a ball hits a wall head on and sticks to it. if instead the ball bounces off the wall with one-half of the original velocity and the collision lasts the same time, the average force on the ball would be times greater. group of answer choices none of them 1.5 2.0 0.5 1.0

When both balls have reached terminal velocity, ball X has greater acceleration. Option C is correct.

When both balls have reached terminal velocity, which is the maximum velocity they can attain while falling due to the balance between gravity and air resistance.

Terminal velocity is reached when the force of air resistance on the falling object equals the force of gravity pulling it downward. At terminal velocity, the net force on each ball is zero, which means the acceleration is zero.

However, since Ball X has greater mass than Ball Y, it experiences a greater force of gravity pulling it downward. To balance this larger force, Ball X needs a greater force of air resistance. This greater force of air resistance results in a greater acceleration for Ball X compared to Ball Y. Therefore, Ball X has a greater acceleration.

Therefore, Option C is correct.

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The rms value of the current through the inductor is 1.4A. The correct option is (d) 1.4A(rms).

In an inductive circuit, the current lags behind the voltage due to the presence of inductance. The rms value of the current can be calculated using the formula:

Irms = Vrms / XL,

where Irms is the rms value of the current, Vrms is the rms value of the voltage, and XL is the inductive reactance.

The inductive reactance XL can be calculated using the formula:

XL = 2πfL,

where f is the frequency of the voltage source and L is the inductance.

Given:

Vrms = 220V,

f = 50Hz,

L = 0.5H.

Calculating the inductive reactance:

XL = 2π * 50Hz * 0.5H

= 157.08Ω.

Now, calculating the rms value of the current:

Irms = 220V / 157.08Ω

= 1.4A.

Therefore, the rms value of the current through the inductor is 1.4A.

The correct option is (d) 1.4A(rms). This value represents the rms value of the current flowing through the 0.5H inductor connected to a 220V-rms 50Hz voltage source

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A. An inductance of approximately 1.26 μH will produce a resonance frequency of 95 MHz.

B. A resistance of approximately 92.8 Ω should be used to obtain an impedance at resonance that is one-fifth the impedance at 17 kHz.

A. The resonance frequency of an RLC circuit is given by the following expression:

f = 1 / 2π√(LC)

where f is the resonance frequency, L is the inductance, and C is the capacitance.

We are given the capacitance (C = 0.29 μF) and the resonance frequency (f = 95 MHz), so we can rearrange the above expression to solve for L:

L = 1 / (4π²Cf²)

L = 1 / (4π² × 0.29 × 10^-6 × (95 × 10^6)²)

L ≈ 1.26 μH

B. The impedance of an RLC circuit at resonance is given by the following expression:

Z = R

where R is the resistance of the circuit.

We are asked to find the value of R such that the impedance at resonance is one-fifth the impedance at 17 kHz. At a frequency of 17 kHz, the impedance of the circuit is given by:

Z = √(R² + (1 / (2πfC))²)

Z = √(R² + (1 / (2π × 17 × 10^3 × 0.29 × 10^-6))²)

At resonance (f = 95 MHz), the impedance of the circuit is simply Z = R.

We want the impedance at resonance to be one-fifth the impedance at 17 kHz, i.e.,

R / 5 = √(R² + (1 / (2π × 17 × 10^3 × 0.29 × 10^-6))²)

Squaring both sides and simplifying, we get:

R² / 25 = R² + (1 / (2π × 17 × 10^3 × 0.29 × 10^-6))²

Multiplying both sides by 25 and simplifying, we get a quadratic equation in R:

24R² - 25(1 / (2π × 17 × 10^3 × 0.29 × 10^-6))² = 0

Solving for R, we get:

R ≈ 92.8 Ω

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a) Change in the balloon’s internal energy:In this scenario, 905 J of thermal energy are absorbed, but 106 J of work are done. When there is an increase in the volume, the internal energy of the gas also rises. Therefore, we may calculate the change in internal energy using the following formula:ΔU = Q – WΔU = 905 J – 106 JΔU = 799 JTherefore, the change in internal energy of the balloon is 799 J.

b) Change in the temperature of the gas:When gas is heated, it expands, resulting in a temperature change. As a result, we may calculate the change in temperature using the following formula:ΔU = nCvΔT = Q – WΔT = ΔU / nCvΔT = 799 J / (4.20 mol × 3/2 R × 1 atm)ΔT = 32.5 K

Therefore, the change in temperature of the gas is 32.5 K.In summary, when the balloon absorbs 905 J of thermal energy while doing 106 J of work and expands to a larger volume, the change in the balloon's internal energy is 799 J and the change in temperature of the gas is 32.5 K.

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Answer:

The -2 nC charge must be located at (2.83, 4.31) cm in order for the electric field at the origin to be zero.

The distance r from the origin of the third charge is 2.83 cm.

Explanation:

The electric field at the origin due to the +5 nC charge is directed towards the origin, while the electric field due to the -8 nC charge is directed away from the origin.

In order for the net electric field at the origin to be zero, the electric field due to the -2 nC charge must also be directed towards the origin.

This means that the -2 nC charge must be located on the same side of the origin as the +5 nC charge, and it must be closer to the origin than the +5 nC charge.

The distance between the +5 nC charge and the origin is 8.62 cm, so the -2 nC charge must be located within a radius of 8.62 cm of the origin.

The electric field due to a point charge is inversely proportional to the square of the distance from the charge, so the -2 nC charge must be closer to the origin than 4.31 cm from the origin.

The only point on the line connecting the +5 nC charge and the origin that is within a radius of 4.31 cm of the origin is the point (2.83, 4.31) cm.

Therefore, the -2 nC charge must be located at (2.83, 4.31) cm in order for the electric field at the origin to be zero.

The distance r from the origin of the third charge is 2.83 cm.

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The wave created between the index and middle finger, and between the middle and ring finger, represents visible light on the electromagnetic spectrum.

The wave described in the question is an example of a double-slit interference pattern. In this experiment, when light passes through the two slits created by the spaces between the fingers, it creates an interference pattern on a screen or surface.

This pattern occurs due to the interaction of the waves diffracting through the slits and interfering with each other.

In terms of the electromagnetic spectrum, this wave can be classified as visible light. Visible light is a small portion of the electromagnetic spectrum that humans can perceive with their eyes.

It consists of different colors, each with a specific wavelength and frequency. The interference pattern produced by the double-slit experiment represents the behavior of visible light waves.

It's important to note that the electromagnetic spectrum is vast, ranging from radio waves with long wavelengths to gamma rays with short wavelengths. Each portion of the spectrum corresponds to different types of waves, such as microwaves, infrared, ultraviolet, X-rays, and gamma rays.

Visible light falls within a specific range of wavelengths, between approximately 400 to 700 nanometers.

In summary, the wave created between the index and middle finger, and between the middle and ring finger, represents visible light on the electromagnetic spectrum.

Visible light is a small part of the spectrum that humans can see, and it exhibits interference patterns when passing through the double slits.

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a. The astronaut applies a force on the spacecraft and the spacecraft applies an equal force on the astronaut.

b. The astronaut will move faster than the spacecraft, but since the spacecraft has a greater mass, it will require more force to achieve the same acceleration.

a) The forces exerted on the astronaut and spacecraft are equal in magnitude and opposite in direction. The Third Law of Motion states that every action has an equal and opposite reaction.  Therefore, both forces are the same.

b) To compare the acceleration of the astronaut and the spacecraft, the mass of each needs to be taken into consideration. The acceleration of an object is directly proportional to the force applied to it and inversely proportional to its mass. The formula to calculate acceleration is a = F/m, where F is force and m is mass.

For the astronaut:
Force (F) = 120 N
Mass (m) = 75 kg
Acceleration (a) = F/m = 120/75 = 1.6 m/s²

For the spacecraft:
Force (F) = 120 N
Mass (m) = 520 kg
Acceleration (a) = F/m = 120/520 = 0.23 m/s²

Therefore, the acceleration of the astronaut is higher than the acceleration of the spacecraft. The astronaut experiences a greater change in velocity in the given time than the spacecraft.

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The student should place the light source at the focus of the concave mirror to obtain parallel light beams.

To achieve parallel light beams using a concave mirror, the light source should be placed at the focus of the mirror. This is based on the principle of reflection of light rays.

A concave mirror is a mirror with a reflective surface that curves inward. When light rays from a point source are incident on a concave mirror, the reflected rays converge towards a specific point called the focus. The focus is located on the principal axis of the mirror, halfway between the mirror's surface and its center of curvature.

By placing the light source at the focus of the concave mirror, the incident rays will reflect off the mirror surface and become parallel after reflection. This occurs because light rays that pass through the focus before reflection will be reflected parallel to the principal axis.

If the light source is placed at any other position, such as the center of curvature, on the surface of the mirror, or infinitely far from the mirror, the reflected rays will not be parallel. Therefore, to obtain parallel light beams, the light source should be precisely positioned at the focus of the concave mirror.

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The mass of the book is 0.43 kg. The weight of the dog is 156.8 N.

Part A The mass of the book that weighs 4.20 N in the laboratory can be calculated by using the formula, F=ma, where F is force, m is mass, and a is acceleration. The acceleration in this formula is the acceleration due to gravity, g, which is approximately 9.81 m/s².So, F = ma, or m = F/a

Putting the given values in the above formula, we have;m = 4.20 N / 9.81 m/s²≈ 0.427 kg

Therefore, the mass of the book that weighs 4.20 N in the laboratory is approximately 0.427 kg.Part B The weight of the dog whose mass is 16.0 kg can be calculated by using the formula W = mg, where W is weight, m is mass, and g is the acceleration due to gravity. Putting the given values in the above formula, we have;W = 16.0 kg × 9.81 m/s²≈ 157 N

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Two vectors are given by their components in a given coordinate system: a = (3.0, 2.0) and b = (-2.0, 4.0)

a)  a + b = (1.0, 6.0).

b)  2.0a - b = (8.0, 0.0).

To find the sum of two vectors a and b, we simply add their corresponding components:

(a) a + b = (3.0, 2.0) + (-2.0, 4.0) = (3.0 + (-2.0), 2.0 + 4.0) = (1.0, 6.0).

Therefore, a + b = (1.0, 6.0).

To find the difference of two vectors, we subtract their corresponding components:

(b) 2.0a - b = 2.0(3.0, 2.0) - (-2.0, 4.0) = (6.0, 4.0) - (-2.0, 4.0) = (6.0 - (-2.0), 4.0 - 4.0) = (8.0, 0.0).

Therefore, 2.0a - b = (8.0, 0.0).

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The trip will seem about `15.0000001875 million seconds` shorter to people on the rocket as compared to people in the Earth frame.

The given values are: Speed of rocket, `v = 6,000 m/s`

Distance to Mars, `d = 90 million km = 9 × 10^10 m`

Time taken to cover the distance, `t = 15 × 10^6 s`

Now, using Lorentz factor, we can find how much seconds shorter the trip will seem to people on the rocket.

Lorentz factor is given as: `γ = 1 / sqrt(1 - v^2/c^2)

`where, `c` is the speed of light `c = 3 × 10^8 m/s`

On substituting the given values, we get:

`γ = 1 / sqrt(1 - (6,000/3 × 10^8)^2)

`Simplifying, we get: `γ = 1.0000000125`

Approximately, `γ ≈ 1`.

Hence, the trip will seem shorter by about `15 × 10^6 × (1 - 1/γ)` seconds.

Using binomial approximation, `(1 - 1/γ)^-1 ≈ 1 + 1/γ`.

Hence, the time difference would be approximately:`15 × 10^6 × 1/γ ≈ 15 × 10^6 × (1 + 1/γ)`

On substituting the value of `γ`, we get:`

15 × 10^6 × (1 + 1/γ) ≈ 15 × 10^6 × 1.0000000125 ≈ 15.0000001875 × 10^6 s`

Hence, the trip will seem about `15.0000001875 × 10^6 s` or `15.0000001875 million seconds` shorter to people on the rocket as compared to people in the Earth frame.

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The statement is False. When an object is placed 8.1 cm from a diverging lens with a focal length of 4 cm, the resulting image will be virtual and enlarged, not reduced and real.

A diverging lens is a type of lens that causes parallel rays of light to diverge. It has a negative focal length, which means it cannot form a real image. Instead, the image formed by a diverging lens is always virtual.

In this scenario, the object is placed 8.1 cm from the diverging lens. Since the object is located beyond the focal point of the lens, the image formed will be virtual. Additionally, the image will be enlarged compared to the object. This is a characteristic behavior of a diverging lens.

Therefore, the statement that the image will be reduced and real is incorrect. The correct statement is that the image will be virtual and enlarged when an object is placed 8.1 cm from a diverging lens with a focal length of 4 cm.

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A sinusoidal electromagnetic wave with frequency 3.7x1014Hz travels in vacuum in the +x direction.

The amplitude of the magnetic field is 5.0 x 10-4T.

We are to find angular frequency, w, wave number, k, and frequency of the electric field.

Wave function for the electric field in the form

E = E ma sin (w t - k x)

is to be written.

We have the following relations:

[tex]\ [ \ omega = 2 \pi \nu \] \ [k = \frac {{2\ p i } } {\ lamb d} \][/tex]

Here,

 \ [ \ n u = 3.7 \times {10^ {14}} \,

\,

\,

Hz\] Let's calculate the wavelength of the wave.

We know that the speed of light in a vacuum,

c is given by:

 \ [c = \nu \lambda \]

The wavelength,

m \\ \end{array}\]

We can now calculate the wave number as follows:

\[\frac{{E_0 }}{{B_0 }} = \frac{1}{c}\]  \[E_0  = \frac{{B_0 }}{c} = \frac{{5 \times {{10}^{ - 4}}}}{{3 \times {{10}^8}}}\]

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The distance between the peaks of pressure compression in the thunder  with a sound detector, you are able to measure its sound intensity peaks at 24 cycles per second is 14.29 meters.

The distance in meters between the peaks of pressure compression (sound waves) can be calculated using the formula:

Distance = Speed of Sound / Frequency

To find the distance, we need to know the speed of sound. The speed of sound in dry air at room temperature is approximately 343 meters per second.

Substituting the given frequency of 24 cycles per second into the formula:

Distance = 343 m/s / 24 Hz = 14.29 meters

The distance between the peaks of pressure compression in the thunder is 14.29 meters.

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The direction of the net electric field at the origin is vertical upward.

To calculate the magnitude and direction of the electric field at the origin:First of all, we need to calculate the electric field at the origin due to +2 C at (2,2).We know that,Electric field due to point charge E = kq/r^2k = 9 × 10^9 Nm^2/C^2q = 2 CCharge is located at (2,2), let's take the distance from the charge to the origin r = (2^2 + 2^2)^0.5 = (8)^0.5E = 9 × 10^9 × 2/(8) = 2.25 × 10^9 N/CAt point origin, electric field due to 1st point charge (2C) is 2.25 × 10^9 N/C in the 3rd quadrant (-x and -y direction).Electric field is a vector quantity. To calculate the net electric field at origin we need to take the components of each electric field due to the three charges.Let's draw the vector diagram. Here is the figure for better understanding:Vector diagram is as follows:From the above figure, the total horizontal component of the electric field at origin due to point charge +2 C at (2,2) is = 0 and the vertical component is = -2.25 × 10^9 N/C.Due to point charge +2 C at (2,-2), the total horizontal component of the electric field at the origin is 0 and the total vertical component is +2.25 × 10^9 N/C.

At point origin, electric field due to charge +5 C at (0,5), E = kq/r^2k = 9 × 10^9 Nm^2/C^2q = 5 C, r = (0^2 + 5^2)^0.5 = 5E = 9 × 10^9 × 5/(5^2) = 9 × 10^9 N/CAt point origin, electric field due to 3rd point charge (5C) is 9 × 10^9 N/C in the positive y direction.The total vertical component of electric field E is = -2.25 × 10^9 N/C + 2.25 × 10^9 N/C + 9 × 10^9 N/C = 8.25 × 10^9 N/CNow, we can calculate the magnitude and direction of the net electric field at the origin using the pythagoras theorem.Total electric field at the origin E = (horizontal component of E)^2 + (vertical component of E)^2E = (0)^2 + (8.25 × 10^9)^2E = 6.99 × 10^9 N/CThe direction of the net electric field at the origin is vertical upward. (North direction).

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Based on the given angular measurements of 8.9' by 5.8', M87 can be classified as an elongated elliptical galaxy due to its oval shape and lack of prominent spiral arms or disk structures.

Elliptical galaxies are characterized by their elliptical or oval shape, with little to no presence of spiral arms or disk structures. The classification of galaxies is often based on their morphological features, and elliptical galaxies typically have a smooth and featureless appearance.

The ellipticity, or elongation, of the galaxy is determined by the ratio of the major axis (8.9') to the minor axis (5.8'). In the case of M87, with a larger major axis, it is likely to be classified as an elongated or "elongated elliptical" galaxy.

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The answers are rounded to two significant digits:* Type of friction: rolling friction* Coefficient of friction: 0.02

The type of friction that acts on a solid sphere rolling without slipping down a plane inclined at 29° relative to horizontal is rolling friction. Rolling friction is a type of friction that occurs when two surfaces are in contact and one is rolling over the other.

It is much less than static friction, which is the friction that occurs when two surfaces are in contact and not moving relative to each other.

The coefficient of rolling friction is denoted by the Greek letter mu (μ). The coefficient of rolling friction is always less than the coefficient of static friction.

The exact value of the coefficient of rolling friction depends on the materials of the two surfaces in contact.

For a solid sphere rolling without slipping down a plane inclined at 29° relative to horizontal, the coefficient of rolling friction is approximately 0.02. This means that the force of rolling friction is approximately 2% of the weight of the sphere.

The answers are rounded to two significant digits:

* Type of friction: rolling friction

* Coefficient of friction: 0.02

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The angular frequency of an L-R-C circuit when R = 0 is approximately 17.12 rad/s. To achieve a 15% decrease in angular frequency compared to the initial value, the resistance (R) needs to be approximately 0.0687 ohms.

To find the angular frequency of the L-R-C circuit when R = 0, we can use the formula:

ω = 1/√(LC)

Given that the inductance (L) is 0.500 H and the capacitance (C) is 2.30×[tex]10^(-5)[/tex] F, we can substitute these values into the formula:

ω = 1/√(0.500 H * 2.30×[tex]10^(-5)[/tex] F)

Simplifying further:

ω = 1/√(1.15×[tex]10^(-5)[/tex]H·F)

Taking the square root:

ω =[tex]1/(3.39×10^(-3) H·F)^(1/2)[/tex]

ω ≈ 1/0.0584

ω ≈ 17.12 rad/s

Therefore, when R = 0, the angular frequency of the circuit is approximately 17.12 radians per second.

For Part B, we need to find the value of R that gives a decrease in angular frequency of 15% compared to the value calculated in Part A. Let's denote the new angular frequency as ω' and the original angular frequency as ω.

The decrease in angular frequency is given as:

Δω = ω - ω'

We are given that Δω/ω = 15% = 0.15. Substituting the values:

0.15 = ω - ω'

We know from Part A that ω ≈ 17.12 rad/s, so we can rearrange the equation:

ω' = ω - 0.15ω

ω' = (1 - 0.15)ω

ω' = 0.85ω

Substituting ω ≈ 17.12 rad/s:

ω' = 0.85 * 17.12 rad/s

ω' ≈ 14.55 rad/s

Now, we can calculate the resistance (R) using the formula:

ω' = 1/√(LC) - ([tex]R^2/2L[/tex])

Plugging in the values:

14.55 rad/s = 1/√(0.500 H * [tex]2.30×10^(-5) F) - (R^2/(2 * 0.500 H))[/tex]

Simplifying:

14.55 rad/s = [tex]1/√(1.15×10^(-5) H·F) - (R^2/1.00 H)[/tex]

14.55 rad/s ≈ 1/R

R ≈ 0.0687 ohms

Therefore, the value of R that gives a decrease in angular frequency of 15% compared to the value calculated in Part A is approximately 0.0687 ohms.

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Capacitive reactance (Xc) is a measure of the opposition to the flow of alternating current (AC) through a capacitor. Both capacitors have a capacitive reactance of 40 Ω, and the AC voltage source has a frequency of almost 80 Hz.

Capacitive reactance arises due to the behavior of a capacitor in an AC circuit. A capacitor stores electrical energy in an electric field between its plates when it is charged. When an AC voltage is applied to a capacitor, the voltage across the capacitor changes with the frequency of the AC signal. As the frequency increases, the capacitor has less time to charge and discharge, resulting in a higher opposition to the flow of current.

To solve this problem, we can use the formula for capacitive reactance (Xc) in an AC circuit:

[tex]Xc = 1 / (2\pi fC)[/tex]

Where:

Xc is the capacitive reactance in ohms (Ω),

π is a mathematical constant (approximately 3.14159),

f is the frequency of the AC voltage source in hertz (Hz),

C is the capacitance in farads (F).

Let's solve for the frequency of the AC voltage source and the capacitive reactance for each capacitor:

For the 100-pF capacitor:

Given:

[tex]C = 100 pF = 100 * 10^{-12} F\\X_c = 20 \Omega[/tex]

[tex]20 \Omega = 1 / (2\pi f * 100 * 10^{-12} F)[/tex]

Solving for f:

[tex]f = 1 / (2\pi * 20 \Omega * 100 * 10^{-12} F)\\f = 79577.68 Hz = 80 kHz[/tex]

Therefore, the frequency of the AC voltage source is approximately 80 kHz for the 100-pF capacitor.

For the 50-μF capacitor:

[tex]C = 50 \mu F = 50 * 10^{-6} F[/tex]

We want to find the capacitive reactance (Xc) for this capacitor:

[tex]X_c = 1 / (2\pi f * 50 * 10^{-6} F)[/tex]

To show that the capacitive reactance will be 40 Ω, we substitute the value of Xc into the equation:

[tex]40 \Omega = 1 / (2\pi f * 50 * 10^{-6}F)\\f = 1 / (2\pi * 40 \Omega * 50 * 10^{-6} F)\\f = 79577.68 Hz = 80 kHz[/tex]

Again, the frequency of the AC voltage source is approximately 80 kHz for the 50-μF capacitor.

Hence, both capacitors have a capacitive reactance of 40 Ω, and the AC voltage source has a frequency of almost 80 Hz.

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The 50-µF capacitor has a capacitive reactance twice as that of the 100-pF capacitor.

Given information, The capacitive reactance of a 100-pF capacitor is 20 Ω

The capacitive reactance of a 50-µF capacitor is to be determined

The frequency of the AC voltage source is almost 80 Hz

The capacitive reactance of a capacitor is given by the relation, XC = 1 / (2πfC)

WhereXC = Capacitive reactance, C = Capacitance, f = Frequency

On substituting the given values for the 100-pF capacitor, the frequency of the AC voltage source is found to be,20 = 1 / (2πf × 100 × 10⁻¹²)⇒ f = 1 / (2π × 20 × 100 × 10⁻¹²) = 7.957 Hz

On substituting the given values for the 50-µF capacitor, its capacitive reactance is found to be, XC = 1 / (2πfC)⇒ XC = 1 / (2π × 7.957 × 50 × 10⁻⁶) = 39.88 Ω ≈ 40 Ω

The capacitive reactance of the 50-µF capacitor is 40 Ω and the frequency of the AC voltage source is almost 80 Hz, which was calculated to be 7.957 Hz for the 100-pF capacitor.

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The speed of m is 5.0 m/s in the positive direction, and the speed of M is 5.0 m/s in the negative direction.

In an elastic collision, both the momentum and the kinetic energy are conserved. The total momentum before collision is equal to the total momentum after collision.

Therefore, we can say that: mv1 + MV2 = mv1' + MV2', where v1 and v2 are the initial velocities of the two objects, and v1' and v2' are their velocities after the collision.

Since the collision is elastic, we also know that:[tex]1/2mv1² + 1/2MV2² = 1/2mv1'² + 1/2MV2'²[/tex]

We have:

m = 2Mv1 = 10.0 m/s

M = 2mv2 = -2.0 m/s

Since momentum is conserved:

mv1 + MV2 = mv1' + MV2'

2M × -2.0 m/s + m × 10.0 m/s

= mv1' + MV2'

mv1' + MV2' = -4M + 10m

Let's substitute the value of M and simplify the equation:

mv1' + MV2' = -4(2m) + 10m

= 2m = m(v1' + V2')

= 2m - 2M + M

= 0v1' + V2'

= 0

So, the final velocities of both objects are equal in magnitude but opposite in direction. The negative sign indicates that the velocity of M is in the opposite direction to that of m.v1' = v2' = 5.0 m/s

Therefore, the speed of m is 5.0 m/s in the positive direction, and the speed of M is 5.0 m/s in the negative direction.

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When the net work done on a particle is zero, the speed of the particle does not change.

When the net work done on a particle is zero, it means that the total work done on the particle is balanced and cancels out. Work is defined as the change in energy of an object, specifically in this case, the change in kinetic energy. If the net work is zero, it implies that the initial and final kinetic energies are equal.

The kinetic energy of an object is directly related to its speed. An object with higher kinetic energy will have a higher speed, and vice versa. Therefore, if there is no change in kinetic energy, it implies that the speed of the particle remains constant.

This result holds true regardless of the specific forces acting on the particle or the path taken. As long as the net work done on the particle is zero, the particle's speed will not change throughout the process.

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The question involves the conservation of momentum principle. The conservation of momentum principle is a fundamental law of physics that states that the momentum of a system is constant when there is no external force applied to it.

The velocity of the two objects after the collision is 2.4 m/s. The correct answer is (d) None of the above.

Let's find out. We can use the conservation of momentum principle to solve the problem. The principle states that the momentum before the collision is equal to the momentum after the collision. In other words, momentum before = momentum after Initially, Object A has a momentum of:

momentum A = mass of A × velocity of A
momentum A = 4 kg × 3 m/s
momentum A = 12 kg m/s

Similarly, Object B has a momentum of:

momentum B = mass of B × velocity of B
momentum B = 1 kg × 2 m/s
momentum B = 2 kg m/s

The total momentum before the collision is:

momentum before = momentum A + momentum B
momentum before = 12 kg m/s + 2 kg m/s
momentum before = 14 kg m/s

After the collision, the two objects stick together. Let's assume that their combined mass is M and their combined velocity is v. According to the principle of conservation of momentum, the total momentum after the collision is:

momentum after = M × v
We know that the total momentum before the collision is equal to the total momentum after the collision. Therefore, we can write:

M × v = 14 kg m/s

Now, we need to find the value of v. We can do this by using the law of conservation of energy, which states that the total energy of a closed system is constant. In this case, the only form of energy we need to consider is kinetic energy. Before the collision, the kinetic energy of the system is:

kinetic energy before = 1/2 × mass A × (velocity A)² + 1/2 × mass B × (velocity B)²

kinetic energy before = 1/2 × 4 kg × (3 m/s)² + 1/2 × 1 kg × (2 m/s)²

kinetic energy before = 18 J

After the collision, the two objects stick together, so their kinetic energy is:

kinetic energy after = 1/2 × M × v²

We know that the kinetic energy before the collision is equal to the kinetic energy after the collision. Therefore, we can write:

1/2 × mass A × (velocity A)² + 1/2 × mass B × (velocity B)²= 1/2 × M × v²

Substituting the values we know:

1/2 × 4 kg × (3 m/s)² + 1/2 × 1 kg × (2 m/s)²

= 1/2 × M × v²54 J = 1/2 × M × v²v²

= 108 J/M

We can now substitute this value of v² into the equation:

M × v = 14 kg m/s

M × √(108 J/M) = 14 kg m/s

M × √(108) = 14 kg m/s

M ≈ 0.5 kgv ≈ 5.3 m/s

Therefore, the velocity of the two objects after the collision is 5.3 m/s, which is not one of the answer choices given. Thus, the correct answer is (d) None of the above.

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Calculate the resultant vector C from the following cross product: Č = A x B where X = 3î + 2ỹ – lî and B = -1.5ê + +1.5ź

To calculate the resultant vector C from the cross product of A and B, we can use the formula:

C = A x B

Where A and B are given vectors. Now, let's plug in the values:

A = 3î + 2ỹ – lî

B = -1.5ê + 1.5ź

To find the cross product C, we can use the determinant method:

|i j k |

|3 2 -1|

|-1.5 0 1.5|

C = (2 x 1.5)î + (3 x 1.5)ỹ + (4.5 + 1.5)k - (-1.5 - 3)j + (-4.5 + 0)l + (-1.5 x 2)ê

C = 3î + 4.5ỹ + 6k + 4.5j + 4.5l - 3ê

Therefore, the resultant vector C is:

C = 3î + 4.5ỹ + 4.5j + 4.5l - 3ê + 6k

So, the answer is C = 3î + 4.5ỹ + 4.5j + 4.5l - 3ê + 6k.

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Magnetic force per unit length exerted by one wire on the other when two long parallel wires, each carrying a current of 2A and lie a distance 17cm from each other is given as follows:

The formula for the magnetic force is given by;

F = (μ₀ * I₁ * I₂ * L)/2πd

Where,μ₀ = Permeability of free space = 4π * 10⁻⁷ N/A²,

I₁ = Current in wire 1 = 2A

I₂ = Current in wire 2 = 2A

L = Length of each wire = 1md = Distance between the wires = 17cm = 0.17m

Substituting all the values in the formula, we get;

F = (4π * 10⁻⁷ * 2 * 2 * 1)/2π * 0.17

= 4.71 * 10⁻⁶ N/m.

Hence, the magnetic force per unit length exerted by one wire on the other is 4.71 * 10⁻⁶ N/m.

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To determine the magnetic force between two parallel wires carrying currents in the same direction. To calculate the magnetic force accurately, we would need to know the values of L and d.

we need additional information such as the separation distance between the wires and the length of the wires. Without these details, we cannot calculate the exact magnetic force. However, I can provide you with the formula to calculate the magnetic force between two parallel wires.The magnetic force (F) between two parallel wires is given by Ampere's law and can be calculated using the equation: F = (μ₀ * I₁ * I₂ * L) / (2π * d)

where:F is the magnetic force

μ₀ is the permeability of free space (approximately 4π × 10^(-7) T·m/A)

I₁ and I₂ are the currents in the two wires

L is the length of the wires

d is the separation distance between the wires

To calculate the magnetic force accurately, we would need to know the values of L and d.

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In Part A, the energy of the hydrogen atom when the electron is in the ni = 5 energy level is approximately -0.544 eV. In Part B, after emitting 0.9671 eV of energy, the final energy of the electron is approximately -1.5111 eV. In Part C, the orbit (or energy state) number of the electron in Part B is approximately 3.

Part A: The energy of the hydrogen atom when the electron is in the ni = 5 energy level can be calculated using the formula for the energy of an electron in the hydrogen atom:

En = -13.6 eV / [tex]n^2[/tex]

Substituting n = 5 into the equation, we have:

E5 = -13.6 eV / [tex]5^2[/tex]

E5 = -13.6 eV / 25

E5 = -0.544 eV

Therefore, the energy of the hydrogen atom when the electron is in the ni = 5 energy level is approximately -0.544 eV.

Part B: When the electron in Part A (ni = 5) undergoes a jump-down and emits 0.9671 eV of energy, we can calculate its final energy by subtracting the emitted energy from the initial energy.

Final energy = E5 - 0.9671 eV

Final energy = -0.544 eV - 0.9671 eV

Final energy = -1.5111 eV

Therefore, the final energy of the electron after emitting 0.9671 eV of energy is approximately -1.5111 eV.

Part C: To determine the orbit (or energy state) number of the electron in Part B, we can use the formula for the energy of an electron in the hydrogen atom:

En = -13.6 eV /[tex]n^2[/tex]

Rearranging the equation, we have:

n = sqrt(-13.6 eV / E)

Substituting the final energy (-1.5111 eV) into the equation, we can calculate the orbit number:

n = sqrt(-13.6 eV / -1.5111 eV)

n ≈ sqrt(9) ≈ 3

Therefore, the orbit (or energy state) number of the electron in Part B is approximately 3.

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The energy of the laser pulse as it exits the medium is 3.09 * 3 = 9.27 J. The net burst of light energy is 4.0 x 10^16 * 63 * 1.6022 x 10^-19 = 3.856 x 10^14 W. The half-life of the atom is 2.0 * 60 = 120 seconds. The Boltzmann constant is k = 1.38 x 10^-23 J/K.

The time it will take for 1/8 of the original number of atoms to be in the excited state is 62 * 2 = 124 seconds.

The wavelength of the pulse is 2.0 kW * 3.0 µs / 5.2 x 10^22 = 1.18 nm.

The temperature at which you expect to find 10% of the atoms in the E₁ state and 90% in the E, state is 5300 K.

Here is the calculation:

The energy difference between the E₁ and E₂ states is hc/λ = 6.626 x 10^-34 J s * 3 x 10^8 m/s / 979 nm = 2.09 x 10^-19 J.

The Boltzmann constant is k = 1.38 x 10^-23 J/K.

The temperature at which the population of the two states is equal is given by the following equation:

E_1 / k T = E_2 / k T

T = E_1 / E_2

T = 2.09 x 10^-19 J / 6.626 x 10^-19 J = 0.315 K

Rounding to the nearest Kelvin, we get T = 5300 K.

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The speed of the meteroid when it reaches the surface of the planet is 19,465 m/s.

A meteoroid is moving towards a planet. It has mass m = 0.62×109 kg and speed v1 = 1.1×107 m/s at distance R1 = 1.2×107 m from the center of the planet. The radius of the planet is R = 0.34×107 m. The problem is related to gravitational force. The task is to find the speed of the meteoroid when it reaches the surface of the planet. The given information are mass, speed, and distance. Hence we can use the equation of potential energy and kinetic energy to find out the speed of the meteoroid when it reaches the surface of the planet.Let's first find out the potential energy of the meteoroid. The potential energy of an object of mass m at distance R from the center of the planet of mass M is given by:PE = −G(Mm)/RHere G is the universal gravitational constant and has a value of 6.67 x 10^-11 Nm^2/kg^2.Substituting the given values, we get:PE = −(6.67 x 10^-11)(5.98 x 10^24)(0.62 x 10^9)/(1.2 x 10^7) = - 1.305 x 10^9 JoulesNext, let's find out the kinetic energy of the meteoroid. The kinetic energy of an object of mass m traveling at a speed v is given by:KE = (1/2)mv^2Substituting the given values, we get:KE = (1/2)(0.62 x 10^9)(1.1 x 10^7)^2 = 4.603 x 10^21 JoulesThe total mechanical energy (potential energy + kinetic energy) of the meteoroid is given by:PE + KE = (1/2)mv^2 - G(Mm)/RSubstituting the values of PE and KE, we get:- 1.305 x 10^9 + 4.603 x 10^21 = (1/2)(0.62 x 10^9)v^2 - (6.67 x 10^-11)(5.98 x 10^24)(0.62 x 10^9)/(0.34 x 10^7)Simplifying and solving for v, we get:v = 19,465 m/sTherefore, the  the speed of the meteoroid when it reaches the surface of the planet is 19,465 m/s. of the meteoroid when it reaches the surface of the planet is 19,465 m/s.

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The pressure in the hydraulic press is approximately 73,500 Pa or 73.5 kPa.

Given:

a. m = 195 g, V = 25 cm³

b. m = 10.5 g, V = 10 cm³

c. m = 64.5 mg, V = 50.0 cm³

To find the names of the substances, we need to calculate their densities using the formula:

Density (ρ) = mass (m) / volume (V)

a. Density (ρ) = 195 g / 25 cm³ = 7.8 g/cm³

The density of the substance is 7.8 g/cm³.

b. Density (ρ) = 10.5 g / 10 cm³ = 1.05 g/cm³

The density of the substance is 1.05 g/cm³.

c. Density (ρ) = 64.5 mg / 50.0 cm³ = 1.29 g/cm³

The density of the substance is 1.29 g/cm³.

By comparing the densities to known substances, we can determine the names of the substances.

a. The substance with a density of 7.8 g/cm³ could be aluminum.

b. The substance with a density of 1.05 g/cm³ could be wood.

c. The substance with a density of 1.29 g/cm³ could be water.

Therefore:

a. The substance with m = 195 g and V = 25 cm³ could be aluminum.

b. The substance with m = 10.5 g and V = 10 cm³ could be wood.

c. The substance with m = 64.5 mg and V = 50.0 cm³ could be water.

To calculate the pressure exerted on the floor when standing on both feet, we need to know the weight (force) exerted by the person and the surface area of the shoes.

Given:

Weight exerted by the person = ?

Surface area of shoes = ?

Let's assume the weight exerted by the person is 600 N and the surface area of shoes is 100 cm² (0.01 m²).

Pressure (P) = Force (F) / Area (A)

P = 600 N / 0.01 m²

P = 60000 Pa

Therefore, the pressure exerted on the floor when standing on both feet is 60000 Pa.

Given:

Mass of the car (m) = 1.5 x 10³ kg

Area of the large piston (A_large) = 0.20 m²

Area of the small piston (A_small) = 0.015 m²

a. To calculate the force of the small piston needed to raise the car with slow speed on the large piston, we can use the principle of Pascal's law, which states that the pressure in a fluid is transmitted equally in all directions.

Force_large / A_large = Force_small / A_small

Force_small = (Force_large * A_small) / A_large

Force_large = mass * gravity

Force_large = 1.5 x 10³ kg * 9.8 m/s²

Force_small = (1.5 x 10³ kg * 9.8 m/s² * 0.015 m²) / 0.20 m²

Force_small ≈ 11.025 N

Therefore, the magnitude of the force of the small piston needed to raise the car with slow speed on the large piston is approximately 11.025 N.

b. To calculate the pressure in the hydraulic press, we can use the formula:

Pressure = Force / Area

Pressure = Force_large / A_large

Pressure = (1.5 x 10³ kg * 9.8 m/s²) / 0.20 m²

Pressure ≈ 73,500 Pa

To convert Pa to kPa, divide by 1000:

Pressure ≈ 73.5 kPa

Therefore, the pressure in the hydraulic press is approximately 73,500 Pa or 73.5 kPa.

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Maximum value of tank level: 4.018 m, Minimum value of tank level: 3.982 m after the flow rate disturbance has occurred for a long time can be calculated using the given transfer function

The maximum and minimum values of the tank level after the flow rate disturbance has occurred for a long time can be calculated using the given transfer function and the characteristics of the disturbance. The transfer function H'(s) represents the relationship between the tank level (h) and the flow rate (q).

To determine the maximum and minimum values of the tank level, we need to analyze the response of the system to the sinusoidal perturbation in the inlet flow rate. Since the system is operating at steady state with q = 0.4 m³/s and h = 4 m, we can consider this as the initial condition.

By applying the Laplace transform to the transfer function and substituting the values of the disturbance, we can obtain the transfer function in the frequency domain. Then, by using the frequency response analysis techniques, such as Bode plot or Nyquist plot, we can determine the magnitude and phase shift of the response at the given cyclic frequency.

Using the magnitude and phase shift, we can calculate the maximum and minimum values of the tank level by considering the effect of the disturbance on the steady-state level.

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