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Dima020 [189]
3 years ago
7

The ratio of coils of wire in the primary winding to the secondary winding of a transformer is 3:2. How does the transformer cha

nge the voltage of a current applied to the primary winding?
It increases to three-halves times the original.
It decreases to two-thirds the original.
It increases to three times the original.
It decreases to one-third the original.
Physics
2 answers:
kykrilka [37]3 years ago
8 0

The correct answer is (B)... I am right!

LenaWriter [7]3 years ago
6 0
In a transformer, the ratio of the electromotive forces (EMFs), or voltages, at the primary and secondary ends of the transformer is equivalent to the ratio of the turns in the winding of the primary and secondary end. Mathematically:
E₁/E₂ = T₁/T₂
Given that T₁/T₂ = 3/2,
E₁/E₂ = 3/2
E₂ = 2/3 E₁
Therefore, the voltage decreases to two-thirds of the original value.
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Two different simple harmonic oscillators have the same natural frequency (f=8.80 Hz) when they are on the surface of the Earth.
bekas [8.4K]

Answer:

8.80 Hz

Explanation:

The frequency of a loaded spring is given by

f=\dfrac{1}{2\pi}\sqrt{\dfrac{k}{m}}

where k and m are the spring constant and the mass of the load respectively. The values of these do not change because they are internal properties of the components of the system.

Hence, the frequency of the vertical spring mass does not change and is 8.80 Hz.

On the other hand, the frequency of the simple pendulum is affected because it is given by

\dfrac{1}{2\pi}\sqrt{\dfrac{g}{l}}

where g and l are acceleration due to gravity and length of the pendulum, respectively. It is thus seen that it depends on g, which changes with location. In fact, the new frequency is given by

f_2 = 8.80\sqrt{\dfrac{1.67}{9.81}}=3.63 \text{ Hz}

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3 years ago
What is the equation that relate electric potential (voltage) to electric field?
erma4kov [3.2K]
V= I x R
I= V / R
r= V / I
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3 years ago
Hooke's Law Practice
Oxana [17]

Answer:sheeExplanation:

8 0
3 years ago
I need help with these. Please show workings<br>​
Sauron [17]

Answer:

Imp = 25 [kg*m/s]

v₂= 20 [m/s]

Explanation:

In order to solve these problems, we must use the principle of conservation of linear momentum or momentum.

1)

(m_{1}*v_{1})+(F*t)=(m_{1}*v_{2})

where:

m₁ = mass of the object = 5 [kg]

v₁ = initial velocity = 0 (initially at rest)

F = force = 5 [N]

t = time = 5 [s]

v₂ = velocity after the momentum [m/s]

(5*0) +(5*5) = (m_{1}*v_{2}) = Imp\\Imp = 25 [kg*m/s]

2)

(m_{1}*v_{1})+(F*t)=(m_{1}*v_{2})\\(0.075*0)+(30*0.05)=(0.075*v_{2})\\v_{2}=20 [m/s]

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A

Explanation:

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