A piston in an engine is attached to a connector rod of length L at the wrist pin at point P . As the piston travels back and forth, the connector cap at point Q travels counterclockwise along a circular path of radius r . If L > 2 r , and a represents ∠ P C Q . a. Use the law of cosines to show that the distance x from the wrist pin to the crank circle is given by x = r cos α + r 2 cos 2 a − r 2 + L 2 − r . b. Find the distance between the wrist pin and crank circle for a truck engine with connector rod of length 5.9 in . and crank radius of 1.7 in . when a = 105 ° . Round to the nearest tenth of an inch, c. Find the maximum and minimum distances that the wrist pin is to the crank circle, using the values from part (b).
A piston in an engine is attached to a connector rod of length L at the wrist pin at point P . As the piston travels back and forth, the connector cap at point Q travels counterclockwise along a circular path of radius r . If L > 2 r , and a represents ∠ P C Q . a. Use the law of cosines to show that the distance x from the wrist pin to the crank circle is given by x = r cos α + r 2 cos 2 a − r 2 + L 2 − r . b. Find the distance between the wrist pin and crank circle for a truck engine with connector rod of length 5.9 in . and crank radius of 1.7 in . when a = 105 ° . Round to the nearest tenth of an inch, c. Find the maximum and minimum distances that the wrist pin is to the crank circle, using the values from part (b).
Solution Summary: The author explains the law of cosines to prove that the distance between the wrist pin attached to the piston in an engine at point P and the crank circle in the figure is x=rmathrm
A piston in an engine is attached to a connector rod of length
L
at the wrist pin at point
P
. As the piston travels back and forth, the connector cap at point
Q
travels counterclockwise along a circular path of radius
r
. If
L
>
2
r
, and a represents
∠
P
C
Q
.
a. Use the law of cosines to show that the distance
x
from the wrist pin to the crank circle is given by
x
=
r
cos
α
+
r
2
cos
2
a
−
r
2
+
L
2
−
r
.
b. Find the distance between the wrist pin and crank circle for a truck engine with connector rod of length
5.9
in
.
and crank radius of
1.7
in
.
when
a
=
105
°
.
Round to the nearest tenth of an inch,
c. Find the maximum and minimum distances that the wrist pin is to the crank circle, using the values from part (b).
Use the information to find and compare Δy and dy. (Round your answers to four decimal places.)
y = x4 + 7 x = −3 Δx = dx = 0.01
Δy =
dy =
4. A car travels in a straight line for one hour. Its velocity, v, in miles per hour at six minute intervals is shown
in the table. For each problem, approximate the distance the car traveled (in miles) using the given method,
on the provided interval, and with the given number of rectangles or trapezoids, n.
Time (min) 0 6 12 18|24|30|36|42|48|54|60
Speed (mph) 0 10 20 40 60 50 40 30 40 40 65
a.) Left Rectangles, [0, 30] n=5
b.) Right Rectangles, [24, 42] n=3
c.) Midpoint Rectangles, [24, 60] n=3
d.) Trapezoids, [0, 24] n=4
The bracket BCD is hinged at C and attached to a control cable at B. Let F₁ = 275 N and F2 = 275 N.
F1
B
a=0.18 m
C
A
0.4 m
-0.4 m-
0.24 m
Determine the reaction at C.
The reaction at C
N Z
F2
D
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