Force Vectors © 2012 Project Lead The Way, Inc.Principles Of Engineering.
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Transcript of Force Vectors © 2012 Project Lead The Way, Inc.Principles Of Engineering.
![Page 1: Force Vectors © 2012 Project Lead The Way, Inc.Principles Of Engineering.](https://reader036.fdocuments.net/reader036/viewer/2022062308/56649cf95503460f949ca556/html5/thumbnails/1.jpg)
Force Vectors
© 2012 Project Lead The Way, Inc.Principles Of Engineering
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Vectors
Aor B����������������������������
Have both a magnitude and directionExamples: Position, force, moment
Vector Quantities
Vector Notation
Handwritten notation usually includes an arrow, such as
Vectors are given a variable, such as A or B
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Illustrating VectorsVectors are represented by arrows
Include magnitude, direction, and sense
30°+X
Magnitude: The length of the line segmentMagnitude = 3
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Illustrating VectorsVectors are represented by arrows
Include magnitude, direction, and sense
30°+x
Direction: The angle between a reference axis and the arrow’s line of action
Direction = 30° counterclockwise from the positive x-axis
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Illustrating VectorsVectors are represented by arrows
Include magnitude, direction, and sense
30°+x
Sense: Indicated by the direction of the tip of the arrow
Sense = Upward and to the right
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Sense
+x (right)
+x (right)
-x (left)
-x (left)
+y (up) +y (up)
-y (down) -y (down)
(0,0)
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Trigonometry Review
Hypotenuse (hyp)
90°
Opposite Side(opp)
Adjacent Side (adj)
Right Triangle
A triangle with a 90° angle
Sum of all interior angles = 180°
Pythagorean Theorem: c2 = a2 + b2
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Trigonometry Review
sin θ° = opp / hyp
cos θ° = adj / hyp
tan θ° = opp / adj
Hypotenuse (hyp)
90°
Opposite Side(opp)
Adjacent Side (adj)
Trigonometric Functions soh cah toa
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Trigonometry ApplicationThe hypotenuse is the Magnitude of the
Force, F
In the figure here,
The adjacent side is the x-component, Fx
The opposite side is the y-component, Fy
Hypotenuse F
90°
Opposite Side
Fy
Adjacent Side Fx
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Trigonometry Application
sin θ° = Fy / F
cos θ° = Fx / F
tan θ° = Fy / Fx
Hypotenuse F
90°
Opposite Side
Fy
Adjacent Side Fx
Fy= F sin θ°
Fx= F cos θ°
Fx and Fy are negative if left or down, respectively.
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Vector X and Y Components
35.0°
Vector
Magnitude = 75.0 lb
Direction = 35.0°CCW from positive x-axis
Sense = right, up
A��������������
75.0A lb��������������
+x
+y
-y
-x
opp = FAy
adj = FAx
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Vector X and Y Components
75.0 cos35.0 upAxF lb
cosadjhyp
Solve for FAx
cos35.075.0
AxFlb
61.4AxF lb
35.0°
75.0A lb��������������
+x
+y
-y
-x
opp = FAy
adj = FAx
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Vector X and Y ComponentsSolve for FAy
sinopphyp
sin35.075.0
AyF
lb
75.0 sin35.0 upAYF lb
43.0AyF lb
35.0°
75.0A lb��������������
+x
+y
-y
-x
opp = FAy
adj = FAx
sin �������������� AyA
F
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Vector X and Y Components – Your Turn
35.0°
Vector
Magnitude =
Direction =
Sense =
B��������������
75.0B lb��������������
+x
+y
-y
-x
75.0 lb
35.0°CW from positive x-axis
right, down
opp = FBy
adj = FBx
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Solve for FBx
Vector X and Y Components – Your Turn
75.0 cos35.0 rightBxF lb
cosadjhyp
cos35.075.0
BxFlb
61.4BxF lb35.0°
+x
+y
-y
-x
75.0B lb��������������
opp = FBy
adj = FBx
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Vector X and Y Components – Your TurnSolve for FBY
sinopphyp
sin35.075.0
ByF
lb
75.0 sin35.0 downByF lb
43.0ByF lb35.0°
+x
+y
-y
-x
75.0B lb��������������
opp = FBy
adj = FBx
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Resultant Force
75.0A lb��������������
75.0B lb��������������
Two people are pulling a boat to shore. They are pulling with the same magnitude.
35.0
35.0
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Resultant Force
75A lb��������������
75B lb��������������
FAx = 61.4 lb
FBx = 61.4 lb
FAy = 43.0 lb
FBy= -43.0 lb
Fx
FAx = +61.4 lb
FBx = +61.4 lb
Fy
FAy = +43.0 lb
FBy = -43.0 lb
35
35
List the forces according to sense.
Label right and up forces as positive, and label left and down forces as negative.
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Resultant Force
Sum (S) the forcesFx
FAx = +61.4 lb
FBx = +61.4 lb
Fy
FAy = +43.0 lb
FBy = -43.0 lb
SFx = FAx + FBx
SFx = 61.436 lb + 61.436 lb
SFx = 122.9 lb (right)
SFy = FAy + FBy
SFy = 43.018 lb + (-43.018 lb) = 0Magnitude is 122.9 lb
Direction is 0° from the positive x-axis
Sense is right
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Resultant Force
Draw the resultant force (FR)Magnitude is 123 lb
Direction is 0° from the positive x-axis
Sense is right
FR = 122.9 lb
FAx = 61.4 lb
FBx = 61.4 lb
FAy = 43.0 lb
FBy= -43.0 lb
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Resultant Force
400.D lb��������������
300.C lb��������������
60.
30.
Determine the sense, magnitude, and direction for the resultant force.
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Resultant Force
300.C lb��������������
60.
FCy
FCx
Find the x and y components of vector C.
FCx = 300. lb cos60.° right
FCx = 150 lb
FCy = 300. lb sin60.° up
FCy = 260 lb
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Resultant Force
30.FDy
FDx
Find the x and y components of vector D.
FDx = 400 lb cos30.° right
FDx = 350 lb
FDy = 400 lb sin30.° down
FDy = -200 lb
400.D lb��������������
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Resultant ForceList the forces according to sense.
Label right and up forces as positive, and label left and down forces as negative.
Fx
FCx = +150.0 lb
FDx = +346.4 lb
Fy
FCy = +259.8 lb
FDy = -200.0 lb
60
30
400D lb��������������
300C lb��������������
FCx = 150.0 lb
FDx = 346.4 lb
FCy = 259.8 lb
FDy= -200.0 lb
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Resultant ForceSum (S) the forces
Fx
FCx = +150.0 lb
FDx = +346.4 lb
FY
FCy = +259.8 lb
FDy = -200.0 lb
SFx = FCx + FDx
SFx = 150.0 lb + 346.4 lb = 496.4 lb (right)
SFy = FCy + FDy
SFy = 259.8 lb + (-200.0 lb) = 59.8 lb (up)
Sense is right and up.
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Resultant Force
Draw the x and y components of the resultant force.
SFx = 496.4 lb (right) SFy = 59.8 (up)
496.4 lb
59.8 lb
496.4 lb
59.8 lb
FR
FR
Two equivalent ways to draw the X and Y components
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Resultant Force
Solve for magnitude.
496.4 lb
59.8 lb
FRa2 + b2 = c2
(59.8 lb)2 +(496.4 lb)2 =FR2
FR = 500. lb
2 2(59.8 ) (496.4 ) Rlb lb F
Magnitude is 500. lb
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Resultant Force
Solve for direction.
1 59.8tan
496.4
496.4 lb
59.8 lb500. lb
Direction is 7° counterclockwise from the positive x-axis.
tanoppadj
59.8tan
lb 496.4 lb
7
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Resultant Force
Draw the resultant force (FR)
Magnitude = 500. lb
Direction = 7° CCW from positive x-axis
Sense = right and up
7°
500. lb