A proton with velocity v=10^7 m/s enters a region with a uniform magnetic field B= 0.8T at an angle of 60 degrees. It exits the field at some distance d away from it where entered. What is the distance d and the angle at which it exits the magnetic field?

Answers

Answer 1

The distance d is  0.00105 m and the angle is 30 degree.

The force experienced by a charged particle moving in a magnetic field is given by F = qvBsinθ, where q is the charge of the particle, v is its velocity, B is the magnetic field strength, and θ is the angle between the velocity and the magnetic field.

In this case, the proton has a charge of +1.6 x 10⁻¹⁹ C, a velocity of 10⁷ m/s, and enters the magnetic field at an angle of 60 degrees.

Using the formula for the force, we can calculate the magnitude of the force experienced by the proton as

F = (1.6 x 10⁻¹⁹ C)(10⁷ m/s)(0.8 T)sin60

= 6.4 x 10⁻¹² N.

Since the magnetic force is perpendicular to the velocity, the path of the proton will be circular, with a radius given by the equation

F = mv²/r,

where m is the mass of the proton.

Solving for r, we get r = mv/(qB)

= (1.67 x 10⁻²⁷ kg)(10⁷ m/s)/(1.6 x 10⁻¹⁹ C)(0.8 T)

= 0.0525 m.

Once the proton exits the magnetic field, it will continue to move in a straight line with its original velocity. The distance d it travels before coming to a stop can be calculated using the formula d = vt, where t is the time it takes for the proton to come to a stop.

The proton will come to a stop when its kinetic energy is converted into potential energy, so we can use the equation 1/2mv² = qV, where V is the potential difference the proton experiences as it comes to a stop.

Solving for t and substituting in the values we have, we get

d = vt

= (1/2mv²)/(qV)

= (1/2)(1.67 x 10⁻²⁷ kg)(10⁷ m/s)²/(1.6 x 10⁻¹⁹ C)(V).

Assuming V = 10 V, we get d = 0.00105 m.

Finally, the angle at which the proton exits the magnetic field can be calculated using trigonometry. Since the proton's path is circular while it is inside the magnetic field, it will exit the field at the same angle as it entered, which is 60 degrees.

Once it exits the field, it will continue in a straight line with its original velocity, which is at an angle of 30 degrees to the magnetic field (since the angle between the velocity and the magnetic field inside the field is 60 degrees). Therefore, the angle at which the proton exits the magnetic field is 30 degrees.

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Related Questions

Calculate the rotational inertia of a meter stick, with mass 0.78 kg, about an axis perpendicular to the stick and located at the 29 cm mark. (Treat the stick as a thin rod.) ____ kg. m^2 From the table of some rotational inertias, determine the rotational inertia for a thin rod about the center. Then use the parallel-axis theorem. How far is the rotation axis shifted from the center of the rod?

Answers

The rotating axis is 0.5 metres away from the rod's centre.

To calculate the rotational inertia of the meter stick about an axis perpendicular to the stick and located at the 29 cm mark, we can use the formula for the rotational inertia of a thin rod:

I = (1/3) * M * [tex]L^2[/tex],

where I is the rotational inertia, M is the mass of the rod, and L is the length of the rod.

Given that the mass of the meter stick is 0.78 kg and its length is 1 meter (100 cm), we can substitute these values into the formula:

I = (1/3) * 0.78 kg * [tex](100 cm)^2.[/tex]

Simplifying the equation gives:

I = 2600kg.[tex]cm^2[/tex].

Converting the units to kg·[tex]m^2[/tex], we divide by 10,000:

I = 0.26 kg·[tex]m^2[/tex].

So, the rotational inertia of the meter stick about the axis located at the 29 cm mark is 0.26 kg·[tex]m^2[/tex].

To determine the rotational inertia for a thin rod about its center, we can use the formula:

I_center = (1/12) * M *[tex]L^2,[/tex]

where I_center is the rotational inertia about the center. Using the same mass (0.78 kg) and length (1 meter), we substitute these values into the formula:

I_center = (1/12) * 0.78 kg * [tex](100 cm)^2.[/tex]

Simplifying the equation gives:

I_center = 650 kg·[tex]cm^2.[/tex]

Converting the units to kg·[tex]m^2,[/tex]we divide by 10,000:

I_center = 0.065 kg·[tex]m^2.[/tex]

According to the parallel-axis theorem, the rotational inertia about an axis parallel to and displaced a distance 'd' from the center is given by:

I_displaced = I_center + M *[tex]d^2.[/tex]

We know that I_displaced is equal to 0.26 kg·[tex]m^2[/tex](from the previous calculation). Substituting the values into the equation:

0.26 kg·[tex]m^2[/tex]= 0.065 kg·[tex]m^2[/tex]+ 0.78 kg * [tex]d^2.[/tex]

Rearranging the equation, we get:

0.195 kg·[tex]m^2[/tex] = 0.78 kg * [tex]d^2.[/tex]

Solving for 'd', we have:

d^2 = 0.195 kg·[tex]m^2[/tex] / 0.78 kg.

d^2 = 0.25[tex]m^2.[/tex]

Taking the square root of both sides:

d = 0.5 m.

Therefore, the rotation axis is shifted 0.5 meters from the center of the rod.

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for research purposes a sonic buoy is tethered to the ocean floor and emits an infrasonic pulse of sound (speed = 1522 m/s). the period of this sound is 58 ms. determine the wavelength of the sound.

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The wavelength of the sound emitted by the sonic buoy is 88.3 meters

wavelength = speed / frequency
In this case, the speed of sound in water is given as 1522 m/s, and the period (T) of the sound is 58 ms. The period is the time it takes for one complete cycle of the sound wave, and is related to the frequency (f) by the formula:
T = 1/f
Therefore, we can solve for the frequency:
f = 1/T = 1/0.058 s = 17.24 Hz
Now we can use the formula for wavelength:
wavelength = speed / frequency = 1522 m/s / 17.24 Hz = 88.3 m
So the wavelength of the sound emitted by the sonic buoy is 88.3 meters. This sound is considered infrasonic, which means it has a frequency below the range of human hearing (20 Hz).

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The wavelength of the sound emitted by the sonic buoy is 88.3 meters

wavelength = speed / frequency
In this case, the speed of sound in water is given as 1522 m/s, and the period (T) of the sound is 58 ms. The period is the time it takes for one complete cycle of the sound wave, and is related to the frequency (f) by the formula:
T = 1/f
Therefore, we can solve for the frequency:
f = 1/T = 1/0.058 s = 17.24 Hz
Now we can use the formula for wavelength:
wavelength = speed / frequency = 1522 m/s / 17.24 Hz = 88.3 m
So the wavelength of the sound emitted by the sonic buoy is 88.3 meters. This sound is considered infrasonic, which means it has a frequency below the range of human hearing (20 Hz).

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A cosmic ray travels 60.0 km through the earth's atmosphere in 500 μs , as measured by experimenters on the ground. 1-How long does the journey take according to the cosmic ray?

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The journey takes according to a cosmic ray travels 60.0 km through the earth's atmosphere in 500 μs, as measured by experimenters on the ground is t' = 500 μs / √(1 - (v/c)².

According to special relativity, time is relative and depends on the observer's frame of reference. Therefore, from the perspective of the cosmic ray, the journey may not take any time at all, as time may appear to be dilated or slowed down due to its high speed. However, if we assume that the cosmic ray's clock is moving at the same rate as the experimenters' clock on the ground, we can use the formula:

t' = t / √(1 - v²/c²)

where t is the time measured by the experimenters on the ground, v is the speed of the cosmic ray, c is the speed of light, and t' is the time measured by the cosmic ray.

Plugging in the given values, we get:

t' = 500 μs / √(1 - (v/c)²

The speed of the cosmic ray is not given in the question, so we cannot calculate t' without additional information.

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The journey takes according to a cosmic ray travels 60.0 km through the earth's atmosphere in 500 μs, as measured by experimenters on the ground is t' = 500 μs / √(1 - (v/c)².

According to special relativity, time is relative and depends on the observer's frame of reference. Therefore, from the perspective of the cosmic ray, the journey may not take any time at all, as time may appear to be dilated or slowed down due to its high speed. However, if we assume that the cosmic ray's clock is moving at the same rate as the experimenters' clock on the ground, we can use the formula:

t' = t / √(1 - v²/c²)

where t is the time measured by the experimenters on the ground, v is the speed of the cosmic ray, c is the speed of light, and t' is the time measured by the cosmic ray.

Plugging in the given values, we get:

t' = 500 μs / √(1 - (v/c)²

The speed of the cosmic ray is not given in the question, so we cannot calculate t' without additional information.

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what is the water pressure as it exits into the air? express your answer with the appropriate units.

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Water pressure varies, but is typically measured in psi or kPa and ranges from a few to several hundred.

The water tension as it exits out of sight relies upon a few variables, including the level of the water source and the size of the opening. The strain can be determined utilizing the Bernoulli condition, which expresses that the tension of a liquid declines as its speed increments.

Expecting a water source at ground level and dismissing any frictional misfortunes, the tension can be approximated as

[tex]P = 0.5rhov^2,[/tex]

where P is the strain in Dad, rho is the thickness of water (1000 [tex]kg/m^3[/tex]), and v is the speed in m/s. For instance, on the off chance that the water is leaving at a speed of 10 m/s, the tension can be determined as P = 0.51000([tex]10^2[/tex]) = 50,000 Dad, or roughly 7.25 psi. Notwithstanding, the genuine strain can fluctuate generally contingent upon the particular conditions.

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The complete question is:

Part A Water flows from the pipe shown in the figure with a speed of 8.0 m/s . (Fiaure 1) What is the water pressure as it exits into the air? Express your answer to two significant figures and include the appropriate units. HA Value Units p= 1 Value Units.

although many blind individuals have difficulty maintaining circadian rhythms, some are able to do so through ___

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Although many blind individuals have difficulty maintaining circadian rhythms, some are able to do so through non-visual photoreception. This involves specialized cells in the retina called intrinsically photosensitive retinal ganglion cells (ipRGCs), which can detect light and help regulate the body's internal clock.

Although many blind individuals have difficulty maintaining circadian rhythms, some are able to do so through the use of light therapy. This involves using bright lights in the morning and evening to help regulate sleep-wake cycles and improve overall sleep quality.

Additionally, some blind individuals may also use social cues and routine to help maintain a consistent sleep schedule.


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(b) what is the maximum slit width so that no visible light exhibits a diffraction minimum?(visible light has wavelengths from 400 nm to 750 nm.)

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The maximum slit width 'a' to avoid any visible light from exhibiting a diffraction minimum is approximately 1.14 mm.

The condition for the first minimum in the diffraction pattern of a single slit of width 'a' is given by:

sinθ = λ/a

where θ is the angle between the direction of the incident light and the direction of the first minimum in the diffraction pattern, λ is the wavelength of the incident light, and 'a' is the width of the slit.

To avoid any visible light from exhibiting a diffraction minimum, we need to find the maximum slit width 'a' such that the angle θ is greater than the angle of minimum resolvable angular separation for the human eye, which is approximately 0.02 degrees.

Taking λ = 400 nm (the shortest wavelength in the visible spectrum), we have:

sinθ = λ/a = 400 nm / a

For θ > 0.02 degrees, we have sinθ > 0.00035 (where sinθ is measured in radians). Therefore, we can solve for 'a' by setting sinθ = 0.00035:

0.00035 = 400 nm / a

a = 1.14 mm

Therefore, the maximum slit width 'a' to avoid any visible light from exhibiting a diffraction minimum is approximately 1.14 mm.

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a 5.2×10−4 v/mv/m electric field creates a 3.6×1017 electrons/selectrons/s current in a 2.0-mmmm-diameter aluminum wire.

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When a 5.2×10⁻⁴ V/m electric field is applied to a 2.0-mm diameter aluminum wire, it generates a current of 3.6×10¹⁷ electrons per second flowing through the wire.

The electric field can be considered as an electric property associated with each point in the space where a charge is present in any form.

A 5.2×10⁻⁴ V/m electric field creates a 3.6×10¹⁷ electrons/s current in a 2.0-mm diameter aluminum wire.

To understand this better, let's break down the terms:

1. Electric field (5.2×10⁻⁴ V/m): This represents the force experienced by a charged particle in the presence of an electric charge distribution.

2. Current (3.6×10¹⁷ electrons/s): This is the rate at which electric charge flows through a conductor, like a wire, measured in electrons per second.

3. Diameter (2.0 mm): This is the thickness of the aluminum wire.

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When a 5.2×10⁻⁴ V/m electric field is applied to a 2.0-mm diameter aluminum wire, it generates a current of 3.6×10¹⁷ electrons per second flowing through the wire.

The electric field can be considered as an electric property associated with each point in the space where a charge is present in any form.

A 5.2×10⁻⁴ V/m electric field creates a 3.6×10¹⁷ electrons/s current in a 2.0-mm diameter aluminum wire.

To understand this better, let's break down the terms:

1. Electric field (5.2×10⁻⁴ V/m): This represents the force experienced by a charged particle in the presence of an electric charge distribution.

2. Current (3.6×10¹⁷ electrons/s): This is the rate at which electric charge flows through a conductor, like a wire, measured in electrons per second.

3. Diameter (2.0 mm): This is the thickness of the aluminum wire.

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12. now create a table to verify if kinetic energy is conserved for inelastic and elastic collisions. (homework assignment).

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For an elastic collision, total kinetic energy before the collision is conserved after the collision.

For an inelastic collision, some of the kinetic energy is converted into other forms, such as heat or sound.

To verify if kinetic energy is conserved for inelastic and elastic collisions, you can create a table that compares the initial and final kinetic energies of the objects involved in the collision.

For an elastic collision, where kinetic energy is conserved, the initial and final kinetic energies should be equal. So, your table could look something like this:

| Object | Initial Kinetic Energy | Final Kinetic Energy |
|--------|-----------------------|----------------------|
| 1      | 10 J                  | 10 J                 |
| 2      | 5 J                   | 5 J                  |
| Total  | 15 J                  | 15 J                 |

In this example, two objects collide elastically, and their initial and final kinetic energies are the same. The total kinetic energy before the collision is 15 J, and it is conserved after the collision.

For an inelastic collision, where kinetic energy is not conserved, the initial and final kinetic energies will be different. So, your table could look something like this:

| Object | Initial Kinetic Energy | Final Kinetic Energy |
|--------|-----------------------|----------------------|
| 1      | 10 J                  | 5 J                  |
| 2      | 5 J                   | 0 J                  |
| Total  | 15 J                  | 5 J                  |

In this example, two objects collide inelastically, and their initial and final kinetic energies are not the same. Some of the kinetic energy is converted into other forms, such as heat or sound. The total kinetic energy before the collision is 15 J, but only 5 J is present after the collision.

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An experimentalist claims to have raised the temperature of a small amount of water to 150C by transferring heat from high-pressure steam at 120C. Is this a reasonable claim? Why? Assume no refrigerator or heat pump is used in the process

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When compared to its source, which is at 120 degrees Celsius, the water's temperature rises to 150 degrees Celsius. 120 ∘ C . This is an infraction of the second law of thermodynamics, which states that heat cannot be moved from a low to a high temperature without producing an outside impact, such as a heat pump.

What exactly are reservoirs of thermal energy?

When a significant amount of heat is added to or removed from a thermal reservoir, also known as a thermal energy reservoir or thermal bath, the temperature of the reservoir varies only slightly.

What is thermal energy, and how can it be used?

Molecules moving within an object or substance are said to be moving with thermal energy. The thermal energy of any material or item.

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Calculate the gauge pressure (in Pa) inside a soap bubble 1.4 cm in radius using the surface tension γ = 0.034 N/m for the solution.

Answers

The gauge pressure inside the soap bubble is approximately 4.857 Pa using the surface tension γ = 0.034 N/m for the solution.

To calculate the gauge pressure inside a soap bubble with a radius of 1.4 cm and surface tension γ = 0.034 N/m, we can use the Young-Laplace equation for spherical shapes:
Gauge pressure (P) = 2 * γ / R
1. First, convert the radius from cm to meters:
R = 1.4 cm * (1 m / 100 cm) = 0.014 m
2. Next, use the Young-Laplace equation to calculate the gauge pressure:
P = (2 * 0.034 N/m) / 0.014 m
3. Calculate the result:
P ≈ 4.857 N/m²
The gauge pressure inside the soap bubble is approximately 4.857 Pa.

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place the wavelengths at which a telescope performs observations in order of resolution, from worst resolution to best resolution.
-ultraviolet
-visible
-gamma rays
-infrared
-microwaves

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The resolution of a telescope refers to its ability to distinguish two closely spaced objects or features in an image. The resolution of a telescope is determined by the wavelength of the light it observes, the size of the telescope's aperture, and the quality of the telescope's optics.

In general, the longer the wavelength of light, the worse the resolution of a telescope. Therefore, the order of resolution from worst to best would be:

Microwaves: Microwaves have the longest wavelengths among the options given, typically ranging from 1 millimeter to 1 meter. Telescopes that observe microwaves, such as radio telescopes, typically have relatively low resolution due to their long wavelengths.

Infrared: Infrared light has wavelengths slightly shorter than microwaves, typically ranging from 0.7 micrometers to 1 millimeter. Telescopes that observe in the infrared range can achieve better resolution than those observing microwaves but still have relatively lower resolution compared to other ranges of light.

Visible: Visible light has wavelengths ranging from approximately 400 to 700 nanometers. Telescopes that observe visible light can achieve relatively high resolution compared to those observing longer wavelengths.

Ultraviolet: Ultraviolet light has shorter wavelengths than visible light, ranging from approximately 10 to 400 nanometers. Telescopes that observe in the ultraviolet range can achieve even better resolution than those observing visible light.

Gamma Rays: Gamma rays have the shortest wavelengths of the options given, typically less than 10 picometers. Telescopes that observe gamma rays, such as gamma-ray telescopes, can achieve the highest resolution among these options.

However, gamma rays are challenging to observe due to their high energy, so gamma-ray telescopes typically have relatively small apertures, which limits their overall sensitivity.

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displays a 12.0 V battery and 3 uncharged capacitors of capacitances C1 = 4 mu F, C2 = 6 mu F, and C3 = 3 mu F. The switch is thrown to the left side until capacitor 1 is fully charged. Then the switch is thrown to the right. What is the final charge on (a) capacitor 1, (b) capacitor 2, and (c) capacitor 3?

Answers

(a) The final charge on capacitor 1 is 48 microcoulombs.

(b) The final charge on capacitor 2 is 36 microcoulombs.

(c) The final charge on capacitor 3 is 24 microcoulombs.

When the switch is thrown to the left side, capacitor 1 charges to 12 volts. Then, when the switch is thrown to the right, capacitors 1 and 2 are in parallel with each other and in series with capacitor 3. The total capacitance in the circuit is 2.4 microfarads. Using the equation [tex]Q = CV,[/tex]where Q is the charge, C is the capacitance, and V is the voltage, the final charge on capacitor 1 is [tex](4/2.4) x 12 = 48[/tex]  microcoulombs, on capacitor 2 is [tex](6/2.4) x 12 = 36[/tex]  microcoulombs, and on capacitor 3 is[tex](3/2.4) x 12 = 24[/tex] microcoulombs.

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: Constants Sort the following objects as part of the system or not. Drag the appropriate objects to their respective bins. Learning Goal: To practice Problem-Solving Strategy 11.1 for conservation of momentum problems. Reset Help An 80-kg quarterback jumps straight up in the air right before throwing a 0.43-kg football horizontally at 15 m/s. How fast will he be moving backward just after releasing the ball? Earth Football Air Quarterback In system Not in system

Answers

The quarterback will be moving backward at approximately 0.080625 m/s Velocity just after releasing the ball.

To solve this problem, we will use the conservation of momentum principle. First, let's identify the objects in the system and not in the system:

In system: Quarterback, Football

Not in system: Earth, Air

Now, let's follow the steps to solve the problem:

Step 1: Identify the initial and final states of the system.

Initial state: Quarterback and football are stationary (before the jump).

Final state: Quarterback jumps and throws the football, both moving in opposite directions.

Step 2: Apply the conservation of momentum equation.

The total momentum before the jump (initial state) is 0, so the total momentum after the jump (final state) should also be 0.

Step 3: Set up the equation.

Initial momentum = Final momentum

0 = (mass of quarterback × velocity of quarterback) + (mass of football × velocity of football).

Step 4: Plug in the given values.

0 = (80 kg × velocity of quarterback) + (0.43 kg × 15 m/s)

Step 5: Solve for the velocity of the quarterback.

-0.43 kg × 15 m/s = 80 kg × velocity of quarterback

velocity of quarterback = (-0.43 kg × 15 m/s) / 80 kg

velocity of quarterback = -0.080625 m/s.

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Resistors of 5 ohms and 10 ohms are connected in series with a battery supplying 3 volts. What is the total resistance?​

Answers

The total resistance of the 5 ohm and 10 ohm resistors connected in series is 15 ohms.

Answer:

Therefore, the total resistance of the circuit is 15 ohms and the current flowing through the circuit is 0.2 amperes.

Explanation:

When resistors are connected in series, their resistances add up to give the total resistance of the circuit. So, in this case, the total resistance of the circuit is:

Total resistance = 5 ohms + 10 ohms = 15 ohms

Now that we know the total resistance of the circuit, we can use Ohm's law to calculate the current flowing through the circuit:

Current = Voltage / Resistance

where Voltage is the voltage of the battery and Resistance is the total resistance of the circuit.

Plugging in the values, we get:

Current = 3 volts / 15 ohms = 0.2 amperes

Therefore, the total resistance of the circuit is 15 ohms and the current flowing through the circuit is 0.2 amperes.

a force f = (-30, 50) n acts on a mass of 10 kg. at time t = 0 s, the mass has a velocity v0 = (-2, -5) m/s. what are the (x,y) components of the velocity vector (in m/s) after 4 seconds?

Answers

We'll add the initial velocity (v0 = (-2, -5) m/s) to the result: vf = v0 + a * t = (-2, -5) m/s + (-12, 20) m/s = (-14, 15) m/s So, the (x, y) components of the velocity vector after 4 seconds are (-14, 15) m/s.

To find the (x,y) components of the velocity vector after 4 seconds, we need to use the formula:

v = v0 + (f/m)t

where v is the final velocity, v0 is the initial velocity, f is the force acting on the mass, m is the mass, and t is the time elapsed.

Plugging in the given values, we have:

f = (-30, 50) N
m = 10 kg
v0 = (-2, -5) m/s
t = 4 s

To find the x-component of the velocity vector, we can use:

vx = v0x + (fx/m)t

where vx is the x-component of the velocity vector, v0x is the initial x-component of the velocity, fx is the x-component of the force, and t is the time elapsed.

Plugging in the values, we have:

vx = -2 + (-30/10) x 4
vx = -2 - 12
vx = -14 m/s

To find the y-component of the velocity vector, we can use:

vy = v0y + (fy/m)t

where vy is the y-component of the velocity vector, v0y is the initial y-component of the velocity, fy is the y-component of the force, and t is the time elapsed.

Plugging in the values, we have:

vy = -5 + (50/10) x 4
vy = -5 + 20
vy = 15 m/s

Therefore, the (x,y) components of the velocity vector (in m/s) after 4 seconds are (-14, 15).

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Laser light of wavelength 632.8 nmnm falls normally on a slit that is 0.0220 mmmm wide. The transmitted light is viewed on a distant screen where the intensity at the center of the central bright fringe is 8.70 W/m2W/m2Find the maximum number of totally dark fringes on the screen, assuming the screen is large enough to show them all?.

Answers

There are approximately 34 dark fringes on either side of the central bright fringe, for a total of 68 dark fringes.

To find the maximum number of totally dark fringes on the screen, we can use the formula:

n = (w/d) * (D/λ)

Where n is the number of fringes, w is the width of the slit, d is the distance from the slit to the screen, D is the distance from the slit to the light source, and λ is the wavelength of the laser light.

Plugging in the given values, we get:

n = (0.0220 mm / 1) * (1 / 632.8 nm)
n = 34.37

This means there are approximately 34 dark fringes on either side of the central bright fringe, for a total of 68 dark fringes. However, this assumes that the screen is large enough to show all the fringes. If the screen is too small, some of the fringes may not be visible.

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A particular brand of diet margarine was analyzed to determine the level of polyunsaturated fatty acid (in percent). A sample of six packages resulted in the following data: 16.8, 17.2, 17.4, 16.9, 16.5, 17.1. (a) Test the hypothesis that the mean is not 17.0, using the P-value approach (enter a value of 1 to reject, enter a value of 2 to accept). (b) Suppose that if the mean polyunsaturated fatty acid content is ? = 17.5, it is important to detect this with probability at least 0.90. Is the sample size n = 6 adequate (if so enter a value of 1, if not enter a value of 2)? Use the sample standard deviation to estimate the population standard deviation ?. Use ? = 0.01. Find a 99% two-sided CI on the mean ?: (c) lower bound and (d) upper bound. Round your answers to 2 decimal places.

Answers

(a) To test the hypothesis that the mean is not 17.0, we can use a one-sample t-test with a significance level of 0.01. The null hypothesis is that the true mean is equal to 17.0, and the alternative hypothesis is that the true mean is not equal to 17.0.

Using a calculator or statistical software, we can calculate the sample mean and sample standard deviation as:

sample mean = (16.8 + 17.2 + 17.4 + 16.9 + 16.5 + 17.1) / 6 = 16.95

sample standard deviation = 0.31

The t-statistic is calculated as:

t = (sample mean - hypothesized mean) / (sample standard deviation / sqrt(sample size))

t = (16.95 - 17.0) / (0.31 / sqrt(6)) = -0.97

The degrees of freedom is n - 1 = 5.

Using a t-distribution table or calculator, we find the two-tailed P-value associated with a t-statistic of -0.97 and 5 degrees of freedom is 0.371.

Since the P-value (0.371) is greater than the significance level (0.01), we fail to reject the null hypothesis. Therefore, we do not have sufficient evidence to conclude that the mean is not 17.0.

Answer: 2 (accept the hypothesis that the mean is 17.0).

(b) To determine whether the sample size of 6 is adequate to detect a mean of 17.5 with a probability of at least 0.90, we can perform a power analysis. The null hypothesis is that the true mean is equal to 17.0, and the alternative hypothesis is that the true mean is equal to 17.5.

Using a calculator or statistical software, we can calculate the standard deviation of the population as:

sample standard deviation = 0.31

Using a significance level of 0.01 and a power of 0.90, we find that the minimum detectable effect size (MDES) is 0.50. The effect size is defined as the difference between the true population mean and the hypothesized mean, divided by the population standard deviation.

The effect size can be calculated as:

effect size = (true population mean - hypothesized mean) / population standard deviation

0.50 = (17.5 - 17.0) / population standard deviation

population standard deviation = 0.10

The required sample size can be calculated using a power analysis formula or a power analysis calculator. Using a formula, we get:

n = (Zα/2 + Zβ)² * (population standard deviation)² / MDES²

n = (2.58 + 1.28)² * (0.10)² / 0.50²

n = 27.04

Therefore, the sample size of 6 is not adequate to detect a mean of 17.5 with a probability of at least 0.90.

Answer: 2 (the sample size of 6 is not adequate).

(c) To find the lower bound of a 99% two-sided confidence interval on the mean, we can use the t-distribution with 5 degrees of freedom and a significance level of 0.01/2 = 0.005. The lower bound is given by:

lower bound = sample mean - t(0.005, 5) * (sample standard deviation / sqrt(sample size))

lower bound = 16.95 - 2.571 * (0.31 / sqrt(6)) = 16.62

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A 2 GHz radar antenna of effective area 6.0 m2 transmits 100 kW. If a target with a 12 m2 radar cross section is 100 km away, (a) what is the round-trip travel time for the return radar pulse (b) what is the received power (c) what is the maximum detectable range if the radar system has a minimum detectable power of 2.0 pW. (1 pw = 10-12 W)

Answers

A. The round-trip travel time of the radar pulse is 6.7 x 10⁻⁴ s.

B. The received power is 1.6 x 10⁻⁵ W.

C. The maximum detectable range of the radar system is 16.2 km.

The round-trip travel time for the return radar pulse can be calculated using the formula for the speed of light, c = 3 x 10⁸ m/s, and the distance of 100 km, as t = 2 x 100 km/3 x 10⁸ m/s = 6.7 x 10⁻⁴ s.

The received power can be calculated by using the radar equation, Pr = PtxGtxAe/4πr², where Pr is the received power, Ptx is the transmitted power of 100 kW, Gtx is the antenna gain, Ae is the effective area of 6.0 m2, r is the distance of 100 km, and 4π is a constant. Substituting these values gives Pr = 1.6 x 10⁻⁵ W.

The maximum detectable range can be calculated using the minimum detectable power, Pmin, of 2.0 pW and the radar equation, as rmax = sqrt(PtxGtxAe/4πPmin). Substituting these values in the equation gives rmax = 16.2 km.

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A vertical column load, P = 600 kN, is applied to a rigid concrete foundation with dimensions B = 1 m and L = 2 m. The foundation rests at a depth Df = 0.75 m on a uniform dense sand with the following properties: average modulus of elasticity, Es = 20,600 kN/m2, and Poisson’s ratio, μs = 0.3. Estimate the elastic settlement due to the net applied pressure, Δσ, on the foundation. Given: H = 5 m.

Answers

The estimated elastic settlement due to the net applied pressure of 600 kN on the foundation is 1.86 mm.

To estimate the elastic settlement due to the net applied pressure, Δσ, on the foundation, we can use the following equation:

Δs = (Δσ / Es) * ((1 - μs) / (1 + μs)) * (B / (2 * (Df + H)))

Where Δs is the elastic settlement, Δσ is the net applied pressure, Es is the average modulus of elasticity of the sand, μs is the Poisson's ratio of the sand, B is the width of the foundation, Df is the depth of the foundation, and H is the height of the sand layer.

Substituting the given values, we get:

Δs = (600 / 20600) * ((1 - 0.3) / (1 + 0.3)) * (1 / (2 * (0.75 + 5))) = 0.00186 m or 1.86 mm

Therefore, the estimated elastic settlement due to the net applied pressure of 600 kN on the foundation is 1.86 mm.

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what mass of nickle oxide can be completely reacted with clf_3 gas at a pressure of 250 mmhg in a 2.5 l flask at 20 degrees celcius?

Answers

The partial pressures of [tex]Cl_2[/tex] and [tex]O_2[/tex] are approximately 377 mmHg and 570 mmHg, respectively, and the total pressure in the flask is approximately 1197 mmHg.

(a) To determine the mass of NiO that will react with [tex]ClF_3[/tex] We must count how many moles there are on [tex]ClF_3[/tex] gas using the ideal gas law  in the flask:

PV = nRT

where P = 250 mmHg, V = 2.5 L, T = 20°C + 273.15 = 293.15 K, and R is the ideal gas constant. Solving for n, we get:

n = PV / RT = (250 mmHg)(2.5 L) / (0.08206 L atm/K mol)(293.15 K) ≈ 0.257 mol [tex]ClF_3[/tex]

According to the balanced chemical equation, 6 moles of NiO react with 4 moles of  [tex]ClF_3[/tex] , so the number of moles of NiO required is:

n(NiO) = (4/6) × 0.257 mol = 0.171 mol NiO

The molar mass of NiO is 74.69 g/mol, so the mass of NiO required is:

m(NiO) = n(NiO) × M(NiO) = 0.171 mol × 74.69 g/mol ≈ 12.77 g NiO

Therefore, approximately 12.77 grams of NiO will react with [tex]ClF_3[/tex]  gas in the given conditions.

(b) If all the [tex]ClF_3[/tex]  is consumed, the total number of moles of gas in the flask is still n = 0.257 mol. To ba 4 moles of  [tex]ClF_3[/tex]  produce 2 moles of [tex]Cl_2[/tex]  and 3 moles of  [tex]O_2[/tex] . The number of moles of [tex]Cl_2[/tex]  and  [tex]O_2[/tex]  in the flask are:

n([tex]Cl_2[/tex] ) = (2/4) × 0.257 mol = 0.1285 mol

n( [tex]O_2[/tex] ) = (3/4) × 0.257 mol = 0.193 mol

Use the ideal gas law, calculate the partial pressures of [tex]Cl_2[/tex]  and  [tex]O_2[/tex] :

P([tex]Cl_2[/tex] ) = n( [tex]Cl_2[/tex] )RT/V = (0.1285 mol)(0.08206 L atm/K mol)(293.15 K)/(2.5 L) ≈ 3.14 atm ≈ 377 mmHg

P( [tex]O_2[/tex] ) = n( [tex]O_2[/tex] )RT/V = (0.193 mol)(0.08206 L atm/K mol)(293.15 K)/(2.5 L) ≈ 4.74 atm ≈ 570 mmHg

The partial pressures of all the gases are added to determine the overall pressure in the flask.

P(total) = P( [tex]ClF_3[/tex] ) + P([tex]Cl_2[/tex] ) + P( [tex]O_2[/tex] ) = 250 mmHg + 377 mmHg + 570 mmHg = 1197 mmHg

Pressure is a fundamental concept in physics and refers to the force exerted per unit area. It can be thought of as the amount of force applied to a surface divided by the area over which it is applied. Pressure is typically measured in units such as pascals, pounds per square inch (psi), or atmospheres.

Pressure can arise from a variety of sources, including the weight of an object, the force of a gas or liquid, or even electromagnetic fields. It is a crucial concept in many areas of science and engineering, including fluid mechanics, thermodynamics, and materials science. In everyday life, we experience pressure in many ways, such as the air pressure in our car tires or the water pressure in our plumbing system.

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Complete Question:-

Chlorine trifluoride, ClF_3, is a valuable reagent because it can be used to convert metal oxides to metal fluorides:

6NiO(s)+4ClF_3(g) ------> 6NiF_2(s)+2Cl_2(g)+3O_2(g)

(a) What mass of NiO will react with CIF a gas if the gas has 250mmHg

a pressure of [tex]20\textdegree C[/tex] at in a 2.5-L . flask?

(b) If the CIF a described in part (a) is completely consumed, what are the partial pressures of Cl_2 and of O_2 in the 2.5 -L. flask at [tex]20\textdegree C[/tex]  (in mm Hg)? What is the total pressure in the flask?

a force of 600n compress a spring by 0.5m. what is the spring constant for this spring

Answers

The spring constant can be calculated by using the formula: Spring Constant = Force / Compression. Plugging in the given values we get the spring constant for this spring is 1200 N/m.

Hooke's Law states that the force exerted by a spring is proportional to its displacement from its equilibrium position, which is given by the equation: F = -k * x Where: - F is the force applied to the spring (in Newtons) - k is the spring constant (in N/m) - x is the displacement of the spring from its equilibrium position (in meters).

In this problem, you are given a force (F) of 600 N and a displacement (x) of 0.5 m.

Then find the spring constant (k).

To do this, we'll rearrange the formula to solve for k: k = F / x

Now, we can plug in the values:

k = 600 N / 0.5 m

k = 1200 N/m

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the depth of water behind the hoover dam in nevada is 145 m. what is the water pressure at a depth of 145 m? the weight density of water is 9800 n/m3 . answer in units of n/m2 .

Answers

The water pressure at a depth of 145 m behind the Hoover Dam in Nevada is 13,940,010 N/m²


How to calculate the water pressure?

To find the water pressure at a depth of 145 m behind the Hoover Dam in Nevada, we will use the water pressure formula, which includes the terms "water pressure" and "density".

The water pressure formula is: P = ρgh

Where:
P = water pressure (in N/m²)
ρ = density of water (in N/m³)
g = acceleration due to gravity (9.81 m/s²)
h = depth of water (in meters)

Given the weight density of water is 9800 N/m³, and the depth (h) is 145 m:

Step 1: Plug in the given values into the formula:
P = (9800 N/m³)(9.81 m/s²)(145 m)

Step 2: Multiply the values:
P = 9800 x 9.81 x 145

Step 3: Calculate the final result:
P = 13,940,010 N/m²


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A 14.0-foot-long, nearsighted python is stretched out perpendicular to a plane mirror, admiring its reflected image. If the greatest distance to which the snake can see clearly is 22.0 ft, how close must its head be to the mirror for it to see a clear image of its tail?
______ ft.

Answers

The python's head must be [tex]4.0 feet[/tex]  away from the mirror to see a clear image of its tail. The answer is [tex]4.0 feet[/tex].

The python's head must be to the mirror to see a clear image of its tail, The concept of the virtual image formed by the mirror.

Given:

Length of the python [tex](L)= 14.0 feet[/tex]

Greatest distance to which the snake can see clearly (distance of clear vision) = [tex]22.0 feet[/tex]

Let's assume that the python's head is at a distance x feet from the mirror.

According to the concept of the virtual image formed by the mirror, the image distance is equal to the object distance:

[tex]d_{(image)} = d_{(object)}[/tex]

The calculation is as follows:

[tex]x = (22.0- 14.0) - x\\2x = 22.0 - 14.0\\x = 8.0 / 2\\x = 4.0\ feet[/tex]

So, the python's head must be [tex]4.0 feet[/tex] away from the mirror to see a clear image of its tail.

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a vertical metal rod of length 38.4 cm moves north at constant speed 4.80 m/s in a 0.600-t magnetic field directed 27.0° east of north. Which end of the rod has an accumulation of excess electrons?

Answers

The bottom end of the rod has an accumulation of excess electrons.

When a conductor moves through a magnetic field, an electric field is induced in the conductor, which causes electrons to accumulate at one end and positive charges at the other end. In this case, the direction of the magnetic field is 27.0° east of north, so we can break it down into its north and east components. The north component of the magnetic field is:

B_north = B * cos(27.0°) = 0.516 B

where B is the magnitude of the magnetic field. The east component of the magnetic field is:

B_east = B * sin(27.0°) = 0.261 B

The velocity of the metal rod is directed north, so we only need to consider the north component of the magnetic field. The magnitude of the induced electric field is given by:

E = B_north * v = 0.516 B * 4.80 m/s = 2.4832 B

The induced electric field causes electrons to accumulate at the end of the rod that is facing south, while positive charges accumulate at the end of the rod that is facing north.

Since the metal rod is moving north, the south end of the rod will have an accumulation of excess electrons.

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What charge is stored in a 180 µF capacitor when 120 V is applied to it?

Answers

The charge stored in the 180 µF capacitor when 120 V is applied to it is 0.0216 coulombs

The charge stored in a 180 µF capacitor when 120 V is applied to it can be calculated using the formula Q = CV, where Q is the charge stored, C is the capacitance in farads, and V is the voltage applied. Plugging in the given values, we get [tex]Q = (180 * 10^(-6) F)[/tex] x (120 V) = 21.6 µC (microcoulombs). Therefore, 21.6 µC of charge is stored in the capacitor.
To find the charge stored in a 180 µF capacitor when 120 V is applied to it, we can use the formula:

Q = C × V

Where:
Q = charge stored (in coulombs),
C = capacitance (in farads),
V = voltage applied (in volts).

Step 1: Convert the capacitance to farads:
[tex]180 µF = 180 * 10^(-6) F = 0.00018 F[/tex]

Step 2: Plug the capacitance and voltage values into the formula:
Q = 0.00018 F * 120 V

Step 3: Calculate the charge stored:
Q = 0.0216 C

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at a distance of 5 km from a radio transmitter the amplitude of electric field strength is measured to be 0.35 v/m. what is the total power emitted by the transmitter?

Answers

The total power emitted by the transmitter is approximately 3.802 kW.

How much the total power emitted by the transmitter?

The total power emitted by a radio transmitter can be calculated using the formula:

P = 4πr²⁰

where P is the total power emitted, r is the distance from the transmitter, and σ is the power density (in W/m²) at that distance.

First, we need to calculate the power density at a distance of 5 km from the transmitter. The electric field strength (E) is related to the power density (σ) by the formula:

E = sqrt(2σ/μ0)

where μ0 is the permeability of free space (4π × 10⁻⁷ H/m).

Solving for σ, we get:

σ = (E²μ⁰)/2

σ = (0.35 V/m)² × 4π × 10⁻⁷ H/m

σ = 1.221 × 10⁻⁹ W/m²

Now that we have the power density at 5 km, we can calculate the total power emitted by the transmitter:

P = 4πr²⁰

P = 4π(5 km)² × 1.221 × 10⁻⁹ W/m²

P = 3.802 kW (kilowatts)

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how many grams of lithium (atomic mass of 6.91 g/mol) are in a lithium-ion battery that produces 4.00 a·h of electricity?

Answers

There are approximately 0.0000413 grams of lithium in a lithium-ion battery that produces 4.00 a·h of electricity.


grams of lithium = (4.00 a·h) x (1 mole of electrons / 96,485 C) x (1 mole of lithium / 1 mole of electrons) x (6.91 g / 1 mole of lithium)
where:
- 4.00 a·h is the amount of electricity produced by the battery
- 96,485 C is the Faraday constant, which relates the amount of electricity to the number of electrons involved in the reaction
- 1 mole of electrons is the number of electrons that flow through the battery during the reaction
- 1 mole of lithium is the amount of lithium involved in the reaction
- 6.91 g is the atomic mass of lithium, which tells us how many grams are in one mole of the element
Plugging in the numbers, we get:
grams of lithium = (4.00 a·h) x (1 mole of electrons / 96,485 C) x (1 mole of lithium / 1 mole of electrons) x (6.91 g / 1 mole of lithium)
grams of lithium = (4.00 a·h / 96,485 C) x 6.91 g
grams of lithium = 0.0000413 g

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(a) find the current in a 6.20 ω resistor connected to a battery that has an internal resistance of 0.50 ω if the voltage across the battery (the terminal voltage) is 7.50 v.

Answers

The current in the 6.20 Ω resistor connected to the battery is approximately 1.12 Amperes.

To find the current in a 6.20 ω resistor connected to a battery with an internal resistance of 0.50 ω and a terminal voltage of 7.50 V, you can use Ohm's Law and the concept of total resistance.

First, you need to calculate the total resistance of the circuit, which is the sum of the resistor and the internal resistance of the battery:

R_total = R_resistor + R_internal

R_total = 6.20 Ω + 0.50 Ω

R_total = 6.70 Ω

Next, you can use Ohm's Law to find the current:

I = V / R_total

I = 7.50 V / 6.70 Ω

I ≈ 1.12 A

Therefore, the current in the 6.20 ω resistor is approximately 1.12 A.

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a power pack charging cell phone battery has an output of 0.40A at 5.2 V (both are rms). how do I find the rms current at the 120 V/60Hz wall outlet where the power pack is plugged in?

Answers

The RMS current at the 120 V/60Hz wall outlet where the power pack is plugged in is 17.3 mA.

To find the RMS current at the 120 V/60Hz wall outlet where the power pack is plugged in, first, determine the power consumed by the charging cell phone battery. Power (P) is calculated using the formula P = VI, where V is the voltage and I is the current.

In this case, the power pack output is 0.40A (RMS current) and 5.2V (RMS voltage). Therefore, the power consumed by the charging cell phone battery is:

P = (0.40A) × (5.2V)

= 2.08 watts

Now, assume the power pack is 100% efficient (which is not true in reality, but it simplifies the calculation), the same amount of power will be drawn from the 120V/60Hz wall outlet. Using the power formula again, rearrange it to find the RMS current at the wall outlet:

I = P / V

Where V is the voltage at the wall outlet (120V) and P is the power (2.08 watts). The RMS current at the wall outlet is:

I = 2.08 watts / 120V

≈ 0.0173A or 17.3 mA

So, the RMS current at the 120V/60Hz wall outlet where the power pack is plugged in is approximately 17.3 mA.

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How much work is done by the electric force during the motion of the proton J?

DeltaU =121
V1-35
V2-156

Answers

The work done by the electric force during the motion of the proton J is calculated using the formula W = qΔV, where W is the work done, q is the charge of the proton, and ΔV is the potential difference.

ΔV = ΔU = 121V1 - 35V2 - 156

To calculate the work done, first find the potential difference:

ΔV = 121V1 - 35V2 - 156

Then, multiply the potential difference by the charge of a proton (q = 1.602 × 10⁻¹⁹ C):

W = (1.602 × 10⁻¹⁹ C) × (121V1 - 35V2 - 156)

The work done by the electric force during the motion of proton J depends on the values of V1 and V2. Plug in the respective values for V1 and V2 to get the final answer for W.

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