Using the component method, determine the resultant force and the equilibrant force of each of the following sets of concurrent forces. 1. F₁ = 380 N @ 50° N of E F2 = 650 N @ 22⁰ E of S F3 = 720 N West 3. FA = 20 lb S FB = 24 lb NE Fc: FD = 25 lb @ 32⁰ E of S = 16 lb West FOLLOW THE FORMAT BELOW Example 2: F₁ = 200 d West F₂ = 300 d @ 35⁰ W of N F3 = 250 d SE F₁ = 450 d @ 80⁰ S of W Σ Fx -200 (West) 300(sin 350) =-172 (West) 250(cos 45°) = +177 (East) 2. F₁ = 332 d @ 35⁰ W of N F2 = 420 d @ 75⁰ E of N F3 = 108 d SW 450(cos 80°) = -78.1 (West) -273 (West) F₁ 0 300 (cos 35°) =+246 (North) 250(sin 45°) = -177 (South) 450(sin 80°) =-443 (South) -374 (South) Sketch F₁ = 200 d F₂=300 d FAY! 35⁰1 F2y F3x 45⁰ |F3=250 ! 80⁰ F3y F₁=150 d

Using the component method, determine the resultant force and the equilibrant force of each of the following sets of concurrent forces. 1. F₁ = 380 N @ 50° N of E F2 = 650 N @ 22⁰ E of S F3 = 720 N West 3. FA = 20 lb S FB = 24 lb NE Fc: FD = 25 lb @ 32⁰ E of S = 16 lb West FOLLOW THE FORMAT BELOW Example 2: F₁ = 200 d West F₂ = 300 d @ 35⁰ W of N F3 = 250 d SE F₁ = 450 d @ 80⁰ S of W Σ Fx -200 (West) 300(sin 350) =-172 (West) 250(cos 45°) = +177 (East) 2. F₁ = 332 d @ 35⁰ W of N F2 = 420 d @ 75⁰ E of N F3 = 108 d SW 450(cos 80°) = -78.1 (West) -273 (West) F₁ 0 300 (cos 35°) =+246 (North) 250(sin 45°) = -177 (South) 450(sin 80°) =-443 (South) -374 (South) Sketch F₁ = 200 d F₂=300 d FAY! 35⁰1 F2y F3x 45⁰ |F3=250 ! 80⁰ F3y F₁=150 d

College Physics

11th Edition

ISBN:9781305952300

Author:Raymond A. Serway, Chris Vuille

Publisher:Raymond A. Serway, Chris Vuille

Chapter1: Units, Trigonometry. And Vectors

Section: Chapter Questions

Problem 1CQ: Estimate the order of magnitude of the length, in meters, of each of the following; (a) a mouse, (b)...

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Concept explainers

Newton’s Third Law of Motion

The horse pulls the cart and the cart pulls the horse in response as per Newton third law. So the big question is, “Don’t the two forces cancel each other? How does the cart accelerate?”

Question

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Using the component method, determine the resultant force and the
equilibrant force of each of the following sets of concurrent forces.
1. F₁ = 380 N @ 50⁰ N of E
F2 = 650 N @ 22⁰ E of S
F3 = 720 N West
3. FA = 20 lb S
А
FB = 24 lb NE
Fc = 16 lb West
FD = 25 lb @ 32º E of S
A
FOLLOW THE FORMAT BELOW
Example 2:
F₁ = 200 d West
F₂ = 300 d @ 35⁰ W of N
F3 = 250 d SE
F₁ = 450 d @ 80⁰ S of W
Σ
Fx
-200 (West)
300(sin 35⁰)
=-172 (West)
250(cos 45°)
= +177 (East)
450(cos 80°)
= -78.1 (West)
2. F₁ = 332 d @ 35⁰ W of N
F2 = 420 d @ 75⁰ E of N
F3 = 108 d SW
-273 (West)
Fy
0
300(cos 35°)
=+246 (North)
45⁰
= -177 (South)
450(sin 80°)
=-443 (South)
-374 (South)
Sketch
F₁ = 200 d
F₂=300 d
FAY!
F3-250 d
45⁰
F
t
80⁰
35⁰1 F2y
F3v
F4=150 d
ANSWER NO. 2 ONLY

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