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Chapter 6, Problem 69P

(a)

To determine

To sketch: A graph of the applied force versus the extension of the spring.

Introduction: According to Hook’s law, there is a linear relation between the force applied to the spring and the extension of the spring.

(a)

Expert Solution
Check Mark

Explanation of Solution

Given Information:

The data that represents the different loads on a spring and the different length of the stretches is shown below:

Force F (N) Length L (mm)
2.0 15
4.0 32
6.0 49
8.0 64
10 79
12 98
14 112
16 126
18 149
20 175
22 190

Assuming there is no extension in the spring when there is no force applied on the spring, at x=0 then F=0 . So, include the origin point also to draw the graph.

Redraw the table for the given data,

Force F (N) Length L (mm) Length L (m)
0.0 0.0 0.0
2.0 15 0.015
4.0 32 0.032
6.0 49 0.049
8.0 64 0.064
10 79 0.079
12 98 0.098
14 112 0.112
16 126 0.126
18 149 0.149
20 175 0.175
22 190 0.190

Plotting the graph of applied force versus the extension of the spring from the following data given.

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term, Chapter 6, Problem 69P

Figure I

Conclusion:

Therefore, the graph of the applied force versus the extension of the spring is shown in figure I.

(b)

To determine

The straight line that best fits the data by least square fitting.

(b)

Expert Solution
Check Mark

Answer to Problem 69P

Solution: The straight line that best fits the data by least square fitting is F=(116.2N/m)L+0.45N .

Explanation of Solution

Using least square method, estimate the slope of the best fit straight line. Drawing the table for the force and the length of the spring,

F (N) L (m) FL (Nm) L2(m2)
0.0 0.0 0 0
2.0 0.015 0.03 0.000225
4.0 0.032 0.128 0.001024
6.0 0.049 0.294 0.002401
8.0 0.064 0.512 0.004096
10 0.079 0.79 0.006241
12 0.098 1.176 0.009604
14 0.112 1.568 0.012544
16 0.126 2.016 0.015876
18 0.149 2.682 0.022201
20 0.175 3.5 0.030625
22 0.190 4.18 0.0361
F=132 L=1.089 FL=16.876 L2=0.1409

Formula to calculate the slope of the best fit straight line is,

m=FL(L)(F)nL2(L)2n

  • m is the slope of the best fit line.

Substitute 132 for F , 1.089 for L , 16.876 for FL , 0.1409 for L2 and 12 for n .

m=16.876132×1.089120.1409(1.089)212=116.2

Formula to calculate the intercept on force axis is,

b=(Fn)m(Ln)

  • b is the intercept on the force axis.

Substitute 132 for F , 1.089 for L 116.2 for m and 12 for n .

b=(13212)116.2(1.08912)=0.45

Hence the best fit line using the least square method is F=(116.2N/m)L+0.45N .

Conclusion:

Therefore, the straight line that best fits the data by least square fitting is F=(116.2N/m)L+0.45N .

(c)

To determine

Whether to use best fit line using least square method, all the given points must be take or some points can be ignored.

Introduction: The least square method is use to fit the best straight line for a given data. It gives the best fit line.

(c)

Expert Solution
Check Mark

Explanation of Solution

Since the graph that is plot in part (b) is made from the best fit line method using least square method. All the given points are used to find the straight line. If some points are ignored then the value of the best fit line can be changes.

So, all the given point must be taken, no points can ignore while plotting the best fit line using the least square method.

Conclusion:

Therefore, to plot the best fit straight line using least square method all the given points must include.

(d)

To determine

The value of spring constant from the slope of the best fit line.

(d)

Expert Solution
Check Mark

Answer to Problem 69P

Solution: The value of spring constant from the slope of the best fit line is 116.2N/m .

Explanation of Solution

Given Information:

The best fit straight line equation is F=(116.2N/m)L+0.45N .

Formula to calculate the straight line equation is,

y=mx+c

  • m is the slope of the line.
  • c is the intercept of the line on y-axis.

Compare the best fit straight line equation with the standard straight line equation.

m=116.2N/m

Formula to calculate the spring force in the spring is,

F=kx+c

  • F is the applied force on the spring.
  • k is the spring constant.
  • x is the extension in the spring due to force.
  • c is any constant.

The slope of the force equation is k . So, the value of spring constant from the slope of the best fit line is,

k=m

Substitute 116N/m for m to find k ,

k=116.2N/m116N/m

Conclusion:

Therefore, value of spring constant from the slope of the best fit line is 116N/m .

(e)

To determine

The force exerted on the suspended object by the spring.

(e)

Expert Solution
Check Mark

Answer to Problem 69P

Solution: The force exerted on the suspended object by the spring is 12.65N .

Explanation of Solution

Given Information:

The best fit straight line equation is,

F=(116.2N/m)L+0.45N .

Formula to calculate the force on the object by the spring is,

F=(116.2N/m)L+0.45

  • L is the extension in the spring.

Substitute 105mm for L to find F .

F=(116.2N/m)(105mm×103m1mm)+0.45N=12.65N

Conclusion:

Therefore, the force exerted on the suspended object by the spring is 12.65N

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Chapter 6 Solutions

Bundle: Principles of Physics: A Calculus-Based Text, 5th + WebAssign Printed Access Card for Serway/Jewett's Principles of Physics: A Calculus-Based Text, 5th Edition, Multi-Term

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