The only players permitted to wear mitts over gloves are _________.
1 the pitcher and first base player
2 the catcher and outfielder
3 the catcher and first base player
4 the catcher and pitcher

Answers

Answer 1

Answer:

the catcher and outfielder

Explanation:

Answer 2

Answer: The catcher and the player at first base are the only players permitted to wear mitts rather than gloves. So, the answer would be 3.

Explanation: I had this on a quiz and got it right.

Hope this helps!


Related Questions

% of CO2 in the atmosphere that humans are emitting per year relative to preanthropogenic levels = .714 %
There were 600 gigatons (106 tons) of carbon in the atmosphere in 1850, where the ppm was 280. Therefore, the gigatons accumulated in the atmosphere each year due to human activity is .714 % x 600 = 4.286 gigatons.
Humans are emitting 7.7 gigatons (Gt) of fossil fuel each year and 1.3 Gt from land use changes. Why is the answer above only about ½ of the total of 9 Gt and different from this statement?

Answers

The previous calculation of 4.286 gigatons per year represents only a fraction of the total emissions because it only considers the percentage of CO2 emitted by humans relative to pre anthropogenic levels.

It does not account for the additional emissions from natural sources or the uptake of carbon by natural sinks.The calculation of 4.286 gigatons per year is based on the percentage of CO2 emissions by humans relative to preanthropogenic levels, which is 0.714%.

However, this calculation does not take into account the complete picture of carbon emissions. Humans are indeed emitting 7.7 gigatons of fossil fuel each year and 1.3 gigatons from land use changes, totaling 9 gigatons. This includes emissions from burning fossil fuels as well as changes in land use such as deforestation.

However, it's important to note that carbon is constantly exchanged between the atmosphere, oceans, and land through various natural processes. Additionally, natural sources such as volcanic activity also contribute to atmospheric CO2 levels. On the other hand, natural sinks like forests and oceans absorb a significant amount of carbon dioxide from the atmosphere.

Therefore, the previous calculation only considers the fraction of CO2 emitted by humans, relative to preanthropogenic levels, and does not account for the full scope of emissions or natural processes.

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could brick blocks be placed on top of a wood so that the system floats? if so, explain what conditions are necessary for this to happen?

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Brick blocks be placed on top of a wood so that the system floats could possible but there are certain conditions that must be met for this to happen.

When placed on top of wood, the brick blocks and the wood together form a floating system. For the system to float, the total weight of the floating system must be less than or equal to the weight of the water displaced by the floating system, known as buoyancy. Therefore, the condition that is necessary for the system to float is that the buoyancy force must be greater than or equal to the weight of the system.

The buoyancy force depends on the density of the water, the volume of the floating system, and the gravitational acceleration. The weight of the system depends on the weight of the brick blocks and the wood. To ensure that the system floats, the weight of the brick blocks and the wood must be less than the weight of the water that they displace. So therefore it is possible when brick blocks be placed on top of a wood so that the system floats.

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what did edwin hubble study in the andromeda galaxy that proved it was an individual galaxy and not part of our own milky way?

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Edwin Hubble studied the Andromeda galaxy and found that it was an individual galaxy and not part of our own milky way is Hubble discovered this by observing a variable star, known as a Cepheid variable, in the Andromeda galaxy and measured its distance from Earth.

The Cepheid variable was used to measure the galaxy's distance because the star's brightness varied predictably, and the brightness was directly related to its distance from Earth. By studying the Andromeda galaxy, Hubble discovered that it was much farther away from Earth than originally thought, and it was actually a separate galaxy rather than a part of the Milky Way.

This discovery proved the existence of other galaxies outside of our own Milky Way, which was a groundbreaking finding at the time and paved the way for modern astronomy. Overall, Hubble's study of the Andromeda galaxy provided significant evidence to support the theory that the universe was much larger than previously thought and made a huge contribution to our understanding of the universe.

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using your knowledge of energy conservation, express qqq in terms of δuδudeltau and www .

Answers

The heat transferred (qqq) can be expressed as qqq = δu - www, where δu represents the change in internal energy and www represents the work done.

In the context of energy conservation, the change in the total energy of a system is equal to the sum of the work done on the system and the heat transferred into or out of the system. This can be expressed mathematically as:

ΔE = qqq + www,

where ΔE represents the change in total energy, qqq represents the heat transferred, and www represents the work done.

If we isolate qqq in the equation, we have:

qqq = ΔE - www.

Since the question asks us to express qqq in terms of δu (change in internal energy) and www (work done), we can substitute ΔE with δu, as internal energy (u) is a component of the total energy:

qqq = δu - www.

This equation represents the heat transferred (qqq) in terms of the change in internal energy (δu) and the work done (www).

The heat transferred (qqq) can be expressed as qqq = δu - www, where δu represents the change in internal energy and www represents the work done.

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a solution of naf is added dropwise to a solution that is 0.0144 m in ba2 . when the concentration of f- exceeds __?__ m, baf2 will precipitate. neglect volume changes. for baf2, ksp = 1.7x10-6.

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BaF₂ will precipitate when the concentration of F⁻ exceeds 3.46 × 10⁻³ M. This is determined by the solubility product constant (Ksp) of BaF₂, which is 1.7 × 10⁻⁶. If the concentration of F⁻ exceeds this threshold, the excess ions will form a solid precipitate.

Determine how will find the precipitate?

The solubility product constant (Ksp) for BaF₂ is given as 1.7 × 10⁻⁶. When a sparingly soluble salt like BaF₂ is in equilibrium with its ions in a solution, the product of the concentrations of the ions raised to their stoichiometric coefficients is equal to the solubility product constant.

The balanced equation for the dissociation of BaF₂ is:

BaF₂ ⇌ Ba²⁺ + 2F⁻

At equilibrium, let x be the concentration of F⁻ ions in M. The concentration of Ba²⁺ ions will be 0.0144 M (given).

Using the stoichiometric coefficients, the equilibrium expression for the solubility product constant can be written as:

Ksp = [Ba²⁺][F⁻]²

Substituting the known values:

1.7 × 10⁻⁶ = (0.0144)(x)²

Solving for x:

x = √(1.7 × 10⁻⁶ / 0.0144) ≈ 3.46 × 10⁻³ M

Therefore, when the concentration of F⁻ exceeds 3.46 × 10⁻³ M, BaF₂ will precipitate.

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A ball of mass m = 1 kg is attached to an unforced spring (F(t) = 0), with spring constant k = 9 N/m and a damping force of of 6 times the velocity. The object starts at equilibrium, with initial velocity 3 m/s upwards. (a) Solve for the position of the ball. (b) Is the spring overdamped, critically damped, or underdamped? (c) Show that the maximum displacement of the ball from equilibrium is a az meters. (d) Sketch the solution.

Answers

The position of the ball attached to the unforced spring with a damping force of 6 times velocity is given by the function [tex]x(t) = e^{-3}t (sin3t)[/tex]. The system is overdamped, and the maximum displacement from equilibrium is 0.1573 meters.

a) Solve for the position of the ball.

The equation of motion of the ball attached to the unforced spring with damping force of 6 times velocity can be written as, [tex]m(d^{2}x/dt^{2}) + 6(dx/dt) + kx = 0[/tex]

The given values are,

[tex]m = 1 kg[/tex][tex]k = 9 N/m[/tex][tex]dx/dt = v = 3 m/s at t = 0[/tex]

As we are supposed to find the position of the ball, we will solve the differential equation by assuming the position x as the solution and by integrating the given equation two times.

[tex]m\left(\frac{{d^2x}}{{dt^2}}\right) + 6\left(\frac{{dx}}{{dt}}\right) + kx = 0[/tex]

This is the standard form of a second order homogeneous linear differential equation. The characteristic equation of this differential equation is, [tex]m^{2} r^{2} + 6mr + k = 0[/tex]

Solving the above quadratic equation, we get, [tex]r = -3 \pm \sqrt{9 - \frac{4k}{m^2}} / 2m[/tex]

Here, [tex]k/m = 9/1 = 9[/tex]. So, [tex]r = -3 \pm \sqrt{9 - 36} / 2 = -3 \pm 3i[/tex]

From the above values of r, we can say that the general solution of the differential equation is, [tex]x(t) = e^{-3t}(C_1\cos(3t) + C_2\sin(3t))[/tex]

Let's find the values of constants C1 and C2 using the initial values of the ball position and velocity.

At

[tex]t = 0[/tex], [tex]dx/dt = v = 3 m/s[/tex] and [tex]x = 0[/tex]

So,

[tex]C1 = 0[/tex] and [tex]C2 = v/3 = 1 m[/tex]

Substituting these values in the general solution of [tex]x(t),x(t) = e^{-3}t (sin3t)[/tex]

Therefore, the position of the ball as a function of time is given by, [tex]x(t) = e^{-3}t (sin3t)[/tex].

b) The damping force in the given equation is, b = 6 times the velocity.Since the damping force is greater than the critical damping force [tex](2\sqrt{m \cdot k})[/tex], the given spring is overdamped.

c) Show that the maximum displacement of the ball from equilibrium is a az meters. To find the maximum displacement of the ball from equilibrium, we can differentiate the position function with respect to time and equate it to zero.

d). [tex](x(t)) / dt = e^{-3}t (3cos3t - sin3t)[/tex]

When the above derivative of the position function is zero, the position of the ball is at the maximum or minimum from the equilibrium.

Substituting the values of t in the above equation, we get,cos3t = sin3t

Therefore, [tex]\tan(3t) = 1 \quad t = \frac{\pi}{12}, \frac{5\pi}{12}, \frac{9\pi}{12}, \frac{13\pi}{12}, \frac{17\pi}{12}, \ldots \quad \text{For } t = \frac{\pi}{12}[/tex], the position of the ball is at maximum from equilibrium.

Substituting this value in the position function,[tex]x(t) = e^{-3t} \sin(3t) \quad x\left(\frac{\pi}{12}\right) = e^{-3\left(\frac{\pi}{12}\right)} \sin\left(\frac{\pi}{4}\right) = 0.1573 \, \text{m}[/tex]

Therefore, the maximum displacement of the ball from equilibrium is [tex]0.1573[/tex] meters.

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a harmonic motion has an amplitude of 1.8 cm and a period of 0.83 sec. determine the maximum acceleration in cm/s2. write your answer to 2 decimal places.

Answers

The maximum acceleration of the harmonic motion is approximately 50.27 cm/s².

To determine the maximum acceleration of a harmonic motion, we can use the equation for acceleration:

a_max = 4π²A / T²

Where:

a_max is the maximum acceleration

A is the amplitude of the motion

T is the period of the motion

In this case:

Amplitude (A) = 1.8 cm

Period (T) = 0.83 s

Substituting the values into the equation:

a_max = (4π² * 1.8) / (0.83)²

Calculating the value:

a_max ≈ 50.27 cm/s²

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Find the centre of mass of the 2D shape bounded by the lines y=+1.3x between x = 0 to 1.9. Assume the density is uniform with the value: 2.7kg. m2. Also find the centre of mass of the 3D volume created by rotating the same lines about the x-axis. The density is uniform with the value: 3.1kg. m3. (Give all your answers rounded to 3 significant figures.) a) Enter the mass (kg) of the 2D plate: Enter the Moment (kg.m) of the 2D plate about the y-axis: Enter the x-coordinate (m) of the centre of mass of the 2D plate: Submit part 6 marks Unanswered b) Enter the mass (kg) of the 3D body: Enter the Moment (kg m) of the 3D body about the y-axis: Enter the x-coordinate (m) of the centre of mass of the 3D body:

Answers

The centre of mass of the 2D shape: Enter the mass (kg) of the 2D plate: a) 5.98515 kg,  the Moment (kg.m): 4.531, the x-coordinate (m):  0.7564 m. b)The mass: 6.004, the Moment (kg m): 0.4874m, the x-coordinate (m):  0.531 m

The center of mass of the 2D shape bounded by the lines y=+1.3x between x = 0 to 1.9 is found as follows:

Find the mass (kg) of the 2D plateMass = density × area

Area of the plate = 1/2 × (1.9) × (1.3)(1.9) = 2.2145 m2

Mass = 2.7 × 2.2145 = 5.98515 kg

Enter the mass (kg) of the 2D plate: 5.985

Enter the Moment (kg.m) of the 2D plate about the y-axis:

Moment of the 2D plate about the y-axis is given by

M y = density × (1/2) × base × height

2.2145 is the area, 1.9 is the width, then base = 1.9 / 2 = 0.95m

1.3 × 0.95 is the height.

Moment = 2.7 × 2.2145 × 0.95 × 1.3 × 0.475 = 4.531

Enter the x-coordinate (m) of the centre of mass of the 2D plate:

Center of mass, X cm = Moment/Mass = 4.531/5.98515 = 0.7564 m

b. The mass (kg) of the 3D body is found as follows:

Mass = density × volume

Volume of the body = ∏ × [(1.9)2 / 2] × [(1.3)2 / 2]

Volume = 1.9371117 m3

Mass = 3.1 × 1.9371117 = 6.00385747 kg

Enter the mass (kg) of the 3D body: 6.004

Enter the Moment (kg.m) of the 3D body about the y-axis:

The moment of the 3D body about the y-axis is given by

M y = density × V × (centroid of the semicircle)

From the semicircle above, centroid is given by

4 × r/3∏ = 1.3/2 = 0.65; r = 0.4874m

Centroid of semicircle = 4 × 0.4874 / (3∏) = 0.5193m

M y = 3.1 × 1.9371117 × 0.5193 = 3.184

Enter the x-coordinate (m) of the centre of mass of the 3D body:

Center of mass, X cm = Moment/Mass = 3.184/6.00385747 = 0.5307m (rounded to 3 significant figures)

Therefore, the x-coordinate of the center of mass of the 3D body is 0.531 m (rounded to 3 significant figures).

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on a deep sea fishing trip, captain c-bo knows that each of his passengers will catch red snapper at a rate of 2 fish per hour.

Answers

Captain C-Bo takes his passengers on a deep-sea fishing trip where he expects them to catch red snappers at a rate of two fish per hour. Deep-sea fishing is done in areas of the ocean that are over 30 meters deep, where there are several types of fish, including red snapper.

The red snapper is a common catch in deep-sea fishing trips as it's a popular and delicious fish. It's found in deep waters from 30 feet to 200 feet in depth, typically near the bottom, and can weigh up to 40 pounds. Red snapper is a popular catch in deep-sea fishing, and because of its popularity, the fishing industry has developed specific rules and regulations to protect it and ensure it's sustainably fished.

In deep-sea fishing, the passengers use a fishing rod and bait to catch fish. The captain knows that each passenger will catch red snapper at a rate of two fish per hour. Thus, if there are 10 passengers on the boat, they would catch 20 fish per hour. If the trip lasts for four hours, each passenger will have caught eight fish. If the trip lasts for eight hours, each passenger will have caught 16 fish.

Thus, it's essential to understand the duration of the fishing trip to determine the catch. In conclusion, on a deep-sea fishing trip, passengers can expect to catch red snapper. If there are 10 passengers, they will catch 20 fish per hour, with each passenger catching two fish. The duration of the trip will determine the overall catch.

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which of the following defects are two-dimensional? a) pores b) vacancies c) screw dislocations d) low angle grain boundaries

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Grain boundaries are two-dimensional defects that can have a significant impact on the properties of polycrystalline materials. The correct answer is option(d).

Two-dimensional (2D) defects are those that occupy only two dimensions, like the surface of the material or a plane of atoms. In that sense, low angle grain boundaries are two-dimensional (2D) defects in the material.

The low angle grain boundaries are two-dimensional (2D) defects in the material. Grain boundaries are interfaces between grains, or crystals, in polycrystalline materials. The interface between two grains is a layer of atoms or a plane of atoms that is in a low-energy, non-crystalline condition.

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Masses M1 and M2 are connected to a system of strings and pulleys as shown below. The
strings are massless and inextensible, and the pulleys are massless and frictionless. 1) Find
the acceleration of M1. 2) What is the acceleration of M1 in the special cases when M1 <

Answers

After considering the given data we conclude that the acceleration of [tex]M_{1}[/tex]is [tex]a = (M2 - M1)/(M1 + M2) * g[/tex], and for the special case When M₁ << M₂, the acceleration is [tex]a \approx M2/(M1 + M2) * g[/tex], When M₂ << M₁, the acceleration  is a ≈ g.

To evaluate the acceleration of M1 in the system of strings and pulleys, we can apply the following steps:
Draw free-body diagrams for M₁ and M₂, showing the forces acting on each mass.
Describe the equations of motion for each mass, applying Newton's second law [tex](F = ma)[/tex]and the fact that the tension in the string is the same on both sides of the pulley.
Evaluate the equations simultaneously to find the acceleration of M₁.
a) The acceleration of M₁ can be calculated using the following equation:
[tex]a = (M_2 - M_1)/(M_1 + M_2) * g[/tex]
Here,
M₁ and M₂ = masses of the blocks,
g = acceleration due to gravity.
b) When M₁ << M₂, the acceleration of M₁ can be approximated as:
[tex]a \approx M_2/(M_1 + M_2) * g[/tex]
This is because the mass of M₁ is negligible compared to M₂, so the acceleration of the system is determined mainly by the mass of M₂.
c) When M₂ << M₁, the acceleration of M₁ can be approximated as:
a ≈ g
This is because the mass of M₂ is negligible compared to M₁, so the acceleration of the system is determined mainly by the mass of M₁.
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The complete question is
Masses M_{1} and M_{2} are connected to a system of strings and pulleys as shown below. The strings are massless and inextensible, and the pulleys are massless and frictionless. 1) Find the acceleration of M_{1} .2) What is the acceleration of M_{1} in the special cases when M_{1} << M_{2} and when M_{2} << M_{1}

a 485 kg dragster accelerates from rest to a final speed of 125 m/s in 390m. during which it encounters an average friction force of 1100n. What is its average power output in watts and horsepower if this takes 7.30 s?

Answers

The average power output of the dragster is 58,767.12 watts (W) or 78.81 horsepower (hp).

To find the average power output of the dragster, we can use the formula:

Average Power = Work / Time

First, let's find the work done by the dragster. The work done can be calculated using the equation:

Work = Force × Distance × Cos(θ)

In this case, the force is the average friction force of 1100 N, the distance is 390 m, and the angle θ between the force and displacement is 0 degrees (cos(0) = 1). Therefore:

Work = 1100 N × 390 m × 1 = 429,000 J

Next, we can substitute the values into the formula for average power:

Average Power = Work / Time = 429,000 J / 7.30 s ≈ 58,767.12 W

To convert the average power to horsepower, we can use the conversion factor:

1 horsepower = 745.7 W

Therefore:

Average Power in horsepower = 58,767.12 W / 745.7 ≈ 78.81 hp

Hence, the average power output of the dragster is approximately 58,767.12 watts (W) or 78.81 horsepower (hp).

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titan completes one orbit about saturn in 15.9 days and the average saturn–titan distance is 1.22×109 m. calculate the angular speed of titan as it orbits saturn.

Answers

The angular speed of Titan as it orbits Saturn is approximately 2.205 × 10^-5 radians per second.

To calculate the angular speed of Titan as it orbits Saturn, we can use the formula:

Angular speed = 2π / Time period

Given:

Time period (T) = 15.9 days

First, we need to convert the time period from days to seconds:

Time period (T) = 15.9 days × 24 hours/day × 60 minutes/hour × 60 seconds/minute

Now, let's calculate the time period in seconds:

T = 15.9 days × 24 hours/day × 60 minutes/hour × 60 seconds/minute

≈ 1,372,160 seconds

Next, we can use the formula to calculate the angular speed:

Angular speed = 2π / T

Angular speed = 2 × 3.1416 / 1,372,160

≈ 2.205 × 10^-5 radians per second

The angular speed of Titan as it orbits Saturn is approximately 2.205 × 10^-5 radians per second.

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Which one of the following statements does NOT describe the equilibrium state? A. Equilibrium is dynamic and there is no net conversion in reactants and products. B. The concentration of the reactants is equal to the concentration of the products. C. The concentrations of the reactants and products reach a constant level. D. The rate of the forward reaction is equal to the rate of the reverse reaction.

Answers

Statement B, which claims that the concentration of the reactants is equal to the concentration of the products, does not accurately describe the equilibrium state

The equilibrium state in a chemical reaction is characterized by several key features. Let's examine each statement to identify which one does not accurately describe equilibrium:

A. Equilibrium is dynamic and there is no net conversion in reactants and products.

This statement is true. In an equilibrium state, both the forward and reverse reactions continue to occur, but the concentrations of reactants and products remain constant over time, resulting in no net conversion.

B. The concentration of the reactants is equal to the concentration of the products.

This statement is not true for all equilibrium states. In some cases, the concentrations of reactants and products may be equal, but in other cases, they can have different concentrations depending on the stoichiometry of the balanced chemical equation. Therefore, this statement does not universally describe equilibrium.

C. The concentrations of the reactants and products reach a constant level.

This statement is true. At equilibrium, the concentrations of the reactants and products stabilize and remain constant as long as external conditions are not altered.

D. The rate of the forward reaction is equal to the rate of the reverse reaction.

This statement is true. In an equilibrium state, the rates of the forward and reverse reactions are equal, ensuring a balance between the formation and consumption of reactants and products.

Statement B, which claims that the concentration of the reactants is equal to the concentration of the products, does not accurately describe the equilibrium state.

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A concave mirror has a focal length of 20 cm. What is the magnification if the object's distance is 100 cm? a) 1/2 b) 1/4 c) -2 d) 3 e) -1/4

Answers

A concave mirror has a focal length of 20 cm. So, B) [tex]= \frac{1}{4}[/tex] is closest to the mark. The proper magnification, however, is [tex]= \frac{1}{5}[/tex] , which is not offered in the available options.

To find the magnification of a concave mirror, we can use the formula:

magnification (m) = - (image distance / object distance)

Given:

Focal length (f) = -20 cm (negative because the mirror is concave)

Object distance (u) = 100 cm

Using the mirror formula:

[tex]\frac{1}{f} = \frac{1}{v} - \frac{1}{u}[/tex]

Substituting the values:

[tex]\frac{1}{-20} = \frac{1}{v} - \frac{1}{100}[/tex]

Simplifying:

[tex]\[-\frac{1}{20} = \frac{1}{v} - \frac{1}{100}\][/tex]

To solve for v, we can find the common denominator and simplify the equation:

[tex]\[-\frac{5}{100} = \frac{1}{v}\][/tex]

Simplifying further:

[tex]\[-\frac{1}{20} = \frac{1}{v}\][/tex]

Cross-multiplying:

v = -20 cm

The negative sign indicates that the image is virtual and located on the same side as the object.

Now, we can calculate the magnification (m):

[tex]\[m = -\frac{v}{u} \\[/tex]

[tex]-\frac{-20}{100}[/tex]

[tex]= \frac{20}{100}[/tex]

[tex]= \frac{1}{5}[/tex]

Therefore, the magnification is [tex]= \frac{1}{5}[/tex].

Among the given options, the closest one is b) [tex]= \frac{1}{4}[/tex]. However, the correct magnification is[tex]= \frac{1}{5}[/tex], which is not provided in the given choices.

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The gravitational force between two objects is 1600 N. What will be the gravitational force between the objects if the distance between them doubles?
a.400 N
b.800 N
c.3200 N
d.6400 N

Answers

The gravitational force between the objects, when the distance between them doubles, will be 400 N. The correct answer is Option A.

The gravitational force between two objects is inversely proportional to the square of the distance between them. If the distance between the objects doubles, the gravitational force will decrease by a factor of four.

Given that the initial gravitational force is 1600 N, if the distance between the objects doubles, the new gravitational force will be:

(1/2)^2 * 1600 N = 1/4 * 1600 N = 400 N

Therefore, when the distance between the objects  is doubled, the gravitational force between them will be 400 N, which corresponds to Option A.

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A 71.0 kg person stand on a scale in an elevator. What does the scale read (in N) whe the elevator is ascending at a constant speed of 3.5 m/s? What does the scale read (in kg) when the elevator is ascending at a constant speed of 3.5m/s? What does the scale read ( in N) When the elevator is falling at 3.5 m/s? What does the scale read (in kg) when the elevator is falling at 3.5 m/s? What does she scale read (in N & in kg) when the elevator is accelerating upward at 3.5 m/s^2? What does the scale read (in kg) when the elevator is accelerating downward at 3.5 m/s^2?

Answers

The scale reads 410.3 N when the elevator is accelerating downward at 3.5 m/s².

Answer: Scale reading for the given conditions are:

Scale reading (in N) when the elevator is ascending at a constant speed of 3.5 m/s is 696.8 N.

Scale reading (in kg) when the elevator is ascending at a constant speed of 3.5 m/s is 71.0 kg.

Scale reading (in N) when the elevator is falling at 3.5 m/s is 696.8 N. Scale reading (in kg) when the elevator is falling at 3.5 m/s is 71.0 kg.

Scale reading (in N) when the elevator is accelerating upward at 3.5 m/s² is 710.3 N.

Scale reading (in kg) when the elevator is accelerating upward at 3.5 m/s² is 71.0 kg.

Scale reading (in N) when the elevator is accelerating downward at 3.5 m/s² is 410.3 N.

Scale reading (in kg) when the elevator is accelerating downward at 3.5 m/s² is 71.0 kg.

The given problem is based on the concept of acceleration due to gravity. Let's solve the given problem step by step: Solve for constant speed. Here, the elevator is ascending at a constant speed of 3.5 m/s. Since the elevator is moving at a constant speed, the net force acting on the person is zero because the acceleration is zero. Thus, the scale will read the same as the weight of the person.

So,

the scale reads;= Weight of the person= (mass of the person) × g= 71.0 kg × 9.8 m/s²= 696.8 N,

The scale reads 696.8 N when the elevator is ascending at a constant speed of 3.5 m/s. Now, solve for the same condition when the scale reads in kg.

The scale reads in kg = mass of the person= 71.0 kg,

The scale reads 71.0 kg when the elevator is ascending at a constant speed of 3.5 m/s.

Solve for when the elevator is falling at a constant speed of 3.5 m/s. Since the elevator is falling at a constant speed, the net force acting on the person is zero because the acceleration is zero.

Thus, the scale will read the same as the weight of the person.

So, the scale reads;= Weight of the person= (mass of the person) × g= 71.0 kg × 9.8 m/s²= 696.8 N.

The scale reads 696.8 N when the elevator is falling at a constant speed of 3.5 m/s.

Now, solve for the same condition when the scale reads in kg.

The scale reads in kg = mass of the person= 71.0 kg.

The scale reads 71.0 kg when the elevator is falling at a constant speed of 3.5 m/s.

Solve for acceleration upward, Now, when the elevator is accelerating upward at 3.5 m/s², the net force acting on the person is the sum of the force exerted by the person and the force exerted by the elevator. Thus, the scale will read more than the weight of the person.

So,

the scale reads;= Force on the person= (mass of the person) × (g + a)= 71.0 kg × (9.8 m/s² + 3.5 m/s²)= 710.3 N.

The scale reads 710.3 N when the elevator is accelerating upward at 3.5 m/s².Now, solve for the same condition when the scale reads in kg.

The scale reads in kg = mass of the person= 71.0 kg.

The scale reads 71.0 kg when the elevator is accelerating upward at 3.5 m/s².

Solve for acceleration downward. Now, when the elevator is accelerating downward at 3.5 m/s², the net force acting on the person is the difference between the force exerted by the person and the force exerted by the elevator. Thus, the scale will read less than the weight of the person.

So, the scale reads;=

Force on the person= (mass of the person) × (g - a)= 71.0 kg × (9.8 m/s² - 3.5 m/s²)= 410.3 N.

Now, solve for the same condition when the scale reads in kg.

The scale reads in kg = mass of the person= 71.0 kg,

The scale reads 71.0 kg when the elevator is accelerating downward at 3.5 m/s².

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In order to get an object moving, you must push harder on it than it pushes back on you. O True O False

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The given statement "In order to get an object moving, you must push harder on it than it pushes back on you" is False.

According to Newton's third law of motion, for every action, there is an equal and opposite reaction. When you push an object, the object pushes back on you with an equal force in the opposite direction.

This means that the force you exert on the object and the force the object exerts on you are always equal in magnitude but opposite in direction.

The interaction between you and the object involves a pair of forces that are of the same strength.

Therefore, in order to get an object moving, you don't necessarily need to push harder on it than it pushes back on you.

Instead, you need to exert a force greater than the frictional forces or any other opposing forces acting on the object.

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a wire 35.0 cm long, carrying a current of 3.50 a is placed at an angle of 40 degrees in a uniform magnetic field of 0.002 t. find the force on teh wire

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A current-carrying wire in a magnetic field is subjected to a magnetic force. The direction of this force is perpendicular to both the direction of the current and the direction of the magnetic field. The force on the wire is 0.000728 N. This force is in a direction perpendicular to both the wire and the magnetic field.

In this problem, the wire is at an angle of 40 degrees to the magnetic field, but the force is still perpendicular to both the wire and the field. The force on the wire can be calculated using the following formula: F = BILsinθwhere F is the force on the wire, B is the magnetic field, I is the current, L is the length of the wire, and θ is the angle between the wire and the magnetic field. In this case: F = (0.002 T)(3.50 A)(0.35 m)sin(40°) = 0.000728 N

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calculate the rotational kinetic energy of a 14 kg motorcycle wheel if its angular velocity is 120 rad/s and its inner radius is 0.280 m and outer radius 0.330 m.

Answers

The rotational kinetic energy of the motorcycle wheel is approximately 4994.16 Joules.

The rotational kinetic energy (KE) of an object can be calculated using the formula:

KE = (1/2) * I * ω^2

Where:

KE is the rotational kinetic energy

I is the moment of inertia

ω is the angular velocity

The moment of inertia (I) for a solid disk can be calculated using the formula:

I = (1/2) * m * (r_outer^2 + r_inner^2)

Where:

m is the mass of the object (motorcycle wheel)

r_outer is the outer radius of the wheel

r_inner is the inner radius of the wheel

Given data:

Mass of the motorcycle wheel (m) = 14 kg

Angular velocity (ω) = 120 rad/s

Inner radius (r_inner) = 0.280 m

Outer radius (r_outer) = 0.330 m

Using the above formulas, we can calculate the rotational kinetic energy as follows:

I = (1/2) * 14 kg * (0.330 m^2 + 0.280 m^2)

I ≈ 0.648 kg * m^2

KE = (1/2) * 0.648 kg * m^2 * (120 rad/s)^2

KE ≈ 4994.16 J

The rotational kinetic energy of the motorcycle wheel is approximately 4994.16 Joules.

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as the wavelength of a wave in a uniform medium increases while the tension stays the same, its speed will _____.

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The speed of a wave in a uniform medium is directly proportional to the wavelength of the wave when the tension remains the same. If the wavelength of a wave in a uniform medium increases while the tension stays the same, its speed will decrease.

This is due to the fact that as the wavelength of a wave increases, the distance between successive crests or troughs of the wave also increases. Therefore, it will take more time for the wave to travel from one point to another, resulting in a decrease in the speed of the wave.

This can be explained using the wave equation v = fλ, where v is the speed of the wave, f is the frequency of the wave, and λ is the wavelength of the wave. Since the frequency of the wave remains constant in this case, an increase in wavelength results in a decrease in the speed of the wave.

This phenomenon can be observed in various types of waves, including sound waves, water waves, and electromagnetic waves, which all obey the same wave equation.

In summary, if the wavelength of a wave in a uniform medium increases while the tension stays the same, its speed will decrease.

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(13%) Problem 6: Suppose a 0.85- g speck of dust has the same momentum as a proton moving at 0.99 %. Calculate the speed, in meters per second, of this speck of dust.

Answers

The speed of the speck of dust is approximately 5.89 × [tex]10^{5}[/tex] m/s.

To solve this problem, we can use the principle of conservation of momentum. The momentum of an object is given by the product of its mass and velocity.

Given:

Mass of the speck of dust (m1) = 0.85 g = 0.85 × [tex]10^{-3}[/tex] kg

Mass of the proton (m2) = mass of the proton = 1.67 × [tex]10^{-27}[/tex] kg

Velocity of the proton (v2) = 0.99 times the speed of light (c) = 0.99 × 3 × [tex]10^{8}[/tex] m/s

Since the momentum of the speck of dust (p1) is equal to the momentum of the proton (p2), we can write:

m1 * v1 = m2 * v2

Solving for the velocity of the speck of dust (v1):

v1 = (m2 * v2) / m1

Substituting the given values:

v1 = (1.67 × [tex]10^{-27}[/tex]  kg * 0.99 × 3 × [tex]10^{8}[/tex] m/s) / (0.85  × [tex]10^{-3}[/tex]  kg)

Calculating the value:

v1 = 5.89  × [tex]10^{5}[/tex] m/s

Therefore, the speed of the speck of dust is approximately 5.89  × [tex]10^{5}[/tex] m/s.

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(a) what is the intensity in w/m2 of a laser beam used to burn away cancerous tissue that, when 90.0 bsorbed, puts 363 j of energy into a circular spot 3.60 mm in diameter in 4.00 s?

Answers

The intensity of the laser beam used to burn away cancerous tissue is 2.00 × 10⁹ W/m².

Given data:

The time interval, t = 4.00 s

The diameter of circular spot, d = 3.60 mm

Radius of the circular spot, r = d/2 = 1.80 mm = 1.80 × 10⁻³ m

Energy of the laser beam, E = 363 J

Absorption coefficient, α = 0.90

Intensity of the laser beam is given as, P = E/At,

where A is the area of the circular spot, A = πr²

Therefore, P = E/πr²t

Substituting the given values, we have;

Intensity, P = (363 J) / [π (1.80 × 10⁻³ m)² × 4.00 s]

Intensity of laser beam is given as, P = 2.00 × 10⁹ W/m².

The power transferred per unit area is known as the intensity or flux of radiant energy, where the area is measured on a plane perpendicular to the direction of the energy's propagation. Watts per square metre (W/m2) and kilograms per square meter (kg/s3) are the units used in the SI system.

With waves like acoustic waves (sound) or electromagnetic waves like light or radio waves, intensity is most usually employed to describe the average power transfer across one period of the wave.

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an astronaut on another planet drops a 1-kg rock from rest and finds that it falls a vertical distance of 2.5 meters in one second. on this planet, the rock has a weight of

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When a rock falls a vertical distance of 2.5 meters in one second. On this planet, the rock has a weight of 5 Newtons.

To determine the weight of the 1-kg rock on the given planet, we can use the formula:

Weight = mass * acceleration due to gravity

On Earth, the acceleration due to gravity is approximately[tex]9.8 m/s^2.[/tex]However, on different planets, the acceleration due to gravity can vary.

We can calculate the acceleration due to gravity on the planet using the kinematic equation:

[tex]s = ut + (1/2)at^2[/tex]

Rearranging the equation to solve for acceleration, we have:

[tex]a = 2s / t^2[/tex]

Substituting the given values:

[tex]a = 2 * 2.5 / 1^2 \\a = 5 m/s^2[/tex]

Now, we can calculate the weight of the rock on the planet using the formula:

Weight = mass * acceleration due to gravity

Since the mass of the rock is given as 1 kg, we have:

Weight =[tex]1 kg * 5 m/s^2[/tex]

Weight = 5 N

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based on the hardness values determined in part 1, what is the tensile strength (in mpa) for each of the alloys?

Answers

The hardness values were obtained for Al, Cu, and Al-Cu alloys. The tensile strength (in MPa) of each alloy can be determined by using the hardness-tensile strength correlation.

For Al-Cu alloys, the correlation is given by: σuts = 4.27 x HBRHV - 96.3, where σuts is the ultimate tensile strength (MPa), HB is the Brinell hardness, and HV is the Vickers hardness. The average hardness values for the Al, Cu, and Al-Cu alloys were 47.5 HRB, 61.5 HRB, and 90.3 HV, respectively.

Using the above equation for Al-Cu alloys: σuts = 4.27 x HBRHV - 96.3 = 4.27 x 90.3 - 96.3 = 302 MPa.

Therefore, the tensile strength of the Al-Cu alloy is 302 MPa.

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Consider the formula d=\dfrac{m}{V}d= V m ​ d, equals, start fraction, m, divided by, V, end fraction, where ddd represents density, mmm represents mass and has units of kilograms \left( \text{kg}\right)(kg)left parenthesis, k, g, right parenthesis, and VVV represents volume and has units of cubic meters \text{(m}^3)(m 3 )left parenthesis, m, start superscript, 3, end superscript, right parenthesis. Select an appropriate measurement unit for density

Answers

Density is a physical property and is measured in a wide variety of units. However, the most suitable measurement unit for density is the kg/m³. The formula to measure the density of an object is given byd = m/VWhere d represents density, m represents mass, and V represents volume.

The units of density will depend on the units of mass and volume. For example, if the mass is measured in kilograms and the volume is measured in cubic meters, the density will be measured in kilograms per cubic meter (kg/m³). The kg/m³ measurement is the most suitable for density because it gives the mass of an object per unit of volume in a standardized form.

In general, density is expressed in terms of mass per unit volume and the SI units of mass and volume are kilograms and cubic meters, respectively. Therefore, the appropriate measurement unit for density is kg/m³.

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A child sitting 1.70 m from the center of a merry-go-round moves with a speed of 1.05 m/s.
Calculate the centripetal acceleration of the child.
Express your answer using three significant figures.
Calculate the net horizontal force exerted on the child. (mass = 33.5 kg )
Express your answer using three significant figures.

Answers

The centripetal acceleration of the child is approximately 0.637 m/s², and the net horizontal force exerted on the child is approximately 21.309 N.

To calculate centripetal acceleration of the child, we will use the formula;

a = v² / r

Where;

a = centripetal acceleration

v = velocity

r = radius

Plugging in the given values;

a = (1.05 m/s)² / 1.70 m

a ≈ 0.637 m/s² (rounded to three significant figures)

The centripetal acceleration of the child is approximately 0.637 m/s².

To calculate the net horizontal force exerted on the child, we can use Newton's second law:

F = m × a

Where;

F = net force

m = mass

a = acceleration

Plugging in the given values:

F = (33.5 kg) × (0.637 m/s²)

F ≈ 21.309 N (rounded to three significant figures)

The net horizontal force exerted on the child is approximately 21.309 N.

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in a single-slit diffraction experiment, a beam of monochromatic light of wavelength 573 nm is incident on a slit of width of 0.312 mm. if the distance between the slit and the screen is 2.30 m, what is the distance between the central axis and the first dark fringe (in mm)?

Answers

The distance between the central axis and the first dark fringe in the given single-slit diffraction experiment is approximately 4221.75 mm.

The distance between the central axis and the first dark fringe in a single-slit diffraction experiment can be determined using the formula:

y = (λL) / w

where:

y is the distance between the central axis and the first dark fringe,

λ is the wavelength of light,

L is the distance between the slit and the screen,

and w is the width of the slit.

λ = 573 nm

λ= 573 × 10⁻³m

w = 0.312 mm

w = 0.312 × 10⁻³ m

L = 2.30 m

Now, let's calculate the distance between the central axis and the first dark fringe (y):

y = (λL) / w

y = (573 × 10⁻⁹ m) × (2.30 m) / (0.312 × 10⁻³ m)

y  = 4.22175 m

We need to convert this result to millimeters (mm) since the question asks for the answer in that unit:

y = 4.22175 m × 1000 mm/m

y  ≈ 4221.75 mm

Therefore, the distance between the central axis and the first dark fringe is approximately 4221.75 mm.

In conclusion, the distance between the central axis and the first dark fringe in the given single-slit diffraction experiment is approximately 4221.75 mm.

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if λ = 531 nm , what is the minimum diameter of the circular opening from which the laser beam emerges? the earth-moon distance is 384,000 km .

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The minimum diameter of the circular opening from which the laser beam emerges can be calculated using the given wavelength ([tex]\lambda[/tex]) and the earth-moon distance (384,000 km).

The minimum diameter of the circular opening can be determined by considering the phenomenon of diffraction. Diffraction occurs when a wave encounters an obstacle or a narrow aperture, causing it to spread out and create a pattern of interference. In this case, the laser beam with a wavelength of 531 nm is passing through a circular opening.

To calculate the minimum diameter, we can use the formula for the angular size of the central maximum in a single-slit diffraction pattern:

[tex]d = 1.22 * \lambda / \theta[/tex]

Where [tex]\theta[/tex] represents the angular size, [tex]\lambda[/tex] is the wavelength, and d is the diameter of the circular opening. We can rearrange the formula to solve for d:

[tex]d = 1.22 * \lambda / \theta[/tex]

Given the wavelength ([tex]\lambda[/tex]) of 531 nm and the earth-moon distance of 384,000 km, we can convert the distance into meters (384,000,000 m). The angular size ([tex]\theta[/tex]) can be calculated by dividing the diameter of the moon by the earth-moon distance:

[tex]\theta[/tex] = diameter of moon / earth-moon distance

Substituting the values into the formula, we can find the minimum diameter of the circular opening from which the laser beam emerges.

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A uniform steel bar swings from a pivot at one end with a period of 1.1s? How long is the bar?

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The length of the uniform steel bar is approximately 0.546 meters (or 54.6 centimeters).

The period of a simple pendulum, which the swinging motion of the steel bar resembles, is given by the formula T = 2π√(L/g), where T is the period, L is the length of the pendulum, and g is the acceleration due to gravity (approximately 9.8 m/s^2).

Given that the period T is 1.1 seconds, we can rearrange the formula to solve for the length L: L = (T^2 * g) / (4π^2).

Substituting the values into the formula: L = (1.1^2 * 9.8) / (4π^2) ≈ 0.546 meters.

Therefore, the length of the uniform steel bar is approximately 0.546 meters (or 54.6 centimeters).

The length of the uniform steel bar can be determined using the formula for the period of a simple pendulum. By substituting the given period of 1.1 seconds into the formula, we find that the length is approximately 0.546 meters (or 54.6 centimeters). This calculation assumes the bar swings as a simple pendulum, neglecting any additional factors such as air resistance or other external influences.

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