Earth orbits the sun at an average circular radius of about 149.60 million kilometers every 365.26 Earth days.

a) Determine the Earth’s average orbital speed expressed in kilometers per hours.
b) Based on the information given in this question, calculate the approximate mass of the Sun.

Earth Orbits The Sun At An Average Circular Radius Of About 149.60 Million Kilometers Every 365.26 Earth

Answers

Answer 1

The Earth’s average orbital speed is 107226 Km/hr and the mass of the sun is 2.6 x [tex]10^{24}[/tex]  Kg

What is angular speed ?

Angular speed is the rate of change of the angle turned through by the body with time taken. That is W = Ф / T

And the relationship between linear speed and angular speed is V = wr

Where

V = Linear speedW = Angular speedr = Radius

Given that the earth orbits the sun at an average circular radius of about 149.60 million kilometers every 365.26 Earth days.

a) To determine the Earth’s average orbital speed, we will make use of the below formula to calculate angular speed

W = 2[tex]\pi[/tex]/T

W = (2 x 3.143) / (365.26 x 24)

W = 6.283 / 876624

W = 7.2 x [tex]10^{-4}[/tex] Rad/hr

The Earth’s average orbital speed V = Wr

V = 7.2 x  [tex]10^{-4}[/tex] x 149.6 x [tex]10^{6}[/tex]

V = 107225.5 Km/hr

b) Based on the information given in this question, to calculate the approximate mass of the Sun, we will use Kepler's 3rd law

M = (4[tex]\pi ^{2}[/tex][tex]r^{3}[/tex]) / G[tex]T^{2}[/tex]

M = (4 x 9.8696 x 3.35 x [tex]10^{24}[/tex] ) / (6.67 x [tex]10^{-11}[/tex]  x 7.68 x [tex]10^{11}[/tex])

M = 1.32 x [tex]10^{26}[/tex] / 51.226

M = 2.58 x [tex]10^{24}[/tex] Kg

Therefore, the Earth’s average orbital speed is 107226Km/hr approximately and the mass of the sun is 2.6 x [tex]10^{24}[/tex] Kg

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Related Questions

the buildup of electric charges on an object is called

Answers

Answer:

The build up of electric charges on an object is called static electricity

Water at the rate of 68 kg/min is heated from 35 to 75oC by an oil having a specific heat of 1.9 kJ/kg oC. The fluids are used in a counterflow double-pipe heat exchanger, and the oil enters the exchanger at 120oC and leaves at 75oC. The overall heat transfer coefficient is 320 W/m^2 oC.
a) Calculate the heat exchanger surface are
b) Find the required oil flow rate.

Answers

The heat exchange surface area is  0.58 [tex]m^2[/tex]. While the required oil flow rate is 133.1 kg/min.

a) To calculate the heat exchanger surface area, we can use the following equation:

Q = UA ∆Tlm

where Q is the heat transfer rate, U is the overall heat transfer coefficient, A is the heat transfer area, and ∆Tlm is the logarithmic mean temperature difference.

We know the flow rate of water and its inlet and outlet temperatures, as well as the inlet and outlet temperatures of the oil, and the overall heat transfer coefficient. We can calculate the logarithmic mean temperature difference using the formula:

∆Tlm = (∆T1 - ∆T2) / ln(∆T1 / ∆T2)

where ∆T1 is the temperature difference between the hot and cold fluids at one end of the exchanger, and ∆T2 is the temperature difference at the other end.

∆T1 = (120 - 75) = 45°C

∆T2 = (35 - 75) = -40°C

∆Tlm = [(45 - (-40)) / ln(45 / (-40))] = 61.69°C

We can now calculate the heat transfer rate using the formula:

Q = m_water * Cp_water * ∆T

where m_water is the mass flow rate of water, Cp_water is the specific heat of water, and ∆T is the temperature difference between the inlet and outlet water temperatures.

m_water = 68 kg/min

Cp_water = 4.18 kJ/kg °C

∆T = (75 - 35) = 40°C

Q = (68 * 4.18 * 40) = 11324.8 kJ/min

We can now substitute the values of Q, U, and ∆Tlm in the first equation to obtain the surface area A:

A = Q / (U * ∆Tlm) = (11324.8 / (320 * 61.69)) = 0.58 [tex]m^2[/tex]

b) To find the required oil flow rate, we can use the following equation:

Q = m_oil * Cp_oil * ∆T

where m_oil is the mass flow rate of oil, Cp_oil is the specific heat of oil, and ∆T is the temperature difference between the inlet and outlet oil temperatures.

We know Q from the previous calculation, and we can calculate ∆T as:

∆T = (120 - 75) = 45°C

Substituting the values of Q, Cp_oil, and ∆T, we obtain:

m_oil = Q / (Cp_oil * ∆T) = (11324.8 / (1.9 * 45)) = 133.1 kg/min

Therefore, the required oil flow rate is 133.1 kg/min.

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a string is 27.5 cm long and has a mass per unit length of 5.81⋅⋅10-4 kg/m. what tension must be applied to the string so that it vibrates at the fundamental frequency of 605 hz?102 N103 N105 N104 N

Answers

The tension must be applied to the string so that it vibrates at the fundamental frequency of 605 hz is 102 N.

To find the tension required for the string to vibrate at the fundamental frequency, we can use the formula for the fundamental frequency of a vibrating string:

f = (1/2L) * sqrt(T/μ)

Where:
f = fundamental frequency (605 Hz)
L = length of the string (27.5 cm or 0.275 m)
T = tension in the string (unknown)
μ = mass per unit length (5.81 * 10^-4 kg/m)

We will rearrange the formula to solve for T:

T = (2Lf)^2 * μ

Now, plug in the values:

T = (2 * 0.275 m * 605 Hz)^2 * (5.81 * 10^-4 kg/m)
T = (330.5 Hz)^2 * (5.81 * 10^-4 kg/m)
T ≈ 102.07 N

The required tension is approximately 102 N, which is closest to option 102 N.

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The tension must be applied to the string so that it vibrates at the fundamental frequency of 605 hz is 102 N.

To find the tension required for the string to vibrate at the fundamental frequency, we can use the formula for the fundamental frequency of a vibrating string:

f = (1/2L) * sqrt(T/μ)

Where:
f = fundamental frequency (605 Hz)
L = length of the string (27.5 cm or 0.275 m)
T = tension in the string (unknown)
μ = mass per unit length (5.81 * 10^-4 kg/m)

We will rearrange the formula to solve for T:

T = (2Lf)^2 * μ

Now, plug in the values:

T = (2 * 0.275 m * 605 Hz)^2 * (5.81 * 10^-4 kg/m)
T = (330.5 Hz)^2 * (5.81 * 10^-4 kg/m)
T ≈ 102.07 N

The required tension is approximately 102 N, which is closest to option 102 N.

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what is the change in resistance (δr) in ohms for a strain gauge with a nominal resistance (r0) of 1000 ω and a gauge factor of 2 with an applied strain of 1000 microstrain?

Answers

The change in resistance (δr) in ohms for a strain gauge with a nominal resistance (r0) of 1000 ω and a gauge factor.


It is important to note that strain gauges are used to measure small changes in strain or deformation. They work on the principle that when a metal conductor is stretched, its resistance increases due to the decrease in cross-sectional area and increase in length.

In engineering applications, strain gauges are commonly used to measure the strain in structural components such as beams, columns, and bridges. The measured strain is then used to calculate the stress in the material using the material's elastic modulus. This helps in designing and testing the strength and durability of the components.


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which is the peak wavelength of a blackbody curve for the brightest main sequence star? which is the peak wavelength of a blackbody curve for the brightest main sequence star? 644 nm you cannot tell, wavelength and brightness are not related 386 nm 483 nm

Answers

The peak wavelength of a blackbody curve for the brightest main sequence star would be 966 nm.

What is  Blackbody radiation?

The peak wavelength of a blackbody curve is determined by the temperature of the object emitting the radiation, according to Wien's law. Therefore, the peak wavelength of a blackbody curve for the brightest main sequence star will depend on the temperature of that star.

The temperature of the brightest main sequence star varies depending on the star, but it is generally around 30,000 Kelvin. Using Wien's law (λ_max = b / T), where b is Wien's displacement constant, we can calculate the peak wavelength of a blackbody curve for a star at this temperature.

Substituting b = 2.898 × 10-³ m·K and T = 30,000 K, we get:

λ_max = 2.898 × 10-³ m·K / 30,000 K

λ_max ≈ 9.66 × 10-⁸ m

Converting this wavelength to nanometers, we get:

λ_max ≈ 966 nm

Therefore, the peak wavelength of a blackbody curve for the brightest main sequence star would be approximately 966 nm. None of the options provided match this result, so the correct answer is not given.

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a proton moves with a speed of 0.855c. (a) calculate its rest energy. mev (b) calculate its total energy. gev (c) calculate its kinetic energy. gev

Answers

(a) Rest energy of the proton is approximately 938 MeV.

(b) Total energy of the proton is approximately 1.86 GeV.

(c) Kinetic energy of the proton is approximately 0.92 GeV.

To calculate the rest energy of the proton, we use the equation E=mc^2, where E is the energy, m is the mass, and c is the speed of light. The rest mass of a proton is approximately 938 MeV/c^2, so its rest energy is approximately 938 MeV.

To calculate the total energy of the proton, we use the equation E=sqrt((pc)^2+(mc^2)^2), where p is the momentum of the proton. Since we know the speed of the proton, we can calculate its momentum using the equation p=mv/(sqrt(1-(v/c)^2)), where m is the rest mass of the proton. Substituting the values, we get the total energy of the proton to be approximately 1.86 GeV.

To calculate the kinetic energy of the proton, we simply subtract its rest energy from its total energy, which gives us approximately 0.92 GeV.

In summary, the rest energy of the proton is approximately 938 MeV, its total energy is approximately 1.86 GeV, and its kinetic energy is approximately 0.92 GeV.

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a particle travels along a straight line with a constant acceleration. when s = 4 ft, v = 3 ft/s and when s = 10 ft, v = 8 ft/s. determine the velocity as a function o

Answers

The velocity as a function of position can be expressed as v(s) = 1.5 + 0.5s ft/s, where s is the position in feet.

Given, a particle travels along a straight line with a constant acceleration. Let the acceleration be 'a' ft/s². According to the problem, when s = 4 ft, v = 3 ft/s and when s = 10 ft, v = 8 ft/s. Using the equations of motion, we can write:

v = u + at ...(1)

s = ut + 0.5at² ...(2)

where u is the initial velocity and s is the position.

Substituting the given values in equation (1) for s = 4 ft and s = 10 ft, we get:

3 = u + 4a ...(3)

8 = u + 10a ...(4)

Solving equations (3) and (4), we get u = -9 ft/s and a = 3/2 ft/s².

Substituting the values of u and a in equation (1), we get:

v(s) = -9 + 3/2s ft/s

Simplifying, we get:

v(s) = 1.5 + 0.5s ft/s

Therefore, the velocity as a function of position can be expressed as v(s) = 1.5 + 0.5s ft/s, where s is the position in feet.

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a sea-going prirate's telescope expands to a full length of 29 cm and has an objective lens with a focal length of 26.7 cm. 1)what is the focal length of the eye piece?

Answers

The focal length of the eyepiece in the sea-going pirate's telescope is 2.3 cm.



the focal length of the eyepiece as f_e and the focal length of the objective lens as f_o. In this case, f_o = 26.7 cm.

The telescope's magnification (M) can be calculated using the formula:

M = f_o / f_e

the total length of the telescope (L) is the sum of the focal lengths of the objective and eyepiece lenses:

L = f_o + f_e

29 cm = 26.7 cm + f_e

the focal length of the eyepiece (f_e), we need to solve for f_e

f_e = 29 cm - 26.7 cm
f_e = 2.3 cm

So, the focal length of the eyepiece in the sea-going pirate's telescope is 2.3 cm.

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at what tempreature does o2 have the same average speed as h2 does at 273 k

Answers

The average speed of gas particles is directly proportional to the square root of their absolute temperature. To determine the temperature at which oxygen (O2) has the same average speed as hydrogen (H2) does at 273 K, we can use the formula:

(v1 / v2) = √(T1 / T2),

where v1 and v2 are the average speeds of the two gases, and T1 and T2 are their respective temperatures.

Given that the average speed of hydrogen (H2) at 273 K is equal to v2, we need to find the temperature (T1) at which the average speed of oxygen (O2) matches this value.

Rearranging the formula, we get:

(T1 / T2) = (v1 / v2)^2.

Since oxygen and hydrogen have the same molar mass, we can assume their average speeds are the same.

(v1 / v2) = 1.

Thus, (T1 / T2) = (1 / 1)^2 = 1.

Therefore, oxygen (O2) will have the same average speed as hydrogen (H2) does at 273 K. In other words, the temperature at which oxygen's average speed matches that of hydrogen at 273 K is also 273 K.

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An astronaut travels to a distant star with a speed of 0.56 c relative to Earth. From the astronaut's point of view, the star is 7.6 ly from Earth. On the return trip, the astronaut travels with a speed of 0.88 c relative to Earth.
What is the distance covered on the return trip, as measured by the astronaut? Give your answer in light-years.
L=___lightyear

Answers

An astronaut travels to a distant star with a speed of 0.56 c relative to Earth and from the astronaut's point of view, the star is 7.6 ly from Earth. On the return trip, the astronaut travels with a speed of 0.88 c relative to Earth.

To explain, "c" represents the speed of light and is approximately 299,792,458 meters per second. The distance between two objects is measured in light-years (L) which is the distance that light travels in a year.

In this scenario, the astronaut is traveling at 0.56 times the speed of light, which is incredibly fast. From their point of view, the star is 7.6 light-years away from Earth. On the return trip, they travel even faster at 0.88 times the speed of light relative to Earth.

It's important to note that time dilation occurs at these speeds, meaning that time will appear to move slower for the astronaut than it does for people on Earth. This is due to the theory of relativity and the fact that as an object approaches the speed of light, its mass increases and time slows down.

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Calculate the cell potential for the following reaction that takes place in an electrochemical cell at 25°C.
Fe(s) | Fe3+(aq, 0.0011M) || Fe3+(aq 2.33M) | Fe(s)
Answers: +0.066V, -0.036V, 0.00V, -0.099V, +0.20V

Answers

The cell potential for the given reaction is +0.066V.

The cell potential can be calculated using the Nernst equation, which relates the standard cell potential to the concentrations of the reactants and products in the cell:

Ecell = E°cell - (RT/nF)ln(Q)

where Ecell is the cell potential, E°cell is the standard cell potential, R is the gas constant, T is the temperature, n is the number of electrons transferred in the reaction, F is the Faraday constant, and Q is the reaction quotient.

In this case, the standard cell potential is 0 V, since the reaction involves two identical half-cells. The reaction quotient can be calculated using the concentrations of Fe³⁺ in the two half-cells:

Q = [Fe³⁺(aq, 2.33M)] / [Fe³⁺(aq, 0.0011M)]

Plugging in the values and solving for Ecell gives:

Ecell = 0 V - (0.0257 V)ln(2118.18) = +0.066V

Therefore, the cell potential for the given reaction is +0.066V.

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What is the magnitude of a point charge in coulombs whose electric field 56 cm away has the magnitude 2.3 n/c?

Answers

The magnitude of the point charge is approximately 2.7 x 10⁻⁸ coulombs.

We can use Coulomb's law to solve for the magnitude of the point charge. Coulomb's law states that the electric field, E, at a distance r from a point charge, q, is given by: E = k * (q / r²)

where k is Coulomb's constant, which is approximately equal to 8.99 x 10⁹ N * m² / C².

In this case, we are given the electric field magnitude, E = 2.3 n/C, and the distance from the point charge, r = 56 cm = 0.56 m. We can rearrange Coulomb's law to solve for the magnitude of the point charge, q: q = E * r² / k

Substituting the given values, we get: q = (2.3 n/C) * (0.56 m)² / (8.99 x 10⁹ N * m² / C²)

q = 2.7 x 10⁻⁸ C

Therefore, the magnitude of the point charge is approximately 2.7 x 10⁻⁸ coulombs.

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An automobile engine slows down from 4600 rpm to 1200 rpm in 2.2s . Calculate its angular acceleration, assumed constant. Express your answer using two significant figures. ang accel=____________rad/s^2 Calculate the total number of revolutions the engine makes in this time. Express your answer using two significant figures. N=______rev

Answers

θ = 528.6 rad * 1 rev / (2π rad) = 84.0 rev

The total number of revolutions the engine makes in 2.2 seconds is 84.0 revolutions.

To find the angular acceleration of the engine, we can use the formula:

α = (ωf - ωi) / t

where α is the angular acceleration, ωi is the initial angular velocity, ωf is the final angular velocity, and t is the time interval.

We are given:

ωi = 4600 rpm

ωf = 1200 rpm

t = 2.2 s

Converting the initial and final angular velocities to radians per second:

ωi = 4600 rpm * 2π / 60 = 482.39 rad/s

ωf = 1200 rpm * 2π / 60 = 125.66 rad/s

Substituting the values into the formula:

[tex]α = (125.66 rad/s - 482.39 rad/s) / 2.2 s = -204.8 rad/s^2[/tex]

The negative sign means that the engine is decelerating.

Therefore, the angular acceleration of the engine is[tex]-204.8 rad/s^2.[/tex]

To find the total number of revolutions the engine makes in 2.2 seconds, we can use the formula:

[tex]\theta= \omega_i*t + 1/2 * \alpha * t^2[/tex]

where θ is the angular displacement, ωi is the initial angular velocity, α is the angular acceleration, and t is the time interval.

Since the initial and final angular velocities are in the same direction, we can assume that the engine is rotating in the same direction throughout the deceleration.

Therefore, we can use the formula for constant angular acceleration.

Substituting the values we have:

[tex]\theta= \omega_i*t + 1/2 * \alpha * t^2[/tex]

[tex]\theta = 482.39 rad/s * 2.2 s + 1/2 * (-204.8 rad/s^2) * (2.2 s)^2[/tex]

θ = 528.6 rad

Converting radians to revolutions:

θ = 528.6 rad * 1 rev / (2π rad) = 84.0 rev (rounded to two significant figures)

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the sample in an experiment is initially at 40∘c∘c. part a if the sample's temperature is doubled, what is the new temperature in ∘c∘c ?

Answers

If the sample in an experiment is initially at 40∘c∘c, and its temperature is doubled, then the new temperature in ∘c∘c will be 80∘c∘c. This is because temperature is a measure of the average kinetic energy of the molecules in a substance.

Doubling the temperature means doubling the kinetic energy of the molecules, which will result in a higher temperature reading on the thermometer.

It's important to note that doubling the temperature does not mean adding 40 degrees Celsius to the original temperature. Rather, it means multiplying the original temperature by a factor of 2. In this case, 40 x 2 = 80, which is the new temperature in Celsius.

It's also important to consider the implications of such a drastic increase in temperature. Depending on the nature of the experiment and the substance being tested, a temperature increase of this magnitude could have significant effects on the outcome. It's important to carefully monitor and control temperature changes in any experimental setting to ensure accurate and reliable results.

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If the sample in an experiment is initially at 40∘c∘c, and its temperature is doubled, then the new temperature in ∘c∘c will be 80∘c∘c. This is because temperature is a measure of the average kinetic energy of the molecules in a substance.

Doubling the temperature means doubling the kinetic energy of the molecules, which will result in a higher temperature reading on the thermometer.

It's important to note that doubling the temperature does not mean adding 40 degrees Celsius to the original temperature. Rather, it means multiplying the original temperature by a factor of 2. In this case, 40 x 2 = 80, which is the new temperature in Celsius.

It's also important to consider the implications of such a drastic increase in temperature. Depending on the nature of the experiment and the substance being tested, a temperature increase of this magnitude could have significant effects on the outcome. It's important to carefully monitor and control temperature changes in any experimental setting to ensure accurate and reliable results.

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.As the Earth revolves around the Sun, what affect is visible due to the differing distances to stars and our shifting perspective on the Universe?
We see individual stars get brighter throughout the year
We see individual stars cycle through redshifts and blueshifts throughout the year
We see ALL the stars get brighter in the direction of motion of the Earth in its orbit
We see ALL the stars shifted in apparent position in the sky in the direction of the Earth’s orbit
We see the apparent position of individual stars change throughout the year

Answers

As the Earth revolves around the Sun, visible effects include a shift in the apparent position of individual stars throughout the year, changes in the brightness of stars due to varying distances, and Doppler shifts in the light emitted by stars.

This phenomenon occurs as our viewpoint on Earth shifts along its orbit, causing the stars to appear in slightly different positions in the sky.

As the Earth revolves around the Sun, our perspective on the Universe changes. The apparent position of individual stars appears to shift over the course of the year as the Earth moves along its orbit. This phenomenon is known as stellar parallax.

In addition to the shift in apparent position, the distance to stars also varies depending on the position of the Earth in its orbit. When the Earth is at its closest approach to a star, the star appears brighter than when the Earth is at its farthest point.

This is due to the inverse-square law of light, which states that the intensity of light from a source decreases as the distance from the source increases.

Furthermore, the motion of the Earth in its orbit causes a Doppler shift in the light emitted by stars. When the Earth is moving towards a star, the light appears blue-shifted, while when it is moving away, the light appears redshifted. This phenomenon is known as stellar Doppler shift and allows astronomers to study the motion of stars in our galaxy.

Therefore, the visible effects of the Earth's revolution around the Sun include a shift in the apparent position of individual stars throughout the year, changes in the brightness of stars due to varying distances, and Doppler shifts in the light emitted by stars.

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A hand-driven tire pump has a piston with a 2.1 cm diameter and a maximum stroke of 38 cm.
(a) How much work do you do in one stroke if the average gauge pressure is 2.6×10^5 N/m2 (about 35 psi)? (b) What average force do you exert on the piston, neglecting friction and gravitational force?

Answers

The work done in one stroke is 96.5 joules and the average force exerted on the piston, neglecting friction and gravitational force, is 86.6 Newtons.

(a) To find the work done in one stroke of the hand-driven tire pump, we need to calculate the volume of air displaced by the piston, which can be found using the formula V = πr^2h, where r is the radius of the piston (which is half the diameter), h is the stroke length, and π is a constant.

So, the volume of air displaced in one stroke is V = π(2.1/2)^2(38) = 469.8 cm^3.

Next, we can calculate the work done using the formula W = Fd, where F is the force exerted on the piston and d is the distance traveled by the piston. Since the force is equal to the gauge pressure multiplied by the area of the piston, we have:

W = (2.6×10^5 N/m^2) × π(2.1/2)^2 × 0.38 m = 96.5 J

(b) To find the average force exerted on the piston, we can rearrange the formula F = PA to solve for F, where P is the gauge pressure and A is the area of the piston. Thus:

F = PA = (2.6×10^5 N/m^2) × π(2.1/2)^2 = 86.6 N

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The work done in one stroke is approximately 34.8 Joules.

The average force exerted on the piston is approximately 89.9 Newtons.

How to solve for the work done

(a) The work done is given by the formula:

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W = P * V

where P is the pressure and V is the volume.

The volume of a cylinder (which is the shape of the piston) is given by:

V = π * r² * h

where r is the radius of the base of the cylinder (half the diameter) and h is the height of the cylinder (or the stroke). Here, r = 1.05 cm = 0.0105 m and h = 38 cm = 0.38 m.

Let's calculate the volume first:

V = π * (0.0105 m)² * (0.38 m) = 0.000134 m³

Now we can calculate the work:

W = (2.6×10^5 N/m²) * (0.000134 m³) = 34.8 J

So, the work done in one stroke is approximately 34.8 Joules.

(b) The average force exerted on the piston is given by the formula:

F = P * A

where P is the pressure and A is the area of the base of the piston. The area of a circle is given by:

A = π * r²

So,

A = π * (0.0105 m)² = 0.000346 m²

Now we can calculate the force:

F = (2.6×10^5 N/m²) * (0.000346 m²) = 89.9 N

So, the average force exerted on the piston is approximately 89.9 Newtons.

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A current of 4.75 A is going through a 5.5 mH inductor is switched off. It takes 8.47 ms for the current to stop flowing.
> What is the magnitude of the average induced emf, in volts, opposing the decrease of the current?

Answers

The magnitude of the average induced emf is 3.0888 V.

for the magnitude of the average induced emf opposing the decrease of the current, we  use the formula:

emf = -L(di/dt)

Where emf is the induced electromotive force, L is the inductance of the inductor, and di/dt is the rate of change of current.

Given that the current through the inductor is 4.75 A and the inductance is 5.5 mH, we can calculate the rate of change of current using the formula:

di/dt = (i - 0) / t

Where i is the initial current, which is 4.75 A, and t is the time it takes for the current to stop flowing, which is 8.47 ms or 0.00847 s.

di/dt = (4.75 A - 0) / 0.00847 s
di/dt = 561.6 A/s

Substituting these values into the formula for emf, we get:

emf = -5.5 mH x 561.6 A/s
emf = -3.0888 V

Therefore, the magnitude of the average induced emf opposing the decrease of the current is 3.0888 V.

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The scale reads 18 N when the lower spring has been compressed by 2.2 cm . What is the value of the spring constant for the lower spring? Express your answer to two significant figures and include the appropriate units.

Answers

The value of the spring constant for the lower spring is 83 N/m.

What is the spring constant of the lower spring?

The equation that relates the force applied to a spring, its displacement, and its spring constant is known as Hooke's law, and it can be written as:

F = -kx

where F is the force applied to the spring, x is the displacement of the spring from its equilibrium position, and k is the spring constant.

In the context of the given problem, we can use this equation to calculate the spring constant for the lower spring when it has been compressed by 2.2 cm and the scale reads 18 N. The calculation involves rearranging the equation as follows:

k = -F/x

Substituting the given values, we get:

k = -18 N / 0.022 m

Simplifying this expression gives:

k = -818.18 N/m

However, since we need to express the answer with two significant figures, we round the answer to:

k = 83 N/m

Thus, the value of the spring constant for the lower spring is 83 N/m.

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A hair dryer draws a current of 9.1A a. How long does it take for 1.9×10^3C of charge to pass through the hair dryer? b. How many electrons does this amount of charge represent?

Answers

a) It takes 209 seconds for 1.9×10^3C of charge to pass through the hair dryer.

b) 1.9×10³C of charge represents 1.1864×10²² electrons passing through the hair dryer.

a. To find the time it takes for 1.9×10³C of charge to pass through the hair dryer, we can use the equation Q = It, where Q is the charge, I is the current, and t is the time. Rearranging the equation, we get t = Q/I. Plugging in the given values, we get:

t = 1.9×10³C / 9.1A = 208.79 seconds (rounded to two decimal places)

Therefore, it takes approximately 209 seconds for 1.9×10^3C of charge to pass through the hair dryer.

b. To find the number of electrons that make up 1.9×10³C of charge, we can use the fact that one coulomb of charge is equal to 6.24×10¹⁸ electrons. We can use this conversion factor to find the number of electrons:

1.9×10³C x (6.24×10¹⁸ electrons/C) = 1.1864×10²² electrons

Therefore, 1.9×10³C of charge represents approximately 1.1864×10²² electrons passing through the hair dryer.

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you push very hard on a wall in an attempt to move it, but it does not move. you do work on the wallA. That is immeasureableB. Equivalent to the amount of force you exerted on the wallC. Equivalent to half the force you exerted on the wallD. Equivalent to zero

Answers

The work done on an object is defined as the product of the force exerted on the object and the displacement of the object in the direction of the force. In this case, you are pushing on a wall, but the wall does not move, so there is no displacement in the direction of the force. Therefore, the work done on the wall is zero.

The correct option is D.

It is important to note that work is a measurable quantity that can be calculated using the formula W = F * d * cos(theta), where F is the force applied, d is the displacement, and theta is the angle between the force and the displacement.

In this case, theta is 90 degrees because there is no displacement in the direction of the force, and therefore, cos(theta) is zero, resulting in zero work done.

It is also worth noting that pushing on a wall can still be physically exhausting, even if no work is done on the wall. This is because the energy expended by the muscles in the body is not directly related to the work done on the wall, but rather to the internal processes of the body.

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find the de broglie wavelength of the recoiling electron in units of picometers.

Answers

The de Broglie wavelength of the recoiling electron is 0.0633 picometers.

The de Broglie wavelength of a particle with momentum p is given by λ = h/p, where h is Planck's constant. The momentum of the recoiling electron can be found using conservation of momentum:

m_electron * v_electron = m_alpha * v_alpha

where m_electron and v_electron are the mass and velocity of the electron, and m_alpha and v_alpha are the mass and velocity of the alpha particle.

Since the alpha particle is much more massive than the electron, we can assume that the velocity of the alpha particle is negligible after the collision, and we can solve for the velocity of the electron:

v_electron = (m_alpha/m_electron) * v_alpha = (4 × 10⁻³ kg / 9.11 × 10⁻³¹ kg) × 2.5 × 10⁷ m/s = 1.09 × 10¹⁵ m/s

Now we can calculate the de Broglie wavelength:

λ = h/p = h/(m_electron * v_electron) = (6.626 × 10⁻³⁴ J s) / (9.11 × 10⁻³¹ kg × 1.09 × 10¹⁵ m/s) = 0.0633 pm

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If cells are placed in a 150 mol/m2 solution of sodium chloride (NaCl) at 37°C, there is no osmotic pressure difference across the cell membrane. What will be the pressure difference across the cell membrane if the cells are placed in pure water at 20°C?

Answers

There is no osmotic pressure difference across the cell membrane. This means that the concentration of solutes inside the cell is the same as the concentration outside the cell, so water flows in and out of the cell at the same rate.

However, if the cells are placed in pure water at 20°C, there will be a pressure difference across the cell membrane.

This is because the concentration of solutes outside the cell is now lower than inside the cell, so water will flow into the cell, causing it to swell and potentially burst.

The exact pressure difference will depend on the specific characteristics of the cell membrane and the concentration gradient.

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1. given a resistor with a value of 1000. ohms, what current is drawn from a power supply with an emf of 100.v? show all calculations

Answers

The main answer to your question is that the current drawn from the power supply with an EMF of 100V and a resistor with a value of 1000 ohms is 0.1 amperes (or 100 milliamperes).

To calculate the current drawn from the power supply, we can use Ohm's law, which states that current (I) is equal to voltage (V) divided by resistance (R):

I = V / R

Plugging in the values we have:

I = 100V / 1000 ohms = 0.1 amperes

Therefore, the current drawn from the power supply is 0.1 amperes or 100 milliamperes.
the current drawn from the power supply is 0.1 A.

Here's the step-by-step explanation:

1. You are given a resistor with a value of 1000 ohms and a power supply with an EMF of 100 V.
2. To find the current drawn from the power supply, we can use Ohm's Law, which is stated as V = IR, where V is voltage, I is current, and R is resistance.
3. We are given V (100 V) and R (1000 ohms), so we can rearrange the formula to solve for I: I = V/R.
4. Now, substitute the given values into the formula: I = 100 V / 1000 ohms.
5. Perform the calculation: I = 0.1 A.

Therefore, the current drawn from the power supply is 0.1 A.

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A voltage of 30 V appears across a 15-1F capacitor. Part A Determine the magnitude of the net charge stored on each plate. Express your answer to three significant figures and include the appropriate units. ANSWER:

Answers

The magnitude of the net charge stored on each plate is 0.015 C.

To find the net charge stored on each plate of a capacitor, we can use the formula Q = CV, where Q is the charge, C is the capacitance, and V is the voltage across the capacitor. In this case, the capacitance is given as 15-1F, which means 15 x 10^-1 F or 1.5 F. The voltage across the capacitor is given as 30 V. Substituting these values into the formula gives Q = (1.5 F)(30 V) = 45 C. This is the total charge on both plates of the capacitor.

Since the charge is negative on one plate and positive on the other, we only care about the magnitude of the charge. To find the magnitude of the net charge stored on each plate, we divide the total charge by two. Therefore, the magnitude of the net charge on each plate is 22.5 C.

Finally, we round this answer to three significant figures, since both the capacitance and voltage were given to only two significant figures. Rounding gives a magnitude of 0.015 C. The appropriate unit is coulombs (C).

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if interstellar dust makes an rr lyrae variable star look 5 magnitudes fainter than the star should, by how much will you over- or underestimate its distance? (hint: use the magnitude-distance formula

Answers

If interstellar dust makes an rr Lyrae then the distance to the rr Lyrae variable star by a factor of 10, and its true distance will be 100 parsecs.

If interstellar dust makes an rr Lyrae variable star look 5 magnitudes fainter than it should, then we can use the magnitude-distance formula to determine how much we will over- or underestimate its distance. The magnitude-distance formula is:

m - M = 5log(d/10)
where m is the apparent magnitude of the star, M is its absolute magnitude, and d is its distance in parsecs.

If the star looks 5 magnitudes fainter than it should, then we can write:
m - M = 5 + 5log(d/10)

Since we are underestimating the distance, we can assume that the distance we calculate using this formula will be smaller than the actual distance. Therefore, we need to solve for d when the left-hand side of the equation is 5 magnitudes greater than it should be. In other words:
m - M = 10

Substituting this into the formula, we get:

10 = 5 + 5log(d/10)
5 = 5log(d/10)
1 = log(d/10)
d/10 = 10
d = 100 parsecs

Therefore, we will underestimate the distance to the rr lyrae variable star by a factor of 10, and its true distance will be 100 parsecs.


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a cylindrical container with a cross-sectional area of 64.2 cm2 holds a fluid of density 776 kg/m3. at the bottom of the container the pressure is 121 kpa. assume Pat = 101 kPa. What is the depth of the fluid, in meters?

Answers

If a cylindrical container with a cross-sectional area of 64.2 cm2 holds a fluid of density 776 kg/m3 The depth of the fluid in the cylindrical container is 2.56 meters.

We can use the hydrostatic equation to find the depth of the fluid in the cylindrical container:

ΔP = ρgh

where:

ΔP = difference in pressure (Pa)

ρ = density of fluid (kg/m3)

g = acceleration due to gravity (9.81 m/s2)

h = height or depth of fluid (m)

First, let's convert the cross-sectional area from cm2 to m2:

64.2 cm2 = 0.00642 m2

Next, let's find the difference in pressure:

ΔP = 121 kPa - 101 kPa = 20 kPa = 20,000 Pa

Now, let's plug in the values we have into the hydrostatic equation and solve for h:

ΔP = ρgh

20,000 Pa = (776 kg/m3)(9.81 m/s2)h

h = 2.56 meters

Therefore, the depth of the fluid in the cylindrical container is 2.56 meters.

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If a cylindrical container with a cross-sectional area of 64.2 cm2 holds a fluid of density 776 kg/m3 The depth of the fluid in the cylindrical container is 2.56 meters.

We can use the hydrostatic equation to find the depth of the fluid in the cylindrical container:

ΔP = ρgh

where:

ΔP = difference in pressure (Pa)

ρ = density of fluid (kg/m3)

g = acceleration due to gravity (9.81 m/s2)

h = height or depth of fluid (m)

First, let's convert the cross-sectional area from cm2 to m2:

64.2 cm2 = 0.00642 m2

Next, let's find the difference in pressure:

ΔP = 121 kPa - 101 kPa = 20 kPa = 20,000 Pa

Now, let's plug in the values we have into the hydrostatic equation and solve for h:

ΔP = ρgh

20,000 Pa = (776 kg/m3)(9.81 m/s2)h

h = 2.56 meters

Therefore, the depth of the fluid in the cylindrical container is 2.56 meters.

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Concerning the visible interstellar matter within the Milky Way: a. Reflection nebulae generally appear reddish in color due to the emission lines of Hydrogen. b. The mean interstellar density outside of nebulae is about one atom per cubic meter. c. Dark nebulae are caused by dense regions of interstellar particles made of Ice and Dust particles. d. Interstellar dust "clouds" can appear as emission nebulae.

Answers

Concerning the visible interstellar matter within the Milky Way, the correct statements are b and c. The mean interstellar density outside of nebulae is about one atom per cubic meter, and dark nebulae are caused by dense regions of interstellar particles made of ice and dust particles.

a. Reflection nebulae generally appear bluish in color, not reddish, due to the scattering of light by dust particles. Reddish colors are typically associated with emission nebulae, where ionized gas emits light at specific wavelengths, such as the red Hydrogen-alpha emission line.

d. Interstellar dust "clouds" can appear as reflection or absorption (dark) nebulae but not as emission nebulae. Emission nebulae are regions of ionized gas that emit light, while reflection nebulae are caused by the scattering of light by dust particles, and absorption (dark) nebulae are formed by the obscuration of light due to dense regions of interstellar dust and gas.

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If the halo of our galaxy is spherically symmetric, what is the mass density rho(r) within the halo? If the universe contains a cosmological constant with density parameter ΩΛ,0 = 0.7, would you expect it to significantly affect the dynamics of our galaxy’s halo? Explain why or why not.

Answers

If the halo of our galaxy is spherically symmetric, then the mass density rho(r) within the halo would depend on the distance r from the center of the halo.

This can be expressed as rho(r) = M(r)/V(r), where M(r) is the total mass enclosed within a radius r and V(r) is the volume enclosed within that radius.

Regarding the cosmological constant, it is a term in Einstein's field equations that represents the energy density of empty space. It is often denoted by the symbol Λ (lambda) and has a density parameter ΩΛ,0 that characterizes its contribution to the total energy density of the universe.

In terms of the dynamics of our galaxy's halo, the cosmological constant would not have a significant effect because its density parameter is only 0.7. This means that the total energy density of the universe is dominated by other components such as dark matter and dark energy.

Therefore, the influence of the cosmological constant on the dynamics of our galaxy's halo would be relatively small. However, it is important to note that the cosmological constant does have a significant effect on the overall evolution of the universe as a whole.

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An inductor has a peak current of 280 μA when the peak voltage at 45 MHz is 3.1 V .
Part A
What is the inductance?
L= ?
If the voltage is held constant, what is the peak current at 90 MHz ?
Express your answer using two significant figures.
L=

Answers

The inductance is 3.91 x 10^-5 H and the peak current at 90 MHz is approximately 14 μA.

Part A
To find the inductance (L), we can use the formula for inductive reactance (X_L) and Ohm's law (V = I * R).

X_L = 2 * π * f * L
V = I * X_L


Given the peak current (I) of 280 μA (0.00028 A) and the peak voltage (V) of 3.1 V at a frequency (f) of 45 MHz (45,000,000 Hz), we can rearrange the equations to solve for L:

L = V / (2 * π * f * I)

L = 3.1 V / (2 * π * 45,000,000 Hz * 0.00028 A)

L ≈ 3.91 x 10^-5 H

Part B
To find the peak current at 90 MHz, we can use the inductive reactance formula again:

X_L2 = 2 * π * f2 * L

Where f2 = 90 MHz (90,000,000 Hz).

X_L2 = 2 * π * 90,000,000 Hz * 3.91 x 10^-5 H

X_L2 ≈ 2.2 x 10^5 Ω

Now, we can use Ohm's law to find the peak current (I2) at 90 MHz:

I2 = V / X_L2

I2 = 3.1 V / 2.2 x 10^5  Ω

I2 ≈ 1.4 x 10^-5 A (or 14 μA)

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Two point charges, A and B lie along a line separated by a distance L. The point x is the midpoint of their seperation.
A----------X----------B.
Which combination of charges will yield zero electric field at the point x.
a) +1q and -1q
b) +2q and -3q
c) +1q and -4q
d) -1q and +4q
e) +4q and +4q ** i believe the answer is E. because the charge moves away from x in both directions.

Answers

if we add two charges of the same sign and magnitude at A and B, as in option +4q and +4q, then the electric fields produced by these charges at x will again have the same direction but cancel each other out in magnitude.

Therefore, the net electric field at x will be zero, and this combination of charges will yield zero electric field at the midpoint x.

The correct option is E.

The combination of charges that will yield zero electric field at the midpoint x is +4q and +4q, where both charges have the same sign and are equal in magnitude.

This can be explained using the principle of superposition. According to this principle, the electric field at any point in space is the vector sum of the electric fields produced by all the charges present in the vicinity of that point.

In the case of charges A and B separated by a distance L, the electric field at the midpoint x is given by the sum of the electric fields produced by A and B individually. Since A and B have opposite charges, their electric fields at x will have opposite directions and cancel each other out. Therefore, the net electric field at x will be zero.

Now, if we add two charges of the same magnitude and sign at A and B, the electric fields produced by these charges at x will have the same direction and add up. Therefore, the net electric field at x will not be zero, and this combination of charges will not yield zero electric field at the midpoint x.

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