Sand falls from a conveyor belt at a rate of 30 m3m3/min onto the top of a conical pile. The height of the pile is always 3535 of the base diameter. Answer the following. a.) How fast is the height changing when the pile is 2 m high?

Explanation:

Given data:

Area A = 10 cm×2 cm = 20×10⁻⁴ m²

Distance d between the plates = 1 mm = 1×10⁻³m

Voltage of the battery is emf = 100 V

Resistance = 1025 ohm

Solution:

In RC circuit, the voltage between the plates is related to time t. Initially the voltage is equal to that of battery V₀ = emf = 100V. But After time t the resistance and capacitor changes it and the final voltage is V that is given by

[tex]V = V_{0}(1-e^{\frac{-t}{RC} } )\\\frac{V}{V_{0} } = 1-e(^{\frac{-t}{RC} }) \\e^{\frac{-t}{RC} } = 1- \frac{V}{V_{0} }[/tex]

Taking natural log on both sides,

[tex]e^{\frac{-t}{RC} } = 1- \frac{V}{V_{0} } \\\frac{-t}{RC} = ln(1-\frac{V}{V_{0} } )\\t = -RCln(1 - \frac{V}{V_{0} })[/tex]

[tex]t = -RC ln (1-\frac{V}{V_{0} })[/tex]        (1)

Now we can calculate the capacitance by using the area of the plates.

C = ε₀A/d

  = [tex]\frac{(8.85*10^{-12))} (20*10^{-4}) }{1*10^{-3} }[/tex]

  = 18×10⁻¹²F

Now we can get the time when the voltage drop from 100 to 55 V by putting the values of C, V₀, V and R in the equation (1)

[tex]t = -RC ln (1-\frac{V}{V_{0} })[/tex]

 = -(1025Ω)(18×10⁻¹² F) ln( 1 - 55/100)

 = 15×10⁻⁹s

= 15 ns

Answer:

[tex]h_w=10415.7664\ mm[/tex] of water column.

Explanation:

Given:

density of mercury, [tex]S_m=13.534[/tex]

height of the mercury column supported by the atmosphere, [tex]h_m=769.6\ mm[/tex]

As we know that the equivalent pressure in terms of liquid column is given as:

[tex]P=\rho.g.h[/tex]

so,

[tex]S_m\times 1000\times g.h_m=\rho_w.g.h_w[/tex]

where:

[tex]g=[/tex] gravity

[tex]h_w=[/tex] height of water column

[tex]\rho_w=[/tex] density of water

[tex]13534\times 9.8\times 769.6=1000\times 9.8\times h_w[/tex]

[tex]h_w=10415.7664\ mm[/tex] of water column.

Final answer:

The atmospheric pressure that supports a 769.6 mm column of mercury will support a water column that is 13.6 times taller due to the density difference, resulting in a water column approximately 10,466.56 mm, or about 10.47 meters, tall.

Explanation:

When we talk about atmospheric pressure, we often use various units like millimeters of mercury (mmHg) or torr, which are equivalent to 1 atm of pressure, defined as exactly 760 mmHg. Since mercury is about 13.6 times denser than water, a column of mercury under atmospheric pressure is much shorter than a column of water under the same pressure. To find the height of a water column supported by a pressure of 769.6 mm Hg, we can set up a proportion using the densities of mercury and water. Since 1 atm supports a 760 mm column of mercury, and the density of mercury is 13.6 times that of water, the same pressure will support a water column that is 13.6 times taller.

The calculation is straightforward:

Therefore, the atmospheric pressure that supports a 769.6 mm Hg column will support a water column of approximately 10,466.56 mm, or about 10.47 meters tall.

Answer: a) VW = 1.28m/s

b) Vb = 3.86m/s

c) p = 5.82kgm/s

d) E = 11.84J

Explanation: To solve this question, we make use of explosion formula in linear momentum concept.

Please find the attached file for the solution

Answer:

W = 37.2J

Explanation:

See attachment below.

A pressure cooker cooks a lot faster than an ordinary pan by maintaining a higher pressure and temperature inside. The mass of the petcock of the pressure cooker is approximate [tex]40.8\ gm[/tex].

The pressure force on the petcock is the difference between the pressure inside the cooker and the atmospheric pressure, multiplied by the cross-sectional area of the opening:

Pressure force = (Pressure inside - Atmospheric pressure) * Opening area

Given that the operating pressure is 100 kPa gauge and the atmospheric pressure is 101 kPa,

Pressure inside[tex]= (100+ 101) \times 1000 = 201000\ Pa[/tex]

Atmospheric pressure [tex]= 101 \times 1000 = 101000\ Pa[/tex]

Now, calculate the pressure force:

Pressure force[tex]= (201000\ Pa - 101000\ Pa) \times 4\ mm^2[/tex]

Pressure force [tex]= 100000\ Pa \times 4 \times 10^{-6} m^2[/tex]

Pressure force [tex]= 0.4\ N[/tex]

The weight of the petcock is equal to the force of gravity acting on it:

Weight = mass × gravitational acceleration

[tex]Weight = mass \times 9.8 m/s^2\\m \times 9.8 = 0.4 \\m = 0.4 / 9.8 \\m = 0.0408\ kg[/tex]

So, the mass of the petcock of the pressure cooker is approximate [tex]40.8\ gm[/tex].

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To find the mass of the petcock, we calculate the force exerted by the steam using the given pressure and area, then equate it to the weight of the petcock. This gives us a mass of approximately 0.082 kg.

To determine the mass of the petcock in a pressure cooker, we need to understand the pressure dynamics and forces at play. The pressure cooker operates at a gauge pressure of [tex]100 kPa,[/tex] and the cross-sectional area of the opening through which steam escapes is given as [tex]4 mm^2[/tex].

First, let's convert the cross-sectional area from [tex]mm^2[/tex] to [tex]m^2[/tex]:

[tex]4 mm^2 = 4 \times 10^{-6} m^2[/tex]

The force exerted by the steam on the petcock can be calculated using the pressure-force relationship: [tex]F = PA[/tex]

Here, P is the absolute pressure inside the cooker, which is the sum of the gauge pressure and the atmospheric pressure:

[tex]P = 100 kPa (gauge) + 101 kPa (atmospheric) = 201 kPa[/tex]

The force is then:

[tex]F = P \times A = 201,000 Pa \times 4 \times 10^{-6} m^2 = 0.804 N[/tex]

The force exerted by the petcock due to its weight is [tex]F = mg[/tex], where m is the mass and g is the acceleration due to gravity ([tex]9.81 m/s^2[/tex]).

Setting the force exerted by the steam equal to the weight of the petcock gives us:

[tex]mg = 0.804 N[/tex]

Therefore, the mass of the petcock is:

[tex]m = F/g = 0.804 N / 9.81 m/s^2 \approx 0.082 kg[/tex]

Thus, the mass of the petcock is approximately [tex]0.082 kg[/tex].

The motion involves energy conversion between kinetic and potential energy, with ball B reaching maximum potential energy at θmax and θmin, and maximum kinetic energy at θ = 0. Cart A's velocity will be adjusted according to the change in motion of ball B, based on the conservation of momentum.

The question relates to the physics concept known as conservation of momentum and energy in the context of pendular motion and collisions within an isolated system. When cart A is given an initial velocity and ball B is at rest, the force that accelerates ball B will be the component of the tension in the string that acts horizontally, as there's no friction resistance on the track. During the motion, the total energy of ball B will be conserved, converting between potential energy when at its highest at θmax and θmin, and kinetic energy when passing through the lowest point at θ = 0. As the system consists of pendular motion, for a given displacement, the velocity of the pendulum and cart at various angles can be determined by using energy conservation.

Given that cart A and ball B have the same mass, the velocities can be tracked by considering the movement as a combination of the cart rolling and the pendulum swinging, respecting the conservation of angular momentum around the axis from which the ball B is suspended.

Answer:

Apparent power rating is: 120 kVA

Apparent voltage rating is: 0.208 kV

Explanation:

Given demand load of commercial office building P = 85 kW @ pf = 0.9 lagging

Allow load growth of 25% = 0.25 * 85 = 21.25 kW

Maximum load is Pm = 85 + 21.25 = 106.25 @ pf = 0.9 lagging

Apparent power demand S = Pm/pf = 106.25/0.9 = 118.05 kVA

This apparent power should be meet by 3-phase pad mount transformer at secondary voltage of 208 V (L-L) and secondary should grounded star .

Apparent Power rating of 3-phase pad mounted transformer is ST = 120 kVA

Volatage rating of 3-phase pad mounted transformer is Delta - grounded star V1 : V2 = 12.47 : 0.208 kV

Answer:

W = -2*10⁵ J

Explanation:

        [tex]\Delta K = K_{f} - K_{0} = 0 - \frac{1}{2} * m* v_{0} ^{2} \\\\ \Delta K = -\frac{1}{2}*1000kg*(20 m/s)^{2} = -200000 J= -2e5 J[/tex]

Given values:

As we know,

→ [tex]\Delta K = K_f - K_0[/tex]

           [tex]= 0-\frac{1}{2}mv_2^2[/tex]

By substituting the values,

           [tex]= - \frac{1}{2}\times 1000\times (20)^2[/tex]

           [tex]= - 500\times 400[/tex]

           [tex]= -200000 \ J[/tex]

           [tex]= -2\times 10^5 \ J[/tex]

Thus the above answer is right.

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Answer:

3.6μF

Explanation:

The charge on the capacitor is defined by the formula

q = CV

because the charge will be conserved

q₁ = C₁V₂

q₂ = C₂V₂ where C₂ V₂ represent the charge on the newly connected capacitor  and the voltage drop across the two capacitor will be the same

q = q₁ + q₂ = C₁V₂ + C₂V₂

CV = CV₂ + C₂V₂

CV - CV₂ = C₂V₂

C ( V - V₂) = C₂V₂

C ( V/ V₂ - V₂ /V₂) = C₂

C₂ = 0.9 ( 10 /2) - 1) = 0.9( 5 - 1) = 3.6μF

Final answer:

The velocity of the defensive tackle before the collision is -6 m/s (toward the left).

Explanation:

According to the law of conservation of momentum, the total momentum before the collision is equal to the total momentum after the collision. Since the two players stick together after the collision, their velocities will be equal but opposite in direction.

Let's assume that the velocity of the defensive tackle before the collision is v. The total momentum before the collision is given by:

m1 * v1 + m2 * v2 = (m1 + m2) * v

Where:

m1 = mass of the running back = 86 kg

v1 = velocity of the running back = 9 m/s (toward the right)

m2 = mass of the defensive tackle = 129 kg

v2 = velocity of the defensive tackle (to be determined)

Using the above equation, we can solve for v:

(86 kg * 9 m/s) + (129 kg * v2) = (86 kg + 129 kg) * 0

774 kg*m/s + 129 kg * v2 = 0 kg*m/s

v2 = -6 m/s

Therefore, the velocity of the defensive tackle before the collision is -6 m/s (toward the left).

Answer:

Ft

Explanation:

We are given that

Initial velocity=u=0

We have to find the magnitude of p of the momentum of the particle at time t.

Let mass of particle=m

Applied force=F

Acceleration, [tex]a=\frac{F}{m}[/tex]

Final velocity , [tex]v=a+ut[/tex]

Substitute the values

[tex]v=0+\frac{F}{m}t=\frac{F}{m}t[/tex]

We know that

Momentum, p=mv

Using the formula

[tex]p=m\times \frac{F}{m}t=Ft[/tex]

The magnitude of the momentum of the particle after time, t is Ft = mv.

The given parameters:

The magnitude of the momentum of the particle after time, t is calculated as follows;

[tex]P =mv[/tex]

The force applied to the particle is calculated as;

[tex]F = ma = \frac{mv}{t} \\\\Ft = mv[/tex]

Thus, the magnitude of the momentum of the particle after time, t is Ft = mv.

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Answer:

a) W = 180.87 J , b)  ΔU = -180.87 J , c)  ΔU = -180.87 J

Explanation:

a) Work is defined as

         W = F .ds

Where bold indicates vectors, we can write the scalar product

         W = F s cos θ

Where the angle is between force and displacement.

The force of gravity is the weight of the body, which is directed downwards and the displacement thickens the tip of the cliff at the bottom, so that it is directed downwards, therefore the angle is zero degrees

        W = [tex]F_{g}[/tex] y

        W = m g y

For this problem we must fix a reference system, from the statement it is established that the system is placed at the base of the cliff, so that final height is zero and the initial height (y₀ = 7.69m)

    W = 2.40 9.8 (7.69-0)

    W = 180.87 J

b) The potential energy is

            U = mg y

The change in potential energy,

        ΔU = [tex]U_{f}[/tex]- U₀

       ΔU = mg ([tex]y_{f}[/tex]- y₀)

      ΔU = 2.4 9.8 (0 -7.69)

      ΔU = -180.87 J

c) in this case we change the reference system to the height of the cliffs, for this configuration

          y₀ = 0

          [tex]y_{f}[/tex] = -7.69 m

          ΔU = 2.4 9.8 (-7.69 -0)

          ΔU = -180.87 J

Explanation:

The formula to calculate total time taken is as follows.

      Total time = time to fall + time for sound

So,   time for sound = [tex]\frac{distance}{velocity}[/tex]

                                 = [tex]\frac{7.03}{343}[/tex]

                                 = 0.0204  sec

Hence, time to fall is as follows.

          (0.81 - 0.0204) sec

         = 0.7896 sec

Now, we will calculate the time to fall as follows.  

            y = [tex]y_{o} + v_{o}yt + \frac{1}{2}at^{2}[/tex]

            0 = [tex]h + v \times t - \frac{1}{2}gt^{2}[/tex]

            0 = [tex]7.03 + v \times (0.81 - 0.0204) - 0.5 \times 9.81 \times(0.81 - 0.0204)^{2}[/tex]

               = [tex]7.8196 - 0.5 \times 9.81 \times 0.623[/tex]

              = 7.8196 - 3.058

              = 4.7616 m/s  

Therefore, she threw the coin at 4.76 m/s in the upward direction.

Answer:

$175

Explanation:

Insurance premium is expressed as a rate $1000

($3.50 per $1000)

Therefore;

Annual premium= $50000x$3.50/$1000

= $175

Final answer:

The annual premium for a $50,000 policy at the rate of $3.50 per unit of coverage from the Acorn Insurance Company would be $175.00.

Explanation:

The Acorn Insurance Company charges $3.50 for each unit of coverage under a 1-year term life insurance policy. To calculate the annual premium for a $50,000 policy, we'll need to divide the total coverage amount by the unit price and then multiply by the cost per unit. Here's the math:

Total Coverage Needed: $50,000

Cost Per Unit of Coverage: $3.50

Number of Units: $50,000 / $1,000 = 50

Annual Premium: 50 units * $3.50 = $175.00

So, the annual premium amount for a $50,000 policy in this block would be $175.00.

Answer:

0.938 m/s.

Explanation:

Given:

ω = 1 rev in 0.67 s

In rad/s,

1 rev = 2pi rad

ω = 2pi ÷ 0.67

= 9.38 rad/s

Rp = 10 cm

= 0.1 m

V = ω × r

= 9.38 × 0.1

= 0.938 m/s.

Answer:

159.1 ton

Explanation:

The solution is shown in the attached file

Answer:

The safe load is 159 ton

Explanation:

The safe load is equal to:

[tex]L=\frac{WHBV^{2/3} }{K}[/tex]

Where:

W = weight of hammer = 2.5 ton

H = drop height = 22 ft

B = number of blows used to drive the last batch = 36/4 = 9 ft³

K = dimensionless constant = 28

V = uncompacted volume = 27 ft³

Replacing values:

[tex]L=\frac{2.5*22*9*(27^{2/3}) }{28} =159ton[/tex]

Answer:

The ratio of electric field is 16:9.

Explanation:

Given that,

Radius [tex]R_{2}=\dfrac{3}{4}R_{1}[/tex]

Charge = Q

We know that,

The electric field is directly proportional to the charge and inversely proportional to the square of the distance.

In mathematically term,

[tex]E=\dfrac{kQ}{R^2}[/tex]

Here, [tex]E\propto\dfrac{1}{R^2}[/tex]

We need to calculate the ratio of electric field

Using formula of electric field

[tex]\dfrac{E_{2}}{E_{1}}=\dfrac{R_{1}^2}{R_{2}^2}[/tex]

Put the value into the formula

[tex]\dfrac{E_{2}}{E_{1}}=\dfrac{(4R_{1})^2}{(3R_{1})^2}[/tex]

[tex]\dfrac{E_{2}}{E_{1}}=\dfrac{16}{9}[/tex]

Hence, The ratio of electric field is 16:9.

Final answer:

The ratio of the electric fields E2/E1 at the surface of two conducting spheres with radii R2 = 3/4R1 carrying the same charge is 16/9.

Explanation:

The question is asking for the ratio of the electric fields near the surface of two conducting spheres carrying the same charge Q but having different radii, R1 and R2 where R2 is three-fourths of R1. To find the electric field E near the surface of a conducting sphere, we use the formula:

E = kQ/[tex]r^{2}[/tex]

where k is Coulomb's constant, Q is the charge, and R is the radius of the sphere. Since the charge Q is the same on both spheres, we can calculate the ratio of the electric fields by plugging in the radii:

E2/E1 = (kQ/[tex]r2^{2}[/tex]) / (kQ/[tex]r1^{2}[/tex])

Simplifying further, since k is a constant it cancels out, along with Q, which is the same for both spheres, we get:

E2/E1 = ([tex]r1^{2}[/tex]) / ([tex]r2^{2}[/tex])

Substituting R2 = 3/4R1:

E2/E1 = [tex]r1^{2}[/tex] / (3/4 R1)[tex]{2}[/tex]

E2/E1 = 1 / (3/4)^2

E2/E1 = 1 / (9/16) = 16/9

Therefore, the ratio E2/E1 is 16/9.

Explanation:

The given data  is as follows.

Mass of oxygen present = 100 mg = [tex]100 \times 10^{-3}[/tex] g

So, moles of oxygen present are calculated as follows.

      n = [tex]\frac{100 \times 10^{-3}}{32}[/tex]

         = [tex]3.125 \times 10^{-3}[/tex] moles

Diameter of cylinder = 6 cm = [tex]6 \times 10^{-2}[/tex] m

                              = 0.06 m

Now, we will calculate the cross sectional area (A) as follows.

    A = [tex]\pi \times \frac{(0.06)^{2}}{4}[/tex]

        = [tex]2.82 \times 10^{-3} m^{2}[/tex]

Length of tube = 11 cm = 0.11 m

Hence, volume (V) = [tex]2.82 \times 10^{-3} \times 0.11[/tex]

                              = [tex]3.11 \times 10^{-4} m^{3}[/tex]

Now, we assume that the inside pressure is P .

And,   [tex]P_{atm}[/tex] = 100 kPa = 100000 Pa,

Pressure difference = 100000 - P

Hence, force required to open is as follows.

      Force = Pressure difference × A

                = [tex](100000 - P) \times 2.82 \times 10^{-3}[/tex]

We are given that force is 173 N.

Thus,

         [tex](100000 - P) \times 2.82 \times 10^{-3}[/tex] = 173

Solving we get,

          P = [tex]3.8650 \times 10^{4} Pa[/tex]

            = 38.65 kPa

According to the ideal gas equation, PV = nRT

So, we will put the values into the above formula as follows.

                PV = nRT

    [tex]38.65 \times 3.11 \times 10^{-4} = 3.125 \times 10^{-3} \times 8.314 \times T[/tex]

                    T = 462.66 K

Thus, we can conclude that temperature of the gas is 462.66 K.

Answer:

1.732

Explanation:

Let

Tension in wire B=T

Tension in wire A=3 T

We have to find the ratio of the frequencies of the first harmonic in these two wires.

When two wires are identical then the length of both wires are same.

Suppose, the length of each wire=l

Frequency=[tex]\frac{1}{2l}\sqrt{\frac{T}{\mu}}[/tex]

Where [tex]\mu=[/tex]Mass per unit length

Mass per unit length of both wires are same because the two wires are identical.

[tex]\mu_A=\mu_B[/tex]

[tex]\frac{f_A}{f_B}=\frac{\frac{1}{2l}\sqrt{\frac{T_A}{\mu_A}}}{\frac{1}{2l}\sqrt{\frac{T_B}{\mu_B}}}[/tex]

[tex]\frac{f_A}{f_B}=\frac{\frac{1}{2l}\sqrt{\frac{T_A}{\mu_A}}}{\frac{1}{2l}\sqrt{\frac{T_B}{\mu_A}}}=\sqrt{\frac{T_A}{T_B}}=\sqrt{\frac{3T}{T}}[/tex]

[tex]\frac{f_A}{f_B}=\sqrt 3=1.732[/tex]

The ratio of the frequencies of the first harmonic in these two wires is [tex]\sqrt{3}[/tex].

The given parameters;

The frequency of first harmonic of each wire is calculated as follows;

[tex]F_ A = \frac{1}{2l} \sqrt{\frac{3T}{\mu} } \\\\F_B = \frac{1}{2l} \sqrt{\frac{T}{\mu} }[/tex]

where;

The ratio of the two frequencies is calculated as follows;

[tex]\frac{F_A}{F_B} = \frac{\frac{1}{2l} \sqrt{\frac{3T}{\mu} } }{\frac{1}{2l} \sqrt{\frac{T}{\mu} } } \\\\\frac{F_A}{F_B} = \sqrt{\frac{3T}{T} } \\\\\frac{F_A}{F_B} = \sqrt{3}[/tex]

Thus, the ratio of the frequencies of the first harmonic in these two wires is [tex]\sqrt{3}[/tex].

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a. The quantity of heat rejected by the Carnot engine is equal to -101.2 kJ/s.

b. The power developed by the Carnot engine is equal to 148.8 kJ/s.

Given the following data:

Conversion:

Temperature of heat-source = 525°C to Kelvin = 525 + 273 = 798K

Temperature of heat rejected = 50°C to Kelvin = 50 + 273 = 323K

To find the power developed and the heat rejected, we would use Carnot's equation:

[tex]-\frac{Q_R}{T_R} = \frac{Q_S}{T_S}[/tex]

Where:

Making [tex]Q_R[/tex] the subject of formula, we have:

[tex]Q_R = -( \frac{Q_S}{T_S})T_R[/tex]

Substituting the given parameters into the formula, we have;

[tex]Q_R = -( \frac{250}{798}) \times 323\\\\Q_R = -( \frac{80750}{798})[/tex]

Quantity of heat rejected = -101.2 kJ/s

Now, we can determine the power developed by the Carnot engine:

[tex]P = -Q_S - Q_R\\\\P = -250 - (-101.2)\\\\P = -250 + 101.2[/tex]

Power, P = 148.8 kJ/s.

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The power developed by the Carnot engine is approximately 148.8 kilowatts. The heat rejected by the Carnot engine is approximately 101.2 kilowatts.

The Carnot efficiency (η) of a heat engine is given by the formula:

η = 1 - (T₁ ÷ T₂)

Heat received (Q(in)) = 250,000 J/s

Temperature of the heat-source reservoir (T(Hot)) = 798.15 K

Temperature of the heat-sink reservoir (T(Cold) = 323.15 K

The Carnot efficiency:

η = 1 - (T₁ ÷ T₂)

η = 1 - (323.15  ÷ 798.15 )

η = 0.5952

Therefore, The Carnot efficiency is 0.5952, which means the engine converts 59.52% of the heat received into useful work.

Power Developed:

P = η × Q(in)

P = 0.5952 × 250,000

P =  148,800 = 148.8 kW

Therefore, The power developed by the Carnot engine is approximately 148.8 kilowatts.

Heat Rejected:

Q(out) = Q(in) - P

Q(out) = 250,000- 148,800 = 101,200 J/s

Q(out) = 101.2 kW

Therefore, The heat rejected by the Carnot engine is approximately 101.2 kilowatts.

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Answer:

Explanation:

The ball from which electrons are transferred will acquire Q charge and the ball receiving electrons will acquire - Q charge . force of attraction between them

= k Q² / d²

9 x 10⁹ x Q² / .12² = 17 X 10⁻³

Q² = .0272 X 10⁻¹²

Q = .1650 X 10⁻⁶ C

No of electrons = .1650 x 10⁻⁶ / 1.6 x 10⁻¹⁹

= .103125 x 10¹³

1.03125 x 10¹²

Complete Question:

A basketball player tosses a basketball m=1kg straight up with an initial speed of v=7.5 m/s. He releases the ball at shoulder height h= 2.15m. Let gravitational potential energy be zero at ground level

a)  Give the total mechanical energy of the ball E in terms of maximum height hn it reaches, the mass m, and the gravitational acceleration g.

b) What is the height, hn in meters?

Answer:

a) Energy = mghₙ

b) Height, hₙ = 5.02 m

Explanation:

a) Total energy in terms of maximum height

Let maximum height be hₙ

At maximum height, velocity, V=0

Total mechanical energy , E = mgh + 1/2 mV^2

Since V=0 at maximum height, the total energy in terms of maximum height becomes

Energy = mghₙ

b) Height,  hₙ in meters

mghₙ = mgh + 1/2 mV^2

mghₙ = m(gh + 1/2 V^2)

Divide both sides by mg

hₙ = h + 0.5 (V^2)/g

h = 2.15m

g = 9.8 m/s^2

V = 7.5 m/s

hₙ = 2.15 + 0.5(7.5^2)/9.8

hₙ = 2.15 + 2.87

hₙ = 5.02 m

Answer:

3.93 m/s

Explanation:

Let the kinetic energy of hammer be 'K' and speed of hitting the target be 'v'.

Given:

Mass of the hammer (M) = 7.76 kg

Mass of the metal piece (m) = 0.372 kg

Kinetic energy of the hammer used by the metal piece = 29.7% of 'K' = 0.297K

Vertical height traveled by the metal piece (h) = 4.87 m

From conservation of energy, the kinetic energy used by the metal piece is transformed to the gravitational potential energy when it reaches the height of the bell.

Gravitational potential energy of the piece is given as:

[tex]U=mgh\\\\U=0.372\times 9.8\times 4.87=17.754\ J[/tex]

Now, as per question:

[tex]0.297K=17.754\ J\\\\K=\frac{17.754}{0.297}\\\\K=59.78\ J[/tex]

Therefore, the kinetic energy of the hammer is 59.78 J.

We know that,

Kinetic energy = [tex]\frac{1}{2}mv^2[/tex]

So, [tex]K=\frac{1}{2}mv^2[/tex]

Expressing in terms of 'v', we get:

[tex]mv^2=2K\\\\v^2=\frac{2K}{m}\\\\v=\sqrt{\frac{2K}{m}}[/tex]

Plug in the given values and solve for 'v'. This gives,

[tex]v=\sqrt{\frac{2\times 59.78}{7.76}}\\\\v=3.93\ m/s[/tex]

Therefore, the hammer must move with a speed of 3.93 m/s when it strikes the target so that the bell just barely rings.

Answer:

Hydrogen takes 0.391s to get to distance x

Explanation:

From the chromatography table:

[tex]D_H_2=6.4\times10^{-5}m^2/s\\D_O_2=1.8\times10^{-5}m^2/s\\[/tex]

Using the equation[tex]x_m_s=\sqrt(2Dt)[/tex]. This equation relates time to distance during diffusion

[tex]x_m_s[/tex],[tex]_O_2[/tex]=[tex]\sqrt[/tex][tex]2D_o_2[/tex][tex]t_o_2[/tex]  and [tex]x_m_s[/tex],[tex]__H_2[/tex]=[tex]\sqrt[/tex][tex]2D_H__2[/tex][tex]t_H__2[/tex]

Let the distance traveled be denoted by x(same distance traveled by both gases).

Distance is same when difference between[tex]t_H__2[/tex] and [tex]t_O__2[/tex] is 1.0 seconds.

[tex]t_O__2=t_H___2[/tex][tex]+1.0s[/tex]

At equal distance=>

[tex]2D_O__2[/tex][tex]t_O__2[/tex]=[tex]2D_H__2[/tex][tex]t_H__2[/tex]

[tex]D_O_2[/tex][tex](t_H__2[/tex][tex]+1.0s)=D_H__2[/tex][tex]t_H__2[/tex]

Solving for hydrogen time:

[tex]t_H__2=(D_0__2)\div[/tex][tex](D_H__2[/tex]-[tex]D_O__2)[/tex][tex]\times1.0[/tex]

=[tex](1.8\times10^{-5}m^2/s)\div(6.4\times10^{-5}m^2/s-1.8\times10^{-5}m^2/s)\times1.0s[/tex]

=0.391s

Final answer:

To find the time before hydrogen is 1.00 s ahead of oxygen when both are diffusing through air, we use Graham's law of effusion. Hydrogen effuses four times faster than oxygen, so with calculations, we find that this time is approximately 2.33 seconds.

Explanation:

When hydrogen and oxygen are diffusing through air and are released simultaneously, we want to determine the time that passes before the hydrogen gas (H2) is 1.00 s ahead of the oxygen gas (O2). This concept involves diffusion rates in gases, which can be described using Graham's law of effusion. According to Graham's law, the rate of effusion for a gas is inversely proportional to the square root of its molar mass (M).

Given that hydrogen effuses four times as rapidly as oxygen, we can write the relationship between their rates as RH2 / RO2 = sqrt(MO2 / MH2). Knowing that the molar mass of hydrogen (MH2) is 2 g/mol and the molar mass of oxygen (MO2) is 32 g/mol, we can substitute these values into the equation to find the rate ratio.

Since hydrogen is four times faster, and we want hydrogen to be 1.00 s ahead of the oxygen, we can use the ratio to calculate how long it would take for oxygen to travel the same distance. This time can then be added to 1.00 s to find the total elapsed time. Here's a step-by-step approach to calculate this:

Calculate the square root of the ratio of the molar masses: sqrt(32/2) = sqrt(16) = 4.

The rate of hydrogen is therefore four times the rate of oxygen: RH2 = 4 × RO2.

If we let t be the time for oxygen to effuse, hydrogen will effuse in t/4 time.

To be 1.00 s ahead, we want t/4 = t - 1.00.

Solving for t gives us t = 4/3 seconds (approximately 1.33 s).

This is the time it would take for oxygen to cover the same distance that hydrogen covers in 1/3 second.

Thus, the total time before hydrogen is 1.00 s ahead of the oxygen is approximately 1.33 s (the time for oxygen) + 1.00 s = 2.33 seconds.

This concept is particularly useful in analytical chemistry, specifically in techniques like gas chromatography, where differences in the rate of diffusion of gases are used to separate and identify components in a mixture.

Complete Question

The two isolated parallel plate capacitors be-  low, one with plate separation d and the other  with D > d, have the same plate area A and

are given the same charge Q.

What is the energy in the spark produced by discharging the second capacitor?

 1. The same as the discharge spark of the first capacitor

2. More energetic than the discharge spark of the first capacitor

3. Less energetic than the discharge spark of the first capacitor

Answer:

The correct option is 2

Explanation:

The formula for the energy stored in the capacitor is

             [tex]U = \frac{Q^2}{2C}[/tex]

And generally the formula for finding the capacitance of a capacitor is

               [tex]C = \frac{\epsilon_oA}{d}[/tex]

We can denote the capacitance of the first capacitor as [tex]C_1 = \frac{\epsilon_oA}{d}[/tex]

          and   denote the capacitance of the second  capacitor as [tex]C_2 = \frac{\epsilon_oA}{D}[/tex]

Looking at this formula we can see that C varies inversely with d            

as D > d it means that [tex]C_1 > C_2[/tex]

                Since the charge is constant

                         [tex]U\ \alpha\ \frac{1}{C}[/tex] i.e U varies inversely with C

           So [tex]C_1 > C_2[/tex]   => [tex]U_2 >U_1[/tex]

This means that the energy of spark would be more for capacitor two compared to capacitor one

The correct option is 2

The energy in the spark produced by discharging a capacitor can vary between different capacitors based on their capacitance and potential difference.

When discharging a capacitor, the energy stored in the capacitor is released as a spark, which can be compared between different capacitors.

In this case, if the second capacitor discharges, the spark produced may have varying energy levels compared to the spark produced by the first capacitor, depending on the capacitance and potential difference.

The energy in the spark produced by discharging the second capacitor can be calculated using relevant formulas relating to capacitance, potential difference, and energy stored.

Answer: The change in internal energy of the system is 200 Joules

Explanation:

According to first law of thermodynamics:

[tex]\Delta E=q+w[/tex]

[tex]\Delta E[/tex]=Change in internal energy

q = heat absorbed or released

w = work done or by the system

w = work done by the system=[tex]-P\Delta V=0[/tex]  

q = +200J   {Heat absorbed by the system is positive}

[tex]\Delta E=+200+0=+200J[/tex]

Thus the change in internal energy of the system is 200 Joules

Answer:

The angle that the door must rotate is 70.5 graus

Explanation:

When the door rotates through and angel X, the magnetic flux that passes through the door decreases from its maximum value to 0.3 of its maximum value

This way,

X = 0.3 Xmax

X = B A cosX = 0.3 B A  

or

cosX = 0.3

or

X = [tex]cos^{-1}[/tex] (0.3) = 70.5

X = 70.5 graus

Answer:

The work done on the 45.0nC charge is 2.24×10^-3J. The detailed solution can be found in the attachment below.

Explanation:

The Problem solution makes use of the potential energy relationship between the charges. This solution assumes the distance as shown in the diagram. For a different distance arrangement adjustments should be made appropriately.

The question in Physics pertains to the work needed by an external agent to move a charge within an electric field, and it involves applying the concept of electric potential energy. The work done is equal to the change in electric potential energy, which requires knowledge of the charges' positions and potentials.

The question asks: How much work does it take for an external agent to move a 45.0-nC charge from a point on the +x-axis, 3.40 cm from the origin to a point halfway between the 41.0-nC and 52.0-nC charges? To answer this question, we would use the concept of electric potential energy in the electric field created by point charges. Work is required to move a charge within an electric field against electric forces. The work done by an external force to move a charge from one point to another is equal to the change in electric potential energy, which can be calculated from the initial and final electric potentials at the points in question.

To find the required work, we need to know the initial and final positions relative to other charges, and then we apply the electric potential energy formula. However, a complete solution would require additional specifics about the configuration and distances between the charges. Without these details, we cannot provide an exact numerical answer.

Answer:x=2 and x=3

Explanation:

Given

Potential Energy for a certain mass is

[tex]U(x)=2x^3-15x^2+36x-23[/tex]

and we know force is given by

[tex]F=-\frac{\mathrm{d} U}{\mathrm{d} x}[/tex]

[tex]F=-(2\times 3x^2-15\times 2x+36)[/tex]

For Force to be zero F=0

[tex]\Rightarrow 6x^2-30x+36=0[/tex]

[tex]\Rightarrow x^2-5x+6=0[/tex]

[tex]\Rightarrow x^2-2x-3x+6=0[/tex]

[tex]\Rightarrow (x-2)(x-3)=0[/tex]

Therefore at x=2 and x=3 Force on particle is zero.

Answer:

the kinetic energy decreases and the potential energy Increases.

Explanation:

as the comet travels away from the star it gains an energy which it posses because of its position or state.once the comet moves away form the star the kinetic decreases until its lost all together to where the potential energy starts increasing.

Answer:

The potential energy increase and the kinetic energy decrease.