Pregunta
Two parallel straight wires 10 cm apart, carry currents in opposite directions. The first
wire carrying current
is out of the page, and the second one carrying current
is into the page. The magnitude of the magnetic field halfway between the two
wires is:
(A)
(B)
©
(D)
Zero
wire carrying current
wires is:
(A)
(B)
©
(D)
Ask by Griffin Murphy. in Egypt
Mar 28,2025
Solución de inteligencia artificial de Upstudy
Respuesta verificada por el tutor
Responder
The total magnetic field halfway between the two wires is
.
Solución
We use the formula for the magnetic field at a distance
from a long straight current-carrying wire:
where
.
Since the two wires are 10 cm apart, the point halfway between them is
from each wire.
For each wire with
, the magnitude of the magnetic field is
Simplify the expression step by step:
- Multiply the numerator:
- The denominator is:
- Divide the numerator by the denominator:
Thus, each wire produces a magnetic field of
at the midpoint.
Next, we determine the directions of the fields.
- For the first wire (
) with current out of the page, using the right-hand rule, the magnetic field at a point to the right of the wire points upward. - For the second wire (
) with current into the page, the field at a point to the left of it (the midpoint) also points upward.
Since both fields at the midpoint are in the same direction, they add. Therefore, the total magnetic field is
The correct answer is (A)
.
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The Deep Dive
To find the magnetic field halfway between two parallel wires carrying currents in opposite directions, we can use the formula for the magnetic field around a long straight conductor:
Where
(the permeability of free space) is approximately
and
is the distance from the wire. Since we are looking halfway between the wires,
(5 cm).
For both wires (let’s call them Wire 1 and Wire 2), the currents are equal at
but in opposite directions. Thus, the magnetic fields due to each wire will be equal in magnitude but opposite in direction halfway between the wires. Therefore, they will cancel each other out, leaving the net magnetic field as zero:
The answer is (D) Zero.
Now let’s dive into some background and applications of these concepts!
The magnetic field produced by an electric current was first discovered by Hans Christian Ørsted in 1820, and this groundbreaking finding laid the groundwork for electromagnetism. The directional nature of the magnetic field due to current-carrying wires is dictated by the right-hand rule, which helps visualize how the fields interact.
In the real world, this principle is critical in designing circuit layouts and understanding how devices like electric motors work. When engineers need to manage electromagnetic interference in circuit boards, the understanding of how magnetic fields interact in parallel wires helps them make safer and more efficient designs.

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