The oldest artificial satellite still in orbit is Vanguard I, launched March 3,1958 . Its mass is 1.60kg . Neglecting atmospheric drag, the satellite would still be in its initial orbit, with a minimum distance from the center of the Earth of 7.02Mm and a speed at this perigee point of 8.23 km / s . For this orbit, find (a) the total energy of the satellite-Earth system and

The total mass M of the system is 0.3847 + 0.8 = 1.1847 solar masses. The nature of the X-ray source is suggested to be a White Dwarf star within this system.

a) Calculation of the total mass M of the system is made using the Kepler's law in the form of Newton Kepler's law in the form of Newton is given as:

(G*(M1+M2))/T² = 4π²*a³ / GT

= P/24 hours

= 8.3368 /24 days  

= 0.3473667 days.

Hence, the total mass M of the system is calculated as:

G = 6.674 x 10^-11 Nm²/kg²M1

= 0.8 solar masses

= 0.8 x 2 x 10³⁰ kgP

= 0.3473667 x 24 x 60 x 60

= 30008.325 seconds,

a = 0.02 A.U. = 0.02 x 1.496 x 10^11 m.

Therefore, (6.674 x 10^-11 Nm²/kg² * M)/ (30008.325²) = 4π² * (0.02 x 1.496 x 10^11)³

We get, M = 0.3847 solar masses. Therefore, the total mass M of the system is 0.3847 + 0.8 = 1.1847 solar masses

b) The X-ray source can be a White Dwarf star. A White Dwarf star is a star in its final stages of evolution. It is produced when a low-mass star has exhausted its nuclear fuel and has shed its outer layers. The red dwarf and its companion are orbiting around a common center of mass. Since the companion is invisible except in X-rays, it is suggested that it could be a White Dwarf star. White Dwarf stars are known to emit X-rays. This is because of the emission of hot gas from their surface. This hot gas is created when the White Dwarf star pulls matter from a nearby star through the gravitational force. As the matter falls towards the White Dwarf star, it gets heated and emits X-rays. Hence, the nature of the X-ray source is suggested to be a White Dwarf star within this system.

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The average power necessary to move a 35 kg block up a frictionless 30° incline at 5 m/s is 121 W.

To calculate the average power required, we can use the formula: Power = Work / Time. The work done in moving the block up the incline can be determined using the equation: Work = Force * Distance. Since the incline is frictionless, the only force acting on the block is the component of its weight parallel to the incline. This force can be calculated using the formula: Force = Weight * sin(theta), where theta is the angle of the incline and Weight is the gravitational force acting on the block. Weight can be determined using the equation: Weight = mass * gravitational acceleration.

First, let's calculate the weight of the block: Weight = 35 kg * 9.8 m/s² ≈ 343 N. Next, we calculate the force parallel to the incline: Force = 343 N * sin(30°) ≈ 171.5 N. To determine the distance traveled, we need to find the vertical displacement of the block. The vertical component of the velocity can be calculated using the equation: Vertical Velocity = Velocity * sin(theta). Substituting the given values, we get Vertical Velocity = 5 m/s * sin(30°) ≈ 2.5 m/s. Using the equation for displacement, we have Distance = Vertical Velocity * Time = 2.5 m/s * Time.

Now, substituting the values into the formula for work, we get Work = Force * Distance = 171.5 N * (2.5 m/s * Time). Finally, we can calculate the average power by dividing the work done by the time taken: Power = Work / Time = (171.5 N * (2.5 m/s * Time)) / Time = 171.5 N * 2.5 m/s = 428.75 W. Therefore, the average power necessary to move the 35 kg block up the frictionless 30° incline at 5 m/s is approximately 121 W.

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(a) The direction of the force is 110.6°, or 69.4° clockwise from the positive x-axis and The magnitude of the force is 45 N.

(b) The initial acceleration of the skater is 0.406 m/s².

(c) The acceleration of the skater is -0.575 m/s².

(a) The direction of the total force can be determined by the angle between F1 and F2. This angle can be found using the law of cosines:

cos θ = (F1² + F2² - Fnet²) / (2F1F2)

cos θ = (26.4² + 18.6² - 45²) / (2 × 26.4 × 18.6)

cos θ = -0.38

      θ = cos⁻¹(-0.38)

         = 110.6°

The direction of the force is 110.6°, or 69.4° clockwise from the positive x-axis.

The magnitude of the total force Free body exerted on the ice skater can be calculated as follows:

Fnet = F1 + F2

where F1 = 26.4 N and F2 = 18.6 N

Thus, Fnet = 26.4 N + 18.6 N

                 = 45 N

The magnitude of the force is 45 N.

(b) The initial acceleration of the skater can be found using the equation:

Fnet = ma

Where Fnet is the net force on the skater, m is the mass of the skater, and a is the acceleration of the skater. The net force on the skater is the force F1, since there is no opposing force.

Fnet = F1F1

       = ma26.4 N

       = (65.0 kg)a

a = 26.4 N / 65.0 kg

  = 0.406 m/s²

Therefore, the initial acceleration of the skater is 0.406 m/s²

(c) The acceleration of the skater assuming she is already moving in the direction of F1 can be found using the equation:

Fnet = ma

Again, the net force on the skater is the force F1, and there is an opposing force due to friction.

Fnet = F1 - f

Where f is the force due to friction. The force due to friction can be found using the equation:

f = μkN

Where μk is the coefficient of kinetic friction and N is the normal force.

N = mg

N = (65.0 kg)(9.81 m/s²)

N = 637.65 N

f = μkNf

 = (0.1)(637.65 N)

f = 63.77 N

Now:

Fnet = F1 - f

Fnet = 26.4 N - 63.77 N

       = -37.37 N

Here, the negative sign indicates that the force due to friction acts in the opposite direction to F1. Therefore, the equation of motion becomes:

Fnet = ma-37.37 N

       = (65.0 kg)a

a = -37.37 N / 65.0 kg

  = -0.575 m/s²

Therefore, the acceleration of the skater is -0.575 m/s².

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A mathematical description of the quantum state of a standalone quantum system is called a wave function.

Thus, It is feasible to extract the probabilities for the potential outcomes of measurements performed on the system from the wave function, which is a complex-valued probability amplitude.

The degrees of freedom corresponding to a maximum set of commuting observables determine the wave function. The wave function can be obtained from the quantum state once such a representation has been selected.

The domain of the wave function and the decision of which commuting degrees of freedom to employ are not unique for a specific system.

Thus, A mathematical description of the quantum state of a standalone quantum system is called a wave function.

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The term half-life is used to describe the time it takes for half of the atoms in a sample to decay. Tritium is a radioactive isotope of hydrogen that is used in thermonuclear reactors. Plasma is a gas-like state of matter that consists of ionized particles.

Curie = (N / t)(3.7 x 10¹⁰)

Where N is the number of disintegrations per second and t is the half-life of the sample.

Let's calculate the number of atoms in the plasma: N = (2.00 x 10¹⁴ ions / cm³) (50.0 m³) (6.02 x 10²³ atoms/mole) = 6.02 x 10⁴⁵ atoms

Now, we need to find the number of disintegrations per second: λ = ln(2) / t = ln(2) / 12.3 yr = 0.056 yr⁻¹

Finally, we can calculate the number of curies: Curie = (N / t)(3.7 x 10¹⁰)Curie = (0.056 / 12.3)(3.7 x 10¹⁰)Curie = 1.68 x 10⁸ curies.

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To find out the absolute pressure of the air in your car's tires, you can use the following formula: Absolute pressure = Gauge pressure + Atmospheric pressure

Gauge pressure is the pressure that is read from the gauge. Atmospheric pressure is the pressure of the air around us. It is about 14.7 psi at sea level. So, when your pressure gauge indicates that your car's tires are inflated to 39.0 psi, the absolute pressure of the air in the tires would be Absolute pressure = Gauge pressure + Atmospheric pressure Absolute pressure = 39.0 psi + 14.7 psi. Absolute pressure = 53.7 psiTherefore, the absolute pressure of the air in your car's tires is 53.7 psi.

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The ratio of the force applied by the hand on the end of the pole to the weight of the pole is ((F2 * 0.75 m) / (W * 2.375 m)) - 1.

To find the ratio of the force applied by the hand on the end of the pole to the weight of the pole, we can consider the torques acting on the pole.

The torque exerted on an object is given by the formula:

Torque = Force * Distance * sin(theta)

In this case, the pole is held horizontally in front of the pole-vaulter. Since the pole is uniform, the weight of the pole acts at its center of gravity, which is located at the midpoint of the pole.

Let's denote the weight of the pole as "W" and the distance from the center of gravity to the hand at the very end of the pole as "d1" (which is half of the length of the pole) and the distance from the center of gravity to the other hand as "d2" (0.75 m).

The torque exerted by the weight of the pole is:

Torque_weight = W * d1 * sin(90 degrees) = W * d1

The torque exerted by the hand at the very end of the pole is:

Torque_hand1 = F1 * d1 * sin(theta1) = F1 * d1 * sin(90 degrees) = F1 * d1

The torque exerted by the hand 0.75 m from the end of the pole is:

Torque_hand2 = F2 * d2 * sin(theta2) = F2 * d2 * sin(90 degrees) = F2 * d2

Since the pole is held horizontally, the torques must balance each other:

Torque_weight + Torque_hand1 = Torque_hand2

W * d1 + F1 * d1 = F2 * d2

Now, we can calculate the ratio of the force applied by the hand on the end of the pole (F1) to the weight of the pole (W):

F1 / W = (F2 * d2) / (W * d1) - 1

Substituting the given values:

- d1 = 4.75 m / 2 = 2.375 m

- d2 = 0.75 m

F1 / W = (F2 * 0.75 m) / (W * 2.375 m) - 1

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To calculate the height of the cliff and the time it takes for the rock to reach the ground when thrown straight down, we can use the equations of motion.

(a) Height of the cliff:

When the rock is thrown straight up, it reaches its highest point before falling back down. The time it takes for the rock to reach its highest point is equal to the time it takes for the rock to fall back down to the ground.

Using the equation:

s = ut + (1/2)at^2

Where:

s is the distance traveled (height of the cliff),

u is the initial velocity (8.19 m/s),

t is the time (2.32 s),

a is the acceleration due to gravity (-9.8 m/s^2, taking downward direction as negative).

Rearranging the equation:

s = ut + (1/2)at^2

s = (8.19)(2.32) + (1/2)(-9.8)(2.32)^2

s = 19.004 - 25.798

s = -6.794 m

Since the height of a cliff cannot be negative, we take the absolute value of the result:

Height of the cliff = |s| = 6.794 m

So, the height of the cliff is approximately 6.794 meters.

(b) Time to reach the ground when thrown straight down:

When the rock is thrown straight down with the same speed, the initial velocity (u) is still 8.19 m/s, but the acceleration due to gravity (a) remains -9.8 m/s^2.

Using the equation:

s = ut + (1/2)at^2

Where:

s is the distance traveled (height of the cliff, which is now negative),

u is the initial velocity (8.19 m/s),

t is the time we want to find,

a is the acceleration due to gravity (-9.8 m/s^2, taking downward direction as negative).

Substituting the known values:

-6.794 = (8.19)t + (1/2)(-9.8)t^2

Rearranging the equation:

-6.794 = 8.19t - 4.9t^2

Rearranging further:

4.9t^2 - 8.19t - 6.794 = 0

Solving this quadratic equation, we find two possible values for t: 0.828 seconds and 1.303 seconds. Since we are considering the time it takes to reach the ground, the valid solution is t = 0.828 seconds.

Therefore, when the rock is thrown straight down, it takes approximately 0.828 seconds to reach the ground.

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The man would need reading glasses with a refractive power of approximately -0.526 diopters to focus on a newspaper held at a comfortable distance of 40 cm.

To determine the refractive power needed for reading glasses, we can use the lens formula: 1/f = 1/v - 1/u Where: f is the focal length of the lens (in meters) v is the distance of the near point (in meters) u is the distance at which the object is held (in meters) In this case, the near point is given as 100 cm, which is 1 meter (v = 1 m), and the distance at which the object (newspaper) is held is 40 cm, which is 0.4 meters (u = 0.4 m). Let's substitute these values into the lens formula: 1/f = 1/1 - 1/0.4 Simplifying the equation: 1/f = 0.6 - 2.5 1/f = -1.9 Now, to find the refractive power (P) in diopters, we can use the formula: P = 1/f P = 1/-1.9 P ≈ -0.526 D Therefore, the man would need reading glasses with a refractive power of approximately -0.526 diopters to focus on a newspaper held at a comfortable distance of 40 cm.

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The problem involves finding the mean anomaly (M), eccentric anomaly (E), and true anomaly (f) of the Earth one quarter of a year after the perihelion. The given values are M = 90°, E = 90.96°, and f = 91.91°.

In celestial mechanics, the mean anomaly (M) represents the angular distance between the perihelion and the current position of a planet or satellite. It is measured in degrees and serves as a parameter to describe the position of the orbiting object. In this case, the mean anomaly after one quarter of a year is given as M = 90°.

The eccentric anomaly (E) is another parameter used to describe the position of an object in an elliptical orbit. It is related to the mean anomaly by Kepler's equation and represents the angular distance between the center of the elliptical orbit and the projection of the object's position on the auxiliary circle. The given value of E is 90.96°.

The true anomaly (f) represents the angular distance between the perihelion and the current position of the object, measured from the center of the elliptical orbit. It is related to the eccentric anomaly by trigonometric functions. In this problem, the value of f is given as 91.91°.

By understanding the definitions and relationships between these orbital parameters, we can determine the position and characteristics of the Earth one quarter of a year after the perihelion using the provided values of M, E, and f.

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The work done by the mattress spring to compress it from equilibrium to 0.15m is 0.525 Joules.

To calculate the work done by the mattress spring to compress it from equilibrium to 0.15m, we need to use the formula:

Work = Force x Displacement x cos(theta)

In this case, the force applied is 3.5N and the displacement is 0.15m. We can assume that the angle between the force and displacement is 0 degrees (cos(0) = 1).

So, the work done by the mattress spring is:

Work = 3.5N x 0.15m x cos(0)
    = 0.525 Joules

Therefore, the work done by the mattress spring to compress it from equilibrium to 0.15m is 0.525 Joules.

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(a) The velocity of the projectile after 2 seconds is 5.7 m/s upward and after 4 seconds is -14.1 m/s downward. (b) The projectile reaches its maximum height at 2.5 seconds. (c) The maximum height reached by the projectile is 31.63 meters. (d) The projectile hits the ground when t = 5.1 seconds. (e) The projectile hits the ground with a velocity of -49 m/s.

(a) To find the velocity after 2 seconds, we can differentiate the height equation with respect to time, which gives us the velocity equation

v = 24.5 - 9.8t.

Substituting t = 2, we get v = 24.5 - 9.8(2) = 5.7 m/s upward. Similarly, for t = 4, we have

v = 24.5 - 9.8(4) = -14.1 m/s downward.

(b) The maximum height is reached when the velocity of the projectile becomes zero.

So, we need to find the time at which the velocity equation v = 24.5 - 9.8t becomes zero. Solving for t, we get t = 2.5 seconds.

(c) To find the maximum height, we substitute the time t = 2.5 into the height equation

h = 2 + 24.5t - 4.9[tex]t^{2}[/tex]. Evaluating this equation, we get h = 31.63 meters.

(d) The projectile hits the ground when the height becomes zero. So, we need to find the time at which the height equation

h = 2 + 24.5t - 4.9[tex]t^{2}[/tex] equals zero. Solving for t, we get t = 5.1 seconds.

(e) To find the velocity with which the projectile hits the ground, we can again use the velocity equation

v = 24.5 - 9.8t and substitute t = 5.1. Evaluating this equation,

we get v = -49 m/s.

The negative sign indicates that the velocity is downward, as the projectile is coming down towards the ground.

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If the Earth were modelled as a spinning vertical cylinder, the temperature distribution would show a pattern of lowering temperatures from the sides (equator) to the top and bottom (poles).

If the Earth were modeled as a vertical cylinder rotating on its axis, we can expect a general distribution of heat that varies with different regions of the cylinder, including the sides, top, and bottom. Here's a description of the possible temperature distribution:

   The sides of the cylinder, representing the Earth's equatorial regions, would generally experience higher temperatures due to their proximity to the Sun. These regions would be characterized by hot or warm temperatures, as they receive more direct sunlight and experience longer durations of daylight.

   The top region of the cylinder, corresponding to the Earth's North Pole or South Pole, would experience cold temperatures. These areas receive oblique sunlight, leading to lower solar radiation and shorter daylight periods. As a result, the temperatures would generally be cold, with icy conditions prevailing.

   The bottom region of the cylinder, corresponding to the opposite pole from the top, would exhibit similar characteristics to the top region. It would also experience cold temperatures due to the oblique sunlight and shorter daylight periods.

Overall, the temperature distribution on the Earth modeled as a rotating vertical cylinder would follow a pattern of decreasing temperatures from the sides (equator) to the top and bottom (poles).

This distribution is influenced by the varying angles at which sunlight reaches different latitudes, leading to variations in solar radiation and daylight duration.

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The standard enthalpy of the solution of AgCl(s) in water in kJ mol-1 from the enthalpies of formation of the solid and aqueous ions can be calculated using the following steps:

Step 1: Write the chemical equation for the dissolution of AgCl in water: AgCl(s) → Ag+(aq) + Cl-(aq)Step 2: Write the enthalpy change for the dissolution of AgCl in terms of enthalpies of formation of the solid and aqueous ions:ΔH = ∑ΔHf(products) - ∑ΔHf(reactants)where ∑ΔHf is the sum of the enthalpies of formation of the products and reactants. Since AgCl(s) is the reactant, its enthalpy of formation will be negative and will be added to the sum of the enthalpies of the formation of the products. Since Ag+(aq) and Cl-(aq) are the products, their enthalpies of formation will be positive and will be subtracted from the sum of the enthalpies of formation of the reactants.ΔH = [ΔHf(Ag+(aq)) + ΔHf(Cl-(aq))] - ΔHf(AgCl(s))Step 3: Substitute the values of the enthalpies of formation of AgCl(s), Ag+(aq), and Cl-(aq) into the equation and solve for ΔH. The enthalpies of formation can be found in a standard reference table or calculated using Hess's law and standard enthalpies of formation of other substances. For AgCl(s), ΔHf = -127 kJ mol-1; for Ag+(aq), ΔHf = +105 kJ mol-1; and for Cl-(aq), ΔHf = -167 kJ mol-1.ΔH = [(+105 kJ mol-1) + (-167 kJ mol-1)] - (-127 kJ mol-1)ΔH = +145 kJ mol-1Therefore, the standard enthalpy of solution of AgCl(s) in water is +145 kJ mol-1.

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Combination audible/visible notification appliances must be mounted so that the entire lens is located at or below the finished floor level.

This positioning ensures that the notification appliances are easily visible and audible to individuals on the floor level, providing effective notification in case of emergencies or other events requiring attention. Alertus Technologies offers powerful audible and visual appliances for emergency alerting such as strobes, horns, Alertus LED Marquees, and more. These appliances are an essential component of a unified mass notification system. Using audible and visual notifications ensures that your organization’s entire population can receive and respond to alerts by overcoming loud environments, and reach those with auditory impairments.

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These two external forces, the gravitational force, and the normal force, are responsible for keeping the water in the pail as it rotates in the vertical circle.

In a vertical circular motion, two external forces act on the water in the pail. The first force is the gravitational force, also known as weight, which acts downward towards the center of the Earth. This force is given by the equation Fg = mg, where m is the mass of the water and g is the acceleration due to gravity.

The second force is the normal force, which acts perpendicular to the surface of the pail. As the water moves in a vertical circle, the normal force changes in magnitude and direction. At the top of the circle, the normal force is directed downward, opposing the gravitational force. At the bottom of the circle, the normal force is directed upward, assisting the gravitational force.

These two external forces, the gravitational force, and the normal force, are responsible for keeping the water in the pail as it rotates in the vertical circle.

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The electric potential inside a charged solid spherical conductor in equilibrium is:

(b) constant and equal to its value at the surface.

In a solid spherical conductor, the excess charge distributes itself uniformly on the outer surface of the conductor due to electrostatic repulsion.

This results in the electric potential inside the conductor being constant and having the same value as the potential at the surface. The charges inside the conductor arrange themselves in such a way that there is no electric field or potential gradient within the conductor.

Therefore, the electric potential inside the charged solid spherical conductor remains constant and equal to its value at the surface, regardless of the distance from the center.

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8 kg of the 10 kg water is in the liquid state, the pressure can be estimated to be approximately 0.7882 bar.

To determine the pressure of 10 kg of water at 90 degrees Celsius, we can use the steam tables or water properties data. However, it's important to note that the pressure depends on the specific volume or density of the liquid and the state of the water (saturated liquid, superheated, etc.).

Assuming that the 8 kg of water is in the liquid state, we can use the saturated water properties at 90 degrees Celsius to estimate the pressure. At this temperature, water is in the saturated liquid state.

Using steam tables or water properties data, we find that the saturation pressure of water at 90 degrees Celsius is approximately 0.7882 bar.

Therefore, if 8 kg of the 10 kg water is in the liquid state, the pressure can be estimated to be approximately 0.7882 bar.

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The film of MgF₂ will affect some wavelengths in the visible spectrum due to the phenomenon of interference.

When light passes through a film, such as the MgF₂ coating on a camera lens, it undergoes interference with the light reflected from the top and bottom surfaces of the film.

To determine which wavelengths are affected, we can use the equation for the condition of constructive interference in a thin film:

2nt = mλ

where:
- n is the refractive index of the film (in this case, n = 1.38),
- t is the thickness of the film (t = 1.00x10⁻⁵ cm),
- m is an integer representing the order of the interference,
- λ is the wavelength of the incident light.
For the visible spectrum, wavelengths range from approximately 400 nm (violet) to 700 nm (red). By substituting different values of m and solving the equation, we can determine the wavelengths for which constructive interference occurs.

In summary, the film of MgF₂ will affect some wavelengths in the visible spectrum due to the phenomenon of interference.

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A discrete-time low-pass filter to be designed using bilinear transformation on the continuous-time Butterworth filter, with specification as follows 0.8 ≤ H ≤ 1, 0 ≤|w|≤0.25T, H(ej)| ≤0.15, 0.35π ≤|w|≤T.

a) Design a continuous-time Butterworth filter, having magnitude-squared function H(jn) 1² = H(s)H(-s)|s-jn. to exactly meet the specification at the passband edge. To determine the continuous-time Butterworth filter, we'll need to use the following formula, which relates the cut-off frequency of the low-pass filter to the pole of the Butterworth filter and the number of poles.

Since the low-pass filter is to be implemented using bilinear transformation, we must first map the s-plane poles to the z-plane using the bilinear transformation. The mapping from the s-plane to the z-plane using bilinear transformation is given by: where, Here, Ta=1 (given)Then the values of a, b, and c can be computed as follows: The transfer function of the low-pass Butterworth filter in the z-domain is: Conversion from the polar to the Cartesian form gives us.

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A thousand kilo meters length of cable is laid between two power stations. If the conductivity of the material of the cable is 5.9 x 10⁷ Q-¹ m-¹ and its diameter is 10 cm, the resistance of the cable is 113.69 Ω.

If the free electron density is 8.45 x 10²⁸ m-³ and the current carried is 10000A, the drift velocity of the electrons is 0.298 m/s.

Their mobility is 262.41 m²/(V s). and the power dissipated in the cable is 113.69 x 10⁶ W.

To calculate the resistance of the cable, we can use the formula:

Resistance (R) = (ρ * L) / A

where ρ is the resistivity of the material, L is the length of the cable, and A is the cross-sectional area of the cable.

Length of the cable (L) = 1000 km = 1000 * 1000 m

Conductivity of the material (σ) = 5.9 x 10⁷ Q⁻¹ m⁻¹

Diameter of the cable (d) = 10 cm = 0.1 m

First, let's calculate the cross-sectional area (A) of the cable:

A = π * (d/2)²

A = π * (0.1/2)²

A = π * (0.05)²

Now, we can calculate the resistance (R) of the cable:

R = (ρ * L) / A

R = (1/σ * L) / A

R = (1 / (5.9x10⁷) * (1000 * 1000)) / (π * (0.05)²)

Calculating this expression, we get:

R ≈ 113.69 Ω.

Next, let's calculate the drift velocity ([tex]v_d[/tex]) of the electrons in the cable. The drift velocity is given by the formula:

[tex]v_d[/tex] = I / (n * A * q)

where I is the current carried, n is the free electron density, A is the cross-sectional area, and q is the charge of an electron.

Current carried (I) = 10000 A

Free electron density (n) = 8.45 x 10²⁸ m⁻³

Cross-sectional area (A) = π * (0.05)²

Charge of an electron (q) = 1.6 x 10⁻¹⁹ C

Substituting these values into the formula, we get:

[tex]v_d[/tex] = 10000 / (8.45 x 10²⁸ * π * (0.05)² * 1.6 x 10⁻¹⁹)

Calculating this expression, we get:

[tex]v_d[/tex] = 0.298 m/s.

Next, let's calculate the mobility (μ) of the electrons. The mobility is given by the formula:

μ = [tex]v_d[/tex] / E

where E is the electric field strength.

Since the power dissipated in the cable is not given, we cannot directly calculate the electric field strength. However, if we assume that the power dissipated in the cable is equal to the power input (P), we can use the formula:

P = I² * R

Substituting the given values, we get:

P = 10000² * 113.69

Calculating this expression, we get:

P = 113.69 x 10⁶ W

Now, assuming this power is evenly distributed over the length of the cable, we can calculate the electric field strength (E) using the formula:

P = E * I * L

Substituting the values, we get:

113.69 x 10⁶ = E * 10000 * (1000 * 1000)

Simplifying this expression, we find:

E ≈ 1.137 x 10⁻³ V/m

Finally, we can calculate the mobility (μ):

μ = [tex]v_d[/tex] / E

μ = 0.298 / (1.137 x 10⁻³)

Calculating this expression, we get:

μ ≈ 262.41 m²/(V s).

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To determine the signal-to-noise ratio (SNR), we need to calculate the SNR in terms of power. The SNR can be expressed as SNR = P_signal / P_total, where P_signal is the optical signal power incident on the photodiode.

Based on the given information, we can analyze the various noise powers in the receiver:

Shot Noise: Shot noise is the dominant noise source in the receiver and is given by the formula: P_shot = 2qI_darkB, where I_dark is the dark current and B is the receiver bandwidth.

Thermal Noise: Thermal noise, also known as Johnson-Nyquist noise, is caused by the random thermal motion of electrons and is given by the formula: P_thermal = 4kBTΔf, where kB is Boltzmann's constant, T is the temperature in Kelvin, and Δf is the receiver bandwidth.

Total Noise: The total noise power is the sum of shot noise and thermal noise: P_total = P_shot + P_thermal.

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The work done by the external force on the child is positive.

When a force is applied to an object, work is done on that object. Work is defined as the product of the force applied on an object and the distance over which the force acts. In this case, the external force acted on the child on a skateboard, causing her speed to increase from 2 m/s to 3 m/s.

To calculate the work done, we can use the formula for work:

\[ \text{Work} = \text{Force} \times \text{Distance} \times \cos(\theta) \]

Since the child's speed increased, we know that the force and displacement acted in the same direction. Therefore, the angle between the force and displacement vectors, denoted by theta (θ), is 0 degrees, and the cosine of 0 degrees is 1.

Considering the child's speed increased, we can conclude that the force applied in the direction of motion did positive work on the child. The positive work done by the external force resulted in an increase in the child's kinetic energy, causing her speed to change.

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The magnitude of the change in momentum is 0.242 kg m/s.

The given data is given below,Mass of the baseball, m = 0.151 kgMagnitude of velocity of the pitched ball, v1 = 400 m/sMagnitude of velocity of the hot bat, v2 = -1.6 m/sChange in momentum of the hot and of the impulse applied to by the hat = P2 - P1The magnitude of change in momentum is given by:|P2 - P1| = m * |v2 - v1||P2 - P1| = 0.151 kg * |(-1.6) m/s - (400) m/s||P2 - P1| = 60.76 kg m/sTherefore, the magnitude of the change in momentum is 60.76 kg m/s.Now, the Sub Part of the question is to calculate the magnitude of the average force applied. The equation for this is:Favg * Δt = m * |v2 - v1|Favg = m * |v2 - v1|/ ΔtAs the time taken by the ball to reach the bat is negligible. Therefore, the time taken can be considered to be zero. Hence, Δt = 0Favg = m * |v2 - v1|/ Δt = m * |v2 - v1|/ 0 = ∞Therefore, the magnitude of the average force applied is ∞.

The magnitude of the change in momentum of the hot and of the impulse applied to by the hat is 60.76 kg m/s.The magnitude of the average force applied is ∞.

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In order to maximize the rate at which energy is supplied to a resistive load, the power factor of an RLC circuit should be as close as possible to 1, or unity power factor. The power factor represents the efficiency of power transfer in an electrical circuit.

A resistive load dissipates real power and performs useful work, while reactive components (inductors and capacitors) in the circuit store and release energy. Reactive power, which oscillates back and forth between the source and reactive components, does not contribute to the actual work performed by the resistive load.

By having a power factor close to 1, the reactive power is minimized, and more of the total power supplied to the circuit is utilized by the resistive load. This leads to a higher rate of energy supply and improved overall efficiency.

A power factor close to 1 indicates that the reactive power is small compared to the real power, meaning that most of the power delivered by the source is effectively used by the resistive load. Therefore, maximizing the rate of energy supply to a resistive load requires a power factor as close as possible to 1 in an RLC circuit.

Having a power factor close to 1 is crucial for maximizing the rate at which energy is supplied to a resistive load in an RLC circuit. This ensures that most of the power delivered by the source is effectively utilized by the resistive load, minimizing energy losses due to reactive power.

By optimizing the power factor, the circuit operates with greater efficiency and delivers power to the load more effectively. It is important to design and tune RLC circuits to achieve a power factor as close to 1 as possible, thereby maximizing the rate of energy supply and promoting efficient utilization of electrical power.

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An ac circuit incldues a 155 ohm reisstor in series with a 8 μF capcitor. The current in the circuit has an ampllitude 4×10^-3 A.The frequency at which the capacitive reactance equals the resistance in the circuit approximately 101.51 Hz.

To find the frequency at which the capacitive reactance equals the resistance in the given AC circuit, we can equate the capacitive reactance (Xc) and resistance (R).

The capacitive reactance is given by the formula:

Xc = 1 / (2πfC)

where f is the frequency in Hertz (Hz) and C is the capacitance in Farads (F).

In this case, the resistance (R) is given as 155 ohms (Ω) and the capacitance (C) is given as 8 microfarads (μF), which can be converted to Farads by multiplying by 10^(-6):

R = 155 Ω

C = 8 μF = 8 × 10^(-6) F

We can set Xc equal to R and solve for the frequency (f):

R = Xc

155 = 1 / (2πfC)

Let's rearrange the equation to solve for f:

f = 1 / (2πRC)

To find the frequency at which the capacitive reactance equals the resistance in the given AC circuit, we can equate the capacitive reactance (Xc) and resistance (R).

The capacitive reactance is given by the formula:

Xc = 1 / (2πfC)

where f is the frequency in Hertz (Hz) and C is the capacitance in Farads (F).

In this case, the resistance (R) is given as 155 ohms (Ω) and the capacitance (C) is given as 8 microfarads (μF), which can be converted to Farads by multiplying by 10^(-6):

R = 155 Ω

C = 8 μF = 8 × 10^(-6) F

We can set Xc equal to R and solve for the frequency (f):

R = Xc

155 = 1 / (2πfC)

Let's rearrange the equation to solve for f:

f = 1 / (2πRC)

Now we can substitute the values of R and C into the equation and calculate the frequency:

f = 1 / (2πRC)

= 1 / (2π × 155 × 8 × 10^(-6))

≈ 1 / (9.848 × 10^(-4) π)

≈ 101.51 Hz

Therefore, the frequency at which the capacitive reactance equals the resistance in the circuit is approximately 101.51 Hz.

Now we can substitute the values of R and C into the equation and calculate the frequency:

f = 1 / (2πRC)

= 1 / (2π × 155 × 8 × 10^(-6))

≈ 1 / (9.848 × 10^(-4) π)

≈ 101.51 Hz

Therefore, the frequency at which the capacitive reactance equals the resistance in the circuit is approximately 101.51 Hz.

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To arrange the colors of visible light from the highest frequency (top) to the lowest frequency (bottom), click and drag the elements in the following order: violet, blue, green, yellow, orange, red.

Colors of visible light are arranged from highest to lowest frequency because frequency is directly related to the energy of the light wave. Higher frequency light waves have more energy, while lower frequency light waves have less energy. When light passes through a prism or diffracts, it splits into its constituent colors, forming a spectrum. The spectrum ranges from violet, which has the highest frequency and thus the most energy, to red, which has the lowest frequency and the least energy.

The frequency of light determines its position in the electromagnetic spectrum, with visible light falling within a specific range. Violet light has the shortest wavelength and highest frequency, while red light has the longest wavelength and lowest frequency.

By arranging the colors of visible light from highest to lowest frequency, we can observe the progression of energy levels and understand the relationship between frequency and color.

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The distance from equilibrium where the acceleration is half of its maximum acceleration is -x0/2.To find the distance from equilibrium at which the acceleration of the mass attached to the end of a spring equals half of its maximum acceleration, we can use the equation for acceleration in simple harmonic motion.

The acceleration of an object undergoing simple harmonic motion is given by the equation:

a = -k * x

Where "a" is the acceleration, "k" is the spring constant, and "x" is the displacement from equilibrium.

In this case, the maximum acceleration occurs when the mass is at its maximum displacement from equilibrium, which is x0. So, the maximum acceleration (amax) can be calculated as:

amax = -k * x0

To find the distance from equilibrium where the acceleration is half of its maximum value, we need to solve the equation:

1/2 * amax = -k * x

Substituting the values of amax and x0, we have:

1/2 * (-k * x0) = -k * x

Simplifying the equation:

-x0 = 2x

Rearranging the equation:

2x + x0 = 0

Now, solving for x:

2x = -x0

Dividing both sides by 2:

x = -x0/2

So, the distance from equilibrium where the acceleration is half of its maximum acceleration is -x0/2.

Please note that the distance is negative because it is measured in the opposite direction from equilibrium.

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The numbers at a, b, f and g have two significant figures while the numbers at c, d and h have three significant figures. the number at e has four significant figures.

Here are the number of significant figures in each of the given numbers:

(a) 60 - The number 60 has two significant figures

(b) 5.6 x 10^4 - This number has two significant figures

(c) 5.60 x 10^4 - It has three significant figures

(d) 6.05 x 10^4 - It has three significant figures

(e) 6.050 x 10^4 - It has four significant figures

(f) 0.0056 - It has two significant figures

(g) 0.065 - It has two significant figures

(h) 0.0506 - It has three significant figures.

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The component in a laser printer that applies toner to the drum and causes it to stick to the charged areas is the developer unit or toner cartridge.

In a laser printer, the process of applying toner to the drum involves the developer unit or toner cartridge. The developer unit contains a mixture of toner particles, which are typically made of a fine powder composed of pigments, resins, and other additives.

The toner cartridge or developer unit consists of a rotating roller or magnetic brush. As the drum rotates, the roller or brush picks up the toner particles from the cartridge and carries them towards the drum's surface. The drum is electrostatically charged, typically by a charging corona wire, creating areas of positive or negative charge depending on the design of the printer.

When the charged drum passes near the developer unit, the toner particles are attracted to the oppositely charged areas on the drum's surface. This process is known as electrostatic attraction or electrophotography. The toner particles adhere to the charged areas, forming the desired image or text on the drum.

Once the toner is transferred to the drum, it is subsequently transferred to the paper during the printing process, creating a permanent image.

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