(a)
The electron would be in equilibrium at centre and if displaced would experience a restoring force.
(a)
Answer to Problem 24.62CP
The electron would be in equilibrium at centre and if displaced would experience a restoring force of magnitude
Explanation of Solution
Given info:
Consider the field distance
Write the expression of Guass’s law.
Here,
Write the expression for area of sphere.
Here,
Substitute
Write the expression for electric charge.
Here,
Substitute
Write the expression for volume of sphere.
Write the expression for density of sphere.
Here,
Substitute
Substitute
So,
The above electric field is directed outward.
The expression for the force is,
Substitute
Conclusion:
Therefore, the electron would be in equilibrium at centre and if displaced would experience a restoring force of magnitude
(b)
To show: The constant
(b)
Answer to Problem 24.62CP
The constant
Explanation of Solution
Given info:
Write the expression for spring force.
Here,
Also, the field force is,
Equate the above two force equations.
Substitute
Conclusion:
Therefore, the constant
(c)
The expression for the frequency
(c)
Answer to Problem 24.62CP
The expression for the frequency
Explanation of Solution
Given info:
According to Newton’s second law of motion,
Here,
Also, the field force is,
Equate the above two force equations.
Rearrange the above equation to get
Compare the above equation with the simple harmonic wave equation which is,
Equate the above two acceleration equations.
From the above equation
Write the general expression for frequency of
Substitute
Substitute
Conclusion:
Therefore, the expression for the frequency
(d)
The value of radius of orbit.
(d)
Answer to Problem 24.62CP
The value for
Explanation of Solution
Given info:
Write the expression for frequency
Rearrange the above equation to get
Substitute
Conclusion:
Therefore, the value for
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Chapter 24 Solutions
EBK PHYSICS FOR SCIENTISTS AND ENGINEER
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- electrons Two protons (p) and two (e) are arranged on a circle of 5 [cm], with angles 0₁ = 20°, 0₂ = 60°, 03 = 20° and 04 = 60°, as radius r shown in the figure. (qp = +1.6 x 10-1⁹ [C] and qe = -1.6 × 10-19 [C]). The figure is not to scale. 04 y a. Find Enet, the net electric field vector produced at the center of the circle. Enet =([ ])i + ( ]) Ĵ [N/C] b. Where on the circle should a fifth point charge qo be placed (give its angle relative the +x-axis) and what is its value (calculate qo) in order to have Ēnet (the net electric field at the center of the circle) equals zero (Type the detailed solution to this question in the below box, Show all your calculation steps by typing in the box). Р Xarrow_forwardQ1arrow_forwardWhat is the electric field of a proton at the first Bohr orbit for hydrogen (r = 5.29 × 10−11 m)? What is the force on the electron in that orbit?arrow_forward
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