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(a)
To determine: The magnitude of the relative acceleration as a function of
(a)
![Check Mark](/static/check-mark.png)
Answer to Problem 65P
Answer: The magnitude of the relative acceleration as a function of
Explanation of Solution
Explanation:
Given information:
A object of mass
Figure I
Formula to calculate the relative acceleration is,
Formula to calculate the gravitational force exerted by the object on the Earth is,
By Newton’s law the force exerted by the object is,
From equation (II) and equation (III) is,
The forces
Substitute
By Newton’s law the force exerted by the Earth is,
From equation (IV) and equation (V) is,
Substitute
Substitute
Conclusion:
Therefore, the magnitude of the relative acceleration as a function of
(b)
To determine: The magnitude of the relative acceleration for
(b)
![Check Mark](/static/check-mark.png)
Answer to Problem 65P
Answer: The magnitude of the relative acceleration for
Explanation of Solution
Explanation:
Given information:
A object of mass
From equation (VI) the relative acceleration is,
Substitute
Conclusion:
Therefore, the magnitude of the relative acceleration for
(c)
To determine: The magnitude of the relative acceleration for
(c)
![Check Mark](/static/check-mark.png)
Answer to Problem 65P
Answer: The magnitude of the relative acceleration for
Explanation of Solution
Explanation:
Given information:
A object of mass
From equation (VI) the relative acceleration is,
Substitute
Conclusion:
Therefore, the magnitude of the relative acceleration for
(d)
To determine: The magnitude of the relative acceleration for
(d)
![Check Mark](/static/check-mark.png)
Answer to Problem 65P
Answer: The magnitude of the relative acceleration for
Explanation of Solution
Explanation:
Given information:
A object of mass
From equation (VI) the relative acceleration is,
Substitute
Conclusion:
Therefore, the magnitude of the relative acceleration for
(e)
To determine: The pattern of variation of relative acceleration with
(e)
![Check Mark](/static/check-mark.png)
Answer to Problem 65P
Answer: The relative acceleration is directly proportional to the mass
Explanation of Solution
Explanation:
Given information:
A object of mass
From equation (VI) the relative acceleration is,
This is the linear equation and shows the relative acceleration is directly proportional to the object having mass
Conclusion:
Therefore, the relative acceleration is directly proportional to the object having mass
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Chapter 11 Solutions
Principles of Physics: A Calculus-Based Text
- Your answer is partially correct. Two small objects, A and B, are fixed in place and separated by 2.98 cm in a vacuum. Object A has a charge of +0.776 μC, and object B has a charge of -0.776 μC. How many electrons must be removed from A and put onto B to make the electrostatic force that acts on each object an attractive force whose magnitude is 12.4 N? e (mea is the es a co le E o ussian Number Tevtheel ed Media ! Units No units → answe Tr2Earrow_forward4 Problem 4) A particle is being pushed up a smooth slot by a rod. At the instant when 0 = rad, the angular speed of the arm is ė = 1 rad/sec, and the angular acceleration is = 2 rad/sec². What is the net force acting on the 1 kg particle at this instant? Express your answer as a vector in cylindrical coordinates. Hint: You can express the radial coordinate as a function of the angle by observing a right triangle. (20 pts) Ꮎ 2 m Figure 3: Particle pushed by rod along vertical path.arrow_forward4 Problem 4) A particle is being pushed up a smooth slot by a rod. At the instant when 0 = rad, the angular speed of the arm is ė = 1 rad/sec, and the angular acceleration is = 2 rad/sec². What is the net force acting on the 1 kg particle at this instant? Express your answer as a vector in cylindrical coordinates. Hint: You can express the radial coordinate as a function of the angle by observing a right triangle. (20 pts) Ꮎ 2 m Figure 3: Particle pushed by rod along vertical path.arrow_forward
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