A force of 35 N is required to hold a spring that has been stretched from its natural EXAMPLE 3 length of 5 cm to a length of 10 cm. How much work is done in stretching the spring from 10 cm to 14 cm? According to Hooke's Law, the force required to hold the spring stretched x meters SOLUTION beyond its natural length is f(x) = kx. When the spring is stretched from 5 cm to 10 cm, the m. This means that f(0.05) = amount stretched is 5 cm = so 35 0.05k = 35 0.05 Thus f(x) 700x and the work done in stre ching the spring from 10 cm to 14 cm is ]0.09 r0.09 700 x2 2 Jo.05 700х dx 3D 350( ) - co.05)2 : J. = 350

A force of 35 N is required to hold a spring that has been stretched from its natural EXAMPLE 3 length of 5 cm to a length of 10 cm. How much work is done in stretching the spring from 10 cm to 14 cm? According to Hooke's Law, the force required to hold the spring stretched x meters SOLUTION beyond its natural length is f(x) = kx. When the spring is stretched from 5 cm to 10 cm, the m. This means that f(0.05) = amount stretched is 5 cm = so 35 0.05k = 35 0.05 Thus f(x) 700x and the work done in stre ching the spring from 10 cm to 14 cm is ]0.09 r0.09 700 x2 2 Jo.05 700х dx 3D 350( ) - co.05)2 : J. = 350

Functions and Change: A Modeling Approach to College Algebra (MindTap Course List)

6th Edition

ISBN:9781337111348

Author:Bruce Crauder, Benny Evans, Alan Noell

Publisher:Bruce Crauder, Benny Evans, Alan Noell

ChapterA: Appendix

SectionA.2: Geometric Constructions

Problem 10P: A soda can has a volume of 25 cubic inches. Let x denote its radius and h its height, both in...

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Question

100%

A force of 35 N is required to hold a spring that has been stretched from its natural
EXAMPLE 3
length of 5 cm to a length of 10 cm. How much work is done in stretching the spring from 10 cm
to 14 cm?
According to Hooke's Law, the force required to hold the spring stretched x meters
SOLUTION
beyond its natural length is f(x) = kx. When the spring is stretched from 5 cm to 10 cm, the
m. This means that f(0.05) =
amount stretched is 5 cm =
so
35
0.05k = 35
0.05
Thus f(x)
700x and the work done in stre
ching the spring from 10 cm to 14 cm is
]0.09
r0.09
700 x2
2
Jo.05
700х dx 3D
350(
) - co.05)2 :
J.
= 350

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