A lump of clay (m = 3.01 kg) is thrown towards a wall at speed v = 3.15 m/s. The lump sticks to the wall. (a) What kind of collision is it?

Answers

Answer 1

The collision is an inelastic collision because the lump of clay sticks to the wall after the collision.

In an inelastic collision, the objects collide and stick together, and some kinetic energy is lost.

In this case, the kinetic energy of the lump of clay before the collision is converted into potential energy and deformation energy in the lump of clay and the wall after the collision, causing them to stick together.

In contrast, in an elastic collision, the objects collide, bounce off each other, and have no deformation.

In an elastic collision, the kinetic energy is conserved, so the sum of the kinetic energies of the objects before the collision is equal to the sum of the kinetic energies after the collision.

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Related Questions

Which image illustrates why someone's voice can be heard by a listener
standing around the corner?
A. A
B. B
C. C
D. D

Answers

Answer:

I believe it is C but I could be wrong

Explanation:

From the picture it shows the eco/voice coming from room to room. I hope this helped have a wonderful day or night!

a free electron in a uniform magnetic field of 3.84 t flips its orientation from parallel to the magnetic field to anti-parallel. how much energy is associated with the change?

Answers

The energy associated with the change of orientation of a free electron in a 3.84 T magnetic field is [tex]2.92 × 10^-24 J.[/tex]

The energy associated with flipping the orientation of a free electron in a magnetic field is given by [tex]ΔE = gμBΔmB[/tex] , where g is the electron's g-factor, μB is the Bohr magneton, Δm is the change in the electron's magnetic quantum number, and B is the magnetic field strength. For an electron flipping its orientation from parallel to anti-parallel in a 3.84 T magnetic field, [tex]Δm = 1 and g = 2.0023.[/tex]  Plugging in these values, we get [tex]ΔE = 2.92 × 10^-24 J.[/tex]

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A car battery with a 12-V emf and an internal resistance of 0.050 Ω is being charged with a current of 60 A. Note that in this process the battery is being charged. (a) What is the potential difference across its terminals? (b) At what rate is thermal energy being dissipated in the battery? (c) At what rate is electric energy being converted to chemical energy? (d) What are the answers to (a) and (b) when the battery is used to supply 60 A to the starter motor?

Answers

The rate of thermal energy dissipation in the battery can be found using the formula P = I² * r, where P is the power, I is the current (60 A), and r is the internal resistance (0.050 Ω). So, P = (60)² * 0.050 = 3600 * 0.050 = 180 W.  The potential difference will be V = emf + I * r = 12 + (60 * 0.050) = 12 + 3 = 15 V.    (a) The rate of thermal energy dissipation remains the same as in (b), which is 180 W

(a) The potential difference across the terminals can be found using Ohm's Law: V = emf - IR, where V is the potential difference, emf is the electromotive force of the battery, I is the current flowing through the battery, and R is the internal resistance of the battery. Plugging in the given values, we get V = 12 V - (60 A)(0.050 Ω) = 9 V.

(b) The rate at which thermal energy is being dissipated in the battery can be found using the formula: P = I^2R, where P is the power dissipated as thermal energy. Plugging in the given values, we get P = (60 A)^2(0.050 Ω) = 180 W.

(c) The rate at which electric energy is being converted to chemical energy can be found using the formula: P = VI, where P is the power used to charge the battery. Plugging in the given values, we get P = (12 V)(60 A) = 720 W.

(d) When the battery is used to supply 60 A to the starter motor, the potential difference across the terminals will be the same as in part (a), which is 9 V. The rate at which thermal energy is being dissipated in the battery can be found using the same formula as in part (b), since the internal resistance of the battery is the same. Plugging in the given values, we get P = (60 A)^2(0.050 Ω) = 180 W.

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The sojourner rover vehicle was used to explore the surface of marsas part of the pathfinder mission in 1997. Use the data inthe tables below to answer the questions that follow.
MarsData Sojourner Data
Radius: 0.53 x earth'sradius Mass of Sojourner vehicle: 11.5kg
Mass: 0.11 x earth'smass Wheel Diameter: 0.13m
Stored Energy Available: 5.4 x105 J
Power required for driving under average conditions: 10 W
Land speed: 6.7 x 10-3m/s
a)Determine the acceleration due to gravity at the surface of Marsin terms of g, the acceleration due to gravity at the surface ofEarth.
b) Calculate the Sojourner's weight on the surface of Mars.
c)Assume that when leaving the Pathfinder Spacecraft Sojournerrolls down a ramp inclined at 20 degrees to the horizontal. The ramp must be lightweight but strong enough to supportSojourner. Calculate the minimum normal force that must bsupplied by the ramp.
d)What is the net force on the Sojourner as it travels across theMartian surface at a constant Velocity? Justify youranswer.
e)Determine the maximum distance that sojourner can travel on ahorizontal Martian Surface using its stored energy.
f)Suppose that 0.010% of the power for driving is expended againstatmospheric drag as Sojourner travels on the Martian surface. Calculate the magnitude of the Drag force.

Answers

a) The acceleration due to gravity at the surface of Mars is 0.38 times the acceleration due to gravity at the surface of Earth.

b) The weight of the Sojourner on the surface of Mars is 4.37 N.

c) The minimum normal force that must be supplied by the ramp is 43.4 N.

a) The acceleration due to gravity at the surface of Mars in terms of g can be calculated using the formula:

g = G * M / r^2

where G is the gravitational constant, M is the mass of Mars, and r is the radius of Mars. Using the given data, we have:

Radius of Mars = 0.53 x Radius of Earth

Mass of Mars = 0.11 x Mass of Earth

Substituting these values into the formula, we get:

g = G * (0.11 x Mass of Earth) / (0.53 x Radius of Earth)^2

g = 0.38 g

Therefore, the acceleration due to gravity at the surface of Mars is 0.38 times the acceleration due to gravity at the surface of Earth.

b) The weight of the Sojourner on the surface of Mars can be calculated using the formula:

Weight = Mass * g

where Mass is the mass of the Sojourner and g is the acceleration due to gravity at the surface of Mars. Substituting the given values, we get:

Weight = 11.5 kg * 0.38 g

Weight = 4.37 N

Therefore, the weight of the Sojourner on the surface of Mars is 4.37 N.

c) The minimum normal force that must be supplied by the ramp can be calculated using the formula:

N = mg / cos(theta)

where m is the mass of the Sojourner, g is the acceleration due to gravity at the surface of Mars, and theta is the angle of inclination of the ramp. Substituting the given values, we get:

N = 11.5 kg * 0.38 g / cos(20 degrees)

N = 43.4 N

Therefore, the minimum normal force that must be supplied by the ramp is 43.4 N.

d) If the Sojourner is traveling at a constant velocity on the Martian surface, the net force on it must be zero, since there is no acceleration. Therefore, the driving force must be balanced by the resistive forces, such as friction and atmospheric drag.

e) The maximum distance that the Sojourner can travel on a horizontal Martian surface using its stored energy can be calculated using the formula:

Distance = Energy Available / Power Required

Substituting the given values, we get:

Distance = 5.4 x 10^5 J / 10 W

Distance = 54000 m

Therefore, the maximum distance that the Sojourner can travel on a horizontal Martian surface using its stored energy is 54000 meters.

f) The magnitude of the drag force can be calculated using the formula:

Drag Force = 0.0001 * Power Required

Substituting the given values, we get:

Drag Force = 0.0001 * 10 W

Drag Force = 0.001 N

Therefore, the magnitude of the drag force is 0.001 N.

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if you lift a 5.0 kg box straight up at a constant speed through a displacement of 2.0 , the total work done on the box is

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If you lift a 5.0 kg box straight up while maintaining a steady speed, you will move it 2.0 displacements. The box has undergone a total of 49.05 Joules of labour.

The force applied to the box is equal to its weight, which is given by:

F = mg

W = Fd cosθ = (mg)(d)(cos 0°)

Since the box is lifted straight up, the angle between the force and the displacement is 0°, so cos 0° = 1.

Substituting the values, we get:

[tex]W = (5 kg)(9.81 m/s^2)(1 m)(1)[/tex]= 49.05 J

Displacement refers to the movement of an object or person from one position to another. This can be a change in location, direction, or orientation. Displacements can occur in many different contexts, such as in physics, geography, or social situations. In physics, displacement is often used to describe the distance and direction of an object's movement from its starting point.

In geography, displacement is often used to describe the forced movement of people from their homes or communities due to conflict, natural disasters, or other factors. This can have significant impacts on the lives and well-being of those affected. In social situations, displacement can refer to the transfer of emotions or behaviors from one situation to another.

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Complete Question:-

If you lift a box f mass 5kg straight up at constant speed through a displacement of 1 m, the total work done on the box is?

what is the force of friction that must be overcome if i push with 20N force down on the box at a 45 degree angle to horizontal. ( the box weights 10kg and the coefficient of friction is .23)

Answers

The force of friction that must be overcome if i push with 20N force down on the box at a 45 degree angle is 19.29 N.

To determine the force of friction that must be overcome, we need to first calculate the normal force and the horizontal pushing force. Since you're pushing down at a 45-degree angle, we can use trigonometry to split the applied force into its horizontal and vertical components.
Given:
Applied force (F) = 20 N
Angle (θ) = 45 degrees
Box weight (W) = 10 kg
Coefficient of friction (µ) = 0.23
First, we find the horizontal and vertical components of the applied force:
Horizontal component (Fx) = F * cos(θ) = 20 * cos(45) ≈ 14.14 N
Vertical component (Fy) = F * sin(θ) = 20 * sin(45) ≈ 14.14 N
Next, we calculate the gravitational force acting on the box:
Gravitational force (Fg) = mass * gravity = 10 kg * 9.8 m/s² = 98 N
Now, we find the net normal force (Fn):
Fn = Fg - Fy = 98 N - 14.14 N ≈ 83.86 N
Finally, we determine the force of friction (Ff):
Ff = µ * Fn = 0.23 * 83.86 N ≈ 19.29 N
So, the force of friction that must be overcome is approximately 19.29 N.

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The force of friction that must be overcome if i push with 20N force down on the box at a 45 degree angle is 19.29 N.

To determine the force of friction that must be overcome, we need to first calculate the normal force and the horizontal pushing force. Since you're pushing down at a 45-degree angle, we can use trigonometry to split the applied force into its horizontal and vertical components.
Given:
Applied force (F) = 20 N
Angle (θ) = 45 degrees
Box weight (W) = 10 kg
Coefficient of friction (µ) = 0.23
First, we find the horizontal and vertical components of the applied force:
Horizontal component (Fx) = F * cos(θ) = 20 * cos(45) ≈ 14.14 N
Vertical component (Fy) = F * sin(θ) = 20 * sin(45) ≈ 14.14 N
Next, we calculate the gravitational force acting on the box:
Gravitational force (Fg) = mass * gravity = 10 kg * 9.8 m/s² = 98 N
Now, we find the net normal force (Fn):
Fn = Fg - Fy = 98 N - 14.14 N ≈ 83.86 N
Finally, we determine the force of friction (Ff):
Ff = µ * Fn = 0.23 * 83.86 N ≈ 19.29 N
So, the force of friction that must be overcome is approximately 19.29 N.

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determine the final temperature when air is expanded isentropically from 1000 kpa and 477°c to 100 kpa in a piston–cylinder device

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The final temperature of air is approximately 198.6°C when it is expanded isentropically from 1000 kPa and 477°C to 100 kPa in a piston-cylinder device.

The final temperature when air is expanded isentropically from 1000 kPa and 477°C to 100 kPa in a piston-cylinder device can be determined using the ideal gas law and the isentropic process equation. The final temperature is approximately 198.6°C.

Initial pressure, P1 = 1000 kPa

Initial temperature, T1 = 477°C

Final pressure, P2 = 100 kPa

Assuming isentropic process, we have:

P1^(γ) / T1 = P2^(γ) / T2

where γ = Cp / Cv is the ratio of specific heats.

For air, Cp = 1.005 kJ/kgK and Cv = 0.718 kJ/kgK at room temperature.

Solving for T2, we get:

T2 = T1 * (P2 / P1)^(γ-1)

Substituting the given values, we get:

T2 = 477 + 273.15 * (100 / 1000)^(1.4-1)

T2 = 471.75 K or 198.6°C (approximately)

Therefore, the final temperature of air is approximately 198.6°C when it is expanded isentropically from 1000 kPa and 477°C to 100 kPa in a piston-cylinder device.

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a space probe enters the thin atmosphere of a planet where the speed of sound is only about 44 m/s . part a what is the probe's mach number if its initial speed is 15,000 km/h?

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The probe's Mach number of its initial speed is 15,000 km/h is 94.7.

To calculate the probe's Mach number when its initial speed is 15,000 km/h and the speed of sound on the planet is 44 m/s, we first need to convert the probe's speed to meters per second (m/s).

1 km/h = 1000 m / 3600 s

15,000 km/h = 15,000 * (1000/3600) m/s

= 4166.67 m/s

Now we can find the Mach number:

Mach number = Probe's speed / Speed of sound

Mach number = 4166.67 m/s / 44 m/s

= 94.7

So, the probe's Mach number is 94.7 when its initial speed is 15,000 km/h in the thin atmosphere of the planet where the speed of sound is 44 m/s.

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Calculate the speed of an 6x10^4 kg airliner with kinetic energy of 2x10^9 J.

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Answer: The speed of the airliner is approximately 258.2 m/s.

Explanation: We can use the formula for kinetic energy:

K.E. = 1/2mv^2

where K.E. is the kinetic energy, m is the mass, and v is the velocity (speed).

Rearranging the formula to solve for v, we get:

v = sqrt(2K.E./m)

Substituting the given values, we get:

v = sqrt(2(2x10^9 J)/(6x10^4 kg))

v = sqrt(66666.67 m^2/s^2)

v ≈ 258.2 m/s

The temperature of a 10 m long metal bar is 15 degrees C at one end and 30 degrees C at the other end. Assuming that the temperature increases linearly from the cooler end to the hotter end, what is the average temperature of the bar?

Answers

The average temperature of the bar would be (15+30)/2 = 22.5 degrees C. To calculate the average temperature, temperature readings are taken at regular intervals, such as hourly or daily, and then the sum of all the readings is divided by the total number of readings taken.

The average temperature of the bar can be found by taking the average of the temperatures at the two ends.  
The temperature of a 10 m long metal bar increases linearly from 15 degrees C at the cooler end to 30 degrees C at the hotter end. To find the average temperature, simply calculate the midpoint between the two temperatures.

Average temperature = (15 + 30) / 2 = 45 / 2 = 22.5 degrees C
The average temperature of the bar is 22.5 degrees C.

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A 2 kg object moving 3m/s strikes a 1 kg object initially at rest. Immediately after the collision the 2 kg object has a velocity of 1.5m/s directed 60 degrees from its initial direction. What is the x component of the 1kg object just after the collision

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The x-component of the 1 kg object's velocity just after the collision is 4.5 m/s.

To find the x-component of the 1 kg object's velocity just after the collision, we will use the conservation of momentum principle. Here's a step-by-step explanation:

1. Calculate the initial momentum of the 2 kg object:

p1_initial = m1 * v1_initial = 2 kg * 3 m/s = 6 kg*m/s.

2. Calculate the final momentum of the 2 kg object:

p1_final = m1 * v1_final = 2 kg * 1.5 m/s = 3 kg*m/s.

3. Find the x-component of the final momentum of the 2 kg object using the angle given:

p1_final_x = p1_final * cos(60°) = 3 kg*m/s * 0.5 = 1.5 kg*m/s.

4. Apply the conservation of momentum principle in the x-direction:

p1_initial_x = p1_final_x + p2_final_x.

Since the 1 kg object is initially at rest, its initial x-component of momentum is zero.

5. Calculate the x-component of the final momentum of the 1 kg object:

p2_final_x = p1_initial_x - p1_final_x = 6 kg*m/s - 1.5 kg*m/s = 4.5 kg*m/s.

6. Finally, find the x-component of the 1 kg object's velocity just after the collision:

v2_final_x = p2_final_x / m2 = 4.5 kg*m/s / 1 kg = 4.5 m/s.

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Sam, whose mass is 70 kg, straps on his skis and starts down a 52 m -high, 20∘ frictionless slope. A strong headwind exerts a horizontal force of 200 N on him as he skies.a. Use work and energy to find Sam's speed at the bottom.b. Express your answer to two significant figures and include the appropriate units.

Answers

Rounding to two significant figures and including the appropriate units, we get: v = 32 m/s

(a) The top of the slope, Sam has only potential energy, which is given by: Ep = mgh

m is his mass, g is the acceleration due to gravity, and h is the height of the slope. Substituting the given values, we get:

Ep = [tex](70 kg)(9.81 m/s^2)(52 m)[/tex]= 35,938.4 J

At the bottom of the slope, all of Sam's potential energy is converted into kinetic energy, which is given by:

Ek =[tex](1/2)mv^2[/tex]

where v is his speed. Equating Ep and Ek, we get:

[tex](1/2)mv^2 = mgh[/tex]

Simplifying and solving for v, we get:

v = √(2gh)

Substituting the given values, we get:

v = [tex]\sqrt{(2(9.81 m/s^2)(52 m)) } = 32.2 m/s}[/tex]

The headwind does not affect Sam's potential energy or the work done by gravity, so we can ignore it in this calculation.

(b) Rounding to two significant figures and including the appropriate units, we get: v = 32 m/s

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The uniform L-shaped bar pivots freely at point P of the slider, which moves along the horizontal rod. Determine the steady- state value of the angle theta if (a) a=0 (b) a = g/2. For what value of a would the steady-state value of theta be zero?

Answers

The steady- state value of the angle theta if a) the steady-state value of the angle θ will be 0° in this case, b) the steady-state value of the angle θ in this case will be 90°.

What is angle?

Angle is a geometric concept that describes the relationship between two lines or planes intersecting at a common point. It is measured in degrees and is used in mathematics to define the size, shape, and orientation of objects in space.

a) For a=0: The steady-state value of the angle θ will be 0° in this case. This is because there is no external force (a) acting on the bar, so it will remain in its equilibrium position.

b) For a=g/2: The steady-state value of the angle θ in this case will be 90°. This is because the external force (a) acting on the bar is equal to half of the gravitational force (g) so the bar will pivot and come to a rest in a vertical position.

The value of a for which the steady-state value of theta will be zero is a=0. This is because when there is no external force (a) acting on the bar, it will remain in its equilibrium position.

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which flight conditions of a large jet airplane create the most severe flight hazard by generating wingtip vortices of the greatest strength?

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The most severe flight hazard caused by wingtip vortices of the greatest strength in a large jet airplane typically occurs during low-speed, high-angle of attack conditions, such as during takeoff and landing.

In these situations, the airplane generates a large amount of lift, which in turn produces strong wingtip vortices, potentially posing a risk to nearby aircraft.
One of the key factors that determines the strength of wingtip vortices is the weight of the aircraft. Heavier planes tend to create stronger vortices, which can be particularly hazardous during takeoff and landing when other aircraft may be in close proximity.
Another important factor is the speed of the aircraft. When planes are flying at low speeds, such as during takeoff or landing, the vortices tend to be more intense and longer-lasting than at higher speeds.
Finally, weather conditions can also play a role in the severity of wingtip vortices.

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Assuming that the resistance of your hair dryer obeys Ohm's Law, what would happen to its power output if you plug it into a 240-V outlet in Europe if it is designed to be used in the 120-V outlets of the United States?

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If you plug your hair dryer with resistance obeying Ohm's law into a 240-V outlet in Europe when it's designed for 120-V outlets in the United States, its power output would increase by a factor of 4, which could potentially damage the hair dryer or cause it to malfunction.

Assuming that the resistance of your hair dryer obeys Ohm's Law, if you plug it into a 240-V outlet in Europe while it's designed for 120-V outlets in the United States, the power output would increase.

1. Ohm's Law states that Voltage (V) = Current (I) x Resistance (R). In this case, the resistance (R) of your hair dryer remains constant.
2. The original voltage designed for the hair dryer is 120 V. Let's call the original current I1. So, 120 = I1 x R.
3. When you plug the hair dryer into a 240-V outlet, the voltage doubles. Let's call the new current I2. So, 240 = I2 x R.
4. From steps 2 and 3, we can deduce that I2 = 2 x I1 since the voltage doubled.
5. The power output (P) can be calculated as P = V x I. The original power output is P1 = 120 x I1, and the new power output is P2 = 240 x I2.
6. Substituting I2 = 2 x I1 into the equation for P2, we get P2 = 240 x (2 x I1) = 480 x I1.
7. Comparing P1 and P2, we can see that P2 = 4 x P1.

So, if you plug your hair dryer into a 240-V outlet in Europe when it's designed for 120-V outlets in the United States, its power output would increase by a factor of 4, which could potentially damage the hair dryer or cause it to malfunction.

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A dental x-ray typically affects 185 g of tissue and delivers about 4.15 μJ of energy using x-rays that have wavelengths of 0.0305 nm. What is the energy (in electron volts) of a single photon of these x-rays? How many photons are absorbed during the dental x-ray?

Answers

Energy : 3.99keV and Number of photons : 6.47 * 10^9.

We can use the equation E = hc/λ

λ = 0.0305 nm = 0.0305 x 10^-9 m

E = hc/λ = (6.626 x 10^-34 J s)(2.998 x 10^8 m/s)/(0.0305 x 10^-9 m) = 6.41 x 10^-16 J

1 eV = 1.602 x 10^-19 J

E = 6.41 x 10^-16 J x (1 eV/1.602 x 10^-19 J) = 3.99 keV

Therefore, the energy of a single photon of these x-rays is 3.99 keV.

To determine the number of photons absorbed during the dental x-ray, we can use the formula:

number of photons = energy of x-ray / energy of a single photon

4.15 μJ = 4.15 x 10^-6 J

number of photons = 4.15 x 10^-6 J / 6.41 x 10^-16 J = 6.47 x 10^9 photons

Therefore, about 6.47 x 10^9 photons are absorbed during the dental x-ray.

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a driver changes a flat tire with a tire iron 50.0 cm long. she exerts a force of 53.0 n. how much torque does she produce?

Answers

The driver produces a torque of 26.5 N-m while changing the flat tire using a tire iron 50.0 cm long and exerting a force of 53.0 N.

To calculate the torque produced by the driver when changing a flat tire using a tire iron 50.0 cm long and exerting a force of 53.0 N, you can follow these steps:

Step 1: Convert the length of the tire iron from centimeters to meters.
1 meter = 100 centimeters
50.0 cm = 50.0 / 100 = 0.5 meters

Step 2: Determine the angle between the force applied and the tire iron. Since the driver is applying the force perpendicularly to the tire iron, the angle is 90 degrees.

Step 3: Calculate the torque.
Torque (τ) = Force (F) × Distance (d) × sin(θ)
where θ is the angle between the force and the tire iron.

Step 4: Plug in the values.
τ = 53.0 N × 0.5 meters × sin(90°)

Step 5: Calculate sin(90°).
sin(90°) = 1

Step 6: Multiply the values.
τ = 53.0 N × 0.5 meters × 1
τ = 26.5 N-m

The driver produces a torque of 26.5 N-m while changing the flat tire using a tire iron 50.0 cm long and exerting a force of 53.0 N.

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Determine the length b of the triangular load and its position a on the beam such that the equivalent result force is zero and the resultant couple moment is 8 kNm clockwise

Answers

The length of the triangular load is 4.57 m and its position on the beam is 2.59 m from the left end, such that the equivalent result force is zero and the resultant couple moment is 8 kNm clockwise.

According to this principle, the sum of the moments of all the forces acting on a body is equal to the moment of the resultant force. In this case, we want to find the position and length of the triangular load such that the equivalent result force is zero and the resultant couple moment is 8 kNm clockwise.

First, we need to draw a free-body diagram of the beam with the triangular load. We can assume that the triangular load acts at a distance of a from the left end of the beam, and has a length of b. We can also assume that the weight of the beam is negligible.

Next, we can write down the moment equations for the beam. Taking moments about the left end of the beam, we have: Ma - (1/2)(b)(w)(a + (1/3)b) = -8 kNm where Ma is the moment due to any other forces acting on the beam, w is the weight of the load per unit length, and (1/2)(b)(w)(a + (1/3)b) is the moment due to the triangular load.

Since we want the equivalent result force to be zero, we can set the sum of the forces acting on the beam to zero. This gives us: [tex]w(b/2)(a + (2/3)b) = w(b/2)(b/3) = Ma[/tex]

Therefore, we can substitute Ma in the moment equation to get:

[tex]w(b/2)(a + (2/3)b) - (1/2)(b)(w)(a + (1/3)b) = -8 kNm[/tex] Solving for b and a, we get: b = 4.57 m and a = 2.59 m

Therefore, the length of the triangular load is 4.57 m and its position on the beam is 2.59 m from the left end.

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Find the rotation period of the asteroid by multiplying the time between successive minima by two. Remember, the entire light curve consists of two maxima and two minima.Period (in days)______

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The rotation period of the asteroid

Period (in days) = Time between successive minima × 2 of light curve

To find the rotation period of the asteroid using the given information, you need to follow these steps:

1. Identify the time between successive minima in the light curve.
2. Multiply the time between successive minima by two.

The rotation period of the asteroid will then be calculated as follows:

Period (in days) = Time between successive minima × 2

Make sure to use the specific data from your light curve to plug into the formula, and you will get the rotation period of the asteroid in days.

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in method of joints, the moment equilibrium equation cannot be used at a joint to solve for unknown member forces. True or false

Answers

False,

In the method of joints, the moment equilibrium equation can be used at a joint to solve for unknown member forces. However, the method primarily relies on the force equilibrium equations at each joint to determine the unknown member forces.



In the method of joints, the moment equilibrium equation can be used at a joint to solve for unknown member forces, but it is not always necessary to use it. The moment equilibrium equation states that the sum of the moments about a point must be equal to zero, which can be used to determine the unknown forces acting on members that are subject to bending moments.

However, it is important to note that the method of joints primarily makes use of the force equilibrium equations at each joint to determine the unknown member forces. The moment equilibrium equation is only used when necessary to solve for an unknown force.

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consider a case where the wave speed decreases from c to 0.86 c . by what factor does the wavelength change?

Answers

The wavelength changes by a factor of 0.86, or 86%.

What is Wavelength?

Wavelength refers to the distance between two consecutive points on a wave that are in phase, or in other words, the distance between two similar points on a wave that are at the same point in their cycle. It is commonly denoted by the symbol "λ" (lambda) and is typically measured in meters (m) or other units of length.

If the wave speed decreases from c to 0.86c, we can use the formula for the wavelength of a wave to calculate the change in wavelength. The formula is:

λ' = λ * (v' / v)

where λ' is the new wavelength, λ is the original wavelength, v' is the new wave speed, and v is the original wave speed.

Plugging in the given values:

λ' = λ * (0.86c / c)

Simplifying:

λ' = λ * 0.86

The wavelength of a wave is inversely proportional to its wave speed, so if the wave speed decreases, the wavelength will also decrease.

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The moving rod in the figure is 14.0cm long and is pulled at a speed of 19.5cm/s .
part 1:
If the magnetic field is 0.810T , calculate the emf developed. answer in V.
part 2:
Calculate the magnitude of the electric field felt by electrons in the rod. answer in V/m
part3:
Determine the direction of the electric field felt by electrons in the rod.
down
left
up
right

Answers

a) Emf developed is 0.0225 V ;  b) Magnitude of electric field felt by electrons in the rod is 0.161 V/m ;  c) Direction of electric field felt by electrons in the rod is up.

What is meant by magnetic field?

A magnetic field is a force field that is generated by the motion of electric charges.

As we know, Emf = BLv

B is magnetic field strength, L is length of the conductor, and v is velocity.

a) Emf = (0.810 T) * (0.14 m) * (0.195 m/s) = 0.0225 V

Therefore, emf developed is 0.0225 V.

b) As emf = E*L

E is electric field strength and L is length of the conductor.

E = emf/L

E = 0.0225 V / 0.14 m = 0.161 V/m

Therefore, magnitude of electric field felt by electrons in rod is calculated as 0.161 V/m.

c) In this case, the motion of the conductor is to the right, the magnetic field is into the page (since the problem doesn't specify the direction, we can assume it is perpendicular to the plane of the page), so the induced current and the electric field will be in the direction pointed by the middle finger, which is up.

So, electric field felt by electrons in the rod is in up direction.

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a 300 g block on a 56.0 cm -long string swings in a circle on a horizontal, frictionless table at 95.0 rpm. What is the speed of the block?What is the tension in the string?

Answers

The speed of the 300 g block is 5.57 m/s, and the tension in the 56.0 cm-long string is 16.6 N

To find the speed of the 300 g block and the tension in the 56.0 cm-long string, we can follow these steps:
Step 1: Convert the given values to SI units
Mass (m) = 300 g = 0.3 kg
Length of the string (L) = 56.0 cm = 0.56 m
Angular velocity (ω) = 95.0 rpm = 95 × (2π/60) rad/s = 9.95 rad/s
Step 2: Calculate the linear speed (v) of the block
Use the formula v = ω × r, where r is the radius of the circle (equal to the length of the string)
v = 9.95 rad/s ×0.56 m = 5.57 m/s
Step 3: Calculate the tension (T) in the string
Use the formula T = m ×r × ω²
T = 0.3 kg ×0.56 m × (9.95 rad/s)² = 16.6 N
The speed of the 300 g block is 5.57 m/s, and the tension in the 56.0 cm-long string is 16.6 N.

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A firework accidently explodes while on the ground. The firework was initially at rest and breaks into 2 pieces in the explosion. Piece A has 3.00 times the mass of piece B. Part A If 5600 J is released in the explosion, and 90% of that energy goes into the kinetic energy of the 2 pieces, what is the final KE of piece A and piece B?

Answers

Let the mass of piece B be m, then the mass of piece A is 3m.

Let the initial kinetic energy of the system be zero, and the final kinetic energy of the two pieces be KE_A and KE_B respectively.

The total kinetic energy of the two pieces is given by:

[tex]KE = (1/2) * m * v_B^2 + (1/2) * 3m * v_A^2[/tex]

where v_A and v_B are the velocities of pieces A and B respectively.

From the conservation of momentum, we have:

[tex]m * v_B + 3m * v_A[/tex] = 0

or

[tex]v_A = -(1/3) * v_B[/tex]

Substituting this expression into the equation for KE, we get:

[tex]KE = (1/2) * m * v_B^2 + (1/2) * 3m * (-v_B/3)^2[/tex]

Simplifying, we get:

[tex]KE = (7/18) * m * v_B^2[/tex]

From the given information, 90% of the released energy goes into kinetic energy, so:

[tex](7/18) * m * v_B^2 = 0.9 * 5600 J[/tex]

Solving for v_B, we get:

[tex]v_B = sqrt[(0.9 * 5600 J * 18)/(7 * m)] = 11.88 m/s[/tex]

Substituting this value of v_B into the expression for v_A, we get:

[tex]v_A = -(1/3) * v_B = -3.96 m/s[/tex]

Therefore, the final kinetic energy of piece A is:

[tex]KE_A = (1/2) * 3m * v_A^2 = 23[/tex]

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if the angular speed of the object is ω after the time t , what was its angular speed at the time t/2 ?

Answers

The angular speed at the time t/2 is half of the angular speed at time t.

Calculation of the angular speed:

1: If the angular speed of the object is ω after the time t, its angular displacement can be calculated as θ = ωt. Therefore, at the time t/2, the angular displacement would be θ/2 = (ωt)/2 = (1/2)ωt.

Step 2: The formula for angular velocity, which is given by ω = Δθ/Δt, where Δθ is the change in angular displacement and Δt is the change in time
ω = Δθ/Δt
ω = [(1/2)ωt - 0]/[t/2 - 0]
ω = (1/2)ωt / (t/2)
ω = (1/2)ω
Hence, the angular speed at the time t/2 is half of the angular speed at time t.

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Find the magnetic flux through a circular loop 4.6 cm in diameter oriented with the loop normal at 56 ∘ to a uniform 75 mt magnetic field.

Answers

The magnetic flux through the circular loop is 7.95 x 10⁻⁴ Wb.

To find the magnetic flux through a circular loop with a diameter of 4.6 cm, oriented at 56 degrees to a uniform 75 mT magnetic field, follow these steps:

1. Calculate the area (A) of the circular loop using the formula A = πr², where r is the radius (half the diameter): A = π(0.023 m)²≈ 1.66 x 10⁻³ m².


2. Convert the magnetic field (B) from mT to T: B = 75 mT × 10⁻³ = 0.075 T.


3. Calculate the angle (θ) in radians: θ = 56° × (π/180) ≈ 0.977 radians.


4. Use the magnetic flux (Φ) formula: Φ = B × A × cos(θ).


5. Calculate the magnetic flux: Φ = 0.075 T × 1.66 x 10⁻³ m² × cos(0.977) ≈ 7.95 x 10⁻⁴ Wb.

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what is the longest wavelength of light that could possibly be emitted by an electron in a hydrogen atom transitioning directly to the ground state? (provide your answer in nm)

Answers

Answer:The longest wavelength of light that could be emitted by an electron in a hydrogen atom transitioning directly to the ground state is approximately 121.5 nm.

Explanation:To determine the longest wavelength of light emitted by an electron in a hydrogen atom transitioning directly to the ground state, we'll use the Rydberg formula:

1/λ = R_H * (1/n1² - 1/n2²)

Where λ is the wavelength, R_H is the Rydberg constant for hydrogen (approximately 1.097 x 10^7 m⁻¹), n1 and n2 are the principal quantum numbers of the initial and final energy levels, respectively.

For the longest wavelength, we need the smallest possible energy difference, which occurs when an electron transitions from the second energy level (n2 = 2) to the ground state (n1 = 1).

1/λ = R_H * (1/1² - 1/2²) = R_H * (1 - 1/4) = R_H * 3/4

Now, to find λ:

λ = 1/(R_H * 3/4) = 4/(3 * R_H) ≈ 4/(3 * 1.097 x 10^7 m⁻¹) ≈ 1.215 x 10^-7 m

Converting to nanometers (nm):

λ ≈ 1.215 x 10^-7 m * (10^9 nm/m) ≈ 121.5 nm

Hence, The longest wavelength of light that could be emitted by an electron in a hydrogen atom transitioning directly to the ground state is approximately 121.5 nm.

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X = 4N
Y = 5N
Z = 10 N
Three books (X, Y, and Z) rest on a table. The weight of each book is indicated. The force of book Z on book Y is:
A. 0
B. 5N
C. 9N
D. 14N
E. 19N

Answers

Three books (X, Y, and Z) rest on a table, the force of book Z on book Y is 5N. Therefore, the correct answer is (B)

To determine the force of book Z on book Y, we need to consider the gravitational force acting on book Y due to book Z.

This force is equal to the weight of book Y times the gravitational acceleration, which is 9.8 m/s^2.

The weight of book Y is given as 5N, so the force of book Z on book Y is:F = 5N * 9.8 m/s^2 = 49N

However, the weight of book Z is given as 10N, which is greater than the force it exerts on book Y.

This means that book Z is not heavy enough to lift book Y off the table, and the force of book Z on book Y is simply the weight of book Y, which is 5N.

Therefore, the correct answer is (B)

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Problem #1: What axial compression load may be placed on a short timber post whose cross- sectional dimensions are 242 mm x 242 mm. if the allowable unit compressive stress is 7.6 N/mm2

Answers

The amount of axial compression load may be placed on a short timber post is 445,086.4 N.

To calculate the axial compression load that can be placed on a short timber post, you can use the formula:

Axial compression load = Cross-sectional area x Allowable unit compressive stress

First, determine the cross-sectional area of the post:

Cross-sectional area = width x height = 242 mm x 242 mm = 58,564 mm²

Next, multiply the cross-sectional area by the allowable unit compressive stress:

Axial compression load = 58,564 mm² x 7.6 N/mm² = 445,086.4 N

Therefore, the axial compression load that may be placed on the short timber post is 445,086.4 N.

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a balloon is filled with helium gas at an initial pressure of 750 mm hg. which picture best represents the balloon if the pressure is changed to 1270 mm hg at constant temperature?

Answers

Since V1/V2 is greater than 1, it indicates that the initial volume (V1) is smaller than the final volume (V2). Therefore, the picture that best represents the balloon when the pressure is changed to 1270 mm Hg at constant temperature would show a larger balloon compared to its initial size.


Plugging in the values, we get V1/V2=1270/750, which means that the final volume of the balloon is smaller than the initial volume. Therefore, the best picture that represents the balloon if the pressure is changed to 1270 mm Hg at constant temperature is a picture of a smaller balloon, as the volume of the balloon has decreased.
In order to determine which picture best represents the balloon when the pressure is changed to 1270 mm Hg at constant temperature, we need to consider the relationship between pressure and volume. According to Boyle's Law, at constant temperature, the pressure of a gas is inversely proportional to its volume. Mathematically, this is represented as P1V1 = P2V2.

In this case, the initial pressure (P1) is 750 mm Hg, and the final pressure (P2) is 1270 mm Hg. To compare the volumes, we can use the ratio:
V1/V2 = P2/P1 = 1270/750
V1/V2 ≈ 1.69

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