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RUDIKE [14]
2 years ago
4

Two parallel wires are separated by 6.00 cm , each carrying 3.00 A of current in the same direction.(a) What is the magnitude of

the force per unit length between the wires?
Physics
1 answer:
kondaur [170]2 years ago
8 0

The magnitude of force per unit length between the wires is 3 × 10⁻⁵ N/m.

The force between two parallel currents I₁ and I₂ that are spaced apart by r is measured as the ratio F/L. If the currents are flowing in the same direction, the force is attracting; if not, it is repulsive.

Each parallel wire carries 3.00 A of current in the same direction and is spaced apart by 6.00 cm.

I = I₁ = I₂ = 3 A

d = 6 cm = 6 × 10⁻² m

The force per unit length exerted by one wire on another is given by:

F/L = μ₀ I₁ I₂ / L

F/ L = (4π × 10⁻⁷) (3)² / [2π (6 × 10⁻²)]

F/ L = 3 × 10⁻⁵ N/m

The force per unit length is 3 × 10⁻⁵ N/m.

Learn more about force here:

brainly.com/question/12970081

#SPJ4

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A Ferris wheel with radius 14.0 m is turning about a horizontal axis through its center. The linear speed of a passenger on the
Marina86 [1]

Answer:

a) The acceleration experimented by the passenger when she passes through the lowest point of her circular motion is: a_{R} = 2.571\,\frac{m}{s^{2}}, \angle = 90^{\circ}.

b) Hence, the acceleration experimented by the passenger when she passes through the highest point of her circular motion is: a_{R} = 2.571\,\frac{m}{s^{2}}, \angle = 270^{\circ}.

c) The Ferris wheel takes 14.646 seconds to make a revolution.

Explanation:

a) An object that rotates at constant angular velocity reports a centripetal acceleration and no tangential acceleration. When passenger passes through the lowest point in her circular motion, centripetal acceleration goes up to the center.

In addition, centripetal acceleration is determined by the following expression:

a_{R} = \frac{v^{2}}{R} (Eq. 1)

Where:

a_{R} - Centripetal acceleration, measured in meters per square second.

v - Linear speed, measured in meters per second.

R - Radius of the Ferris wheel, measured in meters.

If we know that v = 6\,\frac{m}{s} and R = 14\,m, the magnitude of radial acceleration is:

a_{R} = \frac{\left(6\,\frac{m}{s} \right)^{2}}{14\,m}

a_{R} = 2.571\,\frac{m}{s^{2}}

The acceleration experimented by the passenger when she passes through the lowest point of her circular motion is: a_{R} = 2.571\,\frac{m}{s^{2}}, \angle = 90^{\circ}.

b) In the highest point the magnitude of radial acceleration is the same but direction is the opposed to that at lowest point. That is, centripetal acceleration goes down to the center.

Hence, the acceleration experimented by the passenger when she passes through the highest point of her circular motion is: a_{R} = 2.571\,\frac{m}{s^{2}}, \angle = 270^{\circ}.

c) At first we need to calculate the angular velocity of the Ferris wheel (\omega), measured in radians per second, by using the following expression:

\omega = \frac{v}{R} (Eq. 2)

If we know that v = 6\,\frac{m}{s} and R = 14\,m, then the angular velocity of the Ferris wheel is:

\omega = \frac{6\,\frac{m}{s} }{14\,m}

\omega = 0.429\,\frac{rad}{s}

Now we proceed to obtain the period of the Ferris wheel (T), measured in seconds, which is the time needed by that wheel to make on revolution:

T = \frac{2\pi}{\omega} (Eq. 3)

Where \omega is the angular velocity of the Ferris wheel, measured in radians per second.

If we get that \omega = 0.429\,\frac{rad}{s}, then:

T = \frac{2\pi}{0.429\,\frac{rad}{s} }

T = 14.646\,s

The Ferris wheel takes 14.646 seconds to make a revolution.

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Although there are different ways to approach a scientific investigation, all scientific investigations begin with some sort of
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Answer: hypothesis or guess

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Degrees of loudness and softness in music are called.
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Degrees of loudness and softness in music are called dynamics. I don’t really have an explanation for this, that’s just what they’re called. I know because I’m a violinist and learned it when I first started playing.
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A car slows down from 27.7 m/s to 10.9 m/s in 2.37 s, what is the acceleration?
larisa [96]

Answer:

Answer. to final velocity 'v' =10.9 m/s in time 't' = 2.37 secs. So acceleration = -7.09 m/sec^2 or, decceleration is 7.09 m/sec^2

Explanation:

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