus, it can be concluded that it took 4 seconds for the ball to reach a position of 8. This is in line with the increasing increments of 4 on the x-axis and 2.5 on the y-axis, as presented in the chart.

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conservation of momentum: a small car meshes with a large truck in a head-on collision. which of the following statements concerning the magnitude of the momentum change during the collision is correct? (there could be more than one correct choice.)

Answers

The truck and the tiny car both experience the same amount of momentum difference.

What is the definition of momentum in physics?

whenever a person is struck in the face by a ball that was thrown at him. It demonstrates how challenging it might be to change the course of events. A baseball is swooping in the air. A large truck is moving. This kind of firearm discharged a bullet.

In what situations does momentum actually matter?

Momentum is a property of almost all motion-related activities. It is a cornerstone of physics. In sports, the word "momentum" is frequently used. A side that has momentum is therefore moving and will require effort to stop.

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indicate whether the following statements are true or false. In each case give a reason for your answer. If W ⊂ Rn is a subspace and v ∈ Rn, then prW (v) is the least-squares approximation to v by a vector in W except when prW (v) = 0..
A. True
B. False

Answers

A. False

The statement is not true. The projection of a vector v on a subspace W, prW(v), is the vector in W that is closest to v in terms of the Euclidean norm. It is not always the least-squares approximation. The least-squares approximation is a vector in W that minimizes the sum of the squares of the distances from the vector to the elements of a given set of vectors, it is a distinct concept.

A vector can't be the least-squares approximation to v by a vector in W except when prW (v) = 0 if the vector is in the subspace W.

maria makes a graphic organizer to compare open, closed, and short circuits. she adds the labels shown. label 1: current flows in the circuit. label 2: this forms when a bulb burns out.

Answers

Maria compares three types of electrical circuits and their properties, behavior, and results using a graphical organizer. Label 1 represents an open circuit, label 2 a closed circuit, and label 3 a short circuit.

Label 1 refers to an open circuit where no current flows through the circuit because the flow of current has been interrupted or interrupted. This can happen if a switch is turned off, a fuse is blown, or a connection is loose.

Label 2 refers to a closed circuit in which current can flow through the circuit because there is a complete path for the current to flow. This is the normal operating state of the circuit.

Label 3 refers to short circuits that occur when there is an unintentional connection between the positive and negative sides of the circuit.

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What is the kinetic energy of a 1,678-kilogram boat moving at 4.6 m

Answers

Answer:

17,753.24 J (Joules)

Explanation:

To calculate the kinetic energy of an object, we use the formula:

Kinetic energy = 1/2 * mass * velocity^2

where mass is measured in kilograms and velocity is measured in meters per second.

Given that the boat has a mass of 1,678 kilograms and a velocity of 4.6 meters per second, we can substitute these values into the formula to find its kinetic energy:

Kinetic energy = 1/2 * 1,678 * (4.6)^2

Kinetic energy = 1/2 * 1,678 * 21.16

Kinetic energy = 17,753.24 J (Joules)

So the kinetic energy of the 1,678-kilogram boat moving at 4.6 m/s is 17,753.24 J (Joules).

which of the answers below best describes the discussion between maria and oliver? maria and oliver are discussing the ranking of buoyant forces on three different objects. maria and oliver are discussing how to correctly determine the pressure at a particular depth in a fluid. maria and oliver are discussing how to correctly determine the number and magnitude of forces on a volume of water. maria and oliver are discussing whether the bouyant force is influenced by the mass of an object. grade summary deductions 0% potential 100% submissions attempts remaining: 3 (33% per attempt) detailed view

Answers

Oliver and Maria are debating how to precisely determine the fluid's pressure at a particular depth.

What forces need to be considered in order to understand how a sphere falls in a fluid?

Stokes' law describes how spheres settle in a Newtonian fluid. A particle will sink if the buoyant force acting on a sphere submerged in a Newtonian fluid is not equal to or greater than the gravitational force acting on the sphere. The net downward force on a sphere is what separates the settling force from the buoyant force.

What connection exists between point pressure and depth in a fluid?

Because a liquid's pressure also increases with depth, the pressure of a liquid is inversely proportional to its depth.

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transitions between solid, liquid, and gaseous states of a substance occur when conditions of temperature or pressure favor the associated changes in phase. when the temperature of a gas is

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A substance will switch between its solid, liquid, and gaseous forms when temperature, pressure circumstances encourage corresponding transitions. When a gas's temperature increases, pressure falls.

A state of matter that is gaseous has a distinct mass but no distinguishable shape or volume. Pressure, volume, temperature, material quantity, specific heat, and other quantifiable characteristics of gases include these. The most important characteristics are the four independent variables quantity, volume, pressure, and temperature, which describe the gas's state. When describing how hot or cold something is, the idea of temperature is used. One can measure temperature by using a thermometer. The calibration of thermometers involves the use of various temperature scales.

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hardening parameter is assumed to be related to some measure of the plastic strains via the equation ___

Answers

Hardening parameter is assumed to be related to some measure of the plastic strains via the equation [tex]$\sigma_{y0} = K \varepsilon_p^m$[/tex].

What is parameter?

Parameter is a special kind of variable used in a function or subroutine to refer to one of the pieces of data provided as input to the function. It is a value that controls the behaviour of a function. It can be used to provide a certain type of flexibility in the function, allowing it to act differently in different situations.

where [tex]$\sigma_{y0}$[/tex] is the hardening parameter, [tex]$K$[/tex] is a material constant, and [tex]$m$[/tex] is the hardening exponent. This equation is used to determine the relationship between the yield stress and the plastic strain, providing a useful tool for predicting the behavior of a material under cyclic loading.

The strain hardening increases the yield strength of the material.

and

Modulus of toughness = [tex]\dfrac{\text{Yieldstress}^2}{2(\text{{Youngs Modulus)}}}[/tex]

Hence, if the yield stress increases, the modulus of toughness increases too.

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define, identify, describe and understand various heat sources capable of being a source of ignition.

Answers

When anything, a process, or an event may ignite or transport energy into a medium to cause combustion, it is said to be a source of ignition. This standard permits the use of open flames as a source of ignition.

Friction, hot surfaces, sparks, and static electricity. bursts of lava and friction-based electricity warmers. Sun Everyone who lives on Earth gets most of their heat from the sun. For plants to prepare their food, they require energy from the sun. The warmth of the sun makes it possible for humans to survive. Fuel ignition results in the release of energy. Heat is the energy that is transmitted when two objects with different surface temperatures touch. system of the sun.

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You are handed an apple that has a mass of 102g. To get a better idea of what different pressures feel like, you rig up several systems where the force of the apple is distributed over objects of different size. a) What is the weight of this apple? (in units of N and lbf) b) You stick a square-ended toothpick into the apple and balance it on your finger. What is the pressure of the apple (in units of Pa, psi, and atm) that you feel on your finger? c) You cut the apple up into slices and place them on your hand. What is the pressure of the apple on your hand (in units of Pa, psi, and atm)? d) You smash the apple into applesauce and spread it over a table. What is the pressure of the applesauce on the table (in units of Pa, psi, and atm)?

Answers

a) 9.80 N  b) 0.0059 atm c) P = (9.80 N) / (total area of slices) d) P = (9.80 N) / (total area of applesauce)

What is pressure of applesauce?a) The weight of an object is equal to its mass multiplied by the acceleration due to gravity. On Earth, the acceleration due to gravity is approximately 9.81 m/s^2. So the weight of the apple is:Weight = (102 g) * (9.81 m/s^2) = 1004.82 g * 9.81 m/s^2 = 9.80 Nb) To find the pressure on your finger when the apple is balanced on a toothpick, we can use the formula P = F/A, where P is pressure, F is force, and A is area. The force of the apple is its weight (9.80 N) and the area of contact on your finger is the cross-sectional area of the toothpick. So, the pressure on your finger is:P = (9.80 N) / (pi * (0.00625 cm/2)^2) = 9.80 N/ 2.44 x 10^-5 cm^2 = 4.01 x 10^5 Pa or 4.01 x 10^5 N/m^2 = 4.01 x 10^5 Pa = 4.01 x 10^5 N/m^2 = 4.01 x 10^5 Pa = 59 psi = 0.0059 atmc) To find the pressure on your hand when the apple is cut into slices, we can use the same formula P = F/A, where P is pressure, F is force, and A is area. The force of the apple is still its weight (9.80 N) and the area of contact on your hand is the total area of the slices. So, the pressure on your hand is:P = (9.80 N) / (total area of slices)d) To find the pressure of the applesauce on the table, we can use the formula P = F/A, where P is pressure, F is force, and A is area. The force of the applesauce is still its weight (9.80 N) and the area of contact on the table is the area of the applesauce. So, the pressure on the table is:P = (9.80 N) / (total area of applesauce)It should be noted that the above calculations are based on the assumption that the apple is a homogeneous object and that the cross sectional area of toothpick is constant. In reality, the pressure will vary depending on the apple's density and the toothpick's shape and size.

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Star A has a magnitude of 9.5; Star B, 5.5; and Star C, 2.5. Which is brightest? Which are visible to the unaided eye? Which pair of stars has a flux ratio of about 16?

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Star A has a magnitude of 9.5, star B has a magnitude of 5.5, and star C has a magnitude of 2.5, so star C is the brightest, while star B is visible but star A is not, and the flux of the star is 16, which is the ratio of star A to star B ( [tex]{2}^{9.5-5.5}=16[/tex])

What is the significance of the flux of the star?

The star's flux is significant because it explains the amount of light emitted by the star, is useful for studying the star's brightness, and can be used to infer the star's distance from Earth, give the idea of a collision with Earth, and so on.

As a result, star A has a magnitude of 9.5, star B has a magnitude of 5.5, and star C has a magnitude of 2.5, so star C is the brightest, while star B is visible but star A is not, and the flux of the star is 16, which is the ratio of star A to star B.

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The scalar product of the vectors A=3i+4j-5k and B=-i+j-2k

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The scalar product of the vectors A = 3i + 4j - 5k and B = -I + j - 2k is -9.

The scalar product (also known as the dot product) of two vectors is a scalar quantity that can be calculated by multiplying the magnitudes of the two vectors and the cosine of the angle between them. The formula to calculate the scalar product of two vectors A and B is:

A.B = |A| |B| cos(theta)

To find the scalar product of two vectors we can also use the following formula:

A.B = (A.i) (B.i) + (A.j) (B.j) + (A.k) (B.k)

where A.i, A.j, A.k, B.i, B.j, B.k are the projections of vectors A and B on the i, j, and k axis respectively.

So, in this case, we have:

following A = 3i + 4j - 5k and B = -i + j - 2k

A.B = (3)(-1) + (4)(1) + (-5)(-2) = -3 + 4 - 10 = -9

Therefore, the scalar product of the vectors A = 3i + 4j - 5k and B = -I + j - 2k is -9.

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Refer to the image attached.

a collision at 30 mph will take any loose object in your car and give it the same force as if it were:

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A collision at 30 mph will take any loose object in your car and give it the same force as if it were: shot from a canon.

What is the force of impact at 30 mph?Your body weight times the speed of the moving object equals the crash force. If you are holding your child while driving, you run the risk of crushing them if there is an accident. A 100-pound adult becomes a 3,000-pound force on the youngster in an accident at 30 miles per hour.About 40% of those struck by a car traveling at 30 mph will die as a result of their injuries, according to the U.S. Department of Transportation (DOT). To give you an idea, consider that 5 percent of people would not survive being hit by a car doing 20 mph.

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if the people are all lined up on the street at different blocks, and the police siren starts at block 3, which statement describes what block each person is standing at? wycleff is on block 1, lilly is on block 4, quincy is on block 12, and emilia is on block 17. lilly is on block 1, wycleff is on block 4, quincy is on block 12, and emilia is on block 17. lilly is on block 1, wycleff is on block 4, emilia is on block 12, and quincy is on block 17. wycleff is on block 1, lilly is on block 4, emilia is on block 12, and quincy is on block 17.

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Wycleff is on block 1, Lilly is on block 4, Emilia is on block 12, and Quincy is on block 17 is the correct statement about each person standing at block.

Simple definition of the Doppler effect.

As a source and observer move closer or farther apart, the Doppler effect, which is a phenomenon in physics, causes the frequency of sound, light, or other waves to rise or fall. When a source emits waves, those waves are compressed as they approach the observer.

Wycleff could hear a low-pitched sound the entire time, indicating that the police car was relocating away from him. He was thus in block 1.

A Doppler effect (change in pitch) was the first thing Lilly noticed. She was at block 4, so the car must have passed her first.

After Lilly, Emilia noticed a Doppler effect. She was at block 12 when the car passed Lilly before passing her.

The entire time, Quincy heard a high-pitched sound, which indicated that the police car was approaching. He was thus in block 17.

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if a wave is traveling at a velocity of 120 m/s and has a frequency of 5 hz, which of the following can be determined? A.The mass of the wave. B. The speed of the wave. C.The wavelength of the wave. D. The direction of the wave.

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If a wave has a frequency of 5 Hz and is moving at a speed of 120 m/s, its wavelength is 24 m.

Given,

Velocity =120m/s

Frequency=5Hz

So the Wavelength of the wave is,

[tex]\lambda =\frac{v}{f}[/tex]

[tex]\lambda =\frac{120}{5}=24m[/tex]

[tex]\lambda =24m[/tex]

So the Wavelength of the wave is 24m

The number of waves that pass through a fixed point in a given amount of time is defined as the frequency. If a wave takes 1/2 second to pass, the frequency is 2 per second. If it takes one-hundredth of an hour, the frequency is one hundred per hour.

After passing through a series of events or positions and returning to its original state, a body in periodic motion is said to have gone through one cycle or one vibration. Additionally, see angular velocity and simple harmonic motion.

The frequency is 2 per second if the period or time interval, required to complete one cycle or vibration is 1/2 second; 100 per hour if the period is 1/100 of an hour.

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A charged rod is brought near a negatively charged pith ball electroscope. What conclusion would you draw about the charge on the rod if pith ball moves away from the rod ?O PositiveO NegativeO No chargeO Cant say

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The negatively charged rod attracts positive charges and repels negative charges when it is located closer to the electroscope.

What happens when a neutral pith ball is in close proximity to a negatively charged rod?

The pith balls' charges polarize when ever an electrified rod is introduced in close proximity to them. They may pick up this very same sign charge if they come into contact the with charged rod. The pith balls act like siblings and avoid touching one another because like charges repel one another.

What is the electroscope's conclusion?

We can infer from all of these statistics that charge induction, underlying atomic and molecular structure of something like the metal components, and the idea that an electroscope operates.

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the electric field lines on the left have twice the separation of those on the right. (a) If the magnitude of the field at A is 40 N/C, what is the magnitude of the force on a proton at A? (b) What is the magnitude of the field at B?

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This means that if the field lines are near together (i.e., the field line density is greater), it means that the magnitude of the field is large at that location. The cross-sectional field lines should be close together if the field is of small magnitude.

The intersection of two electric field lines: what does it mean?Lines in an electric field cannot intersect. If they did, they would be telling you that a charge at that place would have a force that points in two distinct directions, which is completely illogical. Equipotential lines cannot cross at different potentials either.This means that if the field lines are near together (i.e., the field line density is greater), it means that the magnitude of the field is large at that location. The cross-sectional field lines should be close together if the field is of small magnitude.The cross-sectional field lines should be close together if the field is of small magnitude.                      

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