Answer:
The torque on the coil is
Solution:
No. of turns per meter length, n = 1400 turns\m
Current, I = 4.9 A
Angle,
No. of turns of coil, N = 42 turns
Area, A =
Current in the coil, I' = 0.45 A
Now,
To calculate the exerted torque on the coil:
The magnetic field, B produced inside the coil is given by:
Now, the torque exerted is given by:
Answer:
Explanation:
Given:
A long solenoid having
no. of turns per meter, n =1400
current, I = 4.9 A
A small coil of wire placed inside the solenoid
angle of orientation with respect to the axis of the solenoid, °
no. of turns in the coil, N = 42
area of the coil,
current in the coil,
We have for torque:
.......................(1)
∵................................(2)
where:
B= magnetic field
The permeability of free space =
Substitute B from eq. (2) into eq. (1) we have:
putting the respective values in above eq.
Answer:
Valence electrons
Explanation:
The valence electrons are found in the outermost shell of an atom. They are the most loosely held electrons found within an atom. These valence electrons are involved and are used to form bonds when atoms combines together.
The energy required to remove these loosely held electrons is relatively low compared to electrons located in the inner orbitals. This is why when atoms combines, they use the outermost electrons to form bonds and mimic stable atoms like those of the noble gases.
False, it would be only mass who does it.
Answer:
0.25 m
Explanation:
The intensity of the magnetic field around a current-carrying wire is given by:
where
where
is the permeabilty of free space
I is the current
r is the distance from the wire
In this problem, we know:
is the magnetic field
is the current in the wire
Re-arranging the equation, we can find the distance of the field from the wire:
B) children performing poorly in school
C) children performing well in school
D) children consuming a large quantity of sugar in the morning