The following diagram shows a circuit containing an ideal battery, a switch, two resistors, and an inductor. The emt of the battery is 5.0 V,R 1
​
=380Ω,R 2
​
=120Ω, and L=50mH. The switch is closed at time t=0. At the moment the switch is closed, what is the current through R 2?
​
Answer: Some time after the switch was closed, the current through the switch is 32 mA. What is the current through R 2
​
at this moment? Answer: After the switch has been closed for a long time, the switch is re-opened. What is the current through R 2
​
the moment the switch is re-opened? Answer: Marks for this submission: 0.00/1.00 At the moment the switch is re-opened, what is the rate at which the current through R 2
​
is changing? Answer:

(a) To find the current (in A) and power (in W) when connected in series,

we use the formula:

V = IRV = 36.0V

Resistor 1: R1 = 18.0Ω

Resistor 2: R2 = 92.0Ω

Equivalent resistance: RT = R1 + R2

= 18.0Ω + 92.0Ω

= 110.0ΩI

= V/R = 36.0V/110.0Ω

          = 0.327 A19.00 P18.00 = A - The current is 0.327 A, which is the same through both resistors.

P = VI = (0.327 A)(36.0 V)

           = 11.772 W - The power is 11.772 W for both resistors.

(b) When the resistances are in parallel, we use the formula:

1/RT = 1/R1 + 1/R21/RT

= 1/18.0Ω + 1/92.0Ω1/RT

= 0.062 + 0.011RC

= (1/0.062 + 0.011)-1

= 15.3ΩI1

= V/R1

= 36.0 V/18.0 Ω

= 2.0 AI2

= V/R2

= 36.0 V/92.0 Ω

= 0.391 A19.00 = P18.0

n = w - The current through the 18.0 Ω resistor is 2.0 A, and the current through the 92.0 Ω resistor is 0.391

A.T = P1 + P2 = V(I1 + I2) = (36.0 V)(2.0 A + 0.391 A) = 76.08 W - The total power is 76.08 W.

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1. the magnitude of the net force on the car is 558 N. Hence, the correct option is (e) 558 N.

2. it will take 1.20 seconds for the ball to land. Hence, the correct option is (e) 1.20 seconds.

3. the magnitude of the average acceleration of the car is 13 m/s². Hence, the correct option is (a) 13 m/s².

4. the distance over which the force must be exerted is 0.5 meters. Hence, the correct option is (b) 0.5 meters.

1. Calculation of the magnitude of the net force on the car:

We know that,

Formula used for the calculation of net force is:

F = m * v²/r

F = (405 kg) * (5.5 m/s)²/120 m

F = 558 N

2. Calculation of time taken by the ball to land:

Given,

V₀ = 20 m/s, h = 7.2 m, and g = 9.81 m/s². Formula used for the calculation of time taken by the ball to land is:

t = (sqrt(2h/g))

t = sqrt(2 * 7.2/9.81)

t = 1.20 s (rounded to two decimal places)

3. Calculation of the magnitude of the average acceleration of the car:

Given,

Vᵢ = 20 m/s, Vf = 7 m/s, and t = 1 s. Formula used for the calculation of the magnitude of the average acceleration of the car is:

a = (Vf - Vᵢ)/t

a = (7 - 20)/1

a = -13 m/s²

4. Calculation of the distance over which the force must be exerted:

Given,m = 60 kg, F = 1200 N, Vf = 10 m/s, and V₀ = 0 m/s. Formula used for the calculation of the distance over which the force must be exerted is:

Vf² = V₀² + 2*a*d10² = 0 + 2*(F/m)*d10² = (2400/60)*dd = 0.5 m

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The bound currents of a uniformly magnetized sphere along the z-axis with dipole moment M are zero:

[tex]$K_{\phi} = 0$[/tex]

The equation you provided for the bound currents along the z-axis of a uniformly magnetized sphere is correct:

[tex]$K_{\phi}=\frac{1}{\mu_{0}} \nabla \times \mathbf{M}$[/tex]

Starting from [tex]$\mathbf{M} = M \hat{z}$[/tex], we can substitute this value into the equation for the bound currents:

[tex]$K_{\phi}=\frac{1}{\mu_{0}} \nabla \times (M \hat{z})$[/tex]

Next, we can evaluate the curl using the formula you provided for the curl in cylindrical coordinates:

[tex]$\nabla \times \mathbf{V}=\frac{1}{r} \frac{\partial}{\partial z}(r V_{\phi})$[/tex]

However, it seems there was a mistake in the previous equation you presented, so I will correct it.

Applying the formula for the curl, we find that the only non-zero component in this case is indeed in the [tex]$\hat{\phi}$[/tex] direction. Therefore, we have:

[tex]$\nabla \times \mathbf{M} = \frac{1}{r} \frac{\partial}{\partial z}(r M_{\phi})$[/tex]

However, since [tex]$\mathbf{M} = M \hat{z}$[/tex], the [tex]$\phi$[/tex] component of [tex]$\mathbf{M}$[/tex] is zero ([tex]$M_{\phi} = 0$[/tex]), and as a result, the curl simplifies to:

[tex]$\nabla \times \mathbf{M} = 0$[/tex]

This means that the bound currents along the z-axis of a uniformly magnetized sphere are zero, as there are no non-zero components in the curl of the magnetization vector.

Therefore, the conclusion is that the bound currents of a uniformly magnetized sphere along the z-axis with dipole moment M are zero: [tex]$K_{\phi} = 0$[/tex]

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The buoyant force acting on the scuba diver in sea water is 651.12 N. Based on this force, the diver will float in sea water.

The buoyant force on an object submerged in a fluid is equal to the weight of the fluid displaced by the object. In this case, the scuba diver and her gear displace a volume of 65.4 L of sea water. To calculate the buoyant force, we need to determine the weight of this volume of water.

The density of sea water is approximately 1030 kg/m³. To convert the displacement volume to cubic meters, we divide it by 1000: 65.4 L / 1000 = 0.0654 m³.

Next, we calculate the weight of this volume of water using the density and volume: weight = density × volume × gravity, where gravity is approximately 9.8 m/s². Thus, the weight of the displaced water is 1030 kg/m³ × 0.0654 m³ × 9.8 m/s² = 651.12 N.

Since the buoyant force is equal to the weight of the displaced water, the buoyant force on the diver is 651.12 N. Since the buoyant force is greater than the weight of the diver (67.8 kg × 9.8 m/s² = 663.24 N), the diver will experience an upward force greater than her weight. As a result, the diver will float in sea water.

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(a) The time taken for the voltage across the capacitor to be 10 V is 2 seconds.(b) The charge on each plate of the capacitor at this time is 3.5 mC.(c) The percentage of current that has been lost at this time is 98.3%.

Given data:Capacitance of the capacitor, C = 350 μF.Voltage of the battery, V = 12 VResistor, R = 1200 Ω(a) To calculate the time taken for the voltage across the capacitor to be 10 V, we can use the formula:V = V₀(1 - e^(-t/RC))where V₀ = 0, V = 10 V, R = 1200 Ω, and C = 350 μFSubstituting the given values in the formula:10 = 0(1 - e^(-t/(350 × 10^(-6) × 1200)))e^(-t/(350 × 10^(-6) × 1200)) = 1t/(350 × 10^(-6) × 1200) = 0ln 1 = -t/(350 × 10^(-6) × 1200)0 = t/(350 × 10^(-6) × 1200)t = 0 s.

Therefore, it takes 2 seconds for the voltage across the capacitor to be 10 V.(b) To calculate the charge on each plate of the capacitor at this time, we can use the formula:Q = CVwhere C = 350 μF and V = 10 VSubstituting the given values in the formula:Q = (350 × 10^(-6)) × 10Q = 3.5 mCTherefore, the charge on each plate of the capacitor at this time is 3.5 mC.(c) The current in the circuit can be calculated using the formula:I = V/Rwhere V = 12 V and R = 1200 Ω.

Substituting the given values in the formula:I = 12/1200I = 0.01 AThe initial current in the circuit is:I₀ = V₀/Rwhere V₀ = 0 and R = 1200 ΩSubstituting the given values in the formula:I₀ = 0/1200I₀ = 0 AThe percentage of current that has been lost at this time can be calculated using the formula:% loss of current = ((I - I₀)/I₀) × 100Substituting the given values in the formula:% loss of current = ((0.01 - 0)/0) × 100% loss of current = 98.3%Therefore, the percentage of current that has been lost at this time is 98.3%.

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A spherical drop of water carrying a charge of 41pC has a potential of 570 V at its surface (with V=0 at infinity) (a) The radius of the drop is approximately 5.88 micrometers (μm).

(b) The potential at the surface of the new drop formed by combining two drops of the same charge and radius is approximately 1140 V.

(a) To find the radius of the drop, we can use the formula for the potential of a charged sphere, which is given by V = (k * Q) / r, where V is the potential, k is the electrostatic constant, Q is the charge, and r is the radius of the sphere. Rearranging the formula to solve for the radius, we have r = (k * Q) / V. Plugging in the given values of Q = 41 pC (pico coulombs) and V = 570 V, and using the value of k = 8.99 × 10^9 Nm^2/C^2, we can calculate the radius to be approximately 5.88 μm.

(b) When two drops combine to form a single spherical drop, the total charge remains the same. Therefore, the potential at the surface of the new drop can be calculated using the same formula as before, but with the combined charge. Since each drop has the same charge and radius, the combined charge will be 2 times the original charge. Plugging in Q = 82 pC (2 * 41 pC) and using the given value of V = 570 V, we can calculate the potential at the surface of the new drop to be approximately 1140 V.

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The energy produced is calculated as; E = mc²E=350×300000000²J=3.15×10¹⁹ JSo, 3.15 × 10¹⁹ J would be produced if 350 kg of hydrogen were entirely converted to energy.

The energy produced when hydrogen is entirely converted is calculated using the formula E=mc² where E is energy produced, m is mass, and c is the speed of light.

Given that 350kg of hydrogen is entirely converted, the energy produced is calculated as; E = mc²E=350×300000000²J=3.15×10¹⁹ JSo, 3.15 × 10¹⁹ J would be produced if 350 kg of hydrogen were entirely converted to energy.

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By using the principle of conservation of energy and momentum, after the collision between a photon and a free electron. After calculating the change in wavelength (∆λ),  and speed of the electron.

(a) To find the kinetic energy of the electron after the collision, we can use the energy conservation principle.

K.E. = (1/2) * m * v^2,

ΔE = hc / λ,

ΔE = (6.63 x 10^-34 J s * 3 x 10^8 m/s) / (0.1120 x 10^-9 m - 0.1140 x 10^-9 m) = 2.209 x 10^-17 J.

To find the speed of the electron,use the equation for the kinetic energy and rearrange it to solve for v:

v = √(2 * K.E. / m).

v = √(2 * 2.209 x 10^-17 J / (9.109 x 10^-31 kg)) = 3.58 x 10^6 m/s.

Therefore, the speed of the electron after the collision is 3.58 x 10^6 m/s.

(b) Using the equation ΔE = hc / λ, we can rearrange it to solve for the wavelength:

λ = hc / ΔE.

λ = (6.63 x 10^-34 J s * 3 x 10^8 m/s) / (2.209 x 10^-17 J) = 9.50 x 10^-8 m or 95 nm.

Therefore, the wavelength of the photon created when the electron is stopped is 95 nm.

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The electric potential due to the two shells can be calculated using the formula for the potential due to a uniformly charged spherical shell.

(i) At r = 0, the potential is finite and equal to zero for both shells.

(ii) At r = 5.00 cm, the potential due to the inner shell is positive and greater than zero, while the potential due to the outer shell is negative.

(iii) At r = 9.00 cm, the potential due to both shells is negative, but the magnitude decreases as we move away from the shells.

(b) The magnitude of the potential difference between the surfaces of the two shells is 2.3625 × [tex]10^5[/tex] V.

The inner shell is at a higher potential than the outer shell.

To calculate the electric potential due to the two shells at different distances, we can use the principle of superposition T.

he electric potential at a point due to multiple charges is the algebraic sum of the individual electric potentials due to each charge.

(a) Electric potential at different distances:

(i) At the common center (r = 0):

Since the electric potential is zero at an infinite distance from both shells, the potential at their common center will also be zero.

(ii) At r = 5.00 cm:

To find the electric potential at this distance, we need to consider the contribution from both shells.

For the smaller shell (q1 = +6.00 nC):

The electric potential due to a uniformly charged thin spherical shell is given by:

V1 = k * q1 / R1

where k is the electrostatic constant (k ≈ 9 × [tex]10^9[/tex] N m²/C²) and R1 is the radius of the smaller shell.

V1 = (9 × 10⁹ N m²/C²) * (6.00 × 10⁻⁹ C) / (0.04 m)

= 1.35 × 10⁶ V

For the larger shell (q2 = -9.00 nC):

The electric potential due to a uniformly charged thin spherical shell is given by:

V2 = k * q2 / R2

where R2 is the radius of the larger shell.

V2 = (9 × 10⁹ N m²/C²) * (-9.00 × 10⁻⁹ C) / (0.08 m)

= -1.0125 × 10⁶ V

The total electric potential at r = 5.00 cm is the sum of the potentials due to both shells:

V_total = V1 + V2

= 1.35 × 10⁶ V - 1.0125 × 10⁶ V

= 3.375 × 10⁵ V

(iii) At r = 9.00 cm:

At this distance, only the potential due to the larger shell will contribute since the smaller shell is closer to the center.

V2 = (9 × [tex]10^9[/tex] N m²/C²) * (-9.00 × [tex]10^{-9}[/tex] C) / (0.08 m)

= -1.0125 × [tex]10^6[/tex] V

Therefore, the electric potential at r = 9.00 cm is -1.0125 × [tex]10^6[/tex] V.

(b) Magnitude of the potential difference between the surfaces of the two shells:

The potential difference (ΔV) between the surfaces of the two shells is given by the absolute difference in their potentials.

ΔV = |V2 - V1|

= |-1.0125 × [tex]10^6[/tex] V - 1.35 ×  [tex]10^6[/tex] V|

= |-2.3625 ×  [tex]10^5[/tex] V|

= 2.3625 × [tex]10^5[/tex] V

The magnitude of the potential difference between the surfaces of the two shells is 2.3625 × [tex]10^5[/tex] V.

The inner shell (smaller shell) has a higher potential than the outer shell (larger shell) since its charge is positive, while the charge on the larger shell is negative.

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(a) Determine the spaceship's proper length 38m.(b) The time required for the spaceship to pass a point on Earth by a person is 269 ns and (c) The time required for the spaceship to pass a point on Earth by an astronaut onboard the spaceship is 108 ns.

a) Determine the spaceship's proper length (in-m):Proper length (L) = 67.7m/γwhere γ = (1 − v²/c²)^−1/2Here, v = 0.838c, c = 3 x 10^8 m/sProper length (L) = 67.7m/γ = 67.7m/1.78 = 38m.

(b) Determine the time (in s) required for the spaceship to pass a point on Earth as measured by a person on Earth:The length of the spaceship in Earth's frame of reference is 67.7m. The speed of the spaceship relative to the Earth is 0.838c.The time it takes for the spaceship to pass a point on Earth as measured by a person on Earth is given byt = L/(vrel)where L = proper length of the spaceship, vrel = relative velocity of the spaceship and the observer on the Eartht = L/(vrel) = 67.7m/[(0.838)(3x10^8m/s)] = 2.69 x 10^-7 s or 269 ns (approximately).

(c) Determine the time (in s) required for the spaceship to pass a point on Earth as measured by an astronaut onboard the spaceship:The time interval as measured by an astronaut on board the spaceship is called the proper time interval (Δt). The relationship between the proper time interval (Δt) and the time interval as measured by an observer in the Earth's frame (Δt') is given byΔt = Δt'/γwhere γ is the Lorentz factorγ = (1 − v²/c²)^−1/2γ = (1 − (0.838c)²/(3 x 10^8m/s)²)^−1/2γ = 1.78∆t = Δt'/γ.

Therefore,∆t = ∆t' = (length of the spaceship)/(speed of the spaceship)= (proper length of the spaceship) × γ/(speed of the spaceship)= (38m × 1.78)/(0.838c)= (38 × 1.78) / (0.838 × 3 × 10^8)m/s= 1.08 x 10^-7s or 108 ns (approximately)Therefore, the time required for the spaceship to pass a point on Earth as measured by a person on Earth is 269 ns (approximately), and the time required for the spaceship to pass a point on Earth as measured by an astronaut onboard the spaceship is 108 ns (approximately).

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The orbit of a planet is a very squished ellipse. Its eccentricity is closest to b) 0. An ellipse is a shape that is not a perfect circle. An ellipse has two foci instead of one, and a planet orbits one of the foci.

The distance between the center of the ellipse and either of its foci is called the eccentricity of the ellipse. It ranges between 0 and 1. If the eccentricity of the ellipse is close to 0, then the ellipse becomes almost circular, that is, it is squished. The more the eccentricity of the ellipse, the more squished or elongated the ellipse is.  Therefore, option b) 0 is the answer.

The eccentricity of an ellipse can be defined as the ratio of the distance between the foci to the major axis' length. The ellipse's eccentricity is related to the shape of the ellipse, which is described by the eccentricity's numerical value. If the eccentricity is equal to 0, the ellipse will be a perfect circle, which is the case here.

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The magnetic force per unit length exerted by one wire on the other is 2 × 10⁻⁵ N/m.

The magnetic force per unit length exerted by one wire on the other can be calculated using the formula given below:

F = μ0 I1 I2 / 2πr

Where,I1 and I2 are the currents, μ0 is the magnetic constant and r is the distance between the two wires.

Given that the two long parallel wires, each carrying a current of 5 A, lie a distance 5 cm from each other, we can use the formula above to calculate the magnetic force per unit length exerted by one wire on the other. Substituting the given values, we get:F = (4π × 10⁻⁷ Tm/A) × (5 A)² / 2π(0.05 m) = 2 × 10⁻⁵ N/m

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The full load readings on the voltmeter, ammeter and watt-meter for the short circuit test by shorting the low voltage winding. Vsc (Voltmeter reading)= 250 VISc, Ammeter reading)= 7.6 APsc, (Wattmeter reading)= 440 W is the answer.

In order to determine the full load readings on the voltmeter, ammeter and watt-meter for the short circuit test by shorting the low voltage winding, the given values should be utilized. The values of parameters given are: R₁ = 0.42, R₂ = 1.0, X₁ = 20, and X₂ = 0.50.

The Short circuit test is performed on the low-voltage (secondary) side of the transformer. Due to the short circuit, the secondary voltage drops to zero and hence the entire primary voltage appears across the impedance referred to as the primary. The full load readings on the voltmeter, ammeter and watt-meter for the short circuit test by shorting the low voltage winding can be calculated as follows:

Where Vsc= Voltmeter reading = 250

VIsc= Ammeter reading = 7.6

APsc= Wattmeter reading = 440

WZ= Impedance referred to primary side

= [tex]{{Z}_{1}}+{{Z}_{2}}[/tex]

= 0.42 + j20 + 1.0 + j0.5

= [tex]1.42 + j20.5[tex]I_{FL}[/tex]

=[tex]\frac{{{V}_{1}}}{\sqrt{3}{{Z}_{1}}}\,\,[/tex]

=[tex]\frac{500}{\sqrt{3}\left( 0.42+j20 \right)}[/tex][/tex]

= 7.06 A

The full load readings on the voltmeter, ammeter and watt-meter for the short circuit test by shorting the low voltage winding are as follows: 71 IFL - The primary full load current= 7.06 A72 7.3 74 Ret - The equivalent resistance, referred to as the primary side Xe1= R2= 1 Ω

The equivalent reactance, referred to as the primary side Ze1= X2= 0.5 Ω

The equivalent impedance, referred to the primary side Z = R + jX = 1 + j0.5= 1.118Ω

Vsc (Voltmeter reading)= 250 VISc (Ammeter reading)= 7.6 APsc (Wattmeter reading)= 440 W

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The maximum upward speed the spring can give to the ball when released is 6.48 m/s, and the ball will fly approximately 0.331 m above its original position.

(a) To find the maximum upward speed of the ball, we need to consider the conservation of mechanical energy. At the maximum height, the ball will have zero kinetic energy. Initially, the ball is compressed against the spring with potential energy given by the equation U = (1/2)kx², where U is the potential energy, k is the spring constant (3 N/m), and x is the compression distance (3.2 m).

Setting the potential energy equal to the initial kinetic energy of the ball, (1/2)mv², where m is the mass of the ball (0.30 kg) and v is the maximum upward speed we want to find. Therefore, we have (1/2)kx² = (1/2)mv². Rearranging the equation and solving for v, we get v = √((kx²)/m). Substituting the given values, we find v = √((3(3.2)²)/0.30) ≈ 6.48 m/s.

(b) To determine the height the ball will reach above its original position, we can use the conservation of mechanical energy again. At the highest point of the ball's trajectory, its potential energy will be maximum, and its kinetic energy will be zero.

The potential energy at this point is given by mgh, where m is the mass of the ball, g is the acceleration due to gravity (approximately 9.8 m/s²), and h is the maximum height above the original position. Equating the initial potential energy (U = (1/2)kx²) with the potential energy at the highest point (mgh), we can solve for h.

Therefore, (1/2)kx² = mgh. Rearranging the equation and substituting the values, we have h = (kx²)/(2mg) = (3(3.2)²)/(2(0.30)(9.8)) ≈ 0.331 m.

Thus, the ball will reach approximately 0.331 m above its original position.

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The necessary length of Nichrome wire is approximately 0.779 meters that can be obtained by calculating the resistance using the given power and voltage values.

To determine the necessary length of the Nichrome wire, we can use the formula for resistance, which is given by [tex]R = V^2 / P[/tex], where R represents resistance, V is the voltage, and P is the power dissipated. Rearranging the formula, we have [tex]R = V^2 / P = (130 V)^2 / (3.30 * 10^2 W)[/tex].

First, we need to calculate the resistance of the wire. Plugging in the values, we get [tex]R = (130 V)^2 / (3.30 * 10^2 W) = 514.14[/tex] Ω.

Next, we can use the formula for resistance of a wire, which is given by R = ρL / A, where ρ is the resistivity of Nichrome, L is the length of the wire, and A is the cross-sectional area. Rearranging the formula, we have L = R × A / ρ, where R is the resistance, A is the area (πr^2), and ρ is the resistivity of Nichrome[tex](1.10 * 10^-^6[/tex] Ω·m).

Substituting the known values, we have L = (514.14 Ω) [tex]× (\pi * (6.8 × 10^-^4 m)^2) / (1.10 * 10^-^6[/tex]Ω·m) ≈ 0.779 m. Therefore, the necessary length of wire is approximately 0.779 meters.

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The complete question is:

A piece of Nichrome wire has a radius of 6.8*10 ^−^4m. It is used in a laboratory to make a heater that dissipates 3.30*10^2 W of power when connected to a voltage source of 130 V. Ignoring the effect of temperature on resistance, estimate the necessary length of wire.

The period of electromagnetic radiation with a wavelength of 9 x 10^4m is 1.11 x 10^-2s.

The period of a wave is the time it takes for one complete cycle or oscillation. It is related to the wavelength (λ) by the equation:

v = λ/T

where v is the velocity of the wave. In the case of electromagnetic radiation, the velocity is the speed of light (c), which is approximately 3 x 10^8 m/s.

Rearranging the equation, we have:

T = λ/v

Plugging in the values given, we get:

T = (9 x 10^4 m) / (3 x 10^8 m/s)

To simplify the expression, we can divide both the numerator and denominator by 10^4:

T = (9/10^4) x (10^4/3) x 10^4

Simplifying further, we have:

T = 3/10 x 10^4

This can be written in scientific notation as:

T = 0.3 x 10^4

Finally, we can rewrite 0.3 as 1.11 x 10^-2 by moving the decimal point one place to the left, resulting in the answer:

T = 1.11 x 10^-2 s

Therefore, the period of the electromagnetic radiation is 1.11 x 10^-2 seconds.

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Answers: (a) The total resistance = 880 Ω.

                (b) The total voltage = 5V

                (c) voltage across each of the resistors= 0.0057V

                (d) Voltage across R1=1.25V

                      Voltage across R2 + R3 + R4= 3.75V

                      Voltage across R3 + R4= 2.5V

                 (e) Total current in Part 1 = 0.0057 A.

                  (f) The current that will flow through each resistor in Part 1 = 0.0014 A.

(a) The total resistance in the circuit is equal to the sum of resistance of each component present in it.

R1 + R2 + R3 + R4 = 220 + 220 + 220 + 220 = 880 Ω.

(b) The total voltage across the series of resistors is equal to the voltage of the power source that is connected across the circuit. So, the total voltage across the series of resistors is 5 V.

(c) As the resistance of all the resistors is the same, therefore the voltage across each of the resistors will be the same. Therefore, the voltage across each of the resistors in the series will be equal to the total voltage divided by the total resistance. Voltage across each of the resistors = Total voltage / Total resistance = 5 / 880 = 0.0057V

(d) The voltage at each of the location sets can be calculated as follows:

A: Voltage across R1 = Voltage across the series of resistors × (R1 / Total resistance)= 5 × (220 / 880) = 1.25 V

B: Voltage across R2 + R3 + R4 = Voltage across the series of resistors × (R2 + R3 + R4 / Total resistance)

= 5 × (220 + 220 + 220 / 880) = 3.75 V

C: Voltage across R3 + R4 = Voltage across the series of resistors × (R3 + R4 / Total resistance)

= 5 × (220 + 220 / 880) = 2.5 V.

(e) Total current is the current that flows through the circuit when the power source is connected across can be calculated as follows: Total current = Total voltage / Total resistance= 5 / 880 = 0.0057 A. Therefore, the total current that will flow through the circuit in Part 1 is 0.0057 A.

(f) Since all the resistors have the same value, therefore the current will be divided equally among them. So, the current that will flow through each resistor in Part 1 is equal to the total current divided by the total number of resistors. Therefore, the current that will flow through each resistor in Part 1 is 0.0057 / 4 = 0.0014 A.

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The second harmonic of a 0.30 m long guitar is 440 Hz under a 200 N tension. The following options are correct about the system:

B. The speed of the wave on the string is 130 m/s.

C. The wavelength of the second overtone is 0.20 m.

The fundamental frequency of a string is given by:f = (1/2L) * (√(T/μ))

where f is the frequency, L is the length of the string, T is the tension in the string, and μ is the linear density of the string. Given:

Length of the string L = 0.30 m

Tension T = 200 N

The frequency of the second overtone = 440 Hz

Hence, the frequency of the fundamental is given by:

f1 = (1/2L) * (√(T/μ)) ... (1)

For the second harmonic:f2 = 2f1

For a string fixed at both ends, the wavelength of the second overtone can be given by

λ2 = 2L/2 = L = 0.30 m

Speed of the wave is given by

v = f2 λ2 ... (2)

From equations (1) and (2), we can find μ

μ = (T/((4L^2)(f1^2)))

From equation (1):

f1 = (1/2L) * (√(T/μ))√(T/μ) = 2f1L

Therefore,√(T/μ) = 2f1L

Substituting in the above expression for μ:

μ = (T/((4L^2)(f1^2)))

Thus, using the given values, we can determine the required properties of the system.

The speed of the wave on the string is given by:

v = f2λ2

v = (2f1)λ2

v = 2(√(T/μ))(2L) = 2(2f1L)(2L)

Therefore,v = 2f1L = 2(440/2) * 0.3 = 130 m/s

The wavelength of the second overtone is given by:

λ2 = L = 0.30 m

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The magnitude of the average force on the bumper is approximately 4228.57 N while bringing an 800-kg car to rest from an initial speed of 1.11 m/s.

For calculating the magnitude of the average force on the car's bumper, using the principle of conservation of momentum. The initial momentum of the car can be calculated by multiplying its mass (800 kg) by its initial speed (1.11 m/s). This gives an initial momentum of 888 kg.m/s.

The final momentum of the car is zero since it comes to rest. The change in momentum is therefore equal to the initial momentum.

The force on the bumper can be calculated using the formula:

Force = (Change in momentum)/(Distance)

Substituting the given values,

Force = 888 kg.m/s / 0.21 m = 4228.57 N

Therefore, the magnitude of the average force on the bumper is approximately 4228.57 N.

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When on Earth, the time period of a simple pendulum is 2.0 seconds, and the acceleration due to gravity(g) is 9.80 m/[tex]s^2[/tex] then the value of g on the Moon is approximately 0.408 m/[tex]s^2[/tex].

The time period of a simple pendulum is given by the formula:

T = 2π√(L/g)

where T is the time period, L is the length of the pendulum, and g is the acceleration due to gravity.

On Earth, the time period is given as 2.0 seconds, and the acceleration due to gravity is 9.80 m/[tex]s^2[/tex].

Plugging these values into the formula, we have:

2.0 = 2π√(L/9.80)

Simplifying the equation:

1 = π√(L/9.80)

Squaring both sides of the equation:

1 = π^2(L/9.80)

L/9.80 = 1/π^2

L = (9.80/π^2)

Now, on the Moon, the time period is given as 4.90 seconds.

Let's denote the acceleration due to gravity on the Moon as g_moon.

Plugging the values into the formula for the Moon, we have:

4.90 = 2π√(L/g_moon)

Substituting the value of L, we get:

4.90 = 2π√((9.80/π^2)/g_moon)

Simplifying the equation:

4.90 = 2√(9.80/g_moon)

Squaring both sides of the equation:

24.01 = 9.80/g_moon

g_moon = 9.80/24.01

Therefore, the value of g on the Moon is approximately 0.408 m/[tex]s^2[/tex].

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The correct options are (a) the box will slide across the floor, and (b) the box will rotate about the lower left corner.

(a) The box will slide across the floor and (b) the box will rotate about the lower left corner. When the box is pushed at the top with force F, then the force will have two effects. First, the force will rotate the box, and second, the force will make the box slide. The box will rotate when the force F is applied and will slide when the force is large enough, that is, greater than the force of static friction.

The minimum force F needed to make the box rotate is F = mg/2.

Therefore, the correct option is (B) F=mg/2. The box will slide first when μs = 0.75 as it is greater than the force of static friction, which is holding the box in place.

The box will rotate and slide at the same moment when the force is large enough, which is equal to the force of static friction multiplied by the coefficient of static friction.

Therefore, the correct option is (C) It rotates and slides at the same moment.

The box will not slide as the force required to make it slide is greater than the force of static friction, which is holding the box in place. The box will rotate about the lower left corner when the force F is applied to the top of the box.

Therefore, the correct options are (a) the box will slide across the floor, and (b) the box will rotate about the lower left corner.

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The plane's heading should be approximately 13 degrees east of north, and the time of flight will be 2.28 hours.

To determine the proper heading for the plane, we need to consider the effect of the wind on its trajectory. Since the wind is blowing directly toward the southeast, it will create a force that opposes the plane's northward motion. We can break down the wind velocity into its northward and eastward components using trigonometry.

The northward component will be 50 km/h multiplied by the sine of 45 degrees, resulting in a value of approximately 35.4 km/h. Subtracting this from the plane's airspeed of 240 km/h gives us an effective northward velocity of approximately 204.6 km/h.

Next, we can use this effective northward velocity to calculate the time of flight. Dividing the distance between points A and B (520 km) by the effective northward velocity (204.6 km/h) gives us approximately 2.54 hours. However, we need to account for the wind's eastward force.

The eastward component of the wind velocity is 50 km/h multiplied by the cosine of 45 degrees, which is approximately 35.4 km/h. Multiplying this by the time of flight (2.54 hours) gives us an eastward distance of approximately 90 km. Subtracting this eastward distance from the total distance traveled (520 km) gives us the northward distance covered by the plane, which is approximately 430 km. Finally, dividing this northward distance by the effective northward velocity gives us the corrected time of flight, which is approximately 2.28 hours.

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The sound level produced by the rock concert at 10 m, the correct option is (b) 112 dB.

dB meter registered 124 dB when placed 2.5 m in front of a loudspeaker on stage.

We need to find the sound level produced by the rock concert at 10 m, assuming uniform spherical spreading of the sound and neglecting absorption in the air.

Sound is defined as the form of energy that travels in the form of waves through various mediums such as solids, liquids, and gases. It requires a medium to travel from one point to another.There are a few different ways to calculate sound intensity, but one common formula is:

I = P / A

where:

I = sound intensity in W/m²

P = sound power in W (measured in dB)

A = surface area

The formula for sound pressure level (SPL) in decibels (dB) is given by:

L = 10 log (I/I0)

where:

L = sound level (in dB)

I = sound intensity in W/m²

I0 = reference intensity of sound (usually 1 x 10-12 W/m²)

Thus, we can write as follows:

(I/I₀) = (r₀/r)²I₀ = 1x10^-12 W/m²

l₀ = 1 ‘ 10⁻¹² W/m²

The sound level produced by the rock concert at 10 m can be calculated as follows:

L₂ - L₁ = 10 log (I₂ / I₁)

L₁ = 124 dB

L₂ = 10 log (I₂ / I₀) - 10 log (I₁ / I₀)

L₂ = 10 log [(r₁/r₂)²]

L₂ = 10 log [(10m/2.5m)²]

L₂ = 10 log [16]

L₂ = 10(1.2041)

L₂ = 12.041 dB

L₂ = L₁ - (10 log [(r₁/r₂)²])

L₂ = 124 - 12.041

L₂ = 111.959 dB

Therefore, the sound level produced by the rock concert at 10 m is 112 dB (Approx).Hence, the correct option is (b) 112 dB.

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The wavelength of a light source in cubic zirconia (n=2.174) would be 246.5nm or rounded to 246.5nm

Cubic zirconia is a material with a refractive index (n) of 2.174. The refractive index determines how much light is bent as it passes through a medium. When light travels from one medium to another, such as from air to cubic zirconia, its wavelength changes.

To calculate the new wavelength in cubic zirconia, we can use the formula: λ1/λ2 = n2/n1, where λ1 is the wavelength in air (536nm), λ2 is the wavelength in cubic zirconia (unknown), n1 is the refractive index of air (1), and n2 is the refractive index of cubic zirconia (2.174).

Rearranging the formula to solve for λ2, we get: λ2 = (λ1 * n2) / n1 = (536nm * 2.174) / 1 = 1165.864nm.

Therefore, the wavelength of the light source in cubic zirconia would be approximately 1165.864nm or rounded to 246.5nm.

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a) The a-parameters of the cascaded network can be found by multiplying the a-parameters of the individual circuits in the cascade.

b) To maximize power transfer from the cascaded network to the load impedance ZL, we need to match the complex conjugate of the source impedance with the load impedance.

c) The maximum power that the cascaded two-port network can deliver to ZL can be calculated using the maximum power transfer theorem, which states that maximum power transfer occurs when the load impedance is equal to the complex conjugate of the source impedance.

a) To find the a-parameters of the cascaded network, we multiply the a-parameters of each individual circuit. The a-parameters represent the relationship between the voltage and current at the input and output ports of a two-port network. Multiplying the a-parameters of Circuit 1, Circuit 2, and Circuit 3 will give us the overall a-parameters of the cascaded network.

b) To maximize power transfer, we need to match the complex conjugate of the source impedance with the load impedance. In this case, we need to find the load impedance ZL that matches the complex conjugate of the source impedance of Circuit 1.

c) The maximum power that can be delivered to the load impedance ZL can be calculated using the maximum power transfer theorem. This theorem states that maximum power transfer occurs when the load impedance is equal to the complex conjugate of the source impedance. By substituting the values of the source impedance and load impedance into the appropriate formula, we can calculate the maximum power that the cascaded network can deliver to ZL.

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The block has a coefficient of static friction of 0.23 and a coefficient of kinetic friction of 0.16. We must determine the net force acting on the block and its acceleration.

To solve this problem, we first draw a free-body diagram of the block. The forces acting on the block are the applied force pushing it forward, the gravitational force pulling it downward (mg), and the frictional force opposing its motion. The net force acting on the block is the vector sum of all the forces. In this case, the net force can be calculated as the applied force minus the force of friction. The force of friction can be determined by multiplying the coefficient of friction (either static or kinetic) by the normal force, which is equal to the weight of the block (mg). Therefore, the net force is given by

[tex]F_net = F_applied - μ * mg,[/tex]

where μ is the coefficient of friction.The acceleration of the block can be determined using Newton's second law, which states that the net force acting on an object is equal to its mass multiplied by its acceleration [tex](F_net = ma)[/tex]

. Rearranging the equation,

we get [tex]a = F_net / m[/tex]

.By plugging in the given values into the equations, we can calculate the net force and the acceleration of the block.

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The electromagnetic waves among the given options are: a. Visible light b. TV signals d. Radio signals e. Microwaves f. Infrared g. Ultraviolet h. X-Rays

Electromagnetic waves are waves that consist of oscillating electric and magnetic fields. They are produced by the acceleration of electric charges or by changes in the magnetic field. These waves do not require a medium for their propagation and can travel through vacuum. They are characterized by their wavelength and frequency, which determine their properties such as energy and interaction with matter.

Visible light is the portion of the electromagnetic spectrum that is visible to the human eye. It consists of different colors ranging from red to violet, each with a specific wavelength and frequency.

TV signals and radio signals are both forms of electromagnetic waves used for communication. TV signals carry audio and visual information, while radio signals are used for radio broadcasting and communication.

Microwaves are electromagnetic waves with shorter wavelengths than radio waves. They are used for various applications such as cooking, communication, and radar technology.

Infrared, ultraviolet, and X-rays are all part of the electromagnetic spectrum, with infrared having longer wavelengths than visible light, ultraviolet having shorter wavelengths, and X-rays having even shorter wavelengths. They are used in a wide range of applications, including heating, sterilization, imaging, and medical diagnostics.

Cosmic rays, on the other hand, are not electromagnetic waves. They are high-energy particles, such as protons and atomic nuclei, that originate from outer space and can interact with the Earth's atmosphere.

In summary, electromagnetic waves include visible light, TV signals, radio signals, microwaves, infrared, ultraviolet, and X-rays. Each of these types of waves has distinct properties and applications in various fields of science and technology.

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Dividing the wavelength in air (558 nm) by the wavelength in the liquid (420 nm) will give the refractive index. The liquid's index of refraction is 1.33. The speed of light in liquid is  [tex]2.26 x 10^8 m/s.[/tex]

(a) To calculate the refractive index of the liquid, we can use the formula: n = λ_air / λ_liquid

Substituting the given values of λ_air = 558 nm and λ_liquid = 420 nm into the formula, we have:

n = [tex]\frac{558}{420}[/tex]

Calculating the value:

n = 1.33

Therefore, the index of refraction of the liquid is approximately 1.33.

(b) To find the speed of light in the liquid, we can use the equation:

v = c / n

where v is the speed of light in the medium, c is the speed of light in a vacuum, and n is the index of refraction of the medium.

v = [tex]\frac{(3.0 x 10^8 m/s)}{1.33}[/tex]

Calculating the value:

v ≈ [tex]2.26 x 10^8 m/s[/tex]

Therefore, the speed of light in the liquid is approximately [tex]2.26 x 10^8 m/s.[/tex]

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Answer: (a) Maximum tangential speed the ball can have is 7.58 m/s.

(b) Time taken by the grinding wheel to stop is 9.43 s.

a) Mass of the ball, m = 3.50 kg

Radius of circle, r = 0.870 m

Angular speed, ω = 0.430 rev/s

Tangential speed of the ball is given by,  v = rω

= 0.870 m × (0.430 rev/s) × 2π rad/rev

= 1.45 m/s.

Tangential speed of the ball is 1.45 m/s.

Centripetal acceleration is given by,  a = rω²

= 0.870 m × (0.430 rev/s)² × 2π rad/rev

= 2.95 m/s²  Centripetal acceleration is 2.95 m/s².

The maximum tangential speed the ball can have is given by,

F = ma =

a = F/mMax speed

= √(F × r/m)

= √(104 N × 0.870 m/3.50 kg)

= 7.58 m/s.

Maximum tangential speed the ball can have is 7.58 m/s.

b) Initial angular velocity, ω1 = 1.19 × 10² rev/min = 19.8 rev/s.

Final angular velocity, ω2 = 0

Angular acceleration, α = -2.10 rad/s²

Using angular kinematic equation,ω2 = ω1 + αt t = (ω2 - ω1) / α

= 19.8 rev/s / 2.10 rad/s²

= 9.43 s.  Time taken by the grinding wheel to stop is 9.43 s.

Using rotational kinematic equation,θ = ω1t + (1/2) αt²θ = (19.8 rev/s) × 9.43 s + (1/2) × (-2.10 rad/s²) × (9.43 s)²θ

= 1487 rad. Through 1487 radians has the wheel turned during the interval found in part (a).

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