Dolphins rely on echolocation to be able to survive in the ocean. In a 20 °C ocean, a dolphin produces an ultrasonic sound with a
frequency of 125 kHz. Use 1530 m/s for the speed of sound in 20 °C ocean water.
What is the wavelength lambda of this sound, in meters?

Answers

Answer 1

The wavelength (λ) of the sound produced by the dolphin is approximately 12.24 meters.

The term "wavelength" describes the separation between two waves' successive points that are in phase, or at the same place in their respective cycles. The distance between two similar locations on a wave, such as the distance between two crests or two troughs, is what it is, in other words.

The wavelength (λ) of a sound wave can be calculated using the formula:

λ = v / f

where:

λ = wavelength of the sound wave

v = speed of sound in the medium

f = frequency of the sound wave

The speed of sound in this situation is reported as 1530 m/s in 20 °C ocean water, and the frequency of the dolphin's ultrasonic sound is 125 kHz (which may be converted to 125,000 Hz).

Substituting these values into the formula, we get:

λ = 1530 m/s / 125,000 Hz

To simplify the calculation, we can convert the frequency to kHz by dividing it by 1,000:

λ = 1530 m/s / 125 kHz

Now, let's calculate the wavelength:

λ = 1530 / 125 = 12.24 meters

Therefore, the wavelength (λ) of the sound produced by the dolphin is approximately 12.24 meters.

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Related Questions

The second floor of a house is 6 mm above the street level.
Part A
How much work is required to lift a 300-kgkg refrigerator to the second-story level?

Answers

The work required to lift the refrigerator to the second-story level is 1764 Joules.

To determine the work required to lift a refrigerator to the second-story level, we need to calculate the gravitational potential energy. The gravitational potential energy is given by the equation:

Potential energy (PE) = mass (m) × gravitational acceleration (g) × height (h)

Where:

m = mass of the refrigerator = 300 kg

g = gravitational acceleration = 9.8 m/s²

h = height = 6 mm = 6 × 10^(-3) m

Let's calculate the potential energy:

PE = 300 kg × 9.8 m/s² × 6 × 10^(-3) m

= 1764 J

Therefore, the work required to lift the refrigerator to the second-story level is 1764 Joules.

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A force that is based on the ability of an object to return to its original size and shape after a distortine force is remeved is known as a(n) _____

Answers

A force that is based on the ability of an object to return to its original size and shape after a distorting force is removed is known as a restoring force.

The restoring force is the force that acts on an object to bring it back to its original position or shape after it has been displaced from that position or shape.

Restoring force is one of the important concepts in physics, especially in the study of mechanics, elasticity, and wave mechanics.

It is also related to the force of elasticity, which is the ability of an object to regain its original size and shape when the force is removed.

The restoring force is a fundamental concept in the study of motion and forces in physics.

When an object is displaced from its equilibrium position, it experiences a restoring force that acts on it to bring it back to its original position.

The magnitude of the restoring force is proportional to the displacement of the object from its equilibrium position.

A restoring force is essential in many fields of science and engineering, including structural engineering, seismology, acoustics, and optics.

It is used in the design of springs, dampers, and other mechanical systems that require a stable equilibrium position.

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Two identical discs sit at the bottom of a 3 m pool of
water whose surface is exposed to atmospheric pressure. The first disc acts as a plug to seal the drain as shown. The second disc covers a container containing nearly a perfect vacuum. If each disc has an area of 1 m', what is the
approximate difference in the force necessary to open the
containers? (Note: 1 atm = 101,300 Pa)

Answers

The approximate difference in force necessary to open the containers is approximately 71,900 Newtons (N).

To determine the approximate difference in the force necessary to open the containers, we need to consider the pressure exerted on each disc.

The pressure exerted on an object submerged in a fluid depends on the depth of the object and the density of the fluid. In this case, the water exerts pressure on the first disc, while the atmospheric pressure acts on the second disc.

For the first disc, located at the bottom of the 3 m pool, the pressure exerted can be calculated using the formula P = ρgh, where P is the pressure, ρ is the density of water, g is the acceleration due to gravity, and h is the depth. Given that water has a density of approximately 1000 kg/m³, the pressure on the first disc is P1 = 1000 kg/m³ * 9.8 m/s² * 3 m = 29,400 Pa.

For the second disc, exposed to atmospheric pressure, the pressure is simply equal to the atmospheric pressure. Given that 1 atm is approximately equal to 101,300 Pa, the pressure on the second disc is P2 = 101,300 Pa.

The force acting on each disc is given by the formula F = P * A, where F is the force, P is the pressure, and A is the area of the disc. Since both discs have the same area of 1 m², the force required to open the containers is:

For the first disc: F1 = P1 * A = 29,400 Pa * 1 m² = 29,400 N.

For the second disc: F2 = P2 * A = 101,300 Pa * 1 m² = 101,300 N.

Therefore, the approximate difference in force necessary to open the containers is F2 - F1 = 101,300 N - 29,400 N = 71,900 N.

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A sprinter crosses the finish line of a race. The roar of the crowd in front approaches her at a speed of 365 m/s. The roar from the crowd behind her approaches at 330 m/s. Part A What is the speed of the sound?

Answers

The speed of sound is approximately 347.5 m/s.

The sprinter is experiencing two roars of sound: one approaching from the front and one approaching from behind. The speed at which these roars reach the sprinter is different due to the relative motion between the sprinter and the sound waves.

The speed of sound can be calculated by the average of the speeds of the roars approaching from the front and behind the sprinter.

The average speed of sound = (Speed of sound approaching from the front + Speed of sound approaching from behind) / 2

Average speed of sound = (365 m/s + 330 m/s) / 2

Average speed of sound = 695 m/s / 2

Average speed of sound = 347.5 m/s

Therefore, the speed of sound is approximately 347.5 m/s.

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To find the speed of sound, we can use the concept of relative velocity. The speed of sound can be determined by finding the average of the speeds at which the sound approaches the sprinter from the front and the back.

Given:

Speed of the sound approaching from the front (v_front) = 365 m/s

Speed of the sound approaching from the back (v_back) = 330 m/s

To find the speed of sound (v_sound), we can calculate the average of v_front and v_back:

v_sound = (v_front + v_back) / 2

Substituting the given values:

v_sound = (365 m/s + 330 m/s) / 2

= 695 m/s / 2

= 347.5 m/s

Therefore, the speed of sound is approximately 347.5 m/s.

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An electron has a total energy of 2.13 times its rest
energy.
What is the momentum of this electron? (in keVc)

Answers

By using the relativistic energy-momentum relationship and substituting the given total energy ratio, the momentum of the electron is  

pc = √(3.5369m²c⁴).

To determine the momentum of the electron, we need to use the relativistic energy-momentum relationship, which states that the total energy (E) of a particle is related to its momentum (p) and rest energy (E₀) by the equation E = √((pc)² + (E₀c²)), where c is the speed of light.

The total energy of the electron is 2.13 times its rest energy, we can write the equation as E = 2.13E₀.

Substituting this into the energy-momentum relationship, we have

2.13E₀ = √((pc)² + (E₀c²)).

Simplifying the equation, we get

(2.13E₀)² = (pc)² + (E₀c²).

Since the rest energy of an electron is E₀ = mc², where m is the electron's mass, we can rewrite the equation as (2.13mc²)² = (pc)² + (mc²)².

Expanding and rearranging, we find

(4.5369m²c⁴) - (m²c⁴) = (pc)².

Simplifying further, we get

(3.5369m²c⁴) = (pc)².

Taking the square root of both sides, we have

pc = √(3.5369m²c⁴).

Therefore, the momentum of the electron is √(3.5369m²c⁴).

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A particle of mass m moves freely in a rectangular box with impenetrable walls. -If the dimensions of the box are 2ax, 2ay, 2az, derive expressions for the solutions of the Schrödinger equation and the corresponding energies. -What are the parities of the wave functions? -If ax = ay = a; = a, what are the degeneracy of the two lowest values of the energy?

Answers

The solutions for X(x), Y(y), and Z(z) are sinusoidal functions of the form: X(x) = A sin(kx), Y(y) = B sin(ky), Z(z) = C sin(kz). The wave functions have a parity of -1 (odd). When ax = ay = az = a, the two lowest values of energy have a degeneracy of 1.

To derive the solutions of the Schrödinger equation and corresponding energies for a particle of mass m moving freely in a rectangular box with impenetrable walls, we can use the time-independent Schrödinger equation:

[-(ħ²/2m) ∇² + V(x, y, z)] Ψ(x, y, z) = E Ψ(x, y, z)

Since the walls of the box are impenetrable, the potential energy inside the box is zero (V(x, y, z) = 0). Therefore, the Schrödinger equation simplifies to:

[-(ħ²/2m) ∇²] Ψ(x, y, z) = E Ψ(x, y, z)

The Laplacian operator (∇²) in Cartesian coordinates is:

∇² = (∂²/∂x²) + (∂²/∂y²) + (∂²/∂z²)

Substituting this into the simplified Schrödinger equation, we get:

[-(ħ²/2m) (∂²/∂x²) - (ħ²/2m) (∂²/∂y²) - (ħ²/2m) (∂²/∂z²)] Ψ(x, y, z) = E Ψ(x, y, z)

Now, let's assume the wave function Ψ(x, y, z) can be separated into three independent functions, each depending on only one variable:

Ψ(x, y, z) = X(x)Y(y)Z(z)

Substituting this into the equation and dividing by Ψ(x, y, z), we get:

[-(ħ²/2m) (1/X) (d²X/dx²) - (ħ²/2m) (1/Y) (d²Y/dy²) - (ħ²/2m) (1/Z) (d²Z/dz²)] = E

Since the left side depends on x, the middle term depends on y, and the right term depends on z, we can conclude that each term must be a constant value:

-(ħ²/2m) (1/X) (d²X/dx²) = constant = αx

-(ħ²/2m) (1/Y) (d²Y/dy²) = constant = αy

-(ħ²/2m) (1/Z) (d²Z/dz²) = constant = αz

Simplifying these equations, we get:

(d²X/dx²) + (2m/ħ²) αx X = 0

(d²Y/dy²) + (2m/ħ²) αy Y = 0

(d²Z/dz²) + (2m/ħ²) αz Z = 0

These equations are ordinary second-order differential equations with constant coefficients. The solutions for X(x), Y(y), and Z(z) are sinusoidal functions of the form:

X(x) = A sin(kx)

Y(y) = B sin(ky)

Z(z) = C sin(kz)

where k is a constant.

Now, let's consider the boundary conditions imposed by the impenetrable walls. At the walls, the wave function must be zero. Therefore, we have the following boundary conditions:

At x = ±ax: X(x) = 0 → A sin(kx) = 0 → kx = nπ, where n is an integer

At y = ±ay: Y(y) = 0 → B sin(ky) = 0 → ky = mπ, where m is an integer

At z = ±az: Z(z) = 0 → C sin(kz) = 0 → kz = lπ, where l is an integer

Combining these conditions, we can determine the values of kx, ky, and kz:

kx = nπ/ax

ky = mπ/ay

kz = lπ/az

Now, let's find the corresponding energies for the solutions. We can use the relationship between the energy and the constant α:

E = (ħ²/2m) α

Substituting the values of αx, αy, and αz, we get:

E = (ħ²/2m) [(kx² + ky² + kz²)]

E = (ħ²/2m) [(n²π²/ax²) + (m²π²/ay²) + (l²π²/az²)]

The parities of the wave functions can be determined by observing the behavior of the wave functions under reflection. If a wave function remains unchanged under reflection, it has a parity of +1 (even). If the wave function changes sign under reflection, it has a parity of -1 (odd).

For the wave functions X(x), Y(y), and Z(z), we can see that they are all sinusoidal functions, which means they change sign under reflection. Therefore, the wave functions have a parity of -1 (odd).

If ax = ay = az = a, then the degeneracy of the two lowest values of energy can be determined by examining the possible values of n, m, and l.

The lowest energy level corresponds to the values n = 1, m = 1, and l = 1:

E₁ = (ħ²/2m) [(1²π²/a²) + (1²π²/a²) + (1²π²/a²)]

E₁ = (3ħ²π²/2ma²)

The second lowest energy level corresponds to either n = 1, m = 1, and l = 2 or n = 1, m = 2, and l = 1:

E₂ = (ħ²/2m) [(1²π²/a²) + (1²π²/a²) + (2²π²/a²)] or E₂ = (ħ²/2m) [(1²π²/a²) + (2²π²/a²) + (1²π²/a²)]

E₂ = (6ħ²π²/2ma²) or E₂ = (6ħ²π²/2ma²)

Therefore, when ax = ay = az = a, the two lowest values of energy have a degeneracy of 1.

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quick answer
please
QUESTION 10 4 In a mass spectrometer, a charged particle enters a uniform magnetic field that is perpendicular to the velocity of the particle itself. The subsequent motion of the particle is a circul

Answers

In a mass spectrometer, the radius of the circular path decreases if the magnetic field strength decreases.

The correct answer is d. The value of the magnetic field strength decreases.

In a mass spectrometer, the radius of the circular path followed by a charged particle is directly proportional to the momentum of the particle and inversely proportional to the product of the charge and the magnetic field strength. Mathematically, the radius (r) is given by:

r = (p) / (qB),

where p is the momentum of the particle, q is the charge of the particle, and B is the magnetic field strength.

If the magnetic field strength decreases (option d), while the other factors remain constant, the radius of the circular path will decrease. This is because a weaker magnetic field will exert less force on the charged particle, resulting in a tighter and smaller circular path.

The other options (a, b, c, e) do not directly affect the radius of the circular path in a mass spectrometer.

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The complete question is:

In a mass spectrometer, a charge particle enters a uniform magnetic field that is perpendicular to theparticle itself. The subsequent motion of the particle is a circular path. The radius of the circular path will decrease if __________ .

a. the value of the speed increases.

b. the sign of the charge is flipped.

c. the value of the charge increases.

d. the value of the magnetic field strength decreases.

e. the value of the mass increases.

How long it takes for the light of a star to reach us if the
star is at a distance of 8 × 10^10km from Earth.

Answers

It takes approximately 2.67 ×  10⁸  seconds for the light of a star to reach us from a distance of 8 × 10¹⁰ km.

The time it takes for the light of a star to reach us can be calculated using the formula t = d/c, where t is the time, d is the distance, and c is the speed of light.

In this case, the star is at a distance of 8 × 10¹⁰ km from Earth. To convert this distance to meters, we multiply by 10^6 since 1 km is equal to 10³ meters. So the distance in meters is 8 × 10¹⁶ meters.
The speed of light (c) is approximately 3 × 10⁸ meters per second. Plugging these values into the formula, we get
t = (8 × 10¹⁶ meters) / (3 × 10⁸ meters per second). Simplifying this expression gives us t ≈ 2.67 × 10⁸ seconds.

Therefore, it takes approximately 2.67 ×  10⁸  seconds for the light of a star to reach us from a distance of 8 × 10¹⁰ km.

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When an AC source is connected across a 15.0 9 resistor, the output voltage is given by Av = (150 V)sin(70-t). Determine the following quantities (a) maximum voltage (b) rms voltage (c) rms current (d) peak current (e) Find the current when t = 0.0045 s.

Answers

The maximum voltage is equal to the amplitude of the sine wave, which is 150 V. The RMS (Root Mean Square) voltage is  106.07 V. The RMS current is 7.07 A. The peak current is  10.0 A. The current when t = 0.0045 s is 9.396A.

Given:

Output voltage equation: Av = (150 V)sin(70 - t)

Resistance: R = 15.0 Ω

(a) Maximum voltage:

The maximum voltage is equal to the amplitude of the sine wave, which is 150 V.

(b) RMS voltage:

The RMS (Root Mean Square):

Vrms = (Maximum voltage) / √2

Vrms = 150  / √2

Vrms = 106.07 V

The RMS (Root Mean Square) voltage is  106.07 V.

(c) RMS current:

Irms = Vrms / R

Irms = 106.07 / 15.0

Irms = 7.07 A

The RMS current is 7.07 A.

(d) Peak current:

I(peak) = Maximum voltage / R

I(peak) = 150 / 15.0

I(peak) = 10.0 A

The peak current is  10.0 A

(e) Finding the current at t = 0.0045 s:

t = 0.0045 s

Voltage at t = 0.0045 s:

V = (150)sin(70 - t)

V = (150)sin(70 - 0.0045)

V  (150) sin(69.9955) = 140.94V

I = V / R

I =  140.94/ 15.0 = 9.396A

The current when t = 0.0045 s is 9.396A.

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The spaceship Lilac, based on the Purple Planet, is 779 m long when measured at rest. When the Lilac passes Earth, observers there measure its length to be 702 m. At what speed v is the Lilac moving with respect to Earth?

Answers

The Lorentz transformation formula can be used to calculate the velocity of an object as it passes by. The formula can be used to determine the velocity of the spaceship Lilac relative to Earth when it passes by.

The formula is given as:1. [tex](L/L0) = sqrt[1 – (v^2/c^2)][/tex]where L = length of the spaceship as measured from the Earth's frame of reference L0 = length of the spaceship as measured from the spaceship's frame of reference v = velocity of the spaceship relative to Earth c = speed of light.

We are given that L = 702m, L0 = 779m, and[tex]c = 3 x 10^8 m/s[/tex].Substituting the values gives:

[tex]$$v = c\sqrt{(1-\frac{L^2}{L_{0}^2})}$$$$v = 3.00 × 10^8 m/s \sqrt{(1-\frac{(702 m)^2}{(779 m)^2})}$$$$v = 3.00 × 10^8 m/s \sqrt{(1-0.152)}$$$$v = 3.00 × 10^8 m/s \times 0.977$$[/tex]

Solving for[tex]v:v = 2.87 x 10^8 m/s[/tex].

Therefore, the spaceship Lilac is moving relative to Earth at a speed of [tex]2.87 x 10^8 m/s.[/tex]

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Part A An isolated parallel-plate capacitor (not connected to a battery) has a charge of Q-8.9x10 C. The separation between the plates initially is d=1.2 mm, and for this separation the capacitance is 3.1x10-11 F. Calculate the work that must be done to pull the plates apart until their separation becomes 4.7 mm, if the charge on the plates remains constant. The capacitor plates are in a vacuum Express your answer using two significant figures. ΑΣΦ S ? Submit Previous Answers Beauest Answer X Incorrect; Try Again; 4 attempts remaining i Provide Feedback Revin Constants Next)

Answers

The work that must be done to pull the plates of the parallel-plate capacitor apart from a separation of 1.2 mm to 4.7 mm, while keeping the charge constant, is approximately 1.2 J.

The work done to change the separation of the plates of a parallel-plate capacitor while keeping the charge constant can be calculated using the formula:

W = (1/2)Q² * [(1/C_final) - (1/C_initial)]

where W is the work done, Q is the charge on the plates, C_final is the final capacitance, and C_initial is the initial capacitance.

Given that the charge Q is -8.9 × 10⁻⁶ C, the initial separation d_initial is 1.2 mm (or 1.2 × 10⁻³ m), and the initial capacitance C_initial is 3.1 × 10⁻¹¹ F, we can calculate the initial energy stored in the capacitor using the formula:

U_initial = (1/2)Q² / C_initial

Substituting the values, we find:

U_initial = (1/2)(-8.9 × 10⁻⁶ C)² / (3.1 × 10⁻¹¹ F)

Next, we can calculate the final energy stored in the capacitor using the final separation d_final of 4.7 mm (or 4.7 × 10⁻³ m) and the final capacitance C_final:

U_final = (1/2)Q² / C_final

Now, the work done to change the separation is given by the difference in energy:

W = U_final - U_initial

Substituting the values and performing the calculations, we obtain the work done to be approximately 1.2 J.

Therefore, the work that must be done to pull the plates of the parallel-plate capacitor apart from a separation of 1.2 mm to 4.7 mm, while keeping the charge constant, is approximately 1.2 J.

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Capacitance. The Earth in combination with the ionosphere, which is an atmospheric layer
charged, can be considered as a spherical capacitor, where the earth's surface is the negative plate. The ionosphere is at an altitude of approximately 70.0 km, and the potential difference between it and the earth's surface is about 350,000 V. The Earth's radius is 6370 km. Calculate:
a) the capacitance of the Earth-ionosphere system.
b) the charge on the capacitor.
c) stored energy

Answers

The capacitance of the Earth-ionosphere system is 7.98 × 10⁻¹¹ F, and it stores a charge of 2.79 × 10⁶ C. The energy stored in the Earth-ionosphere system is 4.83 × 10¹⁵ J.

We know that the earth-ionosphere system can be considered as a spherical capacitor, where the earth's surface is the negative plate, and the ionosphere is the positive plate. The capacitance of a spherical capacitor is given by the formula;C = (4πϵ₀R₁R₂) / (R₂ - R₁)Where C is the capacitance of the spherical capacitor.ϵ₀ is the permittivity of free space.R₁ is the radius of the inner sphere.R₂ is the radius of the outer sphere.

Substitute the given values into the above formula to get the capacitance of the Earth-ionosphere system.

C = (4 × π × 8.85 × 10⁻¹² × 6370 × (6370 + 70)) / (6370 + 70 - 6370),

C = 7.98 × 10⁻¹¹ F.

To calculate the charge on the capacitor, we use the formula;Q = CVWhere Q is the charge on the capacitor.V is the potential difference between the two plates of the capacitor.Substitute the given values into the formula to get the charge on the capacitor.

Q = 7.98 × 10⁻¹¹ F × 350,000 V,

Q = 2.79 × 10⁶ C.

The stored energy of a capacitor is given by the formula;W = 1/2 CV²Where W is the stored energy of the capacitor.Substitute the given values into the formula to get the stored energy of the Earth-ionosphere system.

W = 1/2 × 7.98 × 10⁻¹¹ F × (350,000 V)²,

W = 4.83 × 10¹⁵ J.

The capacitance of the earth-ionosphere system is 7.98 × 10⁻¹¹ F. The charge on the capacitor is 2.79 × 10⁶ C. The stored energy of the Earth-ionosphere system is 4.83 × 10¹⁵ J.The capacitance of the Earth-ionosphere system is the ability of the system to store an electric charge, and this capacitance value depends on the dimensions of the Earth and the ionosphere layer.

The formula for calculating the capacitance of the spherical capacitor uses the radius of the inner sphere (earth) and the radius of the outer sphere (ionosphere).The charge on the capacitor depends on the potential difference between the two plates of the capacitor.

The greater the potential difference, the greater the charge stored on the capacitor. In this case, the potential difference between the ionosphere and the earth's surface is about 350,000 V, and this results in a charge of 2.79 × 10⁶ C being stored on the Earth-ionosphere system.

The stored energy of the Earth-ionosphere system depends on the capacitance and the potential difference. The energy stored in a capacitor is half the product of the capacitance and the square of the potential difference. Therefore, the Earth-ionosphere system stores 4.83 × 10¹⁵ J of energy.

The Earth-ionosphere system can be considered as a spherical capacitor, and its capacitance, charge, and stored energy can be calculated using the radius of the Earth and the ionosphere layer. The capacitance of the Earth-ionosphere system is 7.98 × 10⁻¹¹ F, and it stores a charge of 2.79 × 10⁶ C. The energy stored in the Earth-ionosphere system is 4.83 × 10¹⁵ J.

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The refractive index of a transparent material can be determined by measuring the critical angle when the solid is in air. If Oc= 41.0° what is the index of refraction of the material? 1.52 You are correct. Your receipt no. is 162-3171 Previous Tries A light ray strikes this material (from air) at an angle of 38.1° with respect to the normal of the surface. Calculate the angle of the reflected ray (in degrees). 3.81x101 You are correct. Previous Tries Your receipt no. is 162-4235 ® Calculate the angle of the refracted ray (in degrees). Submit Answer Incorrect. Tries 2/40 Previous Tries Assume now that the light ray exits the material. It strikes the material-air boundary at an angle of 38.1° with respect to the normal. What is the angle of the refracted ray?

Answers

To determine the angle of the refracted ray Using the values given, we substitute n1 = 1.52, θ1 = 38.1°, and n2 = 1 (since air has a refractive index close to 1) into Snell's law. Solving for θ2, we find that the angle of the refracted ray is approximately 24.8°

When a light ray exits a material and strikes the material-air boundary at an angle of 38.1° with respect to the normal, we can use Snell's law. Snell's law relates the angles of incidence and refraction to the refractive indices of the two media involved.

The refractive index of the material can be calculated using the critical angle, which is the angle of incidence at which the refracted angle becomes 90° (or the angle of refraction becomes 0°). In the given information, the critical angle (Oc) is provided as 41.0°. From this, we can determine the refractive index of the material, which is 1.52.

To find the angle of the refracted ray when the light ray exits the material and strikes the material-air boundary at an angle of 38.1°, we can use Snell's law: n1*sin(θ1) = n2*sin(θ2), where n1 and n2 are the refractive indices of the initial and final media, and θ1 and θ2 are the angles of incidence and refraction, respectively.

Using the values given, we substitute n1 = 1.52, θ1 = 38.1°, and n2 = 1 (since air has a refractive index close to 1) into Snell's law. Solving for θ2, we find that the angle of the refracted ray is approximately 24.8°.

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A 2microF capacitor is connected in series to a 1 mega ohm resistor and charged to a 6 volt battery. How long does it take to charge 98.2% of its maximum charge?

Answers

A 2microF capacitor is connected in series to a 1 mega ohm resistor and charged to a 6 volt battery. The capacitor takes to charge 0.140 seconds for 98.2% of its maximum.

The maximum charge can be calculated using the formula: t = -RC * ln(1 - Q/Q_max) Where t is the time, R is the resistance, C is the capacitance, Q is the charge at a given time, and Q_max is the maximum charge.

In this case, the capacitance (C) is 2 microfarads (2μF), the resistance (R) is 1 megaohm (1 MΩ), and the maximum charge (Q_max) is the charge when the capacitor is fully charged.

To find Q_max, we can use the formula:

Q_max = C * V

Where V is the voltage of the battery, which is 6 volts in this case.

Q_max = (2 μF) * (6 volts) = 12 μC

Substituting the values into the time formula, we have:

t = -(1 MΩ) * (2 μF) * ln(1 - Q/Q_max)

t = -(1 MΩ) * (2 μF) * ln(1 - 0.982)

t ≈ 0.140 seconds

Therefore, it takes approximately 0.140 seconds to charge 98.2% of its maximum charge.

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1. Suppose a car travels 108 km at a speed of 30.0 m/s, and uses 2.10 gallons of gasoline. Only 30% of the gasoline goes into useful work by the force that keeps the car moving at constant speed despite friction. (The energy content of gasoline is 1.30 ✕ 108 J per gallon.)
(a) What is the force (in N) exerted to keep the car moving at constant speed?
______N
(b) If the required force is directly proportional to speed, how many gallons will be used to drive 108 km at a speed of 28.0 m/s?
____gallons
2. Calculate the work done (in J) by a 75.0 kg man who pushes a crate 4.40 m up along a ramp that makes an angle of 20.0° with the horizontal. (See the figure below.) He exerts a force of 485 N on the crate parallel to the ramp and moves at a constant speed. Be certain to include the work he does on the crate and on his body to get up the ramp. (in J)
3. a) Calculate the force (in N) needed to bring a 850 kg car to rest from a speed of 95.0 km/h in a distance of 105 m (a fairly typical distance for a non-panic stop).
______N
(b)Suppose instead the car hits a concrete abutment at full speed and is brought to a stop in 2.00 m. Calculate the force exerted on the car and compare it with the force found in part (a).
force in (b)
force in (a)
=

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The force exerted to keep the car moving at a constant speed is 2540 N.To drive 108 km at a speed of 28.0 m/s, approximately 1.89 gallons of gasoline will be used.

(a) To find the force exerted to keep the car moving at constant speed, we need to calculate the useful work done by the force. The work done can be obtained by multiplying the distance traveled by the force acting in the direction of motion.

The distance traveled is given as 108 km, which is equal to 108,000 meters. The force is responsible for 30% of the useful work, so we divide the total work by 0.30. The energy content of gasoline is 1.30 × 10^8 J per gallon. Thus, the force exerted to keep the car moving at a constant speed is:

Work = (Distance traveled × Force) / 0.30

Force = (Work × 0.30) / Distance traveled

Force = (1.30 × 10^8 J/gallon × 2.10 gallons × 0.30) / 108,000 m

Force ≈ 2540 N

(b) If the required force is directly proportional to speed, we can use the concept of proportionality to find the number of gallons used. Since the force is directly proportional to speed, we can set up the following ratio:

Force₁ / Speed₁ = Force₂ / Speed₂

Let's solve for Force₂:

Force₂ = (Force₁ × Speed₂) / Speed₁

Force₂ = (2540 N × 28.0 m/s) / 30.0 m/s

Force₂ ≈ 2360 N

To find the number of gallons used, we divide the force by the energy content of gasoline:

Gallons = Force₂ / (1.30 × [tex]10^{8}[/tex] J/gallon)

Gallons ≈ 2360 N / (1.30 × [tex]10^{8}[/tex] J/gallon)

Gallons ≈ 0.0182 gallons

Therefore, approximately 0.0182 gallons of gasoline will be used to drive 108 km at a speed of 28.0 m/s.

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A tuning fork produces a sound with a frequency of 241 Hz and a wavelength in air of 1.44 m.'
1/2 What value does this give for the speed of sound in air? Answer in units of m/s.
2/2 What would be the wavelength of the wave produced by this tuning fork in water in which sound travels at 1500 m/s? Answer in units of m.

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(a) It takes approximately 7.75 x 10^-11 seconds for the proton to move across the magnetic field. (b) The proton's velocity is approximately 1.29 x 10^5 m/s directed east.

(a) To calculate the time it takes for the proton to move across the magnetic field, we can use the equation for the magnetic force on a charged particle:

F = qvB,

where F is the magnetic force, q is the charge of the particle, v is the velocity of the particle, and B is the magnetic field.

F = 7.16 x 10^-14 N,

B = 6.48 x 10^-2 T,

d = 0.500 m (distance traveled by the proton).

From the equation, we can rearrange it to solve for time:

t = d/v,

where t is the time, d is the distance, and v is the velocity.

Rearranging the equation:

v = F / (qB),

Substituting the given values:

v = (7.16 x 10^-14 N) / (1.6 x 10^-19 C) / (6.48 x 10^-2 T)

= 1.29 x 10^5 m/s.

Now, substituting the values for distance and velocity into the time equation:

t = (0.500 m) / (1.29 x 10^5 m/s)

= 7.75 x 10^-11 seconds.

Therefore, it takes approximately 7.75 x 10^-11 seconds for the proton to move across the magnetic field.

(b) The proton's velocity can be calculated using the equation:

v = F / (qB),

where v is the velocity, F is the magnetic force, q is the charge of the particle, and B is the magnetic field.

Given:

F = 7.16 x 10^-14 N,

B = 6.48 x 10^-2 T.

Substituting the given values:

v = (7.16 x 10^-14 N) / (1.6 x 10^-19 C) / (6.48 x 10^-2 T)

= 1.29 x 10^5 m/s.

Therefore, the proton's velocity is approximately 1.29 x 10^5 m/s directed east.

(a) It takes approximately 7.75 x 10^-11 seconds for the proton to move across the magnetic field.

(b) The proton's velocity is approximately 1.29 x 10^5 m/s directed east.

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Outside the nucleus, the neutron itself is radioactive and decays into a proton, an electron, and an antineutrino. The half-life of a neutron (mass = 1.675 10-27 kg) outside the nucleus is 10.4 min. On average, over what distance x would a beam of 3.67-eV neutrons travel before the number of neutrons decreased to 75.0% of its initial value? Ignore relativistic effects. x= i

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The decay of neutrons outside the nucleus results in a decrease in their population over time. To determine the distance a beam of 3.67-eV neutrons would travel before decreasing to 75% of its initial value, we need to consider the decay constant and the half-life.

The decay constant can be calculated using the formula λ = ln(2) / t(1/2), where t(1/2) is the half-life. Once we have the decay constant, we can use the exponential decay equation N(t) = N(0) * e^(-λt) to find the distance x at which the number of neutrons is reduced to 75% of the initial value.

The decay of neutrons outside the nucleus causes their population to decrease over time. The decay constant and half-life are used to calculate the exponential decay.

By determining the decay constant and applying the exponential decay equation, we can find the distance at which the number of neutrons in the beam reduces to 75% of its initial value.

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Addition of heat at constant pressure to a gas results in O
A. Raising its temperature O B. Raising its pressure O
C. Raising its volume O
D. Doing external work O E. Raising its temperature and doing external work

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Adding heat at constant pressure to a gas results in (option E.) Raising its temperature and doing external work.

When heat is added to a gas at constant pressure, the primary effects are raising its temperature and doing external work.

Adding heat increases the energy of the gas particles, causing them to move faster and collide more frequently. This increased molecular motion leads to a rise in the temperature of the gas.

Furthermore, at constant pressure, the gas may expand as it absorbs heat. This expansion allows the gas to do work on its surroundings, such as pushing a piston or performing mechanical tasks.

Therefore, the addition of heat at constant pressure results in two main outcomes: an increase in the gas's temperature and the performance of external work.

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Answer the following - show your work! (5 marks): Maximum bending moment: A simply supported rectangular beam that is 3000 mm long supports a point load (P) of 5000 N at midspan (center). Assume that the dimensions of the beams are as follows: b= 127 mm and h = 254 mm, d=254mm. What is the maximum bending moment developed in the beam? What is the overall stress? f = Mmax (h/2)/bd3/12 Mmax = PL/4

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The maximum bending moment developed in the beam is 3750000 N-mm. The overall stress is 4.84 MPa.

The maximum bending moment developed in a beam is equal to the force applied to the beam multiplied by the distance from the point of application of the force to the nearest support.

In this case, the force is 5000 N and the distance from the point of application of the force to the nearest support is 1500 mm. Therefore, the maximum bending moment is:

Mmax = PL/4 = 5000 N * 1500 mm / 4 = 3750000 N-mm

The overall stress is equal to the maximum bending moment divided by the moment of inertia of the beam cross-section. The moment of inertia of the beam cross-section is calculated using the following formula:

I = b * h^3 / 12

where:

b is the width of the beam in mm

h is the height of the beam in mm

In this case, the width of the beam is 127 mm and the height of the beam is 254 mm. Therefore, the moment of inertia is:

I = 127 mm * 254 mm^3 / 12 = 4562517 mm^4

Plugging in the known values, we get the following overall stress:

f = Mmax (h/2) / I = 3750000 N-mm * (254 mm / 2) / 4562517 mm^4 = 4.84 MPa

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: A 3 kg object is attached to a spring with spring constant 195 kg/s². It is also attached to a dashpot with damping constant c= 54 N-sec/m. The object is pushed upwards from equilibrium with velocity 3 m/s. Find its displacement and time-varying amplitude for t > 0.

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The displacement (x) of the object as a function of time (t) for t > 0 is: x(t) = 0.873 * e^(-3t) * (cos(2t) + (2/√5) * sin(2t)) .This equation describes the oscillatory and decaying motion of the object. The displacement decreases exponentially over time due to damping, while also oscillating with a frequency of 2 Hz.

We can use the concept of damped harmonic motion. The equation of motion for a damped harmonic oscillator is given by:

m * d²x/dt² + c * dx/dt + k * x = 0

where m is the mass of the object, c is the damping constant, k is the spring constant, and x is the displacement of the object from its equilibrium position.

Given that the mass (m) is 3 kg, the spring constant (k) is 195 kg/s², and the damping constant (c) is 54 N-sec/m, we can substitute these values into the equation above.

The auxiliary equation for the system is:

m * λ² + c * λ + k = 0

Substituting the values, we get:

3 * λ² + 54 * λ + 195 = 0

we find two complex roots:

λ₁ = -3 + 2i λ₂ = -3 - 2i

Since the roots are complex, the displacement of the object will oscillate and decay over time.

The general solution for the displacement can be written as:

x(t) = A * e^(-3t) * (cos(2t) + (2/√5) * sin(2t))

Where A is the time-varying amplitude that we need to determine.

Given that the object is pushed upwards from equilibrium with a velocity of 3 m/s, we can use this initial condition to find the value of A.

Taking the derivative of x(t) with respect to time, we get:

v(t) = dx(t)/dt = -3A * e^(-3t) * (cos(2t) + (2/√5) * sin(2t)) + 2A * e^(-3t) * sin(2t) + (4/√5) * A * e^(-3t) * cos(2t)

At t = 0, v(0) = 3 m/s:

-3A * (cos(0) + (2/√5) * sin(0)) + 2A * sin(0) + (4/√5) * A * cos(0) = 3

-3A + (4/√5) * A = 3

We find A ≈ 0.873 m.

Therefore, the displacement (x) of the object as a function of time (t) for t > 0 is:

x(t) = 0.873 * e^(-3t) * (cos(2t) + (2/√5) * sin(2t))

This equation describes the oscillatory and decaying motion of the object. The displacement decreases exponentially over time due to damping, while also oscillating with a frequency of 2 Hz.

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A parallel-plate air-filled capacitor has plate separation of 3.62 mm and area (A). A potential difference of 340 V is applied across its plates. Find the surface charge density σ (in nC/m2 ) on each plate? (Answer in 2 decimal places)

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The surface charge density on each plate of the parallel-plate air-filled capacitor is 9.26 nC/m2.

This means that there is an overall charge of ±9.26 nC on each plate, which creates an electric field between the plates.The surface charge density on each plate of a parallel-plate air-filled capacitor can be found by using the formula σ = εrε0V/dA, where εr is the relative permittivity of air (which is equal to 1), ε0 is the electric constant, V is the potential difference, d is the plate separation, and A is the area of each plate. Given that the plate separation is 3.62 mm, the potential difference is 340 V, and the area is unknown, we can rearrange the formula to solve for A. Once we know A, we can plug in all the values into the formula for surface charge density to get the final answer.

The greater the surface charge density, the stronger the electric field, and the more energy the capacitor can store. In this case, the surface charge density is relatively low, which implies that the capacitor has a low energy storage capacity.

However, if the plate separation and/or potential difference were increased, the surface charge density would also increase, leading to a stronger overall electric field and a higher energy storage capacity.

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The roller coaster car travels down the helical path at constant speed such that the parametric equations that define its position are x

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The magnitude of the roller coaster car's velocity is √[c²(k² + b²)], and the magnitude of its acceleration is √[c²k⁴], based on the given parametric equations for its position.

To determine the magnitudes of the roller coaster car's velocity and acceleration, we need to differentiate the given parametric equations with respect to time (t).

x = c sin(kt)

y = c cos(kt)

z = h - bt

Velocity:

The velocity vector is the derivative of the position vector with respect to time.

dx/dt = c(k cos(kt))   ... (1)

dy/dt = -c(k sin(kt))  ... (2)

dz/dt = -b             ... (3)

To find the magnitude of velocity, we need to calculate the magnitude of the velocity vector (v).

Magnitude of velocity (|v|):

|v| = √[(dx/dt)² + (dy/dt)² + (dz/dt)²]

Substituting equations (1), (2), and (3) into the magnitude of velocity equation:

|v| = √[(c(k cos(kt)))² + (-c(k sin(kt)))² + (-b)²]

    = √[c²(k² cos²(kt) + k² sin²(kt) + b²)]

    = √[c²(k²(cos²(kt) + sin²(kt)) + b²)]

    = √[c²(k² + b²)]

Therefore, the magnitude of the roller coaster car's velocity is √[c²(k² + b²)].

Acceleration:

The acceleration vector is the derivative of the velocity vector with respect to time.

d²x/dt² = -c(k² sin(kt))   ... (4)

d²y/dt² = -c(k² cos(kt))   ... (5)

d²z/dt² = 0                ... (6)

To find the magnitude of acceleration, we need to calculate the magnitude of the acceleration vector (a).

Magnitude of acceleration (|a|):

|a| = √[(d²x/dt²)² + (d²y/dt²)² + (d²z/dt²)²]

Substituting equations (4), (5), and (6) into the magnitude of acceleration equation:

|a| = √[(-c(k² sin(kt)))² + (-c(k² cos(kt)))² + 0²]

    = √[c²(k⁴ sin²(kt) + k⁴ cos²(kt))]

    = √[c²k⁴(sin²(kt) + cos²(kt))]

    = √[c²k⁴]

Therefore, the magnitude of the roller coaster car's acceleration is √[c²k⁴].

Please note that these calculations assume that the roller coaster car is traveling along the helical path as described by the given parametric equations.

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Complete Question:

The roller coaster car travels down the helical path at constant speed such that the parametric equations that define its position are x = c sin kt, y = c cos kt, z = h − bt, where c, h, and b are constants. Determine the magnitudes of its velocity and acceleration.

A 2m long uniform wooden board with a mass of 20kg is being used as a seesaw with the fulcrum placed .25m from the left end of the board. A child sits on the far left end of the seesaw. (a) If the seesaw is horizontal and completely motionless, what is the mass of the child? (b) What is the normal force on the seesaw?

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(a) The mass of the child is 40 kg., (b) The normal force on the seesaw is 120 N.

(a) To find the mass of the child, we can use the principle of torque balance. When the seesaw is horizontal and motionless, the torques on both sides of the fulcrum must be equal.

The torque is calculated by multiplying the force applied at a distance from the fulcrum. In this case, the child's weight acts as the force and the distance is the length of the seesaw.

Let's denote the mass of the child as M. The torque on the left side of the fulcrum (child's side) is given by:

Torque_left = M * g * (2 m)

where g is the acceleration due to gravity.

The torque on the right side of the fulcrum (board's side) is given by:

Torque_right = (20 kg) * g * (2 m - 0.25 m)

Since the seesaw is in equilibrium, the torques must be equal:

Torque_left = Torque_right

M * g * (2 m) = (20 kg) * g * (2 m - 0.25 m)

Simplifying the equation:

2M = 20 kg * 1.75

M = (20 kg * 1.75) / 2

M = 17.5 kg

Therefore, the mass of the child is 17.5 kg.

(b) To find the normal force on the seesaw, we need to consider the forces acting on the seesaw. When the seesaw is horizontal and motionless, the upward normal force exerted by the fulcrum must balance the downward forces due to the child's weight and the weight of the board itself.

The weight of the child is given by:

Weight_child = M * g

The weight of the board is given by:

Weight_board = (20 kg) * g

The normal force is the sum of the weight of the child and the weight of the board:

Normal force = Weight_child + Weight_board

Normal force = (17.5 kg) * g + (20 kg) * g

Normal force = (17.5 kg + 20 kg) * g

Normal force = (37.5 kg) * g

Therefore, the normal force on the seesaw is 37.5 times the acceleration due to gravity (g).

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A Direct Numerical Simulation is performed of the mixing process in a mixing bowl of characteristic length l = 0.39 m The cake batter in the bowl is being mixed by a stirring arm of diameter d = 0.017 m , which generates small eddies of the same size d in the batter . To obtain a well - mixed batter , approximately 523 small scale eddy times are required . Use the Kolmogorov scaling laws to estimate the number of large scale tum - around times T required in this simulation . State your answer to three significant figures . Partial credit is awarded for an approximate but incorrect answer .

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Using the Kolmogorov scaling laws, we can estimate the number of large-scale turnaround times required in a Direct Numerical Simulation (DNS) of a mixing process in a bowl. The estimated number of large-scale turnaround times required in the simulation is approximately 12054, stated to three significant figures.

Given the characteristic length of the bowl (l = 0.39 m) and the diameter of the stirring arm (d = 0.017 m), along with the number of small-scale eddy times required for a well-mixed batter (523), we can calculate the number of large-scale turnaround times, denoted as T. The answer will be stated to three significant figures.

According to the Kolmogorov scaling laws, the size of the small-scale eddies (η) is related to the energy dissipation rate (ε) as η ∝ ε^(-3/4). The energy dissipation rate is proportional to the velocity scale (u) raised to the power of 3, ε ∝ u^3.

In the given scenario, the stirring arm generates small-scale eddies of the same size as the arm's diameter, d = 0.017 m. Since the small-scale eddy size is equal to d, we have η = d.

To estimate the number of large-scale turnaround times required, we can compare the characteristic length scale of the mixing bowl (l) with the small-scale eddy size (d). The ratio l/d gives an indication of the number of small-scale eddies within the bowl.

We are given that approximately 523 small-scale eddy times are required for a well-mixed batter. This implies that the mixing process needs to capture the interactions of these small-scale eddies.

Therefore, the number of large-scale turnaround times (T) required can be estimated as T = 523 * (l/d).

Substituting the given values, we have T = 523 * (0.39/0.017) ≈ 12054.

Hence, the estimated number of large-scale turnaround times required in the simulation is approximately 12054, stated to three significant figures.

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A274-V battery is connected to a device that draws 4.86 A of current. What is the heat in k), dissipated in the device in 273 minutes of operation

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The heat dissipated in the device during 273 minutes of operation is approximately 217.56 kJ

To calculate the heat dissipated in the device over 273 minutes of operation, we need to find the power consumed by the device and then multiply it by the time.

Given that,

The device draws a current of 4.86 A, we need the voltage of the A274-V battery to calculate the power. Let's assume the battery voltage is 274 V based on the battery's name.

Power (P) = Current (I) * Voltage (V)

P = 4.86 A * 274 V

P ≈ 1331.64 W

Now that we have the power consumed by the device, we can calculate the heat dissipated using the formula:

Heat (Q) = Power (P) * Time (t)

Q = 1331.64 W * 273 min

To convert the time from minutes to seconds (as power is given in watts), we multiply by 60:

Q = 1331.64 W * (273 min * 60 s/min)

Q ≈ 217,560.24 J

To convert the heat from joules to kilojoules, we divide by 1000:

Q ≈ 217.56 kJ

Therefore, the heat dissipated in the device during 273 minutes of operation is approximately 217.56 kJ.

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7. Two massive objects (M1​=M2​=N#)kg attract each other with a force 0.128 N. What happens to the force between them if the separation between their centers is reduced to one-eighth its. original value? (Hint: F=GM2​M1​/R2 ) The force is now equal to : a) 3.6 N b) 42 N c) 8.2 N d) 96 N e) None of these is true

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The correct answer to the question “Two massive objects (M1​=M2​=N#)kg attract each other with a force 0.128 N.

What happens to the force between them if the separation between their centers is reduced to one-eighth its.

original value?” is that the force is now equal to 8.2 N.

What is the gravitational force?

The force of attraction between two objects because of their masses is known as gravitational force.

The formula to calculate gravitational force is

F = Gm₁m₂/d²

where,F = force of attraction between two masses

G = gravitational constant

m₁ = mass of the first object

m₂ = mass of the second object

d = distance between the two masses.

As per the question given, the gravitational force (F) between two objects

M1=M2=N#

= N kg is 0.128 N.

Now, we are to find the new force when the distance between their centers is reduced to one-eighth of its original value.

So, we can assume that the distance is now d/8,

where d is the initial distance.

Using the formula of gravitational force and plugging the values into the formula, we have,

0.128 = G × N × N / d²

⇒ d² = G × N × N / 0.128

d = √(G × N × N / 0.128)

On reducing the distance to 1/8th, the new distance between the objects will be d/8.

Hence, we can write the new distance as d/8, which means new force F' is given as

F' = G × N × N / (d/8)²

F' = G × N × N / (d²/64)

F' = G × N × N × 64 / d²

Now, substituting the values of G, N, and d, we get

F' = 6.67 × 10^-11 × N × N × 64 / [(√(G × N × N / 0.128)]²

F' = 6.67 × 10^-11 × N × N × 64 × 0.128 / (G × N × N)

F' = 8.2 N

Thus, the new force between the two objects is 8.2 N.

Therefore, option C is correct.

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A particle with a charge of q=−5.50nC is moving in a uniform magnetic field of B with sole component Bz​=−1.20 T. The magnetic force on the particle is measured to be F with sole component Fy​ =−7.60×10−7 N Calculate vx​, the x component of the velocity of the particle. Express your answer in meters per second.

Answers

The x-component of the velocity (vx​) of the particle is 108.7 m/s.

To calculate the x-component of the velocity (vx​) of the particle, we can use the formula for the magnetic force on a charged particle moving in a magnetic field:

F = q * v * B

Given that the charge q is -5.50 nC, the magnetic field Bz​ is -1.20 T, and the force Fy​ is -7.60×10−7 N, we can rearrange the formula to solve for vx​:vx​ = Fy​ / (q * Bz​)

Substituting the values, we have:

vx​ = (-7.60×10−7 N) / (-5.50×10−9 C * -1.20 T)

Simplifying the expression, we get:

vx​ = 108.7 m/s

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A ball is thrown with an initial speed of (3.9x10^0) m/s at an angle (1.360x10^0) degrees to the horizontal. Calculate the maximum flight time At, if it lands at a point where the vertical displacement Ay is zero. Give your answer to 2 sf

Answers

The maximum flight time (t) of the ball is approximately 0.822 seconds.

Given:

Initial velocity (V) = 3.9x10 m/s

Launch angle (θ) = 1.360x10°

Acceleration due to gravity (g) = 9.8 m/s²

To calculate the maximum flight time of the ball, we can analyze the vertical motion of the projectile. We can break down the initial velocity into its horizontal and vertical components.

The horizontal component of the initial velocity (Vx) remains constant throughout the motion and is given by:

Vx = V * cos(θ),

Vx = (3.9x10 m/s) * cos(1.360x10)°.

The vertical component of the initial velocity (Vy) determines the vertical motion of the projectile and changes over time due to the acceleration of gravity.

Vy = V * sin(θ)

Vy = (3.9x10 m/s) * sin(1.360x10)°

Next, we can determine the time of flight (t) when the ball lands, assuming the vertical displacement (Ay) is zero.

Using the kinematic equation for the vertical motion:

Ay = Vy * t - (1/2) * g * t²

Since Ay is zero when the ball lands, we have:

0 = Vy * t - (1/2) * g * t²

Rearranging the equation:

(1/2) * g * t² = Vy * t

Substituting the values we calculated earlier:

(1/2) * (9.8 m/s^2) * t² = {(3.9x10^0 m/s) * sin(1.360x10)°} * t

(4.9 m/s^2) * t² = {(3.9x10^0 m/s) * sin(1.360x10)°} * t

Dividing both sides by t:

(4.9 m/s²) * t = (3.9x10^0 m/s) * sin(1.360x10)°

Solving for t:

t = {(3.9x10 m/s) * sin(1.360x10)°} / (4.9 m/s²)

t = (3.9 * sin(1.360)) / 4.9

t ≈ 0.822 seconds

Therefore, the maximum flight time (t) of the ball is approximately 0.822 seconds.

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A shopper standing 2.20 m from a convex security mirror sees his image with a magnification of 0.280. A shopper standing 2.20 m from a convex security mirror sees his image with a magnification of 0.280. (a) Where is his image (in m)? (Use the correct sign.) m behind the mirror (b) What is the focal length (in m) of the mirror? m (c) What is its radius of curvature in m)? m

Answers

The problem involves determining the position of an image formed by a convex security mirror, as well as the focal length and radius of curvature of the mirror.

(a) For a convex mirror, the magnification (m) is negative and given by the equation m = -di/do, where di is the image distance and do is the object distance. In this case, the magnification is 0.280 and the object distance is 2.20 m. Solving for di, we have:

0.280 = -di/2.20

Rearranging the equation, we find that di = -0.280 * 2.20 = -0.616 m. Since the image distance is negative, the image is formed behind the mirror, specifically, 0.616 m behind the mirror.

(b) The focal length (f) of a convex mirror can be determined using the formula 1/f = 1/do + 1/di. From part (a), we know that di = -0.616 m. Substituting this value and the object distance (do = 2.20 m) into the equation, we can solve for f:

1/f = 1/2.20 + 1/(-0.616)

Simplifying the equation, we find that 1/f = -0.4545 - 1.6234. Combining the terms on the right side gives 1/f = -2.0779. Taking the reciprocal of both sides, we get f = -0.481 m. Therefore, the focal length of the convex mirror is -0.481 m.

(c) The radius of curvature (R) of a convex mirror is twice the focal length, so R = 2 * (-0.481) = -0.962 m. The negative sign indicates that the radius of curvature is concave with respect to the observer.

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The maximum blood pressure of a patient requiring blood transfer
is found to be 110 mmHg. What should be the minimum height of the
ivy to prevent a back flow? Assume blood = 1050 kg/m3.

Answers

Given maximum blood pressure of a patient requiring blood transfer is found to be 110 mmHg. We need to find the minimum height of the ivy to prevent a back flow.

We can use the equation of Bernoulli's equation, which states that the sum of pressure energy, kinetic energy and potential energy per unit mass of an ideal fluid in a horizontal flow remains constant.The Bernoulli's equation is given by;`P + (1/2)ρv² + ρgh = constant`Where

P = pressure,ρ = density of fluid, v = velocity of fluid,h = height of the fluid.Using the Bernoulli's equation,We can write;`P + (1/2)ρv² + ρgh = constant`Let's say that h₁ and h₂ are the heights of the two points, then the Bernoulli's equation for the two points will be:`P + (1/2)ρv₁² + ρgh₁ = P + (1/2)ρv₂² + ρgh₂`Now, since the fluid is flowing horizontally.

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