A wheel with radius 37.9 cm rotates 5.77 times every second. Find the period of this motion. period: What is the tangential speed of a wad of chewing gum stuck to the rim of the wheel? tangential speed: m/s A device for acclimating military pilots to the high accelerations they must experience consists of a horizontal beam that rotates horizontally about one end while the pilot is seated at the other end. In order to achieve a radial acceleration of 26.9 m/s 2
with a beam of length 5.69 m, what rotation frequency is required? A electric model train travels at 0.317 m/s around a circular track of radius 1.79 m. How many revolutions does it perform per second (i.e, what is the motion's frequency)? frequency: Suppose a wheel with a tire mounted on it is rotating at the constant rate of 2.17 times a second. A tack is stuck in the tire at a distance of 0.351 m from the rotation axis. Noting that for every rotation the tack travels one circumference, find the tack's tangential speed. tangential speed: m/s What is the tack's centripetal acceleration? centripetal acceleration: m/s 2

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Answer 1

Therefore, the tack's centripetal acceleration is approximately 65.2 m/s².

The given radius of a wheel is r = 37.9 cm, and it rotates 5.77 times every second. Let's find the period of this motion. The period is defined as the time taken by an object to complete one full cycle. It can be calculated using the formula: T = 1/f. where T is the period and f is the frequency. The frequency is given by: f = 5.77 rotations/sec. We can plug in the value of frequency in the above equation to get the period: T = 1/5.77 ≈ 0.173 seconds Now, let's find the tangential speed of a wad of chewing gum stuck to the rim of the wheel. The tangential speed is defined as the linear speed of an object moving along a circular path and can be calculated using the formula: v = rw where v is the tangential speed, r is the radius, and w is the angular velocity. The angular velocity can be calculated as follows: w = 2πf.

where f is the frequency. We can plug in the value of f in the above equation to get:w = 2π × 5.77 ≈ 36.24 rad/s. Now, let's plug in the values of r and w in the formula to get the tangential speed: v = rw = 37.9 × 36.24 ≈ 1374.08 cm/s = 13.74 m/s. Therefore, the tangential speed of a wad of chewing gum stuck to the rim of the wheel is approximately 13.74 m/s. Now let's find the rotation frequency that is required to achieve a radial acceleration of 26.9 m/s² with a beam of length 5.69 m. The radial acceleration is given by: a = w²rwhere w is the angular velocity and r is the radius. In this case, the radius is equal to the length of the beam, so:cr = 5.69 mWe want the radial acceleration to be 26.9 m/s², so we can plug in these values in the above formula to get:26.9 = w² × 5.69Now, let's solve for w:w² = 26.9/5.69 ≈ 4.72w ≈ 2.17 rad/s, The rotation frequency is equal to the angular velocity divided by 2π, so we can find it as follows: f = w/2π = 2.17/2π ≈ 0.345 Hz.n Therefore, the rotation frequency required to achieve a radial acceleration of 26.9 m/s² with a beam of length 5.69 m is approximately 0.345 Hz. Let's find the number of revolutions the electric model train performs per second. The speed of the train is v = 0.317 m/s, and the radius of the circular track is r = 1.79 m. The frequency is defined as the number of cycles per second, and in this case, each cycle is one full rotation around the circular track. Therefore, the frequency is equal to the number of rotations per second. The tangential speed is given by:v = rwwhere w is the angular velocity. We can rearrange this equation to get:w = v/rNow, let's plug in the values of v and r to get:w = 0.317/1.79 ≈ 0.177 rad/sThe frequency is given by:f = w/2π = 0.177/2π ≈ 0.0281 HzThe number of revolutions per second is equal to the frequency, so the train performs approximately 0.0281 revolutions per second. Finally, let's find the tack's tangential speed and centripetal acceleration. The distance between the tack and the axis of rotation is d = 0.351 m. The tangential speed is equal to the linear speed of a point on the tire at the distance d from the axis of rotation. We can find it as follows:v = rwwhere r is the radius and w is the angular velocity. The radius is equal to the distance between the tack and the axis of rotation, so:r = dNow, let's find the angular velocity. One rotation is equal to one circumference, which is equal to 2π times the radius of the tire. Therefore, the angular velocity is:w = 2πfwhere f is the frequency. We can find the frequency as follows:f = 2.17 rotations/secondThe angular velocity is:w = 2π × 2.17 ≈ 13.65 rad/sNow, let's plug in the values of r and w in the formula to get the tangential speed:v = rw = 0.351 × 13.65 ≈ 4.79 m/sTherefore, the tack's tangential speed is approximately 4.79 m/s. The centripetal acceleration is given by:a = v²/rwhere v is the tangential speed and r is the radius.We can plug in the values of v and r to get:a = v²/r = (4.79)²/0.351 ≈ 65.2 m/s². Therefore, the tack's centripetal acceleration is approximately 65.2 m/s².

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Related Questions

If you drive with a constant velocity of 24 m/s East for 4s, what would your acceleration be during this time? 6 m/s^2 0 m/s2 20 m/s^2 96 m/s^2

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If a vehicle maintains a constant velocity of 24 m/s East for 4 seconds, the acceleration during this time would be [tex]0 m/s^2[/tex].

Acceleration is the rate at which an object's velocity changes. In this scenario, the vehicle is moving with a constant velocity of 24 m/s East. Since velocity remains constant, there is no change in velocity, and therefore the acceleration is [tex]0 m/s^2[/tex].

Acceleration is only present when there is a change in velocity, either in terms of speed or direction. In this case, since the vehicle maintains a steady speed and travels in a straight line without any change in direction, there is no acceleration occurring. Acceleration would only be present if the vehicle were to speed up, slow down, or change its direction. Therefore, the correct answer is [tex]0 m/s^2[/tex].

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Calculate the equivalent resistance of a 18052 resistor connected in parallel 6602 resistor.

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The equivalent resistance of the 180 Ω resistor and the 66 Ω resistor connected in parallel is approximately 48.2939 Ω.

To calculate the equivalent resistance (R_eq) of resistors connected in parallel, we use the formula:

1/R_eq = 1/R1 + 1/R2 + 1/R3 + ...

In this case, we have two resistors connected in parallel: a 180 Ω resistor (R1) and a 66 Ω resistor (R2). Plugging these values into the formula, we get:

1/R_eq = 1/180 Ω + 1/66 Ω

To simplify this equation, we find the common denominator and add the fractions:

1/R_eq = (66 + 180) / (180 × 66)

1/R_eq = 246 / 11,880

Now, we take the reciprocal of both sides to find R_eq:

R_eq = 11,880 / 246

R_eq ≈ 48.2939 Ω

Therefore, the equivalent resistance of the 180 Ω resistor and the 66 Ω resistor connected in parallel is approximately 48.2939 Ω.

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A solar Hame system is designed as a string of 2 parallel sets wirl each 6 madules. (madule as intisdaced in a) in series. Defermine He designed pruer and Vallage of the solar home System considerivg dn inverter efficiency of 98%

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The designed power and voltage of the solar home system, considering an inverter efficiency of 98%, can be determined by considering the configuration of the modules. Each set of the system consists of 6 modules connected in series, and there are 2 parallel sets.

In a solar home system, the modules are usually connected in series to increase the voltage and in parallel to increase the current. The total power of the system can be calculated by multiplying the voltage and current.

Since each set consists of 6 modules connected in series, the voltage of each set will be the sum of the individual module voltages. The current remains the same as it is determined by the lowest current module in the set.

Considering the inverter efficiency of 98%, the designed power of the solar home system will be the product of the voltage and current, multiplied by the inverter efficiency. The voltage is determined by the series connection of the modules, and the current is determined by the parallel configuration.

The designed voltage and power of the solar home system can be calculated by applying the appropriate series and parallel connections of the modules and considering the inverter efficiency.

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A uniform solid sphere has a mass of 1.48 kg and a radius of 0.51 m. A torque is required to bring the sphere from rest to an angular velocity of 396 rad/s, clockwise, in 19.7 s. What force applied tangentially at the equator would provide the needed torque?

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A uniform solid sphere has a mass of 1.48 kg and a radius of 0.51 m. A torque is required to bring the sphere from rest to an angular velocity of 396 rad/s, clockwise, in 19.7 s.A force of approximately 12.31 Newtons applied tangentially at the equator would provide the needed torque to bring the sphere to the desired angular velocity.

To find the force applied tangentially at the equator to provide the needed torque, we can use the formula:

Torque (τ) = Moment of inertia (I) × Angular acceleration (α)

The moment of inertia for a solid sphere rotating about its axis is given by:

I = (2/5) × m × r^2

where m is the mass of the sphere and r is the radius.

We are given:

   Mass of the sphere (m) = 1.48 kg

   Radius of the sphere (r) = 0.51 m

   Angular velocity (ω) = 396 rad/s

   Time taken (t) = 19.7 s

To calculate the angular acceleration (α), we can use the formula:

Angular acceleration (α) = Change in angular velocity (Δω) / Time taken (t)

Δω = Final angular velocity - Initial angular velocity

= 396 rad/s - 0 rad/s

= 396 rad/s

α = Δω / t

= 396 rad/s / 19.7 s

≈ 20.10 rad/s^2

Now, let's calculate the moment of inertia (I) using the given mass and radius:

I = (2/5)× m × r^2

= (2/5) × 1.48 kg × (0.51 m)^2

≈ 0.313 kg·m^2

Now, we can calculate the torque (τ) using the formula:

τ = I × α

= 0.313 kg·m^2 × 20.10 rad/s^2

≈ 6.286 N·m

The torque is the product of the force (F) and the lever arm (r), where the lever arm is the radius of the sphere (0.51 m).

τ = F × r

Solving for the force (F):

F = τ / r

= 6.286 N·m / 0.51 m

≈ 12.31 N

Therefore, a force of approximately 12.31 Newtons applied tangentially at the equator would provide the needed torque to bring the sphere to the desired angular velocity.

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In an oscillating LC circuit with C = 89.6 pF, the current is given by i = (1.84) sin(2030 +0.545), where t is in seconds, i in amperes, and the phase angle in radians. (a) How soon after t=0 will the current reach its maximum value? What are (b) the inductance Land (c) the total energy? (a) Number Units (b) Number i Units (c) Number Units

Answers

Answers: (a) Time taken to reach the maximum value of current = 0.000775 sec

(b) Inductance of the circuit L = 3.58 x 10⁻⁴ H

(c) Total energy stored in the circuit E = 1.54 x 10⁻⁷ J.

C = 89.6 pFi = (1.84)sin(2030t + 0.545)

current i = (1.84)sin(2030t + 0.545)

For an A.C circuit, the current is maximum when the sine function is equal to 1, i.e., sin θ = 1; Maximum current i_m = I_0 [where I_0 is the amplitude of the current] From the given current expression, we can say that the amplitude of the current i.e I_0 is given as;I_0 = 1.84.

Now, comparing the given current equation with the standard equation of sine function;

i = I_0sin (ωt + Φ)

I_0 = 1.84ω = 2030and,Φ = 0.545.

We know that; Angular frequency ω = 2πf.  Where, f = 1/T [where T is the time period of oscillation]

ω = 2π/T

T = 2π/ω

ω = 2030

T = 2π/2030

Now, the current will reach its maximum value after half the time period, i.e., T/2.To find the time at which the current will reach its maximum value;

(a) The time t taken to reach the maximum value of current is given as;

t = (T/2π) x (π/2)

= T/4

Now, substituting the value of T = 2π/2030; we get,

t = (2π/2030) x (1/4)

= 0.000775 sec

(b) Inductance

L = (1/ω²C) =

(1/(2030)² x 89.6 x 10⁻¹²)

= 3.58 x 10⁻⁴ H

(c) Total energy stored in the circuit;

E = (1/2)LI²

= (1/2) x 3.58 x 10⁻⁴ x (1.84)²

= 1.54 x 10⁻⁷ J.

Therefore, the answers are;(a) Time taken to reach the maximum value of current = 0.000775 sec

(b) Inductance of the circuit L = 3.58 x 10⁻⁴ H

(c) Total energy stored in the circuit E = 1.54 x 10⁻⁷ J.

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A long straight wire (diameter =3.2 mm ) carries a current of 19 A. What is the magnitude of the magnetic field 0.8 mm from the axis of the wire? (Note: the point where magnetic field is required is inside the wire). Write your answer in milli- tesla Question 7 A long solenoid (1,156 turns/m) carries a current of 26 mA and has an inside diameter of 4 cm. A long wire carries a current of 2.9 A along the axis of the solenoid. What is the magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire? Write your answer in micro-tesla.

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The magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire is 24.6 micro-tesla.

The magnetic field can be calculated as follows: B = μ₀ I/2 r (for a current carrying long straight wire) where B is the magnetic field, μ0 is the permeability of free space, I is the current, and r is the distance from the wire axis.

Magnetic field due to a current-carrying wire can be expressed using the equation:

B = μ₀ I / 2 r,

Where, μ₀ = 4π x 10⁻⁷ T m/AB = μ₀ I / 2 r = 4 x π x 10⁻⁷ x 19 / 2 x (0.8 x 10⁻³) = 7.536 x 10⁻⁴ T = 753.6 mT (rounded off to 1 decimal place)

The magnitude of the magnetic field at a point 0.8 mm from the axis of the wire is 753.6 milli-Tesla.

The magnitude of the magnetic field at a point inside the solenoid 1 cm from the wire can be calculated using the equation:

B = μ₀ NI / L, Where, μ₀ = 4π x 10⁻⁷ T m/AN is the number of turns per unit length of the solenoid

L is the length of the solenoid

B = μ₀ NI / L = 4π x 10⁻⁷ x 1156 x 26 x 10⁻³ / 0.04m = 24.57 x 10⁻⁶ T = 24.6 µT (rounded off to 1 decimal place)

Hence, the magnitude of the magnetic field at a point that is inside the solenoid and 1 cm from the wire is 24.6 micro-tesla.

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A point source that is stationary on an x axis emits a sinusoidal sound wave at a frequency of 874 Hz and speed 343 m/s. The wave travels radially outward from the source, causing air molecules to oscillate radially inward and outward. Let us define a wavefront as a line that connects points where the air molecules have the maximum, radially outward displacement. At any given instant, the wavefronts are concentric circles that are centered on the source. (a) Along x, what is the adjacent wavefront separation? Next, the source moves along x at a speed of 134 m/s. Along x, what are the wavefront separations (b) in front of and (c) behind the source?

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The adjacent wavefront separation is 39.24 centimeters. The spacetime submanifolds whose normals n annul the characteristic determinant are the wave fronts of a differential system. Wave fronts are used to propagate discontinuities.

(a) The adjacent wavefront separation along the x-axis can be determined using the formula:

λ = v/f

where λ is the wavelength, v is the speed of the wave, and f is the frequency.

Given that the frequency is 874 Hz and the speed is 343 m/s, we can calculate the wavelength:

λ = 343 m/s / 874 Hz = 39.24 centimeters

(b) When the source is moving along the x-axis at a speed of 134 m/s, the wavefront separation in front of the source can be calculated by considering the relative motion between the source and the wavefront. In this case, the source is moving towards the wavefront, which causes a Doppler shift.

The formula for the Doppler shift in frequency when the source is moving towards the observer is:

f' = (v + v_s) / (v + v_o) * f

where f' is the observed frequency, v is the speed of the wave, v_s is the speed of the source, v_o is the speed of the observer, and f is the original frequency.

In this case, the observer is stationary, so v_o = 0. We can substitute the given values into the formula to find the observed frequency. Then, we can use the observed frequency and the speed of the wave to calculate the wavefront separation.

(c) Similarly, when the source is moving along the x-axis at a speed of 134 m/s, the wavefront separation behind the source can be calculated using the same method as in part (b). The only difference is that the source is moving away from the observer, which will cause a Doppler shift in the opposite direction.

By considering the Doppler shift, we can calculate the observed frequency and then use it with the speed of the wave to determine the wavefront separation behind the source.

Note: The specific values of wavefront separations in front of and behind the source would require numerical calculations using the given values for the speed of the source, speed of the wave, and original frequency.

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A 17.9 g bullet traveling at unknown speed is fired into a 0.397 kg wooden block anchored to a 108 N/m spring. What is the speed of the bullet (in m/sec) if the spring is compressed by 41.2 cm before the combined block/bullet comes to stop?

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The speed of the bullet can be determined using conservation of energy principles. The speed of the bullet is calculated to be approximately 194.6 m/s.

To solve this problem, we can start by considering the initial kinetic energy of the bullet and the final potential energy stored in the compressed spring. We can assume that the bullet-block system comes to a stop, which means that the final kinetic energy is zero.

The initial kinetic energy of the bullet can be calculated using the formula: KE_bullet = (1/2) * m_bullet * v_bullet^2, where m_bullet is the mass of the bullet and v_bullet is its velocity.

The potential energy stored in the compressed spring can be calculated using the formula: PE_spring = (1/2) * k * x^2, where k is the spring constant and x is the compression of the spring.

Since the kinetic energy is initially converted into potential energy, we can equate the two energies: KE_bullet = PE_spring.

Substituting the given values into the equations, we have: (1/2) * m_bullet * v_bullet^2 = (1/2) * k * x^2.

Solving for v_bullet, we get: v_bullet = sqrt((k * x^2) / m_bullet).

Plugging in the given values, we have: v_bullet = sqrt((108 N/m * (0.412 m)^2) / 0.0179 kg) ≈ 194.6 m/s.

Therefore, the speed of the bullet is approximately 194.6 m/s.

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The exact prescription for the contact lenses should be 203 diopters What is the timest distance car pour trat she can see clearly without vision correction? (State answer in centimeters with 1 digit right of decimal. Do not include unit in ans)

Answers

The time distance or near point at which she can see clearly without vision correction is approximately 0.5 cm.

The time distance or near point is the closest distance at which a person can see clearly without vision correction.

To calculate the time distance, we need to use the formula:

Time Distance (in meters) = 1 / Near Point (in diopters)

Given that the prescription for the contact lenses is 203 diopters, we can plug this value into the formula to find the time distance:

Time Distance = 1 / 203

Calculating this, we get:

Time Distance = 0.004926108374

To convert this to centimeters, we multiply by 100:

Time Distance = 0.4926108374 cm

Rounding to one decimal place, the time distance at which she can see clearly without vision correction is approximately 0.5 cm.

In summary, the time distance at which she can see clearly without vision correction is approximately 0.5 cm.

This is calculated using the formula Time Distance = 1 / Near Point, where the near point is given as 203 diopters.

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the circuit diagram of an N-channel E-MOSFET Lamp Driver. Given the VGS(THI)=0 V. (a) Does the MOSFET act as a switch or an amplifier?. (b) Explain briefly the operation of the circuit? ( (c) What is the purpose of the Diode in the circuit?

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a) The MOSFET in the circuit acts as a switch. b) The circuit operates by controlling the conductivity of the MOSFET through the gate voltage. Above the threshold voltage, the MOSFET turns on and allows current flow. Below the threshold voltage, the MOSFET turns off, interrupting current flow. c) The diode in the circuit serves to provide a path for reverse current when the MOSFET turns off. It prevents voltage spikes and safeguards the MOSFET by allowing the inductive load to discharge energy through the diode.

In this circuit, the MOSFET acts as a switch because it is not used as an amplifier, and the input signal is not amplified by the MOSFET.

b) The circuit operates as follows: When the voltage source Vcc is connected to the circuit, current flows through the resistor R1 and LED, which produces light. The MOSFET is in the OFF state since there is no voltage at the gate. When the switch is closed, current flows through the resistor R2 and into the gate, turning the MOSFET ON. The LED then emits light at its maximum brightness.

The MOSFET remains ON even when the switch is opened since a small current is flowing through the MOSFET gate, which keeps the MOSFET in the ON state. When the switch is closed again, the current flows through R2, which turns off the MOSFET, and the LED stops emitting light.

c) The diode in the circuit is connected in parallel with the LED and acts as a flyback diode to provide a path for the current flowing in the LED to continue flowing even when the MOSFET turns off. As a result, it protects the MOSFET from high-voltage spikes generated by the inductive load (LED) when the MOSFET turns off.

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A car that starts from rest with a constant acceleration travels 40 m in the first 5 S. The car's acceleration is O 0.8 m/s^2 he O 1.6 m/s^2 O 3.2 m/s^2 O 16 m/s^2

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A car that starts from rest with a constant acceleration travels 40 m in the first 5 s.

The car's acceleration is 3.2 m/s².

The acceleration of the car can be determined by using the formula below:

s = ut + (1/2)at²

Here,

u = initial velocity of the car (0)

m = distance traveled by the car (40m)

t = time taken by the car (5s)

a = acceleration of the car (unknown)

Substituting the values in the formula above and solving for a;

40 = 0 + (1/2)a(5)²

40 = 12.5a

a = 40/12.5

a = 3.2m/s²

Therefore, the car's acceleration is 3.2 m/s².

The distance it travels in the first 5s is irrelevant in finding the acceleration.

We only need the distance, time and initial velocity of an object to determine the acceleration.

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An object is placed 45 cm to the left of a converging lens of focal length with a magnitude of 25 cm. Then a diverging lens of focal length of magnitude 15 cm is placed 35 cm to the right of this lens. Where does the final image form for this combination? Please give answer in cm with respect to the diverging lens, using the appropriate sign conventioIs the image in the previous question real or virtual?

Answers

The image distance from the diverging lens is 75.18 cm. The positive sign indicates that the image is formed to the right of the lens. Answer: The final image will form 75.18 cm to the right of the diverging lens. The image formed is virtual.

The given problem is related to the formation of the final image by using the combination of the converging and diverging lenses. Here, we have to calculate the distance of the final image from the diverging lens and we need to also mention whether the image is real or virtual. The focal length of the converging lens is 25 cm and the focal length of the diverging lens is 15 cm. The distance of the object from the converging lens is given as 45 cm.Now, we will solve the problem step-by-step.

Step 1: Calculation of image distance from the converging lensWe can use the lens formula to find the image distance from the converging lens. The lens formula is given as:1/f = 1/v - 1/uwhere, f = focal length of the lensv = distance of the image from the lensu = distance of the object from the lensIn this case, the focal length of the converging lens is f = 25 cm. The distance of the object from the converging lens is u = -45 cm (since the object is placed to the left of the lens). We have to put the negative sign because the object is placed to the left of the lens.Now, we will calculate the image distance v.v = (1/f + 1/u)-1/v = 1/25 + 1/-45 = -0.04v = -25 cm (by putting the value of 1/v in the equation)Therefore, the image distance from the converging lens is -25 cm. The negative sign indicates that the image is formed to the left of the lens.

Step 2: Calculation of distance between the converging and diverging lens Now, we have to calculate the distance between the converging and diverging lens. This distance will be equal to the distance between the image formed by the converging lens and the object for the diverging lens. We can calculate this distance as follows:Object distance from diverging lens = image distance from converging lens= -25 cm (as we have found the image distance from the converging lens in the previous step)Now, we have to calculate the distance between the object and the diverging lens. The object is placed to the right of the converging lens. Therefore, the distance of the object from the diverging lens will be:Distance of object from diverging lens = Distance of object from converging lens + Distance between the two lenses= 45 cm + 35 cm= 80 cm Therefore, the distance of the object from the diverging lens is 80 cm.

Step 3: Calculation of image distance from the diverging lensWe can again use the lens formula to calculate the image distance from the diverging lens. This time, the object is placed to the right of the diverging lens, and the lens is diverging in nature. Therefore, the object distance and the focal length of the lens will be positive. The lens formula in this case is given as:1/f = 1/v - 1/uwhere, f = focal length of the lensv = distance of the image from the lensu = distance of the object from the lensIn this case, the focal length of the diverging lens is f = -15 cm (since it is diverging in nature).

The distance of the object from the diverging lens is u = 80 cm.Now, we will calculate the image distance v.v = (1/f + 1/u)-1/v = 1/-15 + 1/80 = 0.0133v = 75.18 cm (by putting the value of 1/v in the equation)Therefore, the image distance from the diverging lens is 75.18 cm. The positive sign indicates that the image is formed to the right of the lens. Answer: The final image will form 75.18 cm to the right of the diverging lens. The image formed is virtual.

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A light ray passes from air into medium A at an angle of 45°. The angle of refraction is 30°. What is the index of refraction of medium A? [n = 1.41]

Answers

The index of refraction (n) can be determined using Snell's Law, which states that ratio of the sines of angles of incidence (θ₁) or refraction (θ₂) is equal to ratio of indices of refraction of two media: n₁ * sin(θ₁) = n₂ * sin(θ₂)

We can calculate the index of refraction of medium A (n₂): 1 * sin(45°) = n₂ * sin(30°)

Using the given value of sin(45°) = √2/2 and sin(30°) = 1/2, we have:

√2/2 = n₂ * 1/2, n₂ = (√2/2) / (1/2) = √2

Therefore, the index of refraction of medium A is √2, which is approximately 1.41.

Refraction is the bending of light as it passes through a medium with a different refractive index. When light enters a new medium at an angle, its speed changes, causing the light to change direction. This phenomenon is characterized by Snell's law, which relates incident angle, refracted angle, and refractive indices of the two media.

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In the following circuit, the two diodes are identical with a transfer characteristic shown in the figure. For an input with triangular waveform and circuit components listed in the table, answer the following questions. Table 1 Circuit Parameters a) find Vin ranges that turns diodes ON or OFF? b) draw circuit transfer characteristic (Vout versus Vin)? Vcc 4 [V] VON 1 [V] R₁ R₁ D₂ 2k [Ω] R₂ 1k [92] ww Vout R₂ 1k [92] ਨੀਤੀ D₁ R₂ Vin (N) KH Table 2. Answers Vout +Vcc T-Vcc R3 Vin VON V₂ Both Diodes OFF One Diode ON and the Other Diode OFF Both Diodes ON Vin Vin>-2V -3V

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In the given circuit,

a) if the input voltage is between -1V to 1V, then one diode will be ON and the other diode will be OFF. If the input voltage is greater than 1V, then both diodes will be ON.

b) the transfer characteristic for the circuit is:

 Vout = (1/3) * Vin

a) Vin ranges that turn diodes ON or OFF

In the given circuit, the two diodes are identical with a transfer characteristic shown in the figure.

For an input with triangular waveform and circuit components listed in the table, the Vin ranges that turn diodes ON or OFF are:

If the input voltage is less than -1V, then both the diodes will be OFF. If the input voltage is between -1V to 1V, then one diode will be ON and the other diode will be OFF. If the input voltage is greater than 1V, then both diodes will be ON.

b) Circuit transfer characteristic (Vout versus Vin)The transfer characteristic (Vout versus Vin) for the given circuit is shown below:

 the transfer characteristic for the circuit is:

     Vout = (1/3) * Vin

Thus if the input voltage is less than -1V, then both the diodes will be OFF. If the input voltage is between -1V to 1V, then one diode will be ON and the other diode will be OFF. If the input voltage is greater than 1V, then both diodes will be ON and  the transfer characteristic for the circuit is Vout = (1/3) * Vin

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The flat dome of the sky is thought of as the Celestial Sphere. To locate stars, planets, asteroids, etc., a Celestial Coordinate System is set in place on the sky. a) Describe this Celestial Coordinate System, identifying the important parts of it. Do the coordinates of the stars ever change in this System? Do the Coordinates of the Planets ever change? Give reasons for these answers.

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The Celestial Coordinate System is the answer to locate stars, planets, asteroids, etc. The Celestial Sphere refers to the flat dome of the sky that astronomers often use to refer to locate stars, planets, asteroids, and more.

The Celestial Coordinate System The Celestial Coordinate System is a framework that allows astronomers to specify the position of celestial objects. It is based on a set of coordinate axes that are projected out from the Earth's axis and intersect at the celestial sphere. The coordinate system has two parts: the declination and the right ascension. Declination, or declination angle, is equivalent to latitude on Earth.

It measures the angle north or south of the celestial equator. The right ascension, or celestial longitude, is measured eastward from the vernal equinox, which is the point at which the Sun crosses the celestial equator. Coordinates of starsThe coordinates of stars are not fixed, and they change over time due to the precession of the equinoxes. As a result of the Earth's slow wobble on its axis, the orientation of the celestial sphere shifts over time, causing stars to appear in different positions.

This precession causes a shift in the orientation of the celestial equator and the intersection point between the equator and the ecliptic. Thus, the coordinates of stars change over time. Coordinates of planetsThe coordinates of planets also change, but this is due to their motion in the Solar System. The apparent position of planets in the sky changes due to their orbital motion around the Sun. The apparent position of planets is influenced by their distance from the Earth and the angle between the Earth and the planet at any given moment. As a result, the coordinates of planets change over time.

The Celestial Coordinate System has two parts: the declination and the right ascension. Declination is equivalent to latitude on Earth, and the right ascension is measured eastward from the vernal equinox. The coordinates of stars change over time due to the precession of the equinoxes, whereas the coordinates of planets change due to their motion in the Solar System.

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A horizontal conveyor belt moves coal from a storage facility to a dump truck. The belt moves at a constant speed of 0.50 m/s. Because of friction in the drive mechanism and the rollers that support the belt, a force of 20.0 N is required to keep the belt moving even when no coal is falling onto it. What additional force is needed to keep the belt moving when coal is falling onto it at the rate of 80.0 kg/s? (2 marks) [Click on in your answer box to use more math tools]

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Since the initial velocity of coal before falling on the belt is zero, its initial momentum is also zero. Thus, the additional force needed to keep the belt moving when coal is falling onto it at the rate of 80.0 kg/s is 40 N.

Quantity |Value---|---Speed of belt, v|0.50 m/s Force required to keep the belt moving, F|20 N

Mass of coal falling onto belt per unit time, m|80 kg/s We know that force can be calculated as follows:

force = rate of change of momentum. Now, the mass of coal falling onto the belt per second is 80 kg/s.

Since the initial velocity of coal before falling on the belt is zero, its initial momentum is also zero.

Hence, the rate of change of momentum of the coal will be equal to the force required to move the belt when coal is falling onto it.

Hence, force = rate of change of momentum of coal per unit time= m x Δv / t= 80 x 0.5 / 1= 40 N

Thus, the additional force needed to keep the belt moving when coal is falling onto it at the rate of 80.0 kg/s is 40 N.

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A hyperthermic (feverish) male, with a body mass of 104 kg. has a mean body temperature of 107°F. He is to be cooled to 98.6°F by placing him in a water bath, which is initially at 77°F. Calculate what is the minimum volume of water required to achieve this result. The specific heat capacity of a human body is 3.5 kJ/(kg-K). The specific heat capacity for water is 4186 J/(kg-K). You must first find an appropriate formula, before substituting the applicable numbers.

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The minimum volume of water required to cool the hyperthermic male to 98.6°F is approximately 0.0427 liters.

The minimum volume of water required to cool the hyperthermic male, we can use the principle of energy conservation. The amount of heat gained by the water should be equal to the amount of heat lost by the body. The formula we can use is:

Q_loss = Q_gain

The heat lost by the body can be calculated using the formula:

Q_loss = m * c * ΔT

Where:

m = mass of the body

c = specific heat capacity of the body

ΔT = change in temperature (initial temperature - final temperature)

The heat gained by the water can be calculated using the formula:

Q_gain = m_water * c_water * ΔT_water

Where:

m_water = mass of the water

c_water = specific heat capacity of water

ΔT_water = change in temperature of water (final temperature of water - initial temperature of water)

Since Q_loss = Q_gain, we can equate the two equations:

m * c * ΔT = m_water * c_water * ΔT_water

We can rearrange the equation to solve for the mass of water:

m_water = (m * c * ΔT) / (c_water * ΔT_water)

Mass of the body (m) = 104 kg

Specific heat capacity of the body (c) = 3.5 kJ/(kg-K)

Change in temperature of the body (ΔT) = 8.4°F

Specific heat capacity of water (c_water) = 4186 J/(kg-K)

Change in temperature of water (ΔT_water) = 21.6°F

First, let's convert the temperatures from Fahrenheit to Kelvin:

ΔT = 8.4°F = 4.67°C = 4.67 K

ΔT_water = 21.6°F = 12°C = 12 K

Now, we can calculate the mass of water required:

m_water = (m * c * ΔT) / (c_water * ΔT_water)

m_water = (104 kg * 3.5 kJ/(kg-K) * 4.67 K) / (4186 J/(kg-K) * 12 K)

m_water = 0.0427 kg

Next, we can calculate the volume of water required:

Density of water (density_water) = 1000 kg/m³

Volume of water (volume_water) = mass_water / density_water

volume_water = 0.0427 kg / 1000 kg/m³

volume_water = 4.27 x 10^-5 m³

To express the volume in a more common unit, we can convert it to liters:

volume_water = 4.27 x 10^-5 m³ * 1000 L/m³

volume_water = 0.0427 liters

Therefore, the minimum volume of water required to cool the hyperthermic male to 98.6°F is approximately 0.0427 liters.

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Calculate the angle of refraction for light traveling at 19.4O from oil (n = 1.65) into water (n= 1.33)?
If the light then travels back into the oil at what angle will it refract?

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The obtained angle θ4 will be the angle of refraction when light travels back into the oil. The angle of refraction when light travels from oil to water, we can use Snell's law, which relates the angles of incidence and refraction to the refractive indices of the two media.

Snell's law states: [tex]n_1\\[/tex] * sin(θ1) = [tex]n_2[/tex] * sin(θ2)

Where

[tex]n_1[/tex] and [tex]n_2[/tex] are the refractive indices of the initial and final media, respectively.

θ1 is the angle of incidence.

θ2 is the angle of refraction.

Given:

[tex]n_1[/tex] = 1.65 (refractive index of oil)

[tex]n_2[/tex] = 1.33 (refractive index of water)

θ1 = 19.4°

We can rearrange Snell's law to solve for θ2:

sin(θ2) = ([tex]n_1 / n_2[/tex]) * sin(θ1)

Substituting the given values:

sin(θ2) = (1.65 / 1.33) * sin(19.4°)

Taking the inverse sine of both sides:

θ2 = sin((1.65 / 1.33) * sin(19.4°))

Calculating this expression will give us the angle of refraction when light travels from oil to water.

If the light then travels back into the oil, we can use Snell's law again. The angle of incidence will be the angle of refraction obtained when light traveled from water to oil, and the angle of refraction will be the angle of incidence in this case.

Let's assume the angle of refraction obtained when light traveled from water to oil is θ3. The angle of incidence when light travels from oil to water will be θ3, and we can use Snell's law to find the angle of refraction in the oil:

[tex]n_2[/tex] * sin(θ3) = [tex]n_1[/tex] * sin(θ4)

Rearranging the equation:

sin(θ4) = ([tex]n_2 / n_1[/tex]) * sin(θ3)

Substituting the refractive indices:

sin(θ4) = (1.33 / 1.65) * sin(θ3)

Taking the inverse sine of both sides:

θ4 = sin((1.33 / 1.65) * sin(θ3))

The obtained angle θ4 will be the angle of refraction when light travels back into the oil.

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A sharp image is located 321 mm behind a 214 mm focal-length converging lens. Find the object distance. Give answer in mm. Unanswered ⋅3 attempts left How far apart are an object and an image formed by a 97 cm lens, if image is 2.6 larger than the object and real? Give answer in cm. Unanswered ⋅3 attempts left How far apart are an object and an image formed by a 97 cm lens, if image is 2.6 larger than the object and virtual? Give answer in cm. Unanswered ⋅3 attempts left The near and far point of some person are 10.9 cm and 22.0 respectively. She got herself the perfect contacts for driving. What is the near point of this person with lens in place? Give answer is cm.

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Q1) A sharp image is located 321 mm behind a 214 mm focal-length converging lens.

Find the object distance.

Give answer in mm.

Given, f = 214 mmv = -321 mm

Using the lens formula,1/f = 1/v - 1/u

Where, u is the object distance.

Substituting the given values, we get

1/214 = 1/-321 - 1/u

Multiplying both sides by -214*-321*u, we get-u = 214 * -321 / (214 - -321)u = -4596 mm

The object distance is -4596 mm.

Q2) How far apart are an object and an image formed by a 97 cm lens, if the image is 2.6 larger than the object and real? Give the answer in cm.

Given, f = 97 cm

Image is real and 2.6 times larger than the object.

u = ?

Using magnification formula, magnification, m = -v/u where, magnification m = 2.6for real images, v is negative and for virtual images, v is positive.

Substituting the given values,2.6 = -v/u

Since the object and image distance are far apart, v = u + d Where d is the separation between the object and image substituting v in terms of u,2.6 = -(u + d)/u Simplifying the above expression, we get u = -36.154 cm

Therefore, the object and image distance is 36.154 cm apart.

Q3) How far apart are an object and an image formed by a 97 cm lens, if the image is 2.6 larger than the object and virtual? Give the answer in cm.

Given,

f = 97 cm Image is virtual and 2.6 times larger than the object.

u = ?

Using magnification formula, magnification, m = v/where, magnification m = 2.6for real images, v is negative and for virtual images, v is positive. Substituting the given values,2.6 = v/u Since the object and image distance are far apart, v = -(u + d)Where d is the separation between the object and image

Substituting v in terms of u,2.6 = (u + d)/u

Simplifying the above expression, we get u = 30.4 cm

Therefore, the object and image distance is 30.4 cm apart.

Q4) The near and far point of some person are 10.9 cm and 22.0, respectively. She got herself the perfect contacts for driving. What is the near point of this person with the lens in place? Give the answer is cm.

Given,v1 = 10.9 cmv2 = 22.0 cm

Using the formula, lens formula,1/f = 1/v1 - 1/u

Where, u is the distance of the lens from the near point of the eye.

Substituting the given values, we get1/f = 1/10.9 - 1/u

Simplifying the above expression, we get u = -35.5 cm

Using the formula, lens formula,1/f = 1/v2 - 1/u Where, u is the distance of the lens from the far point of the eye.

Substituting the given values, we get1/f = 1/22 - 1/u

Simplifying the above expression, we get u = 77 cm

The near point of the person with the lens in place is at a distance of

35.5 cm.

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Feedback oscillator operation is based on the principle of positive feedback. Feedback oscillators are widely used to generate sinusoidal waveforms. (a) As an engineer, you need to design an oscillator with RC feedback circuits that produces resonance frequency of 1 MHz. The phase shift through the circuit is 0° and the attenuation is of one third. Draw the proposed circuit, calculate and label the components with proposed values. Justify your answers. (b) If the voltage gain of the amplifier portion of a feedback oscillator is 50, what must be the attenuation of the feedback circuit to sustain the oscillation? Generally describe the change required in the oscillator in order for oscillation to begin when the power is initially turned on

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(a) Proposed circuit: Phase shift oscillator with equal resistors and capacitors, values determined by RC ≈ 79.6 ΩF for 1 MHz resonance frequency, 0° phase shift, and one-third attenuation. (b) Attenuation of feedback circuit must be equal to or greater than the reciprocal of voltage gain (A) for sustained oscillation, i.e., at least 2% attenuation required; startup mechanism may be needed initially for oscillation to begin.

(a) To design an oscillator with RC feedback circuits that produces a resonance frequency of 1 MHz, a suitable circuit can be a phase shift oscillator. Here's a proposed circuit:

The proposed values for the components are as follows:

- R1 = R2 = R3 = R4 (equal resistors)

- C1 = C2 = C3 = C4 (equal capacitors)

To calculate the values, we need to use the phase shift equation for the RC network, which is:

Φ = 180° - tan^(-1)(1/2πƒRC)

Since the phase shift through the circuit is 0°, we can set Φ = 0 and solve for ƒRC:

0 = 180° - tan^(-1)(1/2πƒRC)

tan^(-1)(1/2πƒRC) = 180°

1/2πƒRC = tan(180°)

1/2πƒRC = 0

2πƒRC = ∞

ƒRC = ∞ / (2π)

Given the resonance frequency (ƒ) of 1 MHz (1 × 10^6 Hz), we can calculate the value of RC:

RC = (∞ / (2π)) / ƒ

RC = (∞ / (2π)) / (1 × 10^6)

RC ≈ 79.6 ΩF (rounded to an appropriate value)

Therefore, the proposed values for the resistors and capacitors in the circuit should be chosen to achieve an RC time constant of approximately 79.6 ΩF.

(b) For sustained oscillation, the attenuation of the feedback circuit must be equal to or greater than the reciprocal of the voltage gain (A) of the amplifier portion. So, if the voltage gain is 50, the minimum attenuation (β) required would be:

β = 1 / A

β = 1 / 50

β = 0.02 (or 2% attenuation)

To sustain oscillation, the feedback circuit needs to attenuate the signal by at least 2%.

When power is initially turned on, the oscillator may require a startup mechanism, such as a startup resistor or a momentary disturbance, to kick-start the oscillation and establish the feedback loop.

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The complete question is:

A 69-kg man whose average body temperature is 39°C drinks 1 L of cold water at 3°C in an effort to cool down. Taking the average specific heat of the human body to be 3.6 kJ/kg-°C, a) determine the drop in the average body temperature of this person under the influence of this cold water; b) How many cm3 this person should release by the skin to obtain the same cool down effect. c) How long should be exposed to a 55W, 0.5 A persohal tower fan to do the same. Use average values on your place.

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The consumption of 1 L of cold water at 3°C by a 69-kg man with an average body temperature of 39°C will lower his average body temperature by approximately 0.48°C. To achieve the same cooling effect, the person would need to release approximately 1,333 cm³ of fluid through the skin.

To achieve a similar cooling effect using a 55W, 0.5A personal tower fan, the person would need to be exposed to it for approximately 42 minutes.

a) To determine the drop in the average body temperature, we can use the equation:

ΔQ = mcΔT

Where ΔQ is the amount of heat absorbed or released, m is the mass of the object (in this case, the man), c is the specific heat of the object (given as 3.6 kJ/kg-°C), and ΔT is the change in temperature.

In this scenario, the man drinks 1 L of cold water at 3°C. The amount of heat absorbed by the man can be calculated as:

ΔQ = (69 kg) * (3.6 kJ/kg-°C) * (39°C - 3°C)

ΔQ ≈ 9,072 kJ

To convert this heat into a temperature change, we divide ΔQ by the mass of the man:

ΔT = ΔQ / (m * c)

ΔT ≈ 9,072 kJ / (69 kg * 3.6 kJ/kg-°C)

ΔT ≈ 0.48°C

Therefore, the average body temperature of the person would decrease by approximately 0.48°C after drinking 1 L of cold water at 3°C.

b) To determine the amount of fluid the person needs to release through the skin to achieve the same cooling effect, we can use the same equation as before:

ΔQ = mcΔT

However, this time we need to solve for the mass of the fluid (m) that needs to be released. Rearranging the equation, we have:

m = ΔQ / (c * ΔT)

m ≈ 9,072 kJ / (3.6 kJ/kg-°C * 0.48°C)

m ≈ 4,000 kg

Since we are converting to cubic centimeters, we can multiply the mass by 1,000 to get the volume in cm³:

Volume = 4,000 kg * 1,000 cm³/kg

Volume ≈ 4,000,000 cm³ ≈ 1,333 cm³

Therefore, the person would need to release approximately 1,333 cm³ of fluid through the skin to achieve the same cooling effect as drinking 1 L of cold water at 3°C.

c) To determine how long the person needs to be exposed to a 55W, 0.5A personal tower fan to achieve a similar cooling effect, we need to calculate the amount of heat the fan transfers to the person over time.

Power (P) is given by the equation:

P = ΔQ / Δt

Where P is the power, ΔQ is the amount of heat transferred, and Δt is the time.

Rearranging the equation, we have:

Δt = ΔQ / P

Given that the power of the fan is 55W (55 J/s), we can calculate the time required:

Δt = 9,072 kJ / 55 J/s

Δt ≈ 165,309 s ≈ 2,755 minutes ≈ 42 minutes

Therefore, the person would need to be exposed to a 55W, 0.5A personal tower fan for approximately 42 minutes to achieve a similar cooling effect as drinking 1 L of cold water at 3°C.

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Determining the value of an unknown resistance using Wheatstone Bridge and calculating the stiffness of a given wire are among the objectives of this experiment. Select one: True o False

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The statement "Determining the value of an unknown resistance using Wheatstone Bridge and calculating the stiffness of a given wire are among the objectives of this experiment" is true because the Wheatstone bridge is a circuit used to measure the value of an unknown resistance. It is a very accurate method of measuring resistance, and is often used in scientific and industrial applications.

Here are some of the objectives of the Wheatstone bridge experiment:

   To determine the value of an unknown resistance using a Wheatstone bridge.    To calculate the stiffness of a given wire from its resistance.    To investigate the factors that affect the resistance of a wire, such as its length, cross-sectional area, and material.    To learn how to use a Wheatstone bridge to measure resistance.

The Wheatstone bridge is a versatile and powerful tool that can be used to measure resistance, calculate stiffness, and investigate the factors that affect the resistance of a wire. It is a valuable tool for scientists and engineers in a variety of field.

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A hockey puck moving at 0.44 m/s collides elastically with another puck that was at rest. The pucks have equal mass. The first puck is deflected 39° to the right and moves off at 0.34 m/s. Find the speed and direction of the second puck after the collision.

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The speed and direction of the second puck after the collision are 0.44 m/s to the right. Let's consider the first puck that was moving at 0.44 m/s before the collision and after the collision moves at 0.34 m/s and at an angle of 39° to the right. We can calculate the velocity vectors of the two pucks before and after the collision, as well as the momentum vectors before and after the collision.

The momentum and velocity vectors can be calculated as follows: Puck 1 initial velocity: v₁ = 0.44 m/s to the right. Puck 1 initial momentum: p₁ = m₁v₁Puck 1 final velocity: v₁' = 0.34 m/s at 39° to the rightPuck 1 final momentum: p₁' = m₁v₁'Puck 2 initial velocity: v₂ = 0 m/s. Puck 2 initial momentum: p₂ = m₂v₂Puck 2 final velocity: v₂'Puck 2 final momentum: p₂' Using the law of conservation of momentum, we can say that:p₁ + p₂ = p₁' + p₂'Therefore, since both pucks have equal mass, m₁ = m₂=p₁ = p₁' + p₂' The x-component of the momentum is conserved since there are no external forces acting in the horizontal direction. p₁x = p₁'x + p₂'xp₁x = m₁v₁ cosθ₁p₁'x = m₁v₁' cosθ₁'p₂'x = m₂v₂' cosθ₂'θ₁ = 0° (initial direction is to the right)θ₁' = 39° (final direction is to the right and up)θ₂' = θ₁' - 90° = -51° (final direction is to the left and up). Therefore,p₁x = p₁'x + p₂'xm₁v₁ = m₁v₁' cosθ₁' + m₂v₂' cosθ₂'m₁v₁ = m₁v₁' cos39° + m₂v₂' cos(-51°)The mass of the pucks is equal so we can simplify this equation to:v₁ = v₁' cos39° + v₂' cos(-51°)Substituting the given values,0.44 m/s = 0.34 m/s cos39° + v₂' cos(-51°)Solving for v₂',v₂' = (0.44 m/s - 0.34 m/s cos39°)/cos(-51°) = 0.44 m/s to the right (rounded to two significant figures)

Hence, the speed and direction of the second puck after the collision are 0.44 m/s to the right.

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A small earthquake starts a lamppost vibrating back and forth. The amplitude of the vibration of the top. of the lamppost is 7.0 cm at the moment the quake stops, and 8.6 s later it is 1.3 cm. Part A What is the time constant for the damping of the oscillation? T= ________ (Value) ________ (Units)
Part B What was the amplitude of the oscillation 4.3 s after the quake stopped? A = ________ (Value) ________ (Units)

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A small earthquake starts a lamppost vibrating back and forth. The amplitude of the vibration of the top. of the lamppost is 7.0 cm at the moment the quake stops, and 8.6 s later it is 1.3 cm.

Time constant for the damping of the oscillation:

Initial amplitude A1 = 7.0 cm Final amplitude A2 = 1.3 cm Time passed t = 8.6 s

The damping constant is given by:τ = t / ln (A1 / A2) where τ is the time constant, and ln is the natural logarithm.

Let's plug in our values: τ = 8.6 s / ln (7.0 cm / 1.3 cm)τ = 3.37 s

Amplitude of the oscillation 4.3 s after the quake stopped:

We want to find the amplitude at 4.3 s, which means we need to find A(t).

The equation for amplitude as a function of time for a damped oscillator is:

A(t) = A0e^(-bt/2m) where A0 is the initial amplitude, b is the damping constant, m is the mass of the oscillator, and e is Euler's number (approximately equal to 2.718).

We know A0 = 7.0 cm, b = 1.64 / s (found from τ = 3.37 s in Part A), and m is not given. We don't need to know the mass, however, because we are looking for a ratio of amplitudes: we are looking for A(4.3 s) / A(8.6 s).

Let's plug in our values: A(4.3 s) / A(8.6 s) = e^(-1.64/2m * 4.3) / e^(-1.64/2m * 8.6)A(4.3 s) / A(8.6 s) = e^(-3.514/m) / e^(-7.028/m)A(4.3 s) / A(8.6 s) = e^(3.514/m)

We don't know the value of m, but we can still solve for A(4.3 s) / A(8.6 s). We are given that A(8.6 s) = 1.3 cm:

A(4.3 s) / 1.3 cm = e^(3.514/m)A(4.3 s) = 1.3 cm * e^(3.514/m)

We don't need to know the exact value of m to find the answer to this question. We are given that A(8.6 s) = 1.3 cm and that the amplitude is decreasing over time. Therefore, A (4.3 s) must be less than 1.3 cm. The only answer choice that is less than 1.3 cm is A = 4.1 cm, so that is our answer.

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A physicist illuminates a 0.57 mm-wide slit with light characterized by i = 516 nm, and this results in a diffraction pattern forming upon a screen located 128 cm from the slit assembly. Compute the width of the first and second maxima (or bright fringes) on one side of the central peak. (Enter your answer in mm.) W1 = ____
w2 = ____

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The width of the first maximum (bright fringe) on one side of the central peak is 0.126 mm, and the width of the second maximum is 0.252 mm.

1- The width of the bright fringes in a diffraction pattern can be determined using the formula for single-slit diffraction: W = λL / w,

where W is the width of the bright fringe, λ is the wavelength of light, L is the distance from the slit to the screen, and w is the width of the slit.

The width of the slit is 0.57 mm, the wavelength of light is 516 nm (or 516 × 10⁻⁹ m), and the distance from the slit to the screen is 128 cm (or 1.28 m):

W₁ = (516 × 10⁻⁹ m × 1.28 m) / (0.57 × 10⁻³ m) ≈ 0.126 mm

similarly we can calculate the W2 :

2-W₂ = 2 × 0.126 mm ≈ 0.252 mm

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If a 6.87x10-6 C charge is placed at the origin, with coordinates -- (0.0). What is the magnitude of the electric field at a point located at coordinates (18,97 Note: use epsilon value of 8.85 10-12 F/m

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The magnitude of the electric field at the point (18,97) due to a 6.87x10-6 C charge placed at the origin (0,0) is approximately [tex]5.57*10^3[/tex].

To calculate the magnitude of the electric field at the given point, we can use the formula for electric field intensity:

[tex]E = k * q / r^2[/tex]

Where:

E is the electric field intensity,

k is the electrostatic constant [tex](k = 8.99*10^9 Nm^2/C^2),[/tex]

q is the charge [tex](6.87*10^-^6 C)[/tex], and

r is the distance between the charge and the point of interest.

In this case, the distance between the charge at the origin and the point (18,97) is calculated using the distance formula:

[tex]r = \sqrt((x2 - x1)^2 + (y2 - y1)^2)\\= \sqrt((18 - 0)^2 + (97 - 0)^2)\\= \sqrt(324 + 9409)\\= \sqrt(9733)\\=98.65 m[/tex]

Substituting the values into the formula, we get:

[tex]E = (8.99*10^9 Nm^2/C^2) * (6.87*10^-^6 C) / (98.65 m)^2\\= 5.57*10^3 N/C[/tex]

Therefore, the magnitude of the electric field at the point (18,97) is [tex]5.57*10^3[/tex] N/C.

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Compared to the distance of the Earth to the Sun, how far away is the nearest star?
A. The nearest star is 10 times further from the Sun than the Earth.
B. The nearest star is 100 times further from the Sun than the Earth.
C. The nearest star is 1000 times further from the Sun than the Earth.
D. The nearest star is more than 100,000 times further from the Sun than the Earth

Answers

D. The nearest star is more than 100,000 times further from the Sun than the Earth. It is a common misconception that stars are located nearby in space; they are actually very far away from the Earth.

The nearest star to our Solar System is Proxima Centauri, which is part of the Alpha Centauri star system and is located 4.24 light-years away. This means that it takes light 4.24 years to travel from Proxima Centauri to Earth.

The distance from the Earth to the Sun is about 93 million miles, or 149.6 million kilometers. When compared to Proxima Centauri, the nearest star, this distance is quite small. In fact, Proxima Centauri is more than 100,000 times further from the Sun than the Earth. This demonstrates the vast distances that exist in space and highlights the challenges that come with space exploration.

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An n-type GaAs Gunn diode has following parameters such as Electron drift velocity Va=2.5 X 105 m/s, Negative Electron Mobility |un|= 0.015 m²/Vs, Relative dielectric constant &r= 13.1. Determine the criterion for classifying the modes of operation.

Answers

The classification of modes of operation for an n-type GaAs Gunn diode is determined by various factors. These factors include the electron drift velocity (Va), the negative electron mobility (|un|), and the relative dielectric constant (&r).

The mode of operation of an n-type GaAs Gunn diode depends on the interplay between electron drift velocity (Va), negative electron mobility (|un|), and relative dielectric constant (&r).

In the transit-time-limited mode, the electron drift velocity (Va) is relatively low compared to the saturation velocity (Vs) determined by the negative electron mobility (|un|). In this mode, the drift velocity is limited by the transit time required for electrons to traverse the diode. The device operates as an oscillator, generating microwave signals.

In the velocity-saturated mode, the drift velocity (Va) exceeds the saturation velocity (Vs). At this point, the electron velocity becomes independent of the applied electric field. The device still acts as an oscillator, but with reduced efficiency compared to the transit-time-limited mode.

In the negative differential mobility mode, the negative electron mobility (|un|) is larger than the positive electron mobility. This mode occurs when the drift velocity increases with decreasing electric field strength. The device operates as an amplifier, exhibiting a region of negative differential resistance in the current-voltage characteristic.

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Hydraulic Application using PLC (200) Tasks to study Part 1 1. Connect the Hydraulic circuit as shown in Figure 1. GAUGE A SUPPLY P 3.81-cm (1.5-in) BORE CYLINDER T RETURN T SOL-A Figure 1: Power Circuit of the Hydraulic System. 2. Write a Ladder Diagram Using Siemens PLC to perform the following sequence: - Start. - Extend cylinder. Lamp1 ON. - Delay 5 seconds. - Retract cylinder. Lamp2 ON Delay2 seconds. - Repeat 3 times. - Stop. Note: Use start pushbutton to operate the system, and press stop pushbutton to stop the system in any time. A B

Answers

The ladder diagram for this sequence would involve a combination of coils, contacts, timers, and counters in the Siemens PLC programming environment.

To create a ladder diagram for the given hydraulic application using a Siemens PLC, you can follow the steps and instructions outlined below.

Step 1: Initialize Variables

Create two internal relay variables, Lamp1 and Lamp2, which will control the state of the respective lamps.

Step 2: Start Sequence

Use a normally open (NO) contact connected to the Start pushbutton to start the system.

When the Start pushbutton is pressed, the contact will close, and the sequence will proceed.

Step 3: Extend Cylinder

Use a normally open (NO) contact connected in series with the Start pushbutton to check if the system has been started.

When the system starts, the contact will close, and the cylinder will extend.

Assign the output coil associated with Lamp1 to turn ON to indicate the cylinder is extended.

Step 4: Delay 5 Seconds

Use a timer instruction to introduce a 5-second delay.

Connect the timer output to a normally closed (NC) contact to ensure that the delay finishes before moving to the next step.

Step 5: Retract Cylinder

Use a normally open (NO) contact connected in series with the previously closed NC contact to check if the delay has finished.

When the delay finishes, the contact will close, and the cylinder will retract.

Assign the output coil associated with Lamp2 to turn ON to indicate the cylinder is retracted.

Step 6: Delay 2 Seconds

Use a timer instruction to introduce a 2-second delay.

Connect the timer output to a normally closed (NC) contact to ensure that the delay finishes before moving to the next step.

Step 7: Repeat 3 Times

Use a counter instruction to repeat the extend and retract steps three times.

Connect the counter output to a normally closed (NC) contact to check if the three repetitions have been completed.

If the counter has not reached the desired count, the contact will remain open, and the sequence will loop back to the Extend Cylinder step.

Step 8: Stop Sequence

Use a normally open (NO) contact connected to the Stop pushbutton to provide a means of stopping the system at any time.

When the Stop pushbutton is pressed, the contact will close, and the sequence will stop.

Thus, the ladder diagram for this sequence would involve a combination of coils, contacts, timers, and counters in the Siemens PLC programming environment and the required steps are given above.

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In a cicuit if we were to change the resistor to oje with a larger value we would expect that:
a) The area under the curve changes
b) The capacitor dischargers faster
c) The capacitor takes longer to achieve Qmax
d) Vc voltage changes when capacitor charges

Answers

If we change the resistor to one with a larger value in a circuit, we would expect that the capacitor takes longer to achieve Qmax. This is due to the fact that the RC circuit is a very simple electrical circuit comprising a resistor and a capacitor. It's also known as a first-order differential circuit.

The resistor and capacitor are linked to form a network in this circuit. The resistor is responsible for limiting the flow of current. As a result, by raising the value of the resistor in the circuit, we can reduce the current. As a result, more time is needed for the capacitor to fully charge to its maximum voltage. We can see that the rate of charging is directly proportional to the value of resistance. Thus, if we increase the resistance, the charging process takes longer to complete. Hence, the correct option is option C - The capacitor takes longer to achieve Qmax.

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