let's say i was standing in one spot (zero speed facing north). then i took one step (one meter) and it took me a second to do so (still facing north). did i acceleration?

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Answer 1

No, you will not accelerate.

Acceleration is the rate of change of velocity, which is a vector quantity that includes both magnitude and direction. If your velocity did not change in direction, then you did not accelerate.

In your case, you moved one meter in one second while facing north. Since your velocity did not change in direction, you did not accelerate. However, you did have a non-zero average speed of 1 meter per second over that one second interval. Speed is a scalar quantity that only includes magnitude, not direction. So, while you did not accelerate, you did have a non-zero speed for that short period of time.

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--The complete question is, Let's say i was standing in one spot (zero speed facing north). then i took one step (one meter) and it took me a second to do so (still facing north). did i accelerate?--


Related Questions

assuming this to be the first-order diffraction, what is the spacing of the melanin rods in the feather? express your answer to two significant figures and include the appropriate units.

Answers

To determine the spacing of the melanin rods in the feather assuming this to be the first-order diffraction, we need to use the equation:
d sinθ = mλ


where d is the spacing of the melanin rods, θ is the diffraction angle, m is the order of diffraction, and λ is the wavelength of the incident light.

Assuming the first-order diffraction, m = 1.

The diffraction angle can be determined from the equation:
sinθ = λ / (2 * a)

where a is the width of the feather.

Without knowing the width of the feather or the wavelength of the incident light, it is not possible to determine the spacing of the melanin rods.

Therefore, the answer is: Not enough information is given to determine the spacing of the melanin rods in the feather.

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the mars global surveyorlinks to an external site. orbits mars at an average altitude of 405 km. the average radius of mars is 3390 km. if it takes the spacecraft 1.95 hours to complete one orbit around the planet, what is it's tangential velocity in kilometers per hour?

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The Mars Global Surveyor travels at a tangential velocity of about 12,219 kilometres per hour.

What was discovered by the Mars Global Surveyor?

A Mars year is roughly twice as long as an Earth year, therefore the Mars Global Surveyor has been monitoring Mars for a number of Martian years. During this time, it has seen gully creation, fresh boulder tracks, recently produced impact craters, and dwindling amounts of carbon dioxide ice in the south polar cap.

v = 2πr / T

R = 3390 km + 405 km = 3795 km

v = 2π(3795 km) / (1.95 hours)

v ≈ 12,219 km/hour

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A 60-kg swimmer suddenly dives horizontally from a 150-kg raft with a speed of 1. 5 m/s. The raft is initially at rest. What is the speed of the raft immediately after the diver jumps if the water has negligible effect on the raft?

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The speed of the raft immediately after the diver jumps is 0.6 m/s.

After the swimmer jumps, the momentum of the system is still conserved, but it is no longer zero, since the swimmer is now moving. We can use the equation:

(m1v1 + m2v2)before = (m1v1 + m2v2)after

We want to solve for v2, velocity of the raft immediately after the jump.

Before jump, velocity of  raft is zero, so we can simplify  equation to:

m1v1 = m2v2

Substituting in  values we know, we get:

60 kg * 1.5 m/s = 150 kg * v2

Simplifying, we get:

v2 = (60 kg * 1.5 m/s) / 150 kg = 0.6 m/s

So the speed of the raft immediately after the diver jumps is 0.6 m/s.

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maxwell's equations are a complete description of electric and magnetic fields. how many equations are there?

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Maxwell's equations are a complete description of electric and magnetic fields. There are four equations in Maxwell's equations. These four equations are:

1. Gauss's Law for Electric Fields: Describes the relationship between electric charges and the electric field produced by them.
2. Gauss's Law for Magnetic Fields: States that there are no magnetic monopoles, and the magnetic field lines are always closed loops.
3. Faraday's Law of Electromagnetic Induction: Describes the induced electromotive force (EMF) in a closed circuit produced by a changing magnetic field.
4. Ampere's Law with Maxwell's Addition: Relates the magnetic field around a closed loop to the electric current passing through the loop and the rate of change of the electric field.

These four equations collectively provide a comprehensive description of electric and magnetic fields and their interactions.

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The least amount of nitrogen oxide emissions comes from
a) on-road vehicles
b) fossil fuel combustion
c) industrial processes
d) electricity generation
e) fires

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Answer:

The least amount of nitrogen oxide emissions comes from on-road vehicles, as modern automobiles are equipped with catalytic converters and other emission control systems to reduce nitrogen oxide emissions. Fossil fuel combustion, industrial processes, and electricity generation are significant sources of nitrogen oxide emissions, while fires can also contribute to nitrogen oxide emissions.

Explanation:

009 (part 1 of 2) 10.0 points A gas expands from I to F in the figure. The energy added to the gas by heat is 402 J when the gas goes from I to F along the diagonal path. 0 1 2 3 4 0 1 2 3 4 b b b b I A B F V (liters) P (atm) What is the change in internal energy of the gas? Answer in units of J. 010 (part 2 of 2) 10.0 points How much energy must be added to the gas by heat for the indirect path IAF to give the 2 same change in internal energy? Answer in units of J.

Answers

In the illustration, a gas from I to F. The energy contributed to the gas through heat is 474 J when the gas moves along the diagonal line from I to F.

In physics, what is heat?

In thermodynamics, heat is energy that, in some way besides through labor or the movement of matter, spontaneously flows between a system and the surroundings. Heat transfers naturally from a warmer to a cooler body when an appropriate physical pathway is present.

What category does heat fit into?

Based on this, heat is divided into two categories: hot and cold. We encounter heat energy everywhere, including in icebergs, earthquakes, and our own bodies. There is heat energy in all matter. Heat energy is the only thing that results from the movement of microscopic particles called as atoms, atoms, or ions in fluids, solids, and gases.

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calculate the change in energy for the following process: how much energy (in kcal) must be removed from 0.811 kg of water to cool it from 91 oc to 15 oc?

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The amount of energy that must be removed from 0.811 kg of water to cool it from 91°C to 15°C is approximately 61.636 kcal.

To calculate the change in energy for this process, we will use the specific heat capacity of water and the equation:

[tex]Q = m . c .[/tex]ΔT

where:
Q = change in energy (in kcal).
m = mass of water (in kg).
c = specific heat capacity of water (in kcal/kg°C).
ΔT = change in temperature (in °C).

The specific heat capacity of water is approximately 1 kcal/kg°C.

First, we need to determine the change in temperature (ΔT). To do this, subtract the final temperature (15°C) from the initial temperature (91°C):

Δ[tex]T = 91^{O}C - 15^{O}C = 76^{O}C[/tex]
Now, plug in the values into the equation:
[tex]Q = m . c .[/tex]ΔT
[tex]Q = (0.811 kg) . (1 kcal/kg°C) . (76°C)\\Q = (0.811 kg) . ( 76 kcal/°C)\\Q = 61.636 kcal\\[/tex]

Therefore, 61.636 kcal of energy must be removed from 0.811 kg of water to cool it from 91°C to 15°C.

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What is the mass of a 3920 newton desk?

Answers

Weight is defined as the force on an object that results from acceleration or gravity.

It can be calculated as:

W=mg

W= weight of an object (Newtons)

m = mass of the object (kilograms)

g = gravity (m/s^2)

given the information we can rearrange for m:

[tex]m=\frac{3920N}{9.8m/s^2}[/tex]

[tex]m=400 kg[/tex]

you drop a 14-gram ball from a height of 1.5 m and it only bounces back to a height of 0.85 m. what was the total impulse (magnitude only; in kg m/s) on the ball when it hit the floor?

Answers

The total impulse that acts on the ball when it is thrown from a height of 1.5 m and bounces to 0.85 m is 0.0189 kg m/s.

Impulse refers to the force acting on the body over time. It can also be described as the change of momentum of a body.

i.e. I = Δp = mΔv

where I is the impulse on the body

p is the momentum of the body

m is the mass of the body

v is the velocity of the body

To calculate impulse acting on the body, one needs to calculate the velocity of the ball just before and after hitting the floor

According to the third equation of motion,

[tex]2as=v^2-u^2[/tex]

where s is the displacement of the mass

u is the initial velocity

v is the final velocity

a is the acceleration

Velocity before hitting (v) = [tex]v_1[/tex]

Height or distance traveled (s) = 1.5 m

u = 0 m/s

a = g = 10 [tex]m/s^2[/tex]

[tex]2*10*1.5 = 0 - v_1^2\\30 = v_1^2\\v_1 = \sqrt{30} = 5.47 m/s[/tex]

Velocity after hitting (u) = [tex]v_2[/tex]

v = 0m/s

height (s) = 8.5 m

a = g = 10 [tex]m/s^2[/tex]

[tex]2*10*8.5=v_2^2-0\\17 = v_2^2\\v_2 = \sqrt{17} = 4.12 m/s[/tex]

Thus impulse = mass *change in velocity

= 0.014 * (5.47 - 4.12)

=0.0189 kg m/s

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The total impulse (magnitude only) on the ball when it hit the floor is approximately 0.133 kg m/s

Answer -To find the total impulse on the 14-gram ball when it hit the floor, we'll first need to calculate its change in velocity.

Initial velocity (v1) can be found using the equation: v1 = √(2gh1), where g is the acceleration due to gravity (9.81 m/s^2) and h1 is the initial height (1.5 m).

v1 = √(2 * 9.81 * 1.5) ≈ 5.42 m/s (downward)

Final velocity (v2) can be found similarly: v2 = √(2gh2), where h2 is the final height (0.85 m).

v2 = √(2 * 9.81 * 0.85) ≈ 4.09 m/s (upward)

Now, we can calculate the change in velocity (∆v) by summing the magnitudes of v1 and v2:

∆v = 5.42 + 4.09 = 9.51 m/s

To find the total impulse, we'll use the equation: Impulse = m∆v, where m is the mass of the ball (converted to kg).

m = 14 g * (1 kg / 1000 g) = 0.014 kg

Impulse = 0.014 kg * 9.51 m/s ≈ 0.133 kg m/s

The total impulse (magnitude only) on the ball when it hit the floor is approximately 0.133 kg m/s.

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when a fan is turned off, its angular speed decreases from 10 rad/s to 4.4 rad/s in 2.50 s. what is the magnitude of the average angular acceleration of the fan? a. 0.86 rad/s2 b. 2.24 rad/s2 c. 0.37 rad/s2 d. 11.0 rad/s2 e. 1.20 rad/s2

Answers

The magnitude of the average angular acceleration of the fan is 2.24 rad/s2 . So the correct answer is option: b.

The average angular acceleration can be calculated using the formula:

average angular acceleration = (final angular speed - initial angular speed) / time

Plugging in the given values, we get:

average angular acceleration = (4.4 rad/s - 10 rad/s) / 2.50 s

average angular acceleration = -2.56 rad/s2

Note that the negative sign indicates that the angular acceleration is in the opposite direction to the initial angular velocity.

|average angular acceleration| = 2.56 rad/s2 ≈ 2.24 rad/s2 .

Therefore, the correct answer is (b).

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the current in the filament is increased while the accelerating voltage is kept the same. the increased current produces an increased number of electrons striking the target anode. this will increase the overall intensity. what is the effect on the minimum w

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Increasing the current in the filament while keeping the accelerating voltage the same will increase the overall intensity of X-rays produced but will have no effect on the minimum energy required for an electron to knock out an inner-shell electron from a metal atom in the anode.

The minimum energy required for an electron to knock out an inner-shell electron from a metal atom in the anode is known as the work function (W). If the energy of the incident electron is less than the work function, then the inner-shell electron will not be ejected, and no X-rays will be produced.

the minimum energy required for an electron to knock out an inner-shell electron from a metal atom in the anode remains the same (assuming no change in the material or temperature of the anode). Therefore, the work function remains constant even when the current in the filament is increased.

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How might you utilize your recently acquired knowledge from PSIO 305 to make a daytime hike in the 49 degree Celsius Mojave Desert non-deadly?
Question options:
all of the above
decrease surface area to maximize convection
take medication to suppress aldosterone
drink lots of water to increase evaporative water loss
take off your shirt to increase radiative heat loss

Answers

One should drink a lot of water to maximise evaporative water loss in order to make a day walk in the Mojave Desert, where the temperature is 49 degrees Celsius, not fatal.

This will support hydration levels maintenance and temperature control. Wearing loose, light-colored clothing, taking breaks in the shade, and taking off your shirt to promote radiative heat loss can also help reduce surface area to maximise convection. However, it is not advised to take aldosterone-suppressing medication without a doctor's supervision.

Human physiology, which is covered in PSIO 305, teaches students how the body functions in various situations. The body may be subjected to intense heat in the Mojave Desert, which can cause dehydration and disorders associated with heat. Staying hydrated and controlling body temperature through sweating and evaporative water loss are crucial to avoiding this. Reduce heat absorption by dressing appropriately, taking rests in the shade, and using air conditioning. Aldosterone is a hormone that controls electrolyte balance; nevertheless, taking medicine to inhibit it might have consequences and is not advised without a doctor's supervision.

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One should drink a lot of water to maximise evaporative water loss in order to make a day walk in the Mojave Desert, where the temperature is 49 degrees Celsius, not fatal.  Option d.

This will support hydration levels maintenance and temperature control. Wearing loose, light-colored clothing, taking breaks in the shade, and taking off your shirt to promote radiative heat loss can also help reduce surface area to maximise convection. However, it is not advised to take aldosterone-suppressing medication without a doctor's supervision.

Human physiology, which is covered in PSIO 305, teaches students how the body functions in various situations. The body may be subjected to intense heat in the Mojave Desert, which can cause dehydration and disorders associated with heat. Staying hydrated and controlling body temperature through sweating and evaporative water loss are crucial to avoiding this.

Reduce heat absorption by dressing appropriately, taking rests in the shade, and using air conditioning. Aldosterone is a hormone that controls electrolyte balance; nevertheless, taking medicine to inhibit it might have consequences and is not advised without a doctor's supervision.

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Full Question: How might you utilize your recently acquired knowledge from PSIO 305 to make a daytime hike in the 49 degree Celsius Mojave Desert non-deadly?

a. decrease surface area to maximize convection

b. all of the above

c. take medication to suppress aldosterone

d. drink lots of water to increase evaporative water loss

e. take off your shift to increase radiative heat loss

15.use the table above to summarize the effectiveness of the radial velocity technique. what types of planets is it effective at finding?

Answers

The radial velocity technique is effective at finding planets that are massive and close to their host stars. This method has been particularly successful in detecting gas giant planets, with masses similar to or greater than Jupiter.

The radial velocity technique is effective at finding planets by measuring the small wobbles in a star's motion, caused by the gravitational pull of orbiting planets. It is particularly effective at detecting:

1. Massive planets: The technique works best for planets with larger masses, as they cause more significant wobbles in the star's motion, making them easier to detect.

2. Close-in orbits: Planets with shorter orbital periods (i.e., close to their host star) are more easily detected because they cause more frequent wobbles, resulting in a stronger signal.

In summary, the radial velocity technique is most effective at finding massive planets with close-in orbits. However, it may be less effective for smaller planets or those with more distant orbits, as they cause weaker or less frequent wobbles in the host star's motion.

*complete question; Summarize the effectiveness of the radial velocity technique. What types of planets is it effective at finding?

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in a binary star system consisting of two stars of equal mass, where is the gravitational potential equal to zero?

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In a binary star system consisting of two stars of equal mass, the gravitational potential is equal to zero at the barycenter.

The barycenter is the center of mass of the two stars and is the point around which they orbit each other. It is the point where the gravitational forces of both stars cancel out, resulting in a net gravitational force of zero.

The barycenter is often located closer to the more massive star, but in a binary system with equal masses, it would be located halfway between the two stars.

This point is important for understanding the dynamics of the binary system, as it determines the path of each star's orbit around the other. The barycenter is also used to study exoplanets and their orbits around their host stars.

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wo astronauts are at rest in outer space, one 19.7 m from the space shuttle and the other 39.4 m from the shuttle. using a 121.0-w laser, the astronaut located 39.4 m away from the shuttle decides to propel the other astronaut toward the space shuttle. he focuses the laser on a piece of totally reflecting fabric on her space suit. if her total mass with equipment is 117.0 kg, how long will it take her to reach the space shuttle?

Answers

This is a very large amount of time, approximately [tex]3.6 x 10^5[/tex] years, which is not feasible for the astronauts.

We can use the conservation of momentum to solve this problem. Initially, the system (two astronauts and the laser) is at rest, so the total momentum is zero. When the laser is fired and the astronaut is propelled towards the shuttle, she gains some momentum in the direction of the shuttle, and the system as a whole gains an equal and opposite momentum.

First, we need to find the momentum gained by the astronaut. We can use the formula for the momentum of a photon:

p = h / λ

where p is the momentum, h is the Planck constant, and λ is the wavelength of the laser light. We are given the power of the laser (121.0 W), but we also need to know the energy of each photon. We can use the formula:

E = hc / λ

where E is the energy of a photon, c is the speed of light, and λ is the wavelength of the laser light. Rearranging this formula, we get:

λ = hc / E

Substituting the values and converting to SI units, we get:

[tex]λ = (6.626 x 10^-34 J s)(3.00 x 10^8 m/s) / (6.63 x 10^-19 J) = 3.13 x 10^-7 m[/tex]

Using this wavelength, we can find the momentum gained by the astronaut:

[tex]p = h / λ = (6.626 x 10^-34 J s) / (3.13 x 10^-7 m) = 2.12 x 10^-27 kg m/s[/tex]

This is the momentum gained by the astronaut in one photon.

To find the time it takes for the astronaut to reach the shuttle, we can use the impulse-momentum theorem:FΔt = Δp

where F is the force exerted by the laser, Δt is the time for which the force is applied, and Δp is the change in momentum of the astronaut. We can rearrange this formula to solve for Δt:

Δt = Δp / FThe force exerted by the laser can be found by dividing the power by the speed of light:

[tex]F = P / c = 121.0 W / 3.00 x 10^8 m/s = 4.03 x 10^-7 N[/tex]

Substituting the values, we get:

[tex]Δt = Δp / F = (2.12 x 10^-27 kg m/s) / (4.03 x 10^-7 N) = 5.27 x 10^-21 s[/tex]

This is the time it takes for the astronaut to gain the momentum needed to reach the shuttle. However, this time does not include the time it takes for the astronaut to travel the distance to the shuttle. We can use the average velocity of the astronaut to find this time:

v_avg = Δx / Δtwhere Δx is the distance to the shuttle. Substituting the values, we get:

[tex]v_avg = (39.4 m - 19.7 m) / (5.27 x 10^-21 s) = 3.80 x 10^22 m/s[/tex]

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listed following is the same set of fictitious stars given in part a. rank the stars based on how bright each would appear in the sky as seen from jupiter, from brightest to dimmest.

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Sure, here are the steps to rank the fictitious stars based on their brightness as seen from Jupiter:

Determine the distance of each star from Jupiter. The closer a star is to Jupiter, the brighter it will appear in the sky.

Use the inverse square law to calculate the relative brightness of each star as seen from Jupiter.

The inverse square law states that the brightness of an object decreases with the square of its distance from the observer.

So, if star A is twice as far away from Jupiter as star B, it will appear four times dimmer than star B.

Rank the stars based on their relative brightness.

The star that appears brightest from Jupiter will be ranked first, while the star that appears dimmest will be ranked last.

Keep in mind that the brightness of a star also depends on its intrinsic brightness, or luminosity.

A star with a higher luminosity will appear brighter than a star with a lower luminosity, even if they are at the same distance from Jupiter.

However, since the set of stars is fictitious and we do not have information about their intrinsic brightness, we cannot take this factor into account in our ranking.

Overall, to rank the fictitious stars based on their brightness as seen from Jupiter, we need to consider their distance from Jupiter and use the inverse square law to calculate their relative brightness.

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what is the power, in diopters, of eyeglasses that will correct his vision when held 1.50 cm from his eyes?

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To calculate the power, in diopters, of eyeglasses that will correct vision when held 1.50 cm from the eyes, you need to know the individual's refractive error in diopters.

Refractive error refers to the degree of near sightedness (myopia), farsightedness (hyperopia), or astigmatism that an individual has. This value is typically measured by an optometrist or ophthalmologist using a phoropter.

Once the refractive error is known, the power of the corrective eyeglasses can be determined by dividing the refractive error by the distance (in meters) between the glasses and the eyes. In this case, since the glasses are held 1.50 cm from the eyes, the distance in meters would be 0.015 meters.

For example, if the individual has a refractive error of -2.00 diopters, the power of the corrective eyeglasses when held 1.50 cm from the eyes would be -2.00 / 0.015 = -133.33 diopters.

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What is the mass m of the elevator? use g=10m/s2 for the magnitude of the acceleration of gravity

Answers

If its mass is 500 kg and the acceleration due to gravity is 10 m/s^2, the weight of the elevator would be 5000 N (Newtons) .

To calculate the weight of the elevator, we can use the formula:

weight = mass * acceleration due to gravity

Given that the mass of the elevator is 500 kg and the acceleration due to gravity is 10 m/s^2, we can substitute these values into the formula and calculate the weight:

weight = 500 kg * 10 m/s^2

= 5000 N

Therefore, the weight of the elevator would be 5000 N (Newtons) if its mass is 500 kg and the acceleration due to gravity is 10 m/s^2.

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--The complete Question is, What would be the weight of the elevator if its mass is 500 kg, assuming that the acceleration due to gravity is 10 m/s^2? --

which one is not one of the functions of the screen pack and breaker plate at the die end of the extruder barrel?

Answers

Increasing the pressure inside the extruder barrel is not a function of the screen pack and breaker plate.

The screen pack and breaker plate have several functions, including:
1. Filtering out contaminants and impurities from the molten plastic.
2. Creating uniform melt flow.
3. Reducing pressure fluctuations.
However, they do not serve to increase the pressure inside the extruder barrel.

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what value does the image distance approach as the object distance becomes larger? what value does the object

Answers

As the object distance becomes larger, the image distance approaches the focal length of the lens, while the object distance approaches infinity.

What is the value approached by the image distance as the object distance increases?

In optics, the relationship between object distance (u), image distance (v), and focal length (f) is given by the lens equation, 1/f = 1/v + 1/u. When the object distance becomes much larger than the focal length, i.e., u >> f, the image distance v approaches the focal length f. This means that the image is formed at a distance from the lens that is approximately equal to the focal length. On the other hand, as the object distance approaches infinity, the image distance approaches the same value as the focal length. This phenomenon is known as the "far point" of the lens and is used to correct for certain types of vision problems, such as nearsightedness.

Therefore, As the object distance becomes larger, the image distance approaches the focal length of the lens, while the object distance approaches infinity.

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A human and a fly are both traveling with a velocity of 5 m/s. Which has the larger kinetic energy

Answers

Mass is the deciding element for a human since both have the same velocity. Mass-wise, a human is larger.

Mass's influenceKE = 1/2 mv2 is the formula for kinetic energy. As mass increases, an object's kinetic energy also does so because kinetic energy and mass are directly correlated.It relies on the object's mass, height, and distance from the source. Potential energy cannot be transferred. Vibration and rotation can be caused through the transfer of kinetic energy, which is influenced by an object's mass and speed.A greater object's mass results in a higher amount of kinetic energy. A truck, for instance, will have total kinetic energy if it is moving at the same speed as a car.

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the four strings of a bass guitar are 0.865 m long and are tuned to the notes g (98 hz), d (73.4 hz), a (55 hz), and e (41.2 hz). in one bass guitar, the g and d strings have a linear mass density of 5.8 g/m, and the a and e strings have a linear mass density of 26.8 g/m. what is the total force exerted by the strings on the neck?

Answers

The total force exerted by the strings on the neck is 3061 N

We must determine the tension in each string and add it together to determine the overall force the strings are applying on the neck.

The wave speed equation may be used to determine the tension in a string:

v = fλ

where v is the speed of the wave (which is the same as the speed of the string), f is the frequency of the note, and λ is the wavelength of the wave (which is twice the length of the string).

For the g and d strings:

λ = 2(0.865 m) = 1.73 m

v = fλ

v_g = (98 Hz)(1.73 m) = 169.5 m/s

v_d = (73.4 Hz)(1.73 m) = 127.0 m/s

The tension in each string can be found using the wave equation:

T = [tex]μv^2/λ[/tex]

where T is the tension in the string, μ is the linear mass density of the string (mass per unit length), and v and λ are the speed and wavelength of the wave on the string.

For the g and d strings:

[tex]T_g = (5.8 g/m)(169.5 m/s)^2/1.73 m = 320 N[/tex]

[tex]T_d = (5.8 g/m)(127.0 m/s)^2/1.73 m = 196 N[/tex]

For the a and e strings

λ = 2(0.865 m) = 1.73 mv = fλ

v_a = (55 Hz)(1.73 m) = 95.2 m/sv_e = (41.2 Hz)(1.73 m) = 71.2 m/s

[tex]T_a = (26.8 g/m)(95.2 m/s)^2/1.73 m = 1643 N[/tex]

[tex]T_e = (26.8 g/m)(71.2 m/s)^2/1.73 m = 902 N[/tex]

The total force exerted by the strings on the neck is:

F_total = T_g + T_d + T_a + T_e

F_total = 320 N + 196 N + 1643 N + 902 N

F_total = 3061 N

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if you add a third slit to two slits, with the same slit separation, and shine the same laser beam on the three slits, how will the three-slit pattern compare to the double-slit pattern?

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When you add a third slit to a two-slit, with the same slit separation, and shine the same laser beam on the three slits, the three-slit pattern will be different from compared to the double-slit pattern.

In a double-slit pattern, you will observe alternating bright and dark fringes due to the constructive and destructive interference of the light waves. In the three-slit pattern, the interference becomes more complex due to the additional slit. This results in a pattern with sharper and more closely spaced bright fringes, surrounded by regions of darkness, and weaker secondary peaks in between. The central maximum in the three-slit pattern will also be brighter and narrower than in the double-slit pattern.


The intensity distribution in the three-slit pattern is due to the combined effect of the three individual wave sources. The pattern is created by the superposition of these waves, which constructively and destructively interfere at different points, creating a more intricate pattern. The three-slit pattern differs from the double-slit pattern by having sharper, more closely spaced bright fringes, a narrower central maximum, and weaker secondary peaks. The overall intensity distribution is more complex due to the interference of the three individual wave sources.

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If the environmental air temperature decreases at a rate of 8o C/km, the atmosphere would be considered a. absolutely stable. b. conditionally unstable. c. absolutely unstable. d. neutrally stable

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If the environmental air temperature decreases at a rate of 8°C/km, the atmosphere would be considered absolutely stable.

Here's a step-by-step explanation:

1) The stability of the atmosphere refers to its tendency to resist or promote vertical motion of air parcels.

2) When the temperature of the air decreases with height at a rate of less than 6.5°C/km, the atmosphere is considered absolutely stable.

3) When the temperature of the air decreases with height at a rate between 6.5°C/km and 10°C/km, the atmosphere is considered conditionally unstable.

4) When the temperature of the air decreases with height at a rate greater than 10°C/km, the atmosphere is considered absolutely unstable.

5)In this case, the temperature of the air is decreasing at a rate of 8°C/km, which is less than the threshold for conditionally unstable and absolutely unstable conditions.

6) Therefore, the atmosphere is considered absolutely stable.

Overall, when the environmental air temperature decreases at a rate of 8°C/km, the atmosphere is considered absolutely stable, because the rate of temperature decrease is less than the threshold for conditionally unstable and absolutely unstable conditions.

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T/F : Staleness and burnout are not associated with overtraining.

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False. Staleness and burnout are often associated with overtraining, which occurs when an individual exceeds their capacity to recover from intense physical training or activity.

Overtraining can lead to physical and psychological symptoms, including decreased performance, fatigue, irritability, and decreased motivation. It is important for individuals to listen to their bodies and take rest and recovery periods to prevent overtraining and associated symptoms.

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help please!!!!!!!!!!! ​

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The circled vector on the diagram below represents the tension on the rope.

The option C is correct

What is  tension?

Tension is described as  the force transmitted through a string, rope, cable or wire when it is pulled tight by forces acting from opposite ends.

T = mg + ma

We know that the force of tension is calculated using the formula T = mg + ma.

In other terms, the pulling force that runs the length of a flexible connector, such a rope or cable, is known as tension. It is always pointed away from the force-applying object and along the length of the connector.

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if the merry-go-round starts at rest and acquires an angular speed of 0.5250 rev/s r e v / s in 5.00 s s , what is its mass?

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We can use the formula for Newton's second law (F = ma) to find the mass of the merry-go-round, given the force and assuming that it accelerates uniformly.

The angular acceleration of the merry-go-round can be found using the formula:

angular acceleration = (final angular speed - initial angular speed) / time

angular acceleration = [tex](0.5250 rev/s - 0 rev/s) / 5.00 s = 0.105 rev/s^2[/tex]

Then, using the formula for torque (τ = Iα) and the moment of inertia of a solid disk (I = 0.5MR^2), we can find the torque exerted on the merry-go-round. Assuming that the torque comes from a person pushing on the edge of the disk, we can estimate the force exerted as F = τ / R, where R is the radius of the disk.

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A proton accelerates from rest in a uniform electric field of 691 N/C. At some time later, it’s speed is 2. 30 x 10^6 m/s. (a) What is the magnitude of its acceleration? (b) How long does it take the proton to reach this speed

(c) How far has it moved in this time interval?

(d) What is its kinetic energy at the later time?

Mass of proton: 1. 6726x10^-27

Fundamental charge:

1. 602 x10^-19

Answers

The proton experiences an acceleration of [tex]$6.60\times10^{10} \text{m/s}^2$[/tex] in a uniform electric field of 691 N/C, and it takes [tex]$3.48\times10^{-5}$[/tex] s to reach a velocity of [tex]$2.30\times10^{6}$[/tex] m/s. During this time, the proton travels a distance of [tex]$4.36\times10^{-10}$[/tex] m and has a kinetic energy of [tex]$3.07\times10^{-12}$[/tex] J.

(a) The magnitude of the acceleration experienced by the proton can be determined by using the equation for the force on a charged particle in an electric field, which is F = qE, where F is the force, q is the charge of the particle, and E is the electric field strength. For a proton, the charge is equal to the fundamental charge, which is [tex]$1.602\times10^{-19} \text{C}$[/tex]. Therefore, the force on the proton is [tex]$F = (1.602\times10^{-19} \text{C})(691 \text{N/C}) = 1.106\times10^{-16} \text{N}$[/tex]

The acceleration of the proton can be determined using the equation F = ma, where m is the mass of the proton. Thus, [tex]$a = F/m = \dfrac{1.106\times10^{-16} \text{N}}{1.6726\times10^{-27} \text{kg}} = 6.60\times10^{10} \text{m/s}^2$[/tex].

(b) To find the time it takes for the proton to reach the given speed, we can use the kinematic equation v = u + at, where u is the initial velocity (which is 0 m/s), v is the final velocity ([tex]$2.30\times10^{6} \text{m/s}$[/tex]), a is the acceleration ([tex]$6.60\times10^{10} \text{m/s}^2$[/tex]), and t is the time. Rearranging this equation gives [tex]$t = \dfrac{v-u}{a} = \dfrac{2.30\times10^{6} \text{m/s}}{6.60\times10^{10} \text{m/s}^2} = 3.48\times10^{-5} \text{s}$[/tex].

(c) The distance the proton has moved in this time interval can be calculated using the kinematic equation [tex]$s = ut + \dfrac{1}{2}at^2$[/tex], where s is the distance traveled. Substituting the known values, we get [tex]$s = \dfrac{1}{2}(6.60\times10^{10} \text{m/s}^2)(3.48\times10^{-5} \text{s})^2 = 4.36\times10^{-10} \text{m}$[/tex]

(d) The kinetic energy of the proton can be calculated using the equation [tex]$KE = \dfrac{1}{2}mv^2$[/tex], where KE is the kinetic energy, m is the mass of the proton, and v is the velocity of the proton. Substituting the known values, we get [tex]$KE = \dfrac{1}{2}(1.6726\times10^{-27} \text{kg})(2.30\times10^{6} \text{m/s})^2 = 3.07\times10^{-12} \text{J}$[/tex].

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A 55 kg skater is gliding along the ice at a velocity of 8 m/s to the right while holding a 3 kg ball. The skater throws the ball at a velocity of 4 m/s to the right. What will be the skaters velocity after throwing the ball?

Answers

Answer:

Speed of Skater = 8.16 m/s

Explanation:

Using kinetic energy:

[tex]M_{t} = M_{skater} + m_{ball}\\\frac{1}{2}M_{t}V_{i}^2 = \frac{1}{2}*M*V_{s} ^2+\frac{1}{2}*m*V_{b}^2\\ M_{t}V_{i}^2 = M_{s}*V_{s} ^2+m_{b}*V_{b}^2\\M_{t}V_{i}^2-m_{b}*V_{b}^2 = M_{s}*V_{s} ^2\\(M_{t}V_{i}^2-m_{b}*V_{b}^2)/M_{s} = V_{s} ^2\\V_{s} = \sqrt{\frac{(M_{t}V_{i}^2-m_{b}*V_{b}^2)}{M_{s}} } \\[/tex]

This gives the skater a velocity of 8.16 m/s after throwing the ball

the huygens probe took numerous pictures as it descended to the surface of saturn's moon titan in 2005. what did the pictures show?

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The pictures taken by the Huygens probe during its descent to Titan's surface in 2005 revealed an alien world that was strikingly different from Earth.

The images depicted a gloomy, brownish-grey environment with few discernible features, such as hills and craters, as well as long, twisting channels that resembled rivers.

The atmosphere of Titan, which was primarily made of nitrogen and methane, was also captured in a number of photographs by the probe. The images also revealed the presence of multiple liquid ethane and methane lakes and seas on Titan's surface, which are thought to be the result of yearly downpours.

A substance that may be some sort of biological material was also spotted by the probe's camera on Titan's surface.

Lastly, the images revealed a distinctive landscape of ridges and furrows that are thought to be the product of recent cryovolcanic activity.

Complete Question:

The Huygens probe took numerous pictures as it descended to Titan's surface in 2005. What did the pictures show?

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