Jesse is swinging Miguel in a circle at a tangential speed of 3.50 m/s. If the radius of the circle is 0.600 m and Miguel has a mass of 11.0 kg, what is the centripetal force on Miguel? Round to the nearest whole number.

Answers

Answer 1
225 N is the answer. Glad I could help
Answer 2

Answer:

Explanation:

When an object is moving around a circular path with a uniform speed the motion os said to be uniform cicular motion. It is the example of accelerated motion as the direction of motion keeps on changing every instant.

When a body is in uniform circular motion, it experiences a force towards the centre of circular path, this force is called centripetal force.

The formula of centripetal force is given by

F = mv^2 / r

Where m is the mass of body, V be the speed of body and R be the radius of circular path

F = 11 × 3.5 × 3.5 / 0.6

F = 224.58 N


Related Questions

The gravitational force of a star on an orbiting planet 1 is f1. planet 2, which is four times as massive as planet 1 and orbits at three times larger distance from the star, experiences gravitational force f2

Answers

Final answer:

The gravitational force on Planet 2, which is four times more massive but orbits at three times the distance from a star compared to Planet 1, would be 4/9 of the gravitational force on Planet 1, according to Newton's law of universal gravitation.

Explanation:

The question pertains to the gravitational force exerted by a star on two different planets in orbit. According to the provided scenario, Planet 1 experiences a gravitational force denoted as f1. Planet 2 is four times as massive as Planet 1 and orbits at a distance that is three times larger from the star, resulting in gravitational force f2. To compare f1 and f2, one can use Newton's law of universal gravitation, which states that the force of gravity between two objects is directly proportional to the product of their masses and inversely proportional to the square of the distance between their centers. For Planet 2, which has four times the mass (4M), but is at three times the distance (3d), the force of gravity, f2, can be calculated as follows:

f2 = (G * (4M) * M_star) / (3d)^2 = (4/9) * (G * M * M_star) / d^2

Where:

G represents the gravitational constant

M is the mass of Planet 1

M_star is the mass of the star

d is the original distance between Planet 1 and the star

Comparing f2 with f1, which is (G * M * M_star) / d^2, it becomes clear that f2 = (4/9)f1. Therefore, the gravitational force acting on Planet 2 is 4/9 that of the gravitational force acting on Planet 1.

If you notice that two waves combine and a part of the resulting wave has less light intensity than either of the individual waves, you're observing A. destructive interference. B. polarization. C. constructive interference. D. diffraction.

Answers

If you notice that two waves combine and a part of the resulting wave has less light intensity than either of the individual waves, you're observing destructive interference. Destructive interference happens when the two waves that combine have amplitudes with opposite signs,which results in subtraction- combined wave with a lower amplitude.

How do scientists know the true environmental lapse rate in a column of air?

Answers

with weather ballons carry instruments to measure the temperature ,pressure,wind direction and wind speed

What is true about isolines on a weather map?

Answers

All isolines, or iso-intensity lines, connect points having equal values.

Answer: Hi, isolines refer to lines where some quantity maintains constant.

For example, an "istoremal line" is a line where the temperature is constant, an "isobaric line" is a line where the pressure is constant.

Where constant means that, in the two examples i give you, in all the line the temperature or the pressure has the same value.

A thing that you usually can see in a whether map, is that the isolines are "closed" curves. And other thing, maybe more obvious, is that a line cant pass over other line (because this will mean that a point in the space has 2 different values of something).

Which components are part of all scientific investigations? Check all that apply. scientific question hypothesis variables control procedure conclusion

Answers

All scientific investigations include certain core components: a scientific question, a testable hypothesis, defined variables, a control for comparison, a detailed procedure for conducting experiments, and concluding observations that address the hypotheses. These steps are part of the scientific method.

Components of Scientific Investigations

The components that are part of all scientific investigations typically include the following:

Scientific question: The foundation of the investigation, where the curiosity or inquiry is articulated.Hypothesis: A testable prediction or explanation that addresses the scientific question.Variables: These are the elements that can be changed or controlled in an experiment, including independent (manipulated) and dependent (observed) variables.Control: This is the standard to which comparisons are made in an experiment.Procedure: The step-by-step plan for conducting the experiment.Conclusion: The summary of the investigation's findings, determining whether the hypothesis is supported or refuted.

These components are integral parts of the scientific method, a process primarily used in scientific investigations. The scientific method includes making observations, asking a question, forming a hypothesis, testing the hypothesis, and drawing conclusions. It also emphasizes the importance of communication in sharing results with the scientific community.

During an earthquake, where is the greatest motion felt on the surface?

Answers

That would be the epicenter. 

An airplane is flying with constant speed of 300 m/s along a horizontal circle with a radius of 15,000 m. if the lift force of the air on the wings is perpendicular to the wings, at what angle relative to the horizontal should the wings be banked?

Answers

31.5°
31.5°
31.5°
31.5°
31.5°
31.5°
31.5°
31.5°

Angle; θ ≈ 31. 5°

This question involves centripetal motion and angle of elevation.

We are told that the lift force of the air on the wings is perpendicular to the wings.

This means, from centripetal motion we can write the force as;

F•sin θ = mv²/r - - - (1)

Where θ is the angle relative to the horizontal if the wings are banked.

r is radius

v is speed

Similarly, resolving the force Component along the horizontal x-axis, we will have;

F•cos θ = mg  - - - (eq 2)

We are given radius and speed but we don't have force (F) and mass(M). Thus, we can eliminate them by dividing equation 1 by equation 2 to get;

(F•sin θ)/(F•cos θ) = (mv²/r)/mg

tan θ = v²/rg

Plugging in the relevant values L, we have;

tan θ = 300²/(15000 × 9.8)

tan θ = 0.6122

θ = tan^(-1) 0.6122

θ ≈ 31. 5°

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A driver in a car traveling at a speed of 26.8 m/s sees a deer 100 m away on the road. Calculate the minimum constant acceleration that is necessary of the car to stop without hitting the deer (assuming the deer does not move).


-4.20 m/s2


-1.75 m/s2


-2.89 m/s2


-3.59 m/s2

Answers

-3.5912m/s^2Use vf^2 = vi^2 + 2ax in your calculations, knowing vf, vi, and x. 

If the crate (drawn inside!) is moving at a constant speed in a straight line and the force applied is 310 N, what is the magnitude of the force of friction? 620 N, 155 N, 0 N, or 310 N ? ***not sure how to go about this:( thanks!!

Answers

If the object is moving at constant speed means acceleration is zero.

Then, you can use the second law of Newton, net force = mass * acceleration, to conclude that the net force on the object is nil.

That means that the force applided equals de force of friction in magnitud (of course in opposed direction).

force of friction - force applied = 0

Therefore: force of friction = force applided = 310 N.

Answer: 310 N

describe what would happen to the volume of gas if the pressure on it were decreased than the gases temperature were increased

Answers

Decreasing pressure on a gas will cause its volume to increase, as it isn't being forced into a smaller space. Increasing temperature causes the atoms in the gas to contain more energy, making them move around more. This too increases the volume.
So basically both would increase the volume of the gas. Hope this helps
Hope this helps you get the answer ur looking 4

The diagram shows a heat engine. In which area of the diagram is unusable thermal energy detected?
W
X
Y
Z

Answers

Nope, I disagree with the former answer. The answer is definitely Z. W area (boxed with red outline) is represented as the hot reservoir while Z area is the cold reservoir (boxed with blue outline). X area is the heat engine itself and Y area is the work produced from thermal energy from hot reservoir. Typically, all heat engines lose some heat to the environment (based from the second law of thermodynamics) that is symbolically illustrated by the lost energy in the cold reservoir. This lost thermal energy is basically the unusable thermal energy. The higher thermal energy lost, the less efficient your heat engine is. 

Z is the area of the diagram which has unusable thermal energy

detected.

What is Thermal energy?

This is also referred to as heat energy and it is responsible for

temperature differences in a body or area.

The Z region which is denoted by blue is referred to as the cold

region while the W region is the hot region. We know that since

heat is usually lost to the surroundings , then heat has been lost

to the Z region which is unusable and detected

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Which pair of graphs represent the same motion of an object

Answers

Option C depicts the same motion of an object in both position-time (x-t) and velocity-time (v-t) graphs. The straight line in x-t corresponds to constant velocity, mirrored by a horizontal line in v-t.

The pair of graphs that represents the same motion of an object is option C. In this pair, both graphs depict uniform motion with a constant positive velocity. The position-time graph (x-t) shows a straight line with a constant slope, indicating consistent motion in one direction.

The velocity-time graph (v-t) is a horizontal line at a positive value, confirming the constant velocity. These graphs align with the principles of uniform motion, where an object maintains a steady speed and moves without acceleration. The symmetry between the two graphs in option C ensures they correspond to the same motion characteristics.

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Final answer:

The pair of graphs that represent the same motion will illustrate equal vertical displacement over equal time intervals for both balls, regardless of their horizontal motions. One graph will show a constant horizontal displacement for the ball with initial horizontal velocity, while the other will have no such displacement for the ball at rest horizontally.

Explanation:

The question regarding which pair of graphs represent the same motion of an object relates to Physics, and the concept in focus is the independence of vertical and horizontal motions in two-dimensional motion.

According to the information provided, we are looking at a scenario with two balls.

One ball drops from rest while the other has an initial horizontal velocity. However, their vertical velocities and positions are identical over time, which illustrates that the vertical motion is unaffected by whether or not there is horizontal motion. Graphicals representations of such motions will show that the positions of the balls with respect to the vertical axis are the same when plotted against time.

Therefore, the graphs that represent their vertical motion will be the same (consistent vertical displacement over equal time intervals), while the horizontal motion of one ball will be represented as a constant horizontal displacement over time, and for the other ball at rest horizontally, the graph will show no horizontal displacement.

What is bluetooth's rate of transmission?

Answers

it depends

bluetooth 3.0 = 33ft (25 Mbit/s)

bluetooth 4.0 = 200 ft (25 Mbit/s)

bluetooth 5 = 800 ft (50 Mbit/s)








Which of the following best explains why it is important to clean up a liquid spill that occurs during a science experiment? options: A The student could lose points for spilling the liquid B Students can slip on the liquid C It could affect the results of the experiment D IT would make the class look untidy

Answers

the answer to this is C.

Answer:

Students could slip on the liquid.

Explanation:

What is the largest component of bog soil?

Answers

Organic matter, I think.

How do you calculate the speed of an object?

Answers

speed is calculated by finding how much distance is traveled and in how much time, then divide the distance by the time ! :)

Answer:

[tex]\huge \boxed{S=\frac{d}{t} }[/tex]

[tex]\rule[225]{225}{2}[/tex]

Step-by-step explanation:

The formula to find speed is as follows:

[tex]\Longrightarrow \ \ \displaystyle \sf speed =\frac{distance \ travelled }{time \ taken}[/tex]

[tex]\Longrightarrow \ \ \displaystyle S =\frac{d }{t}[/tex]

You divide the distance travelled by the time taken to find the speed.

[tex]\rule[225]{225}{2}[/tex]

An object at rest is suddenly broken apart into two fragments by an explosion one fragment acquires twice the kinetic energy of the other what is the ratio of their masses

Answers

First, we use the kinetic energy equation to create a formula: Ka = 2Kb 1/2(ma*Va^2) = 2(1/2(mb*Vb^2)) The 1/2 of the right gets cancelled by the 2 left of the bracket so: 1/2(ma*Va^2) = mb*Vb^2 (1) By the definiton of momentum we can say: ma*Va = mb*Vb And with some algebra: Vb = (ma*Va)/mb (2) Substituting (2) into (1), we have: 1/2(ma*Va^2) = mb*((ma*Va)/mb)^2 Then: 1/2(ma*Va^2) = mb*(ma^2*Va^2)/mb^2 We cancel the Va^2 in both sides and cancel the mb at the numerator, leving the denominator of the right side with exponent 1: 1/2(ma) = (ma^2)/mb Cancel the ma of the left, leaving the right one with exponent 1: 1/2 = ma/mb And finally we have that: mb/2 = ma mb = 2ma

A wave is propagating from left to right in a medium. The particles in the medium are also vibrating from left to right. What kind of wave does this describe?

Answers

Based on the direction of propagation compared to direction of vibration, waves are classified into:
1- Transverse waves: The direction of propagation of the wave is perpendicular to the direction of vibration of the medium particles.
2- Longitudinal waves: The direction of propagation of the wave is the same as the direction of vibration of the medium particles.

For the question we have here, since the direction of the wave is the same as the direction of vibration of particles, therefore, this wave is a longitudinal wave

Answer:

answer is A.

Explanation:

A ball is thrown horizontally from the top of a tall cliff. Neglecting air drag, what vertical distance will the ball have fallen after 3 seconds?

Answers

The ball will have fallen a vertical distance of 44.1 meters after 3 seconds.

To find the vertical distance the ball will have fallen after 3 seconds, we can use the equation for vertical displacement in free fall:

y = 0.5 * g * t²

where y is the vertical distance, g is the acceleration due to gravity, and t is the time.

The equation for vertical displacement is y = 0.5 * g * t².

Plugging in the values, we have:

y = 0.5 * 9.8 m/s² * (3 s)²

y = 0.5 * 9.8 m/s² * 9 s

y = 44.1 m

Therefore, the ball will have fallen a vertical distance of 44.1 meters after 3 seconds.

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The vertical distance a ball will fall after 3 seconds when thrown horizontally from a cliff can be calculated using the kinematic equation for gravity, resulting in 45 meters.

According to the physics of free-fall motion, the only acceleration acting on the ball is due to gravity, which is a constant 9.8 m/s² (though for the purpose of this problem, we approximate it to 10 m/s²).

The vertical distance fallen by the ball can be calculated using the kinematic equation for constant acceleration:

distance = 0.5 * acceleration * time²

Plugging in our values, we have:

distance = 0.5 * 10 m/s² * (3 s)²

distance = 0.5 * 10 * 9

distance = 5 * 9

distance = 45 meters

Thus, after 3 seconds, the ball will have fallen a vertical distance of 45 meters.

A(n)
is a material that takes in a wave when the wave hits it.

Answers

An Absorber is a material that takes in a wave when the wave hits it c;

Answer: Refractors and absorbers.

Explanation: Almost every material takes in (at least a fraction) of a wave when a wave hits it, where some frequencies or wavelengths may have a bigger percentage taken in.

For electromagnetic waves, a perfect conductor will only reflect the incident wave, and every other case will absorb a part and reflect others.

The type of materials that are "good" by absorbing/transmitting waves are called refractors.

There are other materials called absorbers, but those ones are used for "particles", and you may recall that the light, an electromagnetic wave, can also be viewed as a particle.

A plane travels 2.5 KM at an angle of 35 degrees to the ground, then changes direction and travels 5.2 km at an angle of 22 degrees to the ground. What is the magnitude and direction of the planes total displacement??

Answers

We can solve for the resultant x and y components by using the sine and cosine functions.

resultant x = 2.5 cos 35 + 5.2 cos 22 = 6.87 km

resultant y = 2.5 sin 35 + 5.2 sin 22 = 3.38 km

 

The resultant displacement is calculated using hypotenuse equation:

displacement = sqrt (6.87^2 + 3.38^2)

displacement = 7.66 km

 

The resultant angle is:

θ = tan^-1 (3.38 / 6.87)

θ = 26.20°

 

Therefore the magnitude and direction is:

7.66 km, 26.20° to the ground

Final answer:

To find the plane's total displacement, we calculate the horizontal and vertical components of each part of the journey, then combine these components. The magnitude is the hypotenuse of the triangle formed by the summed components, while the direction is the angle from the horizontal.

Explanation:

We can find the plane's total displacement by breaking the first and second parts of the journey into their respective horizontal and vertical components and then combining these components. Here's how we'll do it step-by-step:

Calculate the horizontal (x) and vertical (y) components of the first displacement using trigonometry:
x1 = 2.5 km * cos(35 degrees)y1 = 2.5 km * sin(35 degrees)Calculate the same for the second displacement:
x2 = 5.2 km * cos(22 degrees)y2 = 5.2 km * sin(22 degrees)Add the horizontal components together and the vertical components together to get the total displacement components:
x_total = x1 + x2y_total = y1 + y2Finally, calculate the magnitude and direction of the displacement vector:
Magnitude = sqrt(x_total^2 + y_total^2)Direction = atan(y_total/x_total) (in degrees)

The magnitude is the hypotenuse of the right triangle formed by the x_total and y_total components, and the direction is the angle that this vector makes with the positive x-axis, which is usually horizontal ground-level movement.

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An electron in the n=7 level of the hydrogen atom relaxes to a lower energy level, emitting light of 1005 nm. part a what is the value of n for the level to which the electron relaxed? express your answer as an integer.

Answers

Answer:

final relaxed state is m = 3

Explanation:

As we know that due to transition of electron the wavelength emitted is given as

[tex]\frac{1}{\lambda} = Rz^2(\frac{1}{m^2} - \frac{1}{n^2})[/tex]

now we know that

[tex]\lambda = 1005 nm[/tex]

now we have

[tex]\frac{1}{1005\times 10^{-9}} = 1.01\times 10^7(\frac{1}{m^2} - \frac{1}{49})[/tex]

now by solving above equation for m we will have

m = 3

so the final relaxed state is m = 3

Which statement describes the relationship between plants, animals, and the carbon cycle? Plants use carbon and release oxygen, and animals release carbon and use oxygen. Animals use carbon and release oxygen, and plants release carbon and use oxygen. Animals use carbon through respiration, and plants fix carbon through photosynthesis. Plants use carbon when they decompose, and animals release carbon when they decompose.

Answers

The correct answer is: 
A. Plants use carbon and release oxygen, and animals release carbon and use oxygen.

The statement that best describes the relationship between plants , animals and carbon cycle is : ( A ) Plants use carbon and release oxygen and animals release carbon and use oxygen.

Carbon cycle

In the carbon cycle plants absorb carbon dioxide from the atmosphere and energy from sunlight and water to produce its food ( photosynthesis ). during photosynthesis plants give back oxygen into the atmosphere which is inhaled by animals during respiration.

Animals take in oxygen while giving out carbon dioxide as  a waste product.

Hence we can conclude that the correct statement is plants use carbon and release oxygen and animals release carbon and use oxygen.

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Which of the following will happen when the force with which an object pushes down on the ground is equal and opposite to the force with which the ground pushes it up?
Object will move up
Object will move down
Object will move sideways
Object will remain stationary

Answers

I believe it is D, although I do not fully understand what the question is asking. Is it saying the ground has an equal force to the push?

When forces are balanced, the object remains stationary.

When the force with which an object pushes down on the ground is equal and opposite to the force with which the ground pushes it up, the object will remain stationary. This is because the forces are balanced, resulting in no net force and therefore no motion.

The sun radiates most strongly at a wavelength of about 550 nm. a star that radiated most strongly at 400 nm would be

Answers

550 nm is in the visible spectrum. 400 nm is in the ultra-violet spectrum.  The shorter the wavelength, the bigger the energy of the light photon emitted. Therefore a star that emits 400 nm photons, is hotter than the Sun. A star that is hotter is either bigger than the Sun (and has about the same age), either younger than the Sun (and has about the same dimension). 
Therefore a star that radiates at 400 nm would be hotter, bigger and younger than the Sun.  

A star that radiates most strongly at 400 nm, a shorter wavelength than the Sun's peak at 550 nm, would be hotter according to Wein's Law.

The question concerns the relationship between the temperature of a star and the wavelength at which it radiates most strongly, based on Wein's Law. The Sun, with a surface temperature of approximately 5,800 K, radiates most strongly at about 550 nm, which is in the visible spectrum near the green-yellow part. A star that radiates most strongly at 400 nm, which is closer to the violet part of the spectrum, would be hotter than the Sun.

According to Wein's Law, the peak wavelength of radiation emission (a) is inversely related to the temperature of the emitting body (T), such that a * T = constant (where the constant is approximately 3 x 106 nm·K). Since 400 nm is shorter than 550 nm, the star with a peak emission at 400 nm must have a higher temperature than the Sun to satisfy the inverse relationship described by Wein's Law.

Which of the following is an example of a population?

a.
the cats and dogs in your neighborhood
b.
the bushes and grass in a park
c.
the rocks in a rock collection
d.
the gray wolves in a forest
((hurry))

Answers

D the gray wolves in the forest.is the correct answer.

D is the answer because it describes a single species in a specific environment.


When you see steam fog or clouds you are seeing water on the liquid state t or f?

Answers

The statement is false that wherever you see the stem, fog, or clouds you are seeing water in a liquid state.

What is a Cloud?

In the Earth's atmosphere, clouds are visible collections of minute water droplets or ice crystals. The size, form, and color of clouds vary widely. They can appear big and lumpy or delicate and airy.

Because the small water droplets inside of clouds are closely packed, they typically have a white appearance because they reflect most of the sunlight that strikes them. Our eyes interpret the combined spectrum of sunlight as white. Clouds become darker as rain approaches because the water vapor is condensing into raindrops and widening the spaces between them. It reflects less light. The rain cloud looks to be gray or black.

Therefore, the given statement is false.

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Read the passage about the fluoridation of drinking water. Since the early 1960s, fluoride has been added to many sources of drinking water to prevent cavities in teeth. This is called fluoridation. There are some who say that this is unnecessary and increases the risk of cancer. In 1993, the Subcommittee on Health Effects of Ingested Fluoride of the National Research Council, part of the National Academy of Sciences, conducted an extensive study about the link between fluoridated drinking water and increased cancer risk. The study included data from more than 50 human disease studies and six animal studies. The Subcommittee concluded that none of the data showed a link between fluoridated drinking water and cancer. A 1999 report by the CDC supported these findings. The CDC report concluded that studies so far have produced "no credible evidence” of a link between fluoridated drinking water and an increased risk for cancer. Which information makes this article reliable? Fluoride has been added to drinking water since the 1960s. Some people doubt the necessity of fluoridation. More than 50 studies were conducted. Fluoride has been found to prevent cavities in teeth.

Answers

More than 50 studies were conducted.

the answer is A. more than 50 studies were conducted and C. the us public health service was responsible for part of the study.

If an atom has 34 protons and 40 neutrons, what is its atomic number?
A. 34
B. 74
C. 40
D. 6

Answers

The  atomic number is 34. (A)

the atomic number of an atom is equal to the number of protons the atom has


the answer would be A. 34

Describe the gases that are emitting from a volcanic eruption. What affect do they have on the atmosphere and planet?

Answers

The types of gas expelled from a volcanic eruption include water vapor (the most abundant of volcanic gas), carbon dioxide, hydrogen sulfide, hydrogen halides and sulfur dioxide.  When volcanoes erupt, they have a negative effect on the atmosphere and planet because all of the gases emitted (except water vapor) are hazardous to people, animals, plants, and property.  These gases can add to the Greenhouse Effect by causing an increase in temperature.  Some particles such as ash and sulfur dioxide act as an exact opposite by creating a cooling effect, reflecting sunlight away from Earth.  There is also evidence that proves these eruptions can affect short-term weather. 
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