A 40.0 kg beam is attached to a wall with a hi.nge and its far end is supported by a cable. The angle between the beam and the cable is 90°. If the beam is inclined at an angle of θ = 31.0° with respect to horizontal.
The horizontal component of the force exerted by the hi.nge on the beam = 8.662×101 N
What is the magnitude of the force that the beam exerts on the hi.nge?

A 40.0 Kg Beam Is Attached To A Wall With A Hi.nge And Its Far End Is Supported By A Cable. The Angle

Answers

Answer 1

The magnitude of the force that the beam exerts on the hi.nge will be,261.12N.

To find the answer, we need to know about the tension.

How to find the magnitude of the force that the beam exerts on the hi.nge?Let's draw the free body diagram of the system using the given data.From the diagram, we have to find the magnitude of the force that the beam exerts on the hi.nge.For that, it is given that the horizontal component of force is equal to the 86.62N, which is same as that of the horizontal component of normal reaction that exerts by the beam on the hi.nge.

                           [tex]N_x=86.62N[/tex]

We have to find the vertical component of normal reaction that exerts by the beam on the hi.nge. For this, we have to equate the total force in the vertical direction.

                           [tex]N_y=F_V=mg-Tsin59\\[/tex]

To find Ny, we need to find the tension T.For this, we can equate the net horizontal force.

                           [tex]F_H=N_x=Tcos59\\\\T=\frac{F_H}{cos59} =\frac{86.62}{0.51}= 169.84N[/tex]

Thus, the vertical component of normal reaction that exerts by the beam on the hi.nge become,

                    [tex]N_y= (40*9.8)-(169.8*sin59)=246.4N[/tex]

Thus, the magnitude of the force that the beam exerts on the hi.nge will be,

                 [tex]N=\sqrt{N_x^2+N_y^2} =\sqrt{(86.62)^2+(246.4)^2}=261.12N[/tex]

Thus, we can conclude that, the magnitude of the force that the beam exerts on the hi.nge is 261.12N.

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A 40.0 Kg Beam Is Attached To A Wall With A Hi.nge And Its Far End Is Supported By A Cable. The Angle
Answer 2

The hi.nge will be subjected to a force of 261.12N from the beam.

We must understand the tension in order to choose the solution.

How can the amount of force the beam applies on the height be determined?Let's use the provided information to create the system's free body diagram.We need to calculate the force the beam is exerting on the height using the diagram.For this, it is assumed that the horizontal component of force is 86.62N, the same as the horizontal component of the normal reaction that the beam exerts on the height.We need to identify the vertical component of the normal reaction the beam exerts on the height. We must equalize the total force acting in the vertical direction to achieve this.

                       [tex]N_y=F_v=mg-Tsin59[/tex]

Finding the tension T is necessary to determine Ny. Thus, we can use the net horizontal force to equate this.

                         [tex]F_H=N_x=Tcos59\\T=\frac{F_H}{cos59} =169.84N[/tex]

As a result, the normal reaction that the beam has on the height becomes, with a vertical component,

                  [tex]N_y=(40*9.8)-(169.84*sin59)=246.4N[/tex]

As a result, the force the beam applies on the height will be of the order of,

                        [tex]N=\sqrt{N_x^2+N_y^2} =261.12N[/tex]

Thus, we can infer that the force the beam applies to the height is 261.12N in size.

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A 40.0 Kg Beam Is Attached To A Wall With A Hi.nge And Its Far End Is Supported By A Cable. The Angle

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The bathroom is 100 meters away, and you can only walk at 2 m/s. How much time will it take you to reach the bathroom?

A: 200 sec
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Answers

Answer:

50 seconds.

Explanation:

See attached photo.

This question can be solved by simply setting up cross-multiplication and understanding metrics.

Given Information

• The bathroom is 100 meters away.

• One can only walk at 2 meters per second.

Set up the Cross-MultiplicationTo cross-multiply fractions, we multiply the numerator of the first fraction with the denominator of the second fraction and the numerator of the second fraction with the denominator of the first fraction.

• So essentially we can ask the question like this:

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1. To determine the torque about the axis of rotation on the left produced by force F1onB, we need to calculate the moment arm. The moment arm is the perpendicular distance from the axis of rotation to the line of action of the force. The moment arm for F1onB is 0.5 m, so the torque produced by F1onB is 600 Nm (F1onB x Moment Arm).

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Answers

Answer:

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Explanation:

no exceptions

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Answers

She does 818J work, which is the transfer of energy to or from an item by the application of force along a displacement.

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How can a simple fixed pulley make a job easier? (1 point)

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Answers

Answer:

A fixed pulley changes the direction of the force you exert by pulling, so you can pull down to move an object up.

Explanation:

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In the equation ω=ω0+αt, what does the time variable t represent? Choose the answer that is always true. Several of the statements may be true in a particular problem, but only one is always true. the moment in time at which the angular velocity equals ω0 the moment in time at which the angular velocity equals ω the time elapsed from when the angular velocity equals ω0 until the angular velocity equals ω

Answers

In the equation ω=ω0+αt, the time elapsed from when the angular velocity equals ω0 until the angular velocity equals ω.

Option C is correct.

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Angular velocity is a vector quantity and has both magnitude and direction. This direction is the same as the direction of angular displacement that defined the angular velocity.

What is angular velocity, give an example?

For example, a roulette ball on a roulette wheel, a racing car on a circular track, and a Ferris wheel are examples of angular velocity. Furthermore, the angular velocity of an object is the angular displacement of the object in time.

Question is incomplete . Missing options are:

In the equation ω=ω0+αt, what does the time variable t represent? Choose the answer that is always true. Several of the statements may be true in a particular problem, but only one is always true.

A. the moment in time at which the angular velocity equals ω0

B. the moment in time at which the angular velocity equals ω

C. the time elapsed from when the angular velocity equals ω0 until the angular velocity equals ω

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A laser produces a ray of blue light of wavelength 4.0 x 10-7m (0.000 00040m).
(a) (i) State the speed of light in a vacuum.
speed =

Answers

Answer:d

Explanation: lama lama

The speed of light in a vacuum is approximately 3× 10⁸ meters per second (m/s).

Light is a form of electromagnetic radiation that our eyes can detect. It is a fundamental phenomenon in physics and plays a crucial role in our understanding of the universe. Light consists of tiny packets of energy called photons that travel as waves. It exhibits both wave-like and particle-like properties, known as wave-particle duality.

Speed: In a vacuum, light travels at a constant speed of approximately

299,792,458 meters per second (  3× 10⁸ m/s).

Wavelength: Light has a property called wavelength, which is the distance between two consecutive peaks (or troughs) of a light wave. Different colors of light have different wavelengths.

Frequency: The frequency of light is the number of wave cycles that pass a point in one second. It is inversely proportional to the wavelength.

Spectrum: The electromagnetic spectrum includes a wide range of electromagnetic waves, with visible light forming only a small part of it. The spectrum includes radio waves, microwaves, infrared radiation, visible light, ultraviolet radiation, X-rays, and gamma rays.

Colors: Visible light is the portion of the electromagnetic spectrum that our eyes can perceive. It consists of different colors, each corresponding to a specific range of wavelengths. These colors include red, orange, yellow, green, blue, indigo, and violet.

Reflection and Refraction: Light can bounce off surfaces (reflection) or change direction when passing through different mediums (refraction).

Interference and Diffraction: Light waves can interfere with each other, leading to patterns of constructive and destructive interference. Diffraction is the bending of light waves as they encounter obstacles or pass through narrow openings.

Polarization: Light waves can also be polarized, meaning their oscillations occur in a particular plane. Polarized sunglasses, for example, can block certain orientations of light waves.

Quantum Nature: Light exhibits both wave-like and particle-like behavior. In certain situations, it behaves as discrete packets of energy called photons.

Propagation: Light can travel through a vacuum (empty space) as well as through various materials, though its speed may change depending on the medium.

Light has a profound impact on various fields, including physics, astronomy, biology, and technology. Our understanding of light and its properties has led to the development of lasers, fiber optics, cameras, telescopes, and countless other applications that shape modern society.

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How much charge must pass by a point in a wire in 10 s for the current inb the wire to be 0.50 A?
A) 5.0 C
B) 2.0 C
C) 0.050 C
D) 20 C

Answers

A) 5.0 C charge must pass by a point in a wire in 10 s for the current in the wire of 0.50 A current.

Current is the flow of electric charge per unit time. It is measured in amperes (A). The formula for current is:

I = Q / t

Where I is the current, Q is the charge, and t is the time.

In this case, the current is given as 0.50 A, and the time is given as 10 s. To find the charge that must pass by a point in a wire, we can rearrange the formula:

Q = I * t

Therefore, Q = 0.50 A * 10 s = 5.0 C

So, the charge that must pass by a point in a wire in 10 seconds for the current in the wire to be 0.50 A is 5.0 C.

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To perform this maneuver, the dancer relies on the fact that the position of her center of gravity
A. Is near the center of the torso.
B. Is determined by the positions of her arms and legs.
C. Moves in a horizontal path.
D. Is outside of her body.

Answers

option (B) is correct answer.

What is acceleration due to gravity ?

Gravitational acceleration is the acceleration experienced by an object due to gravity. Its SI unit is m/s2. It is vector magnitude because it has both magnitude and direction.  The standard value of g on the surface of the earth at 0m above sea level is 9.8m/s2. Suppose an object [test mass (m)] is moved from a height "h" above the ground [source mass (M)], and as it approaches the ground it begins to move downwards, increasing its velocity. We know that the velocity of an object changes only under the action of a force. In this case the force is provided by gravity.

Under the action of gravity, the object begins to accelerate towards the center of the earth. The center of the Earth is at a distance "r" from the test mass. Then ma = GMm/r2 (applies the equivalence principle)

⇒ a = GM/r2 . . . . . . (1)

The above acceleration is due to the earth's gravitational pull, so we call it the gravitational acceleration and it does not depend on the test mass. The value near the ground is 9.8 ms-2. Therefore the acceleration due to gravity (g) is given by = GM/r2.

The dancer relies the position of center  center of gravity is determined by the Positions of her arms and legs.

Hence option (B) is correct answer.

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How is the work energy theorem represented as an equation?

Answers

Answer:

Trabajo = Δ E

Explanation:

Podemos escribir esta declaración como una ecuación que hace que sea muy fácil ver la relación: Trabajo = Δ E, donde E es energía, y la letra griega Delta significa ‘cambio en’. Entonces leemos esto como: trabajo = cambio de energía. Esto nos ayuda a comprender por qué no se realiza ningún trabajo en una pared que no se mueve.

The work- energy theorem states that the work done by the sum of  forces acting on an object is  equal to  the change in the kinetic energy of the object.

What is work energy theorem ?

According to work -energy theorem, the force resulting in a work done which is equal to the change in kinetic energy of the object. When a force applied on a body results in a displacement of the body, it is said to be work done on the body.

Kinetic energy of an object is the energy generated by virtue of its motion. It related to the mass and velocity as written below:

Ke  = 1/2 mv²

Let, Vi be the initial velocity and Vf be the final velocity, then the change in kinetic energy is written as:

ΔKe =  1/2 mVf² -  1/2 mVi²

According to wok energy theorem, the work done is equal to the this kinetic energy change.

Hence, W = ΔKe.

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Calculate the energy needed to change 10 grams of water from 70°C to 110°C. 5.7 kcal 350 kcal 0.35 kcal 5700 kcal

Answers

The energy needed for change 10 grams of water is 5.7.

What is Energy ?

Energy is the ability to perform work in physics. It could exist in several different forms, such as potential, kinetic, thermal, electrical, chemical, radioactive, etc.

Energy is always assigned based on its nature once it has been transmitted. Thus, heat transmitted may manifest as thermal energy while work performed may result in mechanical energy.

Motion is a property of all energy types. For instance, if a body is moving, it possesses kinetic energy. Even while at rest, a tensioned object like a spring or bow has the ability to move; this is because of its design, which includes potential energy.

Therefore, The energy needed for change 10 grams of water is 5.7.

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how far will a rolling wheel travel if it completed 32 revolutions with a radius of 0.8 meters?

Answers

Answer: The wheel will travel 102.72 meters if it completes 32 revolutions with a radius of 0.8 meters. ✅

Explanation:

A rolling wheel will travel a certain distance when it completes a certain number of revolutions. To calculate the distance, you need to know the number of revolutions and the radius of the wheel.

In this case, the wheel completed 32 revolutions and the radius is 0.8 meters. To calculate the distance, we will use the formula:

Distance = 2 * pi * radius * number of revolutions

So the distance this wheel will travel is:

Distance = 2 * 3.14 * 0.8 * 32

Distance = 102.72 meters

So the wheel will travel 102.72 meters if it completes 32 revolutions with a radius of 0.8 meters.

The diagram shows a car and a van, just before and just after the car collided with
the van.
Mass = 1200 kg
v = 10 m/s
(1)
Mass=3200 kg
v=0m/s
BAPTI
v=2m/s
After collision
Use the information in the diagram to calculate the change in the momentum
of the car.
Show clearly how you work out your answer and give the unit.
Before collision
Change in momentum =
(3)

Answers

Change in momentum before collision 12000Kgm/s and velocity of van after collision is 3m/s.

What is momentum conservation and how does it work?

According to the rule of conservation of momentum, absent an external force, the combined momentum of two or more bodies operating upon one another in an isolated system remains constant. As a result, momentum cannot be gained or lost. According to the principle of momentum conservation, momentum is only modified by the action of forces as they are outlined by Newton's equations of motion; momentum is never created nor destroyed inside a problem domain.

Momentum before collision=> mava + mbvb

                                             => (1200 x 10) + (3200 x 0)

                                             => 12000Kgm/s

Momentum after collision => 2400 + 3200 v(after)

       Law of conservation of momentum

    12000 = 2400 - 3200 v (after)

=> Velocity after collision acquired by van = (12000-2400)/3200

                                                                     => 3m/s

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when [s] = 5 km, what percentage (%) of vmax has been reached?

Answers

The percentage of the ratio of Vo/ Vmax is 83%

The [s] given has 5 km

The Vmax can be found using the Michaelis-Menten equation,

                     Vo / Vmax = [s] / km + [s]

where Vo is the initial velocity

           Vmax is the maximum velocity

The Michaelis-Menten equation can be rewritten as V = Kcat [enzyme] [S] / (Km + [S]). Kcat is equal to K2 and measures the number of substrate molecules that the enzyme "turns over" per second. The unit of Kcat is 1/sec.

Let us substitute the known values in the above equation, we get

                     Vo / Vmax = 5 km / km + 5km

                                        = 5 km / 6 km

                                        = 0.833 x 100

                                        = 83.3 %

Therefore, the percentage of Vo/Vmax is 83.3 %

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The full question is

when [s] = 5 km, what percentage (%) of Vo/Vmax has been reached?

                 

         

The weather conditions on Mars today are much different than they were in the distant past.
True or False

Answers

Mars has transitioned from having an early, warm, wet environment to its current state as a cold, dry planet with a thin atmosphere, so yes true

A 2000-horsepower electric railroad locomotive gets its power from an overhead wire with 0.25 ohm/km. The potential difference between wire and track is 10 kV. Current returns through the track, whose resistance is negligible. How much current does the locomotive draw? How far from the power plant can the train go before 1% of the energy is lost in the wire?

Answers

The locomotive draws a current of 40,000 amps.The train can go 5,000  km before 1% of the energy is lost in the wire.

What is energy ?

Energy is the ability to do work.  It can be used to power machines and other devices, generate electricity, or heat and light our homes. Energy is also a measure of how much work can be done in a given time. It is measured in Joules (J).

The current drawn by the locomotive is given by I = V/R.

where V is the potential difference between the wire and track and R is the resistance of the wire (in this case 0.25 ohms/km).

Therefore, the current drawn by the locomotive is

I = 10,000 V/0.25 ohms/km = 40,000 A

The distance from the power plant at which 1% of the energy is lost in the wire is given by d = R*I²/2V

where R is the resistance of the wire, I is the current drawn by the locomotive, and V is the potential difference between the wire and track. Therefore, the distance from the power plant at which 1% of the energy is lost in the wire is

d = 0.25 ohms/km * (40,000 A)²/2 * 10,000 V = 5,000 km

This means that the locomotive can travel up to 5,000 km from the power plant before 1% of the energy is lost in the wire.

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A wrench is used to apply a torque to a bolt. Forces F1 through F6 all have the same magnitude. The point of application of force Fi (and F) is a distance d from the center of rotation of the bolt. The application points of Fı, F2, and F3 are all distance d apart, as shown. Use the convention that counter-clockwise torques are positive; clockwise torques are negative.
Part (a) Which of the labeled forces will apply the largest magnitude torque on the bolt? O All forces apply the same torque. O F1 O F4 O F3
O F2 O F5
O F6

Answers

On the bolt, F2 force will exert the most torque. Torquing a bolt involves using a wrench. There is no difference in the magnitude of forces F1 through F6.

Vector and scalar quantities both use magnitude as a common denominator. Scalar quantities are understood to be those that have only magnitude, according to their definition. Vector quantities, on the other hand, are those that have both magnitude and direction. Magnitude can be used in a number of different contexts.

where the force is being applied From the bolt's centre of rotation, Fi (and F) are separated by a distance of d. Moment of force equals torque (Rotational domain equivalent of Force)

t1 = (d)(Fcos(theta))=0.86dF

t2 = (2d)(f) = 2dF

t3=(3d)(F)(cos(theta) = 1.5dF

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The element shown in Figure P1.24 I has v (t) = 10 V and i (t) = 2e A. Compute the power for the circuit
element. Find the energy transferred between t= 0 and 1= [infinity] Is this energy absorbed by the elementor
supplied by it

Answers

This question focuses on the element shown in Figure P1.24 I, with a voltage of 10 V and current of 2e A.

The goal is to calculate the power of the circuit element and the total energy transferred between t= 0 and t= [infinity]. To determine if this energy is absorbed or supplied by the element, calculations must be done. First, the power of the circuit element can be calculated by multiplying the voltage and current together.

This yields a power of 20e W. Next, the energy transferred between t= 0 and t= [infinity] can be found by integrating the power over that time interval. This yields an energy of 20e Joules. Finally, to determine if the energy is absorbed or supplied by the element, the sign of the power must be checked. In this case, the power is positive, so the element is supplying the energy.

how many electrons are in a +3 cation with an atomic number of 13?

Answers

Aluminum has an atomic number of 13. This implies that the Al3+ ion contains the same number of electrons as (13-3 = 10) electrons.

A cation is a positively charged ion, to be more precise. An atom must lose an electron in order to become positively charged. The electronic configurations of an element with atomic number 13 are 2, 8, and 3. Thus, the atom of this element has three electrons in its valence shell. This atom has the valence M. The second element in the periodic table's thirteenth column is aluminum. It is categorized as a "poor metal" and a post-transition metal. 13 protons and 13 electrons make up an aluminum atom. The outer shell has three valence electrons.

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