around high tension power lines there are electric, but no magnetic fields. neither electric nor magnetic fields. both electric and magnetic fields. magnetic, but no electric fields. (true or false)

The net heat removed by convection and radiation is 5492.3 kcal/hr. The person is losing heat by both convection and radiation. The net heat loss is the sum of the heat loss by convection and radiation

Surface area of a person (A) = 1.5 m²

Mass of person (m) = 60 kg

Heat produced by the person (Q) = 1500 kcal/hr

Temperature of skin (T₁) = 32°C or

305 KTemperature of surrounding air

(T₂) = 27°C or 300 K

Heat transfer coefficient by convection

(Kc) = 16 kcal/m² h

rHeat transfer coefficient by radiation (Kr) = 6 kcal/m² hr

The net heat removed by convection (Qc) and radiation (Qr) can be calculated as follows:

Qc = Kc × A × (T₁ - T₂)Qc

= 16 × 1.5 × (305 - 300)Qc

= 120 kcal/hrQr

= Kr × A × [(T₁ + 273)⁴ - (T₂ + 273)⁴]Qr

= 6 × 1.5 × [(305 + 273)⁴ - (300 + 273)⁴]Qr

= 5372.3 kcal/hr

Therefore, the net heat removed by convection and radiation is:Net heat removed by convection

(Qc) = 120 kcal/hr

Net heat removed by radiation (Qr) = 5372.3 kcal/hr.

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The magnitude of the bird's acceleration is 14.29 m/s².

Given values:Mass of bird (m) = 0.70 kgNet force on the bird

(F) = 10 NAngle of direction of net force with horizontal

(θ) = 70°Let's resolve the given net force into its horizontal and vertical components.Using the following equations, we can find the horizontal and vertical components of the net force.Fh = F cos θHere,

Fh = horizontal component of force

F = net force

θ = angle of direction of force with horizontalF

h = 10 cos 70°

= 3.18 N (approx)F

v = F sin θHere,F

v = vertical component of force

F = net force

θ = angle of direction of force with horizontalF

v = 10 sin 70°

= 9.67 N (approx)We know that force

(F) = mass (m) × acceleration (a)Here

,F = net force acting on the bird

m = mass of bird

a = acceleration of bird  Substitute the given values in the above formula. We get,

10 = 0.70 × aSimplify the above equation, we get the acceleration of the bird. The magnitude of the bird's acceleration is: a = 14.29 m/s² (approx)

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(a) The work done by the tension force is **-808.3 J** (joules). Work is defined as the product of force and displacement, and it is given by the equation: Work = Force * Displacement * cos(θ), where θ is the angle between the force and the displacement.

Given:

Force = 145 N (tension force)

Displacement = 5.60 m (distance traveled)

θ = 35.0 degrees (angle above the horizontal)

To calculate the work, we need to find the horizontal component of the tension force. Using trigonometry, we can determine the horizontal component:

Horizontal component = Force * cos(θ)

Horizontal component = 145 N * cos(35.0°)

Then, we can calculate the work done:

Work = Horizontal component * Displacement

Work = (145 N * cos(35.0°)) * 5.60 m

(b) The coefficient of kinetic friction between the crate and the surface is **0.323**.

Since the crate is moving at a constant speed, we know that the force of friction is equal in magnitude and opposite in direction to the applied force. Therefore, the force of friction can be calculated using the equation:

Force of friction = Applied force

Force of friction = 145 N

The force of friction can also be expressed as the product of the coefficient of kinetic friction (μk) and the normal force (N). The normal force is the force exerted by the surface on the crate perpendicular to the surface. In this case, the normal force is equal to the weight of the crate, given by:

Normal force = mass * acceleration due to gravity

Normal force = 25.0 kg * 9.8 m/s^2

Now we can solve for the coefficient of kinetic friction:

μk = Force of friction / Normal force

μk = 145 N / (25.0 kg * 9.8 m/s^2)

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The potential difference to which an α-particle must be accelerated so that it has just enough energy to reach a distance of 1.8 × 10⁻¹⁴ m from the surface of a gold nucleus is 2.18 × 10³ V.

Explanation: Given data:

The radius of gold nucleus, r = 7.3 × 10⁻¹⁵ m

Charge on gold nucleus, q = +79e

Charge on α-particle, q' = +2e

The distance of the α-particle from the surface of gold nucleus,

d = 1.8 × 10⁻¹⁴ m

We know that the potential difference through which the particle must be accelerated is given by the expression;

V = KE/q'where KE is the kinetic energy of the particle

For an electrostatic field, the potential difference between two points A and B is given by the expression;

V = W/q

where W is the work done in moving a test charge q from point A to point B

Through the combination of these two equations,

we can get the required expression for potential difference;

V = KE/q' = W/q

V = (q/4πε₀d)/q'

where ε₀ is the permittivity of free space

Thus, the potential difference is;V = (1/4πε₀) * (q*q'/d)

V = (1/4πε₀) * (2e)(79e)/(1.8 × 10⁻¹⁴ m)

V = (1.44 × 10⁻¹⁹ C²/Nm²) * 1.58 × 10¹²C

V = 2.28 × 10³ V

Thus, the potential difference to which an α-particle must be accelerated so that it has just enough energy to reach a distance of 1.8 × 10⁻¹⁴ m from the surface of a gold nucleus is 2.18 × 10³ V.

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The rocket, starting from rest, accelerates upwards with a constant acceleration of 49.0 m/[tex]s^2[/tex] for a period of 10.0 seconds. After the fuel is exhausted, the rocket enters free fall with an acceleration of 9.80 m/[tex]s^2[/tex]. The maximum height reached by the rocket is 12250.0 meters

To find the maximum height reached by the rocket, we need to analyze its motion in two phases: the acceleration phase and the free fall phase. During the acceleration phase, the rocket experiences a constant acceleration of 49.0 m/[tex]s^2[/tex] for a duration of 10.0 seconds. We can use the kinematic equation:

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

where y is the displacement, u is the initial velocity (which is 0 since the rocket starts from rest), a is the acceleration, and t is the time. Plugging in the values, we get y = 0 + (1/2)[tex](49.0)(10.0)^2[/tex] = 2450.0 m.

After the fuel is exhausted, the rocket enters the free fall phase, where it experiences a downward acceleration due to gravity of 9.80 m/[tex]s^2[/tex]. In this phase, the initial velocity is the velocity at the end of the acceleration phase, which can be calculated using the equation:

[tex]v = u + at[/tex]

where v is the final velocity, u is the initial velocity, a is the acceleration, and t is the time. Since the rocket is now in free fall, the final velocity at the end of the acceleration phase is given by v = 49.0 * 10.0 = 490.0 m/s. Now we can use the equation:

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

where y is the displacement, u is the initial velocity, a is the acceleration, and t is the time. Plugging in the values, we get y = 490.0 * t + (1/2)(-9.80)[tex]t^2[/tex]. To find the maximum height, we need to determine the time it takes for the rocket to reach its highest point. This can be done by finding the time when the rocket's velocity becomes zero. Setting v = 0 in the equation v = u + at, we get 0 = 490.0 - 9.80t. Solving for t, we find t = 50.0 seconds. Now, we can substitute this value of t into the equation for displacement to find the maximum height: [tex]y_{max[/tex] = 490.0 * 50.0 + [tex](1/2)(-9.80)(50.0)^2[/tex] = 12250.0 m.

Therefore, the maximum height reached by the rocket is 12250.0 meters.

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The mutual force between the two point charges is  -0.63 N. The negative sign indicates that the force between the two charges is attractive.

According to Coulomb’s law, the force between two point charges is directly proportional to the product of the two charges and inversely proportional to the square of the distance between them.

Coulomb’s law is an inverse-square law, which means that if the distance between two charges is doubled, then the force between them will be reduced to one-fourth of the original value, whereas, if the distance is halved, the force between them will increase four times more than the original value.

This is represented by the formula: 

F = k * (q₁ * q₂) / r²

where F is the force between the charges,

q₁ and q₂ are the magnitudes of the charges,

r is the distance between them, and

k is the Coulomb constant which is equal to 8.99 × 10⁹ N·m²/C².

As per the problem, two point charges are present, separated by 1.5 cm, having the charge values of +2.0 µC and -4.0 µC.

So, using the above formula, the mutual force between them is:

F = k * (q₁ * q₂) / r²F

= 8.99 × 10⁹ * [(+2.0 × 10⁻⁶) * (-4.0 × 10⁻⁶)] / (0.015)²F

= -0.63 N.

The negative sign indicates that the force between the two charges is attractive. So, the mutual force between the two point charges is -0.63 N.

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The car’s velocity after the gas pedal was depressed  is 40 m / s

The seconds  it take for Viola’s car to stop after she brakes is

The path length traveled by Viola’s car after she brakes 106.67m

The total displacement of the car is  1506.67 m

a. Velocity

= 30 + 0.250 * 40

= 40 m / s

b. 40 m / s ÷ 7.5

= 5.33 seconds

c. The path length

= 40 x 5.33 - 1 / 2 * 5.33² * 7.50

= 106.67m

d. 30 * 40 + 1 / 2 * 0.25 * 40²

= 1400 m

The total displacement is 1400 m + 106.67m

= 1506.67 m

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The work done by the force F is 6.40 Joules (J).

To calculate the work done by the force F, we can use the equation:

W = F ⋅ s

Given:

Magnitude of force F = 8.00 N

Angle of force F above the -x-axis = 60.0 degrees

Displacement s = 1.60 m

Since the force F has a constant magnitude and is applied in the direction of the displacement (in the +x-direction), the work done is simply the product of the magnitude of the force and the displacement.

First, we need to find the x-component of the force F. We can use trigonometry to do this:

F_x = F ⋅ cos(θ)

Where θ is the angle of force F with respect to the x-axis.

F_x = 8.00 N ⋅ cos(60.0°)

F_x = 8.00 N ⋅ 0.5

F_x = 4.00 N

Now we can calculate the work done:

W = F_x ⋅ s

W = 4.00 N ⋅ 1.60 m

W = 6.40 J

Therefore, the work done by the force F is 6.40 Joules (J).

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A 10 -cm-long thin glass rod uniformly charged to 7.00nC and a 10−cm-long thin plastic rod uniformly charged to −7.00nC are placed side by side, 4.40 cm apart. E1 ≈ -1.78 × 10⁵ N/C, while E2 and E3 are 0 N/C.

To find the electric field strengths E1, E2, and E3 at distances 1.0 cm, 2.0 cm, and 3.0 cm, respectively, from the glass rod along the line connecting the midpoints of the two rods, we can use the principle of superposition of electric fields.

The electric field at a point due to a charged rod is given by:

E = k * (Q / L) * (1 / r)

where k is the electrostatic constant (k = [tex]8.99 * 10^9 N m^2/C^2[/tex]), Q is the charge on the rod, L is the length of the rod, and r is the distance from the rod to the point where we want to find the electric field.

Given:

Glass rod: Q1 = 7.00 nC, L = 10 cm = 0.1 m

Plastic rod: Q2 = -7.00 nC, L = 10 cm = 0.1 m

Distance between the rods: d = 4.40 cm = 0.044 m

To find the electric field strength E1 at 1.0 cm from the glass rod, we need to consider the electric fields due to both rods. The electric field E1 can be calculated as:

E1 = E1_glass + E1_plastic

E1_glass = ([tex]8.99 * 10^9 N m^2/C^2[/tex]) * (7.00 × [tex]10^{(-9)[/tex] C) / (0.1 m) * (1 / 0.01 m) ≈ 5.59 × [tex]10^4[/tex] N/C

E1_plastic =[tex](8.99 * 10^9 N m^2/C^2)[/tex]* (-7.00 × [tex]10^{(-9)[/tex] C) / (0.1 m) * (1 / (0.044 m - 0.01 m)) ≈ -2.34 × [tex]10^5[/tex] N/C

To obtain E1, we sum the contributions:

E1 = E1_glass + E1_plastic

E1 = 5.59 × 10^4 N/C + (-2.34 × [tex]10^5[/tex] N/C)

E1 ≈ -1.78 × 10^5 N/C

Similarly, calculating for E2 and E3,

E2_glass =[tex](8.99 * 10^9 N m^2/C^2)[/tex] * (7.00 × [tex]10^{(-9)[/tex]C) / (0.1 m) * (1 / 0.02 m) ≈ 2.93 × 10^4 N/C

E2_plastic = [tex](8.99 * 10^9 N m^2/C^2)[/tex] * (-7.00 × [tex]10^{(-9)[/tex] C) / (0.1 m) * (1 / (0.044 m - 0.02 m)) ≈ -2.93 × [tex]10^4[/tex] N/C

E2 = E2_glass + E2_plastic ≈ 0 N/C

E3_glass = [tex](8.99 * 10^9 N m^2/C^2)[/tex] * (7.00 × [tex]10^{(-9)[/tex] C) / (0.1 m) * (1 / 0.03 m) ≈ 2.07 × [tex]10^4[/tex] N/C

E3_plastic =[tex](8.99 * 10^9 N m^2/C^2)[/tex] * (-7.00 × [tex]10^{(-9)[/tex] C) / (0.1 m) * (1 / (0.044 m - 0.03 m)) ≈ -2.07 × [tex]10^4[/tex] N/C

E3 = E3_glass + E3_plastic ≈ 0 N/C

Therefore, the electric field strengths at distances 2.0 cm and 3.0 cm from the glass rod along the line connecting the midpoints of the two rods are approximately 0 N/C.

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When a car decelerates, a ball attached to a string in the car makes an angle with respect to the vertical due to the car's acceleration. The tension in the string balances the weight of the ball, and the driver incorrectly assumes the ball is in equilibrium.

(a) The ball attached to the string will make an angle θ with respect to the vertical due to the acceleration of the car. The ball will be to the left of its original equilibrium position when the car was moving at a constant speed. This is because the car's acceleration in the negative x-direction causes the ball to experience a pseudo-force in the opposite direction, pulling it to the left.

(b) To find the angle θ, we need to consider the forces acting on the ball. The two forces are the tension in the string T and the weight of the ball mg. The net force acting on the ball in the x-direction is ma, where m is the mass of the ball and a is the acceleration of the car. Since the ball is in equilibrium in the vertical direction, the net force in the y-direction is zero. From these considerations, we can find that tan(θ) = a/g, where g is the acceleration due to gravity.

(c) The tension in the string can be determined by considering the forces acting on the ball. The tension T in the string must balance the weight of the ball mg and provide the necessary centripetal force for the ball's circular motion. Therefore, the tension in the string is T = mg + ma.

(d) The driver of the car incorrectly assumes that the ball is in equilibrium when the car slows down. In order to keep the ball in equilibrium, the magnitude and direction of the force applied to the ball should be equal and opposite to the net force acting on the ball. The force should have a magnitude of ma and be directed towards the right.

(e) When asked who or what is exerting that force, the driver cannot give a satisfying answer. The force the driver perceives is a pseudo-force that arises due to the car's acceleration. In reality, there is no external force acting on the ball, and its motion is a result of the car's acceleration and the tension in the string.

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The charge required for the pollen to be in equilibrium is 3.92 x 10⁸ Coulombs.

To find the charge required for the pollen to be in equilibrium, we can use the following steps:

1. Find the gravitational force acting on the pollen by using the formula: F₉ = m * g, where m is the mass of the pollen and g is the acceleration due to gravity (approximately 9.8 m/s²).

  F₉ = (4 x 10⁹ kg) * (9.8 m/s²)

     = 3.92 x 10¹⁰ N

2. The electric field exerts a force on the pollen, which can be calculated using the formula: Fₑ = q * E, where q is the charge on the pollen and E is the electric field magnitude.

  Fₑ = q * 100 N/C

3. For equilibrium, the electric force must balance the gravitational force. Therefore, F₉ = Fₑ.

  3.92 x 10¹⁰ N = q * 100 N/C

4. Rearrange the equation to solve for q:

  q = (3.92 x 10¹⁰ N) / (100 N/C)

    = 3.92 x 10⁸ C

Therefore, the charge that would have to be placed on the pollen for it to be in equilibrium is 3.92 x 10⁸ Coulombs.

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A runner is moving at a speed of 1.5m/s.  The jet flying at 200 m/s will travel 30 kilometers in 2.5 minutes.

The formula that we can use to solve for distance is Distance = Speed × Time.

Let us insert the given values into this formula to obtain;

Distance = Speed × Time

Distance = 1.5 × 6.5 m

Distance = 9.75 meters

Therefore, a runner moving at a speed of 1.5 m/s travels 9.75 meters in 6.5 seconds.

A jet is flying at 200 m/s.

We know that 1 minute is equal to 60 seconds.

Therefore, 2.5 minutes is equal to 2.5 × 60 = 150 seconds.

Now, let us use the formula Distance = Speed × Time to solve for the distance the jet will travel.

We obtain; Distance = S\peed × Time

Distance = 200 × 150

Distance = 30000 meters

= 30 kilometers

Therefore, the jet flying at 200 m/s will travel 30 kilometers in 2.5 minutes.

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The order of circuit elements does not matter in a parallel circuit. Swapping their positions does not alter the behavior of the circuit.In a parallel circuit, the order of circuit elements does not matter.

This means that you can swap the position of the elements without affecting the overall behavior of the circuit.

To understand why, let's consider a simple parallel circuit with two resistors, R1 and R2. When connected in parallel, the voltage across both resistors is the same, but the current divides between them.

If we swap the positions of R1 and R2, the voltage across each resistor remains unchanged. The current will still divide between them based on their individual resistance values. This is because the total resistance in a parallel circuit is calculated using the reciprocal of the individual resistances, so swapping their positions does not change the total resistance.

In general, circuit elements in a parallel circuit can be swapped around without affecting the circuit's behavior. This property allows for flexibility in designing and constructing parallel circuits.

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Given that the proton has a mass of about 1.673x10^-27 kg and is placed in a region of space with a constant electric field of magnitude 4.878 N/C, we can determine the time it would take for the proton to travel a distance of 218.64m in units of milliseconds (ms).

First, we calculate the electric force exerted on the proton using the equation F = qE, where q is the charge on the particle and E is the electric field intensity of the region:

F = (1.6 x 10^-19 C) × (4.878 N/C) = 7.8048 × 10^-19 N

Since there are no collisions between the proton and other particles along the way, we can consider the force to be constant and use the kinematic relationship for linear motion:

F = ma

Where a is the acceleration and m is the mass of the proton. Substituting the values, we find:

a = (7.8048 × 10^-19 N) / (1.673x10^-27 kg) = 4.66062 × 10^7 m/s²

Now, we can use the kinematic equation to calculate the time (t) it takes for the proton to travel a distance (d) with an initial velocity (u) and a constant acceleration (a):

d = ut + 1/2 at²

Since the proton is initially at rest (u = 0), the equation simplifies to:

t = √(2d / a)

Substituting the given values, we get:

t = √(2(218.64) / (4.66062 × 10^7)) = √(0.0009395) ≈ 0.0307 ms

It would take approximately 0.0307 ms for the proton to travel a distance of 218.64m.

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The displacement from Dallas to Chicago, assuming a flat Earth, is approximately 802 miles in a direction 13° north of east of Dallas.

Displacement is a term used in physics to describe the change in the position of an object or the distance between two points in a particular direction. It is a vector quantity, meaning it has both magnitude and direction. In simple terms, displacement measures how far an object has moved from its starting point in a straight line, taking into account both the distance and the direction of movement.

To find the displacement from Dallas to Chicago on a flat Earth, we can use the distance and direction between the two cities. The distance between Dallas and Chicago is approximately 802 miles. The direction can be described as 13° north of east of Dallas. This means that if we face east in Dallas and then turn 13° towards the north, we will be facing the direction of Chicago. Therefore, the displacement from Dallas to Chicago is 802 miles in a direction 13° north of east of Dallas.

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(a) The focal length of the projection lens is mm.
(b) The lens of the projector should be placed mm away from the slide to form the image on the screen.


To determine the focal length of the projection lens, we can use the thin lens formula:

1/f = 1/v - 1/u

where f is the focal length, v is the image distance, and u is the object distance.

Given:
Height of the slide (object height) = 23.8 mm
Height of the image on the screen = 1.82 m = 1820 mm
Slide-to-screen distance (object distance) = 3.04 m = 3040 mm

First, we need to calculate the image distance:

v = (f * u) / (u - f)

Plugging in the values, we have:

1820 = (f * 3040) / (3040 - f)

Next, we solve for f:

f * (3040 - f) = 1820 * 3040
3040f - f^2 = 5552800
f^2 - 3040f + 5552800 = 0

Solving this quadratic equation, we find two possible values for f: 2300 mm and 2420 mm. However, since a thin lens cannot have a negative focal length, we discard the negative value.

Therefore, the focal length of the projection lens is 2300 mm.

To find the distance from the slide to the lens, we can use the lens formula:

1/f = 1/v - 1/u

Plugging in the values, we have:

1/2300 = 1/1820 - 1/u

Solving for u, we find:

u = 2444.4 mm

Therefore, the lens of the projector should be placed 2444.4 mm away from the slide to form the image on the screen.

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To solve the problem, we can use the equations of motion for projectile motion.

a) How long will it take for the cannonball to reach its highest point?

We can use the equation for vertical displacement in projectile motion:

Δy = v₀y * t + (1/2) * a * t^2

Since the cannonball reaches its highest point, the final vertical displacement is zero (Δy = 0). The initial vertical velocity is v₀y = 40 m/s, and the acceleration due to gravity is a = -9.8 m/s^2 (taking downward as negative). Plugging in these values, we have:

0 = 40 * t + (1/2) * (-9.8) * t^2

Simplifying the equation and solving for t, we get:

4.9 * t^2 - 40 * t = 0

t(4.9t - 40) = 0

t = 0 (not considered) or t = 40 / 4.9

t ≈ 8.16 seconds

b) How high above the edge of the cliff does the cannonball reach at its highest point?

We can use the equation for vertical displacement again:

Δy = v₀y * t + (1/2) * a * t^2

Plugging in the values, we have:

Δy = 40 * 8.16 + (1/2) * (-9.8) * (8.16)^2

Δy ≈ 329.88 meters

c) With what speed will the cannonball hit the water below the cliff when it comes back down?

The speed at which the cannonball hits the water will be the same as the initial speed when it was fired (assuming no air resistance). Therefore, the speed will be 40 m/s.

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Therefore, the average velocity for the time interval from 2.05 s to 2.85 s is 43 m/s while the average velocity for the time interval from 2.05 s to 2.35 s is 28.3 m/s.

Given that a particle moves according to the equation x=8t², where x is in meters and t is in seconds.

To find the average velocity for the time interval from 2.05 s to 2.85 s and from 2.05 s to 2.35 s we use the formula for average velocity, which is given by;

Average velocity = Total displacement / Time interval

(a) Find the average velocity for the time interval from 2.05 s to 2.85 s.

Substituting x = 8t² into the formula;

Total displacement = x2 - x1

Average velocity = (x2 - x1) / (t2 - t1)

Where x2 = x(t = 2.85s)

= 8(2.85)²

= 68.04m; x1

= x(t = 2.05s)

= 8(2.05)²

= 33.64m;t2

= 2.85s; t1 = 2.05s

Average velocity

= (68.04 - 33.64) / (2.85 - 2.05)

= 34.4 / 0.8 = 43 m/s(b)

Find the average velocity for the time interval from 2.05 s to 2.35 s.

Substituting x = 8t² into the formula;

Total displacement = x2 - x1

Average velocity = (x2 - x1) / (t2 - t1)

Where x2 = x(t = 2.35s)

= 8(2.35)²

= 42.14m; x1

= x(t = 2.05s)

= 8(2.05)²

= 33.64m;

t2 = 2.35s;

t1 = 2.05s

Average velocity = (42.14 - 33.64) / (2.35 - 2.05)

= 8.5 / 0.3

= 28.3 m/s

Therefore, the average velocity for the time interval from 2.05 s to 2.85 s is 43 m/s while the average velocity for the time interval from 2.05 s to 2.35 s is 28.3 m/s.

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Answer: (a) Inside the sphere:  E = 0.

(b) Outside the sphere: E is the same inside and outside the sphere.

(c) Inside the sphere: P = 0.

(d) Inside the sphere: ρb = 0.

To solve the given problem, we'll use the following equations:

Electric displacement (D) is related to electric field (E) and polarization (P) by the equation D = ε₀E + P, where ε₀ is the permittivity of free space.

Electric field (E) is related to electric displacement (D) by the equation E = D/ε, where ε is the permittivity of the material.

Polarization (P) is related to electric susceptibility (χe) and electric field (E) by the equation P = χeε₀E.

Volume bound charge density (ρb) is related to polarization (P) by the equation ρb = -∇ · P, where ∇ is the del operator.

Now, let's solve the problem step by step.

(a) Electric displacement (D) inside and outside the sphere:

Inside the sphere (r < R):

The electric displacement is given by D = ε₀E + P.

Since there is no free charge inside the sphere, the electric field is solely due to polarization.

Therefore, D = P = χeε₀E.

Outside the sphere (r > R):

The electric displacement is also given by D = ε₀E + P.

Outside the sphere, the polarization is zero since there is no dielectric material.

Therefore, D = ε₀E.

(b) Electric field (E) inside and outside the sphere:

Inside the sphere (r < R):

Using the relation D = ε₀E + P, and substituting D = P = χeε₀E, we get:

χeε₀E = ε₀E + χeε₀E.

Simplifying, we find:

E = 0.

Outside the sphere (r > R):

Using the relation D = ε₀E, we get:

ε₀E = ε₀E.

E is the same both inside and outside the sphere.

(c) Polarization (P) inside the sphere:

Inside the sphere (r < R):

P = χeε₀E.

Since E = 0 inside the sphere (as found in part (b)), we have P = 0.

(d) Volume bound charge inside the sphere:

Inside the sphere (r < R):

Using the relation ρb = -∇ · P and P = 0 inside the sphere, we find:

ρb = -∇ · P = 0.

Therefore, there is no volume bound charge inside the sphere.

To summarize the results:

(a) Inside the sphere: D = P = χeε₀E, E = 0.

(b) Outside the sphere: D = ε₀E, E is the same inside and outside the sphere.

(c) Inside the sphere: P = 0.

(d) Inside the sphere: ρb = 0.

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The resultant of the three vectors can be determined by adding the vectors together. First, draw a horizontal axis. To draw a vector diagram, you need to consider three quantities: magnitude, direction, and orientation. These quantities can be represented by vectors. A vector diagram is a graphical representation of a vector's direction, magnitude, and orientation. It is used to determine the resultant of the following three vectors.

Draw vector A at an angle of 30 degrees above the horizontal axis. Label vector A with its magnitude and direction. Then, draw vector B at an angle of 45 degrees above the horizontal axis. Label vector B with its magnitude and direction. Lastly, draw vector C at an angle of 60 degrees above the horizontal axis. Label vector C with its magnitude and direction.Using a ruler and protractor, determine the magnitude and direction of the resultant vector by adding the three vectors together.

The magnitude of the resultant vector is found by using the Pythagorean theorem, which is a² + b² = c². The direction of the resultant vector is found using the inverse tangent formula, which is tan θ = opposite/adjacent. The angle θ is the direction of the resultant vector. Finally, the orientation of the resultant vector is found by comparing it to the horizontal axis. The orientation of the resultant vector is determined by the angle between it and the horizontal axis. The final answer in 120 words: Therefore, the resultant of the three vectors is a vector that has a magnitude of 7.33 units and a direction of 48.5 degrees above the horizontal axis. It is labeled as R in the vector diagram.

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The charge per unit length on the line is λ=5.80μC/m. The electric flux through the cylinder due to the infinite line of charge is approximately 2.746 × 10⁻⁷ N·m²/C.

To find the electric flux through the cylinder due to the infinite line of charge, we can use Gauss's Law. The electric flux (Φ) through a closed surface is given by the equation:

Φ = [tex]Q_{enclosed}[/tex] /E₀

where [tex]Q_{enclosed}[/tex] is the charge enclosed by the surface and E₀ is the permittivity of free space (ε₀ = 8.854 × 10⁻¹² C²/N·m²).

In this case, the infinite line of charge runs along the axis of the cylinder. Since the cylinder is infinitely long, the charge enclosed within the cylinder is the same as the total charge per unit length (λ) multiplied by the length of the cylinder (l*). Thus, [tex]Q_{enclosed}[/tex] = λ * l*.

Substituting the values into the equation, we have:

Φ = (λ * l*) / E₀

Now we can calculate the electric flux through the cylinder.

Given:

Charge per unit length on the line, λ = 5.80 μC/m

Length of the cylinder, l* = 0.420 m

Permittivity of free space, E₀ = 8.854 × 10⁻¹² C²/N·m²

We can use the formula:

Φ = (λ * l*) / E₀

Substituting the values:

Φ = (5.80 μC/m * 0.420 m) / (8.854 × 10⁻¹² C²/N·m²)

Calculating:

Φ ≈ 2.746 × 10⁻⁷ N·m²/C

Therefore, the electric flux through the cylinder due to the infinite line of charge is approximately 2.746 × 10⁻⁷ N·m²/C.

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The relationship between the velocity v and the displacement x is given as v= -2t + 3/2(x²).

The relationship between the acceleration and the displacement of the known mass point is given as a=3x+2.

We are supposed to find the relationship between the velocity v and the displacement x.

We are given t=0, v0=0, x=0.

Initial velocity (v0) is zero.

Using the second equation of motion, we can find the velocity v at any given displacement x using the formula given below:v²-u²=2 as where u=initial velocity=0s=displacement=x differentiating wrt time, we get dv/dt = a= 3x+2 integrating both sides wrt t, we get v= ∫(3x+2) dt= 3∫x dt + 2∫dt = 3/2(x²)+2t+C where C is a constant of integration.

Using the initial condition x=0, t=0, v=0, we can find the value of C as follows:v= 3/2(x²)+2t+C= 0 => C= -3/2x²-2t

Now substituting the value of C in the expression of v we get:v= 3/2(x²)-2t-3/2x²= -2t + 3/2(x²)

Therefore, the relationship between the velocity v and the displacement x is given as v= -2t + 3/2(x²).

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A frictional force of 102 N acts upon a 13.92 kg rightward-moving box to accelerate it leftward. Force (F): 102 N, Mass (m): 13.92 kg , Acceleration (a): -7.34 m/s²  and Net force (Fnet): -102 N.

To analyze the given situation, let's complete the diagram with the given values and identify the missing quantities.

Given:

Frictional force (F) = 102 N (acts leftward)

Mass (m) = 13.92 kg (rightward-moving box)

We need to calculate the acceleration (a) and the net force (Fnet).

Using Newton's second law of motion, we know that the net force (Fnet) is equal to the product of mass and acceleration:

Fnet = m * a

Since the frictional force is acting in the opposite direction of the motion, it will be considered negative in this case.

Fnet = -102 N (opposite to the rightward motion)

m = 13.92 kg

Plugging in these values into the equation, we can solve for acceleration:

-102 N = 13.92 kg * a

a = -102 N / 13.92 kg

a ≈ -7.34 m/s²

Now that we have the acceleration, we can complete the diagram with the calculated values:

Force (F): 102 N (leftward)

Mass (m): 13.92 kg (rightward)

Acceleration (a): -7.34 m/s² (leftward)

Net force (Fnet): -102 N (leftward)

Please note that the diagram representation may vary depending on the specific format or system being used.

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The speed of light is given to be c = 3.0 × 10 8m/s. The time taken by the rocket to acquire a speed of 0.19c, which travels at 3.0×108m/s, can be determined by using the formula t = (v - u) / a where v is the final velocity, u is the initial velocity,

t is the time taken and a is the acceleration.  Therefore, using the formula v = u + at to find the time we get:t = (v - u) / a t = (0.19c - 0) / 9.8m/s 2= (0.19 × 3.0 × 108 m/s) / 9.8m/s 2 = 57.14 × 106s ≈ 57.1 daysTherefore, it will take approximately 57.1 days for the rocket to acquire a speed of 0.19 times that of light.(b) To find the distance travelled by the rocket, we can use the formula s = ut + 1/2 at 2

where s is the distance, u is the initial velocity, t is the time taken, and a is the acceleration.  We can also use v 2 = u 2 + 2as to find the distance. s = ut + 1/2 at 2 s = 0 × (57.14 × 106s) + 1/2 (9.8m/s 2) (57.14 × 106s) 2= 1.74 × 1015m ≈ 1.74 light yearsTherefore, the rocket will travel approximately 1.74 light years to acquire a speed of 0.19 times that of light.Explanation:The main answer is given above which explains how to find the time taken and the distance travelled by the rocket to acquire a speed of 0.19 times that of light.

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The total charge of the thorium nucleus is equal to +90e, where 'e' is the charge on an electron, and '+' represents a positive charge.

This is because the neutral thorium atom has 90 electrons, and the number of protons in an atom's nucleus, which determines its atomic number, is equivalent to its number of electrons.

The electric field's magnitude at a distance of 5.58 × [tex]10^-10[/tex] m from the nucleus can be calculated using Coulomb's law:

Here is the calculation; Where k is Coulomb's constant and is equal to 8.987 × [tex]10^9 Nm^2/C^2.[/tex]

The magnitude of the force on an electron at that distance can be calculated using Coulomb's law, which is as follows:

When the distance from the nucleus to the electron is halved, the force's magnitude will be four times greater.

This is because Coulomb's law is inversely proportional to the square of the distance between the charges, thus halving the distance would result in a four-fold increase in force.

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The vector angle that describes your direction from the forward direction (east) is [tex]59.4^\circ[/tex].

When you walk 16.1 m straight west and then 30.4 m straight north, the vector angle that describes your direction from the forward direction (east) is 63.4 degrees.

Here's how to solve for it:

First, draw a diagram of the problem. You will have a right-angled triangle with the two sides of 16.1 m and 30.4 m.

The hypotenuse of the triangle will be your direction from the forward direction (east).

Label the sides of the triangle with their respective lengths. Here's what it should look like:

size(150);

draw((0,0)--(16.1,0)--(16.1,30.4)--cycle);

label("30.4", (8,15.2), W);

label("16.1 m", (8,0), S);

label("[tex]$\theta$[/tex]", (4,3));

label("[tex]$90^\circ - \theta$[/tex]", (12, 3));

label("h", (8, 18));

Next, use the Pythagorean theorem to solve for the hypotenuse.

[tex]$$\begin{aligned}h^2 &= 16.1^2 + 30.4^2 \\ h &= \sqrt{16.1^2 + 30.4^2} \\ h &= 34.4\ m\end{aligned}$$[/tex]

Finally, use trigonometry to solve for the angle.

[tex]$$\begin{aligned}\tan \theta &= \frac{\text{opposite}}{\text{adjacent}} \\ \tan \theta &= \frac{16.1}{30.4} \\ \theta &= \tan^{-1}\left(\frac{16.1}{30.4}\right) \\ \theta &= 30.6^\circ\end{aligned}$$[/tex]

Since we want the angle from the forward direction (east),

we subtract

[tex]$\theta$[/tex] from,

[tex]$90^\circ$ $$\begin{aligned}90^\circ - \theta &= 90^\circ - 30.6^\circ \\ &= 59.4^\circ\end{aligned}$$[/tex]

Therefore, the vector angle that describes your direction from the forward direction (east) is [tex]59.4^\circ[/tex].

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the motorist's total displacement is 178.823 km, and their average velocity is approximately 66.95 km/h.

To solve this problem, we'll break it down into two parts: the initial trip and the second trip.

Given:

Trip 1:

Duration = 37.0 minutes = 37.0 min × (1 h / 60 min) = 0.617 h

Speed = 79.0 km/h

Rest stop:

Duration = 15.0 minutes = 15.0 min × (1 h / 60 min) = 0.250 h

Trip 2:

Distance = 130 km

Duration = 1.80 hours

(a) Total Displacement:

Displacement is a vector quantity that represents the change in position from the initial point to the final point. We can calculate the total displacement by adding the displacements of each part of the trip.

For Trip 1, the displacement is the distance traveled in the north direction since the motorist drives north for the entire duration.

Displacement for Trip 1 = Distance = Speed × Duration = 79.0 km/h × 0.617 h

For Trip 2, the displacement is also in the north direction since the motorist continues north.

Displacement for Trip 2 = Distance = 130 km

Total Displacement = Displacement for Trip 1 + Displacement for Trip 2

(b) Average Velocity:

Average velocity is calculated by dividing the total displacement by the total time taken.

Total Time = Duration of Trip 1 + Rest Stop Duration + Duration of Trip 2

Average Velocity = Total Displacement / Total Time

Let's calculate the values:

Displacement for Trip 1 = 79.0 km/h × 0.617 h

Displacement for Trip 2 = 130 km

Total Displacement = Displacement for Trip 1 + Displacement for Trip 2

Total Time = Duration of Trip 1 + Rest Stop Duration + Duration of Trip 2

Average Velocity = Total Displacement / Total Time

Calculating the values:

Displacement for Trip 1 = 48.823 km

Displacement for Trip 2 = 130 km

Total Displacement = 48.823 km + 130 km = 178.823 km

Total Time = 0.617 h + 0.250 h + 1.80 h = 2.667 h

Average Velocity = 178.823 km / 2.667 h

Now, let's calculate the answers:

(a) The total displacement is 178.823 km.

(b) The average velocity is approximately 66.95 km/h.

Therefore, the motorist's total displacement is 178.823 km, and their average velocity is approximately 66.95 km/h.

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The potential (V) due to a point charge (Q) at a distance (r) is given by Coulomb's law. The magnitude of the charge is approximately 1.073 x 10⁻⁶coulombs (C).

The potential (V) due to a point charge (Q) at a distance (r) is given by Coulomb's law:

V = k * (|Q| / r)

where:

V is the potential in volts (V)

Q is the charge in coulombs (C)

r is the distance in meters (m)

k is the Coulomb's constant, approximately 8.99 x 10⁹ N m²/C²

We can rearrange the equation to solve for the magnitude of the charge (|Q|):

|Q| = V * r / k

Substituting the given values:

V = 6.25 x 10² V

r = 15.5 m

k = 8.99 x 10⁹ N m²/C²

|Q| = (6.25 x 10² V) * (15.5 m) / (8.99 x 10⁹ N m²/C²)

Calculating the result:

|Q| = 1.073 x 10⁻⁶ C

Therefore, the magnitude of the charge is approximately 1.073 x 10⁻⁶coulombs (C).

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It does not matter what kind of materials connect the battery to the bulb as long as it allows the flow of current.

As long as the material can conduct electricity and allow for the flow of current, any material connecting a complete circuit will allow the light bulb to light. The important thing is that the material must be able to form a complete circuit and allow electricity to flow from the battery to the bulb.

The materials used to connect a battery to a bulb can vary as long as the material can conduct electricity. The electricity must be able to flow from the battery to the bulb through the material for it to work. The materials used to connect a battery to a bulb can include bare wire, wire with plastic sheath, aluminum foil, PVC rod, and others.

The important thing is that the material must be able to form a complete circuit and allow electricity to flow from the battery to the bulb.

Therefore, it does not matter what kind of materials connect the battery to the bulb as long as it allows the flow of current.

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"The intensity level in your bedroom is approximately 90.869 dB." The intensity level of a sound wave decreases with distance according to the inverse square law. According to the inverse square law, the intensity decreases by a factor of 1/distance².

In this case, the initial intensity level is 100 dB at a distance of 7 m. The new distance is 20 m, which is approximately 2.86 times the initial distance (20 m / 7 m ≈ 2.86). Therefore, the intensity level in your bedroom can be calculated as follows:

Intensity level in bedroom = Initial intensity level - 10 * log10(factor)

where "factor" is the factor by which the distance increases.

Intensity level in bedroom = 100 dB - 10 * log10(2.86²)

Intensity level in bedroom ≈ 100 dB - 10 * log10(8.1796)

Intensity level in bedroom ≈ 100 dB - 10 * 0.9131

Intensity level in bedroom ≈ 100 dB - 9.131

Intensity level in bedroom ≈ 90.869 dB

Therefore, the intensity level in your bedroom is approximately 90.869 dB.

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