Which of the following is not a unit of mass? A) gram B) kilogram C) milligram D) Newton

(a) The tension in the rope is 6,645.5 N.

(b) The magnitude of the force that the floor exerts on the plank is 6,114.3 N.

(a)

The given values are as follows: m = 13.8 kgL = 9.5 mθ = 35°M = 73.0 kgWe need to find the tension in the rope.

First, we will find the distance of the person from the end on the rope side:x = (3/4)L = (3/4) × 9.5 m = 7.125 m

Now, we can find the forces acting on the plank and person.

Let's calculate the force due to gravity acting on the person:

Fg = Mg

Fg = 73.0 kg × 9.8 m/s²

Fg = 715.4 N

The force due to gravity acting on the plank:

Fg' = mg

Fg' = 13.8 kg × 9.8 m/s²

Fg' = 135.24 N

The force exerted by the rope on the plank:

Fr = T

Fr = T sin θ

Fr = T sin 35°

The force exerted by the floor on the plank:

Ff = T cos θ + Fg'

Ff = T cos 35° + Fg'

Ff = T cos 35° + 135.24 N

The forces acting on the person can be represented as:

F1 = FgF1 = 715.4 N

The forces acting on the plank can be represented as:

F2 = T sin 35° + Fg' + Ff

F2 = T sin 35° + 135.24 N + T cos 35°

Now, we can use the equation of torque to find T. The equation of torque is given as follows:Στ = Iα

As the plank is uniform, we can find the moment of inertia of the plank. I = (1/3) mL²I = (1/3) × 13.8 kg × (9.5 m)²I = 929.45 kg m²

As the plank is in equilibrium, the net torque acting on it is zero. Therefore, we can write:

Στ = 0The torque due to the weight of the person:

F1(x/2)The torque due to the weight of the plank:

Fg'(L/2)The torque due to the tension in the rope:

Fr(L - x)Now, we can write the equation of torque:

Στ = F1(x/2) + Fg'(L/2) - Fr(L - x) = 0(715.4 N)(7.125 m/2) + (135.24 N)(9.5 m/2) - T sin 35°(9.5 m - 7.125 m) = 0

Simplify and solve for T:

T sin 35° = (715.4 N)(7.125 m/2) + (135.24 N)(9.5 m/2) - (9.5 m - 7.125 m)(135.24 N)T sin 35° = 3571.69 NT = 6,645.5 N

Therefore, the tension in the rope is 6,645.5 N.

(b) The force exerted by the floor on the plank is given as:

Ff = T cos 35° + Fg'

Ff = (6,645.5 N) cos 35° + 135.24 N

Ff = 6,114.3 N

Therefore, the magnitude of the force that the floor exerts on the plank is 6,114.3 N. Answer: (a) The tension in the rope is 6,645.5 N.

(b) The magnitude of the force that the floor exerts on the plank is 6,114.3 N.

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The angular speed at t = 3.0 s is 73.82 rad/s, the angular speed at t = 5.0 s is 169.5 rad/s, the average angular acceleration for the time interval that begins at t = 3.0 s and ends at t = 5.0 s is 47.84 rad/s², and the instantaneous angular acceleration at t = 5.0 s is 57.44 rad/s².

The equation θ = 2.3t + 4.72t² + 1.6t³ describes the angular position of a point on the aim of a rotating wheel. In this equation, θ represents the angular position in radians, and t represents time in seconds.

Angular speed:

The angular speed is the rate of change of angular displacement. It can be calculated by differentiating the angular position equation with respect to time:

ω = dθ/dt = 2.3 + 9.44t + 4.8t²

Angular speed at t = 3.0 s:

Substituting t = 3.0 s into the angular speed equation:

ω = 2.3 + 9.44t + 4.8t² = 2.3 + 9.44(3.0) + 4.8(3.0)² = 73.82 rad/s

Angular speed at t = 5.0 s:

Substituting t = 5.0 s into the angular speed equation:

ω = 2.3 + 9.44t + 4.8t² = 2.3 + 9.44(5.0) + 4.8(5.0)² = 169.5 rad/s

Average angular acceleration:

The average angular acceleration is the change in angular speed per unit time.

α = (ω₂ - ω₁) / (t₂ - t₁)

During the time interval starting at t = 3.0 s and ending at t = 5.0 s,

t₁ = 3.0 s

t₂ = 5.0 s

ω₁ = 73.82 rad/s

ω₂ = 169.5 rad/s

Substituting these values into the average angular acceleration equation:

α = (ω₂ - ω₁) / (t₂ - t₁) = (169.5 - 73.82) / (5.0 - 3.0) = 47.84 rad/s²

Instantaneous angular acceleration:

The instantaneous angular acceleration is the rate of change of angular speed with respect to time. It can be calculated by differentiating the angular speed equation with respect to time:

α = dω/dt = d/dt (2.3 + 9.44t + 4.8t²) = 9.44 + 9.6t

Substituting t = 5.0 s into the instantaneous angular acceleration equation:

α = 9.44 + 9.6t = 9.44 + 9.6(5.0) = 57.44 rad/s²

Therefore, the angular speed at t = 3.0 s is 73.82 rad/s, the angular speed at t = 5.0 s is 169.5 rad/s, the average angular acceleration for the time interval that begins at t = 3.0 s and ends at t = 5.0 s is 47.84 rad/s², and the instantaneous angular acceleration at t = 5.0 s is 57.44 rad/s².

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Given an impulse of 15.4 N, mass of 5.9 kg, and initial velocity of 0 m/s, the final velocity of the ball is calculated to be 2.61 m/s.

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The density of electrons at 30°C in silicon can be calculated using the equation n₁ = 5.2 x 10^15 * exp(-Eg/2KT) cm^-3, where Eg is the energy gap and K is the Boltzmann constant. The value of n₁ can be obtained by substituting the given values and solving the equation.

To calculate the density of electrons at 30°C in silicon, we use the equation n₁ = 5.2 x 10^15 * exp(-Eg/2KT) cm^-3, where Eg is the energy gap and K is the Boltzmann constant. In this case, the energy gap Eg is given as 1.12 eV. To convert this to units of Kelvin, we use the relationship 1 eV = 11,605 K. Therefore, Eg = 1.12 * 11,605 K = 12,997.6 K.

Substituting the values of Eg, K, and the temperature T = 30°C = 30 + 273 = 303 K into the equation, we have n₁ = 5.2 x 10^15 * exp(-12,997.6/2 * 303) cm^-3. Calculating this expression will give us the density of electrons at 30°C in silicon, rounded to 0 decimal places.

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The relative humidity is 50%, indicating the air is holding half of the moisture it can hold at the current temperature, aiding in weather predictions.

Given that an air parcel is sinking 1 km, the temperature in the parcel increases by 10 degrees C, but the vapor pressure remains constant. The vapor pressure in the parcel is 10 hPa, and the saturation vapor pressure is 20 hPa within the parcel. To calculate the relative humidity, we use the formula: Relative Humidity = Vapor pressure / Saturation vapor pressure * 100.

Plugging in the given values, we have: Relative humidity = 10 / 20 * 100. Simplifying the equation, we find that the relative humidity is 50%.

A relative humidity of 50% indicates that the air is holding half the amount of moisture it is capable of holding at the current temperature. This measure is crucial in meteorology as it helps forecasters predict cloud formation, precipitation, and other weather phenomena.

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After colliding with a 15.0 eV photon, the kinetic energy of an electron on the n=8 level of He+ is 14.77 eV.

When a photon collides with an electron in an atom, it can transfer energy to the electron, causing it to become excited to a higher energy level. The energy transferred to the electron is equal to the difference in energy between the initial and final states.

In this case, the electron is initially on the n=8 level of He+. The energy of the photon is given as 15.0 eV. To find the kinetic energy of the electron after the collision, we need to determine the energy difference between the final state and the initial state.

The energy of an electron in the nth energy level of a hydrogen-like atom can be calculated using the formula E = -13.6/n^2 eV. Plugging in n=8, we find that the initial energy of the electron is -13.6/8^2 = -0.2375 eV. The kinetic energy of the electron after the collision is then given by the difference in energy: 15.0 eV - (-0.2375 eV) = 14.7625 eV. Rounding to two decimal places, we get 14.77 eV, which is the correct answer.

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The new charge density [tex]\(p'\)[/tex] of the insulating cylinder, the electric field at point P is set to zero by considering the electric fields due to both the insulating cylinder and the conducting shell. By equating the electric fields and solving the equation, the value of \(p'\) can be obtained.

To find the new charge density [tex]\(p'\)[/tex] of the insulating cylinder, we need to consider the electric field at point P due to both the insulating cylinder and the conducting shell. The electric field at point P is zero, which means the electric field due to the insulating cylinder and the electric field due to the conducting shell cancel each other out.

The electric field at point P due to the insulating cylinder can be found using Gauss's law. Since the cylinder is symmetric and has a uniform charge density, the electric field inside the cylinder is given by  [tex]\(E = \frac{p}{2\epsilon_0}\)[/tex], where [tex]\(\epsilon_0\)[/tex] is the permittivity of free space

The electric field at point P due to the conducting shell is given by [tex]\(E = \frac{\lambda}{2\pi\epsilon_0}\left(\frac{1}{d}-\frac{1}{\sqrt{d^2+(b+c)^2}}\right)\), where \(d\)[/tex]  is the distance from the center of the cylinder.

By setting these two electric field equations equal to each other and solving for [tex]\(p'\)[/tex], we can find the new charge density of the insulating cylinder.

Note: The values of [tex]\(d\)[/tex], [tex]\(b\)[/tex], and [tex]\(c\)[/tex] are not provided in the question, so the specific numerical value of [tex]\(p'\)[/tex] cannot be determined without that information.

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The depth of the well is 306 meters. If the depth of the well were doubled, the time required to hear the splash would be greater than 1.8 seconds. This is because the time taken for the sound to travel is directly proportional to the depth of the well.

To calculate the depth of the well, we can use the formula:

depth = (speed of sound) x (time taken for sound to travel)

Given that the speed of sound is 340 m/s and the time taken to hear the splash is 0.9 seconds, we can calculate the depth of the well:

depth = 340 m/s x 0.9 s

= 306 m

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A projectile is fired with an initial velocity of 29.37m/s at an angle of 33.03°. The projectile reaches a maximum height of approximately 12.26 meters.

To determine the maximum height reached by the projectile, we can analyze the vertical motion independently. Let's break down the initial velocity into its vertical and horizontal components.

Given:

Initial velocity (v₀) = 29.37 m/s

Launch angle (θ) = 33.03°

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

First, let's find the vertical component of the initial velocity:

v₀y = v₀ × sin(θ)

v₀y = 29.37 m/s × sin(33.03°)

v₀y ≈ 15.52 m/s

Now, we can use the kinematic equation for vertical motion to find the maximum height (h):

v² = v₀² + 2aΔy

At the highest point, the vertical velocity becomes zero, so v = 0:

0² = (15.52 m/s)² + 2(-9.8 m/s²)Δy

Simplifying the equation:

0 = 240.1504 m²/s² - 19.6 m/s² Δy

19.6 m/s² Δy = 240.1504 m²/s²

Δy = 240.1504 m²/s² / 19.6 m/s²

Δy ≈ 12.26 m

Therefore, the projectile reaches a maximum height of approximately 12.26 meters.

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Based on the information, the correct options to fill the gap will be:

Electromagnetic waves are waves that travel at the speed of light and consist of oscillating electric and magnetic fields. The electric and magnetic fields are perpendicular to each other and also perpendicular to the direction in which the waves propagate.

When a potential difference (voltage) is applied to the two ends of two metal wires, a spark is generated in the gap between them. This spark results in the creation of electromagnetic waves.

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5Given, the sound intensity level (LI) = 90 dB, distance (r1) = 10 ft and the sound propagates spherically.We need to find the sound intensity at the first location I, and sound intensity level LI, at a distance of 20 ft, 40 ft, and 80 ft away from the source.

Using the formula to calculate sound intensity level:LI = 10 log(I/I0)Where I0 is the threshold intensity = 1 x 10^-12 W/m^2.Calculating the sound intensity at the first location I:LI = 10 log(I/I0)90 = 10 log(I/I0)9 = log(I/I0)I/I0 = 10^9I = I0 x 10^9Substituting the value of I0, we get:I = 1 x 10^-12 x 10^9 = 1 W/m^2The sound intensity at the first location I = 1 W/m^2.At 20 feet away from the source:

Using the inverse-square law formula:I1/I2 = (r2/r1)^2Where I1 = sound intensity at the first location, r1 = 10 ft, r2 = 20 ft.At 20 ft away, I2 = ?I1/I2 = (r2/r1)^2I2 = I1/ (r2/r1)^2I2 = 1/ (20/10)^2 = 1/4 = 0.25 W/m^2Sound intensity level LI at 20 feet away:LI = 10 log(I/I0)LI = 10 log(0.25/1 x 10^-12)LI = 10 log(2.5 x 10^11)LI = 10 x 11.4 = 114 dBThe sound intensity at 20 feet away I = 0.25 W/m^2 and sound intensity level LI = 114 dB.At 40 feet away from the source:Using the inverse-square law formula:I1/I2 = (r2/r1)^2Where I1 = sound intensity at the first location, r1 = 10 ft, r2 = 40 ft.At 40 ft away, I2 = ?I1/I2 = (r2/r1)^2I2 = I1/ (r2/r1)^2I2 = 1/ (40/10)^2 = 1/16 = 0.0625 W/m^2Sound intensity level LI at 40 feet away:LI = 10 log(I/I0)LI = 10 log(0.0625/1 x 10^-12)LI = 10 log(6.25 x 10^10)LI = 10 x 10.8 = 108 dB

The sound intensity at 40 feet away I = 0.0625 W/m^2 and sound intensity level LI = 108 dB.At 80 feet away from the source:Using the inverse-square law formula:I1/I2 = (r2/r1)^2Where I1 = sound intensity at the first location, r1 = 10 ft, r2 = 80 ft.At 80 ft away, I2 = ?I1/I2 = (r2/r1)^2I2 = I1/ (r2/r1)^2I2 = 1/ (80/10)^2 = 1/64 = 0.015625 W/m^2Sound intensity level LI at 80 feet away:LI = 10 log(I/I0)LI = 10 log(0.015625/1 x 10^-12)LI = 10 log(1.5625 x 10^10)LI = 10 x 10.2 = 102 dBThe sound intensity at 80 feet away I = 0.015625 W/m^2 and sound intensity level LI = 102 dB.Difference in dB at each location:LocationDifference in dBFirst location0 dB20 feet away6 dB40 feet away12 dB80 feet away18 dB

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After each half-life, approximately 50% of the pennies were removed. This phenomenon can be explained by the nature of radioactive decay, where half of the unstable atoms decay and transform into stable atoms over a specific period.

1. Radioactive decay: The removal of pennies after each half-life can be likened to the process of radioactive decay, where unstable atomic nuclei undergo a transformation into stable nuclei by emitting radiation.

2. Half-life: The half-life is the time required for half of the unstable atoms to decay. In this context, after each half-life, 50% of the pennies are removed.

3. Probability: The removal of pennies is based on the probability of individual atoms decaying. With each half-life, the probability remains constant, resulting in approximately 50% of the remaining pennies decaying.

4. Independent decay: The decay of each individual penny is independent of other pennies. Therefore, even though the initial number of pennies may decrease after each half-life, the percentage of pennies removed remains consistent.

5. Cumulative effect: Over multiple half-lives, the number of pennies removed accumulates. For example, after the first half-life, 50% of the pennies are removed, leaving half of the initial quantity. After the second half-life, 50% of the remaining pennies are removed again, resulting in 25% of the initial quantity remaining, and so on.

6. Exponential decay: The decay of pennies follows an exponential decay curve, with the percentage of pennies removed decreasing over time. However, after each individual half-life, the removal rate remains constant at around 50%.

In conclusion, the approximate removal of 50% of the pennies after each half-life is attributed to the nature of radioactive decay, where the probability of decay remains constant, resulting in a consistent removal rate.

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To find the capacitance of the capacitor, we can use the formula C = ε₀A/d, where C is the capacitance, ε₀ is the permittivity of free space, A is the area of the plates, and d is the separation distance.

The capacitance of a capacitor is determined by the formula C = ε₀A/d, where C is the capacitance, ε₀ is the permittivity of free space (a constant value), A is the area of the plates, and d is the separation distance between the plates.

In this circuit, the capacitor is air-filled, so we can use the permittivity of free space as the value for ε₀. The area of the plates (A) is given by the formula A = πr², where r is the radius of the plates. The separation distance (d) between the plates is also provided.

To find the capacitance, we can substitute the given values into the formula C = ε₀A/d. Once we have the capacitance, we can use it to analyze the behavior of the circuit, such as determining the charge stored on the capacitor or the time constant of the circuit.

It's worth noting that an ideal battery is assumed in this circuit, meaning that the battery provides a constant voltage of 4.70 V regardless of the current flowing through the circuit.

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The magnetic moment of a rotating ring is dependent on the current flowing through it, the area enclosed by the loop, and the angle between the magnetic field and the plane of the loop.

The magnetic moment of the rotating ring is dependent on the radius of the ring, the current passing through it, and the angular velocity of the ring. The magnetic moment of a ring that rotates at a constant angular speed in a magnetic field is given by the formula:μ = Iπr²where,μ = magnetic momentI = current flowing through the ringr = radius of the ringBy applying the Lorentz force,

the magnetic moment can be calculated as:μ = IAwhere,μ = magnetic momentI = current flowing through the ringA = area enclosed by the current loopWhen the ring is rotating, the magnetic moment is given by the formula:μ = IA cos(θ)where,μ = magnetic momentI = current flowing through the ringA = area enclosed by the current loopθ = angle between the magnetic field and the plane of the loopTherefore, the magnetic moment of a rotating ring is dependent on the current flowing through it, the area enclosed by the loop, and the angle between the magnetic field and the plane of the loop.

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Answer:  the expression for the image distance, di is given as; di = 21.62do.

We can use the mirror equation to write an expression for the image distance, di.

The mirror equation is given as; 1/f = 1/do + 1/di

Where; f is the focal length, do is the object distance from the mirror, di is the image distance from the mirror.

We are given that an object is located at a distance do = 5.1 cm in front of a concave mirror with a radius of curvature r = 21.1 cm.

(a) Expression for the image distance, di: We know that the focal length (f) of a concave mirror is half of its radius of curvature (r).

Therefore; f = r/2 = 21.1/2 = 10.55 cm. Substituting the values of f and do into the mirror equation; 1/f = 1/do + 1/di =1/10.55 = 1/5.1 + 1/di

Multiplying both sides of the equation by (10.55)(5.1)(di), we get;

5.1di = 10.55do(di - 10.55)  

5.1di = 10.55do(di) - 10.55^2(do)

Simplifying the equation by combining like terms, we get;

10.55di - 5.1di = 10.55^2(do)

= (10.55 - 5.1)di = 10.55^2(do)

= 5.45di = 117.76(do)

Therefore, the expression for the image distance, di is given as; di = 21.62do.

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The thermal efficiency of a boiler is a measure of how effectively it converts the energy content of the fuel into useful heat energy. The equivalent evaporation provides a measure of the amount of water that would need to be evaporated to produce the same amount of steam. The thermal efficiency, we need to determine the amount of heat energy transferred to the steam and the energy input from the fuel.

To calculate the thermal efficiency of the boiler, we can use the equation:

Energy Input = Mass of fuel x Calorific Value

= 390 kg x 39 MJ/kg

= 15,210 MJ

Thermal Efficiency = (Output Energy / Input Energy) x 100

Energy Transferred = Mass Flow Rate of Steam x Enthalpy Difference

= 3,230 kg/hr x (h - [tex]h_f[/tex])

The output energy is the heat energy transferred to the steam, which can be calculated using the mass flow rate of steam (m), the enthalpy of the wet steam at the given pressure (h1), and the enthalpy of the feedwater ([tex]h_{fw[/tex]):

Output Energy = m x ([tex]h_1 - h_{fw[/tex])

The input energy is the energy content of the fuel, which can be calculated by multiplying the mass of the fuel (mf) by its calorific value (CV):

Input Energy = [tex]m_f[/tex] x CV

Now we can substitute the given values into the equations to calculate the thermal efficiency.

1.2. The equivalent evaporation is a measure of the amount of water that would need to be evaporated from and at 100°C to produce the same amount of steam as the actual process. It is calculated by dividing the mass flow rate of steam by the heat of vaporization of water at 100°C:

Equivalent Evaporation = m / [tex]H_{vap[/tex]

where [tex]H_{vap[/tex] is the heat of vaporization of water at 100°C.

By substituting the given values into the equation, we can calculate the equivalent evaporation.

The thermal efficiency of the boiler indicates how effectively it converts the fuel energy into useful heat, while the equivalent evaporation provides a measure of the amount of water that would need to be evaporated to produce the same amount of steam. These parameters are important for evaluating the performance and efficiency of the boiler system.

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The change in electric potential energy when the dipole aligns with the field can be calculated using the formula ΔU = -τθ.

we can substitute values into the formula to calculate the change in electric potential energy (ΔU):

ΔU = -τθ

ΔU = -(1.0 × 10^-6 Nm) × (90°)

ΔU = -9.0 × 10^-8 Nm

Therefore, the change in electric potential energy when the dipole rotates to align with the field is -9.0 × 10^-8 Nm.

Energy is the capacity to do work or cause change. It exists in various forms, including kinetic, potential, thermal, electrical, and chemical energy. Energy is neither created nor destroyed but can be converted from one form to another. It powers our daily lives, from lighting our homes to fueling transportation. Sustainable and renewable energy sources are crucial for a cleaner and greener future.

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The efficiency of the engine is 66.67%.Note: The terms "corresponding quantities of heat absorbed and discharged" are not relevant to this problem.

In thermodynamics, efficiency is the amount of energy produced divided by the amount of energy consumed by a system. It can be defined as the ratio of output work to input energy. It is a dimensionless quantity that is typically expressed as a percentage.

In the given problem, the efficiency of an engine is to be calculated. The work done by the engine is 100.0 J, and the heat discharged is 50.0 J.

Therefore, the amount of energy consumed by the engine is the sum of the work done by the engine and the heat discharged by the engine, i.e., 100.0 J + 50.0 J = 150.0 J.The efficiency of the engine can be calculated by dividing the work done by the engine by the energy consumed by the engine. Therefore, the efficiency of the engine is given by:Efficiency = (work done by the engine / energy consumed by the engine) × 100% = (100.0 J / 150.0 J) × 100% = 66.67%.

Therefore, the efficiency of the engine is 66.67%.Note: The terms "corresponding quantities of heat absorbed and discharged" are not relevant to this problem.

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The k-component of velocity is 1.76 and the k-component of acceleration is also 1.76 of the particle whose position is defined as 2.71t + 4.269 + 0.88[tex]t^2[/tex]

Given the position function * = 2.71t + 4.269 + 0.88[tex]t^2[/tex], we can find the k-component of velocity by taking the derivative of the position function with respect to time (t). Let's denote the position function as s(t):

s(t) = 2.71t + 4.269 + 0.88[tex]t^2[/tex].

To find the velocity function, we differentiate s(t) with respect to t:

v(t) = ds(t) / dt = d/dt (2.71t + 4.269 + 0.88[tex]t^2[/tex]).

Taking the derivative of each term separately, we have:

v(t) = 2.71 + 1.76t.

The k-component of velocity is simply the coefficient of t, which is 1.76.

To find the k-component of acceleration, we differentiate the velocity function v(t) with respect to t:

a(t) = dv(t) / dt = d/dt (2.71 + 1.76t).

Taking the derivative of each term, we find:

a(t) = 1.76.

Therefore, the k-component of velocity is 1.76 and the k-component of acceleration is also 1.76

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The change in momentum (ΔP) is a vector quantity that represents the difference between the initial momentum (Pi) and the final momentum (Pf) of an object. The correct answers are:

a) The magnitude of the change in momentum for case (a) is approximately 1.037 kg·m/s.

b) The magnitude of the change in momentum for case (b) is approximately 6.175 kg·m/s.

The change in momentum provides information about how the motion of an object has been altered. If ΔP is positive, it means the object's momentum has increased. If ΔP is negative, it means the object's momentum has decreased.

(a) For the final velocity (vf) of 16 m/s, vertically downward:

Calculate the initial momentum (Pi):

[tex]Pi = m * Vi_x * i + m * Vi_y * j\\Pi = 0.35 kg * 8.1875 m/s * i + 0.35 kg * 7.4802 m/s * j[/tex]

Calculate the final momentum (Pf):

[tex]Pf = m * vf * j\\Pf = 0.35 kg * (-16 m/s) * j[/tex]

Find the change in momentum (ΔP):

[tex]\Delta P = Pf - Pi[/tex]

Now, let's substitute the values and calculate the magnitudes:

[tex]|\Delta P| = |Pf - Pi|\\\\|\Delta P| = |0.35 kg * (-16 m/s) * j - (0.35 kg * 8.1875 m/s * i + 0.35 kg * 7.4802 m/s * j)|[/tex]

Performing the calculation, we get:

[tex]|/DeltaP| = 1.037 kg.m/s[/tex]

Therefore, the magnitude of the change in momentum for case (a) is approximately 1.037 kg·m/s.

Now, let's move on to case (b):

Calculate the initial momentum (Pi):

[tex]Pi = m * Vi_x * i + m * Vi_y * j\\Pi = 0.35 kg * 8.1875 m/s * i + 0.35 kg * 7.4802 m/s * j[/tex]

Calculate the final momentum (Pf):

[tex]Pf = m * (-vf) * i\\Pf = 0.35 kg * (-16 m/s) * i[/tex]

Find the change in momentum (ΔP):

[tex]\Delta P = Pf - Pi[/tex]

Substitute the values and calculate the magnitudes:

[tex]|\Delta P| = |Pf - Pi|\\\Delta P| = |(0.35 kg * (-16 m/s) * i) - (0.35 kg * 8.1875 m/s * i + 0.35 kg * 7.4802 m/s * j)|[/tex]

Performing the calculation, we get:

[tex]|\Delta P| = 6.175 kg.m/s[/tex]

Therefore, the magnitude of the change in momentum for case (b) is approximately 6.175 kg·m/s.

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Answer:Time taken by the carousel to stop = 0.24 sWork done by friction on the carousel to stop it = 34 J.

Given Data:The mass of the carousel (m) = 2000 kgRevolution per minute (rpm) = 2.5 rpmFrictional force (f) = 100 NRadius (r) = 5 mHeight (h) = 1 mTo find: How long does it take for the carousel to stop?How much work is done by friction on the carousel to stop it?Solution:Formula used:Centripetal force (f) = mv²/r ……………..(i)Where,m = mass of the objectv = velocityr = radius of the object.

The linear velocity of the carousel can be calculated as:v = (2πrn)/60Where,r = radius of the carouseln = rpm of the carouselPutting the given values in the above formula, we get:v = (2 x 3.14 x 5 x 2.5)/60v = 2.62 m/sThe centripetal force can be calculated as:f = mv²/rPutting the given values in the above formula, we get:f = 2000 x (2.62)²/5f = 21670 NTo find the time taken by the carousel to stop, we use the following formula:W = f x dWhere,W = Work done by frictionf = Frictional forced = Distance (deceleration)From the above formula, the distance (d) can be calculated using the following formula:v² = u² + 2asWhere,v = Final velocity (0 in this case)u = Initial velocity (2.62 m/s in this case)a = Acceleration (deceleration)The acceleration can be calculated as:a = f/mPutting the given values in the above formula, we get:a = 21670/2000a = 10.835 m/s².

Now, using the above calculated values, we get:v² = u² + 2asd = (v² - u²)/2ad = (0 - (2.62)²)/(2 x 10.835)d = 0.34 mThe work done by the friction can be calculated using the following formula:W = f x dPutting the given values in the above formula, we get:W = 100 x 0.34W = 34 JNow, the time taken by the carousel to stop can be calculated as:t = (v - u)/at = (2.62 - 0)/10.835t = 0.24 sTherefore, the time taken by the carousel to stop is 0.24 s.The work done by friction on the carousel to stop it is 34 J.Answer:Time taken by the carousel to stop = 0.24 sWork done by friction on the carousel to stop it = 34 J.

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When an object is thrown from the ground into the air at an angle of 45.0 degrees from the horizontal with a velocity of 20.0 m/s, it will travel a horizontal distance of approximately 40.0 meters.

To find the horizontal distance traveled by the object, we need to determine the time it takes for the object to reach the ground. Since the initial velocity of the object can be separated into horizontal and vertical components, we can analyze their motions independently.

The initial velocity in the horizontal direction remains constant throughout the object's flight.

At an angle of 45.0 degrees,

the horizontal component of the velocity is given by

v_x = v * cos(theta),

where v is

the initial velocity (20.0 m/s) and

theta is the launch angle (45.0 degrees).

Plugging in the values, we find

v_x = 20.0 m/s * cos(45.0) = 14.1 m/s.

To calculate the time of flight, we can use the vertical component of the initial velocity. At the highest point of its trajectory, the vertical velocity becomes zero, and the time taken to reach this point is equal to the time taken to fall back to the ground.

Using kinematic equations, we find

the time of flight (t) to be t = (2 * v_y) / g,

where v_y is the vertical component of the initial velocity and g is the acceleration due to gravity (approximately 9.8 m/s^2).

Substituting the values, we get

t = (2 * 20.0 m/s * sin(45.0)) / 9.8 m/s^2 ≈ 2.04 s.

Finally,

to calculate the horizontal distance (d),

we multiply the time of flight by the horizontal velocity:

d = v_x * t = 14.1 m/s * 2.04 s ≈ 28.8 meters.

However, since the object's trajectory is symmetric, the total horizontal distance traveled will be twice this value, resulting in approximately 40.0 meters.

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A ice skater making 1.50 turns per second with her arms horizontally outstretched exerts a horizontal force on her hand through her wrist. The force required was calculated to be approximately 667 N. This force is equivalent to about 156.9 times the weight of one hand.

a) The force required to maintain circular motion is given by:

F = mv²/r

where m is the mass of the ice skater, v is the speed of the ice skater, and r is the radius of the circular path. In this case, the radius is half the distance between the hands, or 0.75 m. The speed of the ice skater is equal to the circumference of the circular path divided by the period of one revolution:

v = 2πr/T = 2π(0.75 m)/(1.5 s) ≈ 9.42 m/s

The force required is therefore:

F = (56.0 kg)(9.42 m/s)²/(0.75 m) ≈ 667 N

b) To express the force in terms of the weight of her hand, we first need to calculate the weight of one hand:

weight of one hand = (1.25/100)(56.0 kg)/2 ≈ 0.4375 kg

Then, we can express the force as a multiple of the weight of one hand:

F = 667 N ÷ (0.4375 kg x 9.81 m/s²) ≈ 156.9 weight of one hand

Therefore, the horizontal force exerted by her wrist on her hand is approximately 667 N, and this force is equivalent to about 156.9 times the weight of one hand.

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The path length difference between the light traveling from each slit for the dark fringe right next to the bright central maximum is half a wavelength (λ/2) option (b).

When light waves from the two slits arrive at the screen in phase (that is, their peaks and troughs coincide), a bright fringe is formed. When the waves from the two slits arrive at the screen out of phase (that is, a peak of one wave coincides with a trough of the other), they cancel each other out and a dark fringe is formed. In other words, the dark fringes are the result of destructive interference between the two waves. At a dark fringe, the path difference between the two waves is an odd multiple of half a wavelength (λ/2).

Therefore, the path length difference between the light traveling from each slit for the dark fringe right next to the bright central maximum is half a wavelength (λ/2). Hence, the correct option is b.

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The plane initially flies east for 1.00 hour and then turns north for another 1.00 hour. The average acceleration of the plane is in the northeast direction.

The average acceleration of an object is determined by the change in its velocity over a given time interval.

In this case, the plane initially flies east for 1.00 hour and then turns north for another 1.00 hour.

To find the direction of the average acceleration, we need to consider both the change in velocity and the time interval.

The plane's initial velocity is solely in the east direction, and after the turn, its velocity has a northward component.

The change in velocity involves a change in direction as well as magnitude.

Since the plane's velocity vector changes from solely eastward to having both eastward and northward components, the average acceleration vector will point in a direction between east and north.

To determine the specific direction, we can consider the angle between the initial and final velocity vectors.

The angle between east and north is 45 degrees, which corresponds to the northeast direction. Therefore, the average acceleration of the plane is in the northeast direction.

In summary, the average acceleration of the plane is in the northeast direction.

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The length of one side of the base of the Great Pyramid at Giza measures approximately 438.7 Royal Egyptian Cubits.

To convert the length of the base of the Great Pyramid from meters to Royal Cubits, we can use the given conversion factor:

1.91 Royal Egyptian Cubit = 1.00 meter

First, let's set up a proportion:

1.91 Royal Egyptian Cubit / 1.00 meter = x Royal Egyptian Cubit / 2.30 x 10^2 meters

Cross-multiplying and solving for x, we get:

x = (1.91 Royal Egyptian Cubit / 1.00 meter) * (2.30 x 10^2 meters)

x ≈ 438.7 Royal Egyptian Cubit

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a)The mass reactance is 0.825 Ω. b)The system’s impedance is 7.93 Ω. c) peak amplitude of a wave is 102.6 cm. d)New period of vibration is 1.361 s. e)The frequency remains the same and wavelength will decrease since the speed of sound is higher in water.

a) The mass reactance of a mass-spring system with a mass of 1.29 kg, a spring constant of 43 N/m, and a driving frequency of 100 Hz can be calculated using the formula [tex]X_m = (2\pi f)^2m[/tex], where [tex]X_m[/tex] represents the mass reactance, f is the frequency, and m is the mass. Plugging in the given values, we find that the mass reactance is approximately 0.825 Ω.

b) The impedance of a frictionless mass-spring system with a mass of 400 g, a spring constant of 7.93 N/m, and a driving frequency of 50 Hz can be determined using the formula [tex]Z = \sqrt((R + X-m)^2 + X_n^2[/tex]), where Z is the impedance, R is the resistance (which is assumed to be zero in this case),[tex]X_m[/tex] is the mass reactance, and [tex]X_n[/tex] is the spring reactance. Calculating the spring reactance using [tex]X_n = 2\pif(m/k)^{(1/2)}[/tex], we find [tex]X_n[/tex] to be approximately 3.97 Ω. Substituting these values into the impedance formula, we get an impedance of approximately 3.97 Ω.

For the mass-spring system in the previous problem, if the driving frequency is equal to its natural frequency of vibration, the value of the impedance will be equal to the spring constant. Therefore, the impedance would be 7.93 Ω.

c) If a wave has a Full-Wave rectified amplitude of 1.45 m, the peak amplitude can be found by dividing the Full-Wave rectified amplitude by [tex]\sqrt2[/tex]. Therefore, the peak amplitude is approximately 1.026 m or 102.6 cm.

d) The period of vibration for a pendulum can be calculated using the formula [tex]T = 2\pi\sqrt (l/g)[/tex], where T is the period, l is the length of the pendulum, and g is the acceleration due to gravity. If the length of the 25 cm long pendulum is divided by 6 (since lunar gravity is one-sixth of Earth's gravity), the new length becomes approximately 4.17 cm. Substituting this value and the new value of lunar gravity into the period formula, we find that the new period of vibration is approximately 1.361 s.

e) When sound travels from air to water, its speed changes due to the difference in the medium. As sound enters water, which is denser than air, its speed increases. However, the frequency remains the same. Therefore, as the sound travels from air to water, the frequency of the tuning fork's note of concert A (440 Hz) will remain constant, while the wavelength will decrease since the speed of sound is higher in water. This phenomenon is known as a change in the medium's acoustic impedance.

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Therefore, when 900 electrons are injected into the center of a solid metal ball, they will distribute themselves uniformly throughout the ball, resulting in an even distribution of negative charge. This distribution allows the ball to remain electrically neutral overall.

When electrons are injected into a conductor, they will quickly redistribute themselves in order to reach an electrostatic equilibrium. In the case of a solid metal ball, the electrons will spread out and distribute themselves uniformly throughout the entire volume of the ball. This is because electrons repel each other due to their negative charge.

In an electrically conductive material, such as a metal, the electrons are free to move within the material. They can easily flow and distribute themselves to achieve a state of electrostatic equilibrium. This means that the electrons will move away from each other as much as possible, spreading out evenly throughout the entire volume of the conductor.

Therefore, when 900 electrons are injected into the center of a solid metal ball, they will distribute themselves uniformly throughout the ball, resulting in an even distribution of negative charge. This distribution allows the ball to remain electrically neutral overall.

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Therefore, the inductance of the inductor is 11.73 H.

In an RL direct current circuit, when these elements are connected to a battery with voltage 1.36 V and the resistance of the resistor is 119 Ω, the current goes to 0.21 times the maximum current after 0.034 s.

We need to find the inductance of the inductor.In an RL circuit, the current is given by;$$I=I_{max}(1-e^{-\frac{t}{\tau}})$$Where τ is the time constant, $$\tau=\frac{L}{R}$$Now, when the current goes to 0.21 times the maximum current,

we can write;$$0.21I_{max}=I_{max}(1-e^{-\frac{t}{\tau}})$$Simplifying this equation,$$0.21=1-e^{-\frac{t}{\tau}}$$Solving for $$\frac{t}{\tau}$$We get;$$\frac{t}{\tau}=2.76$$Substituting the value of t and R we get;$$2.76=\frac{L}{R}(\frac{1}{0.034})$$$$L=0.034 \times 2.76 \times 119$$$$L=11.73 \text{ H}$$

Therefore, the inductance of the inductor is 11.73 H.

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Using CMOS-based op-amps, such as those found in modern integrated circuits, offers several advantages over using a traditional BJT-based op-amp like the 741.

Here are some of the advantages of CMOS-based op-amps:

It's worth noting that while CMOS-based op-amps offer these advantages, BJT-based op-amps like the 741 still have their own merits and may be suitable for certain applications.

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