0121 Lecture Notes - An Introductory Tension Force Problem...0121 Lecture Notes - An Introductory...
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0121 Lecture Notes - An Introductory Tension Force Problem.docx page 1 of 1 Flipping Physics Lecture Notes: An Introductory Tension Force Problem m hanging = 155.0g × 1 kg 1000g = 0.155 kg; θ = 28° ; F T 1 = ?; F T 2 = ? sin θ = O H = F T 1y F T 1 ⇒ F T 1y = F T 1 sin θ & cosθ = A H = F T 1x F T 1 ⇒ F T 1x = F T 1 cosθ F y ∑ = F T 1y − F g = ma y = m 0 () = 0 ⇒ F T 1y − F g = 0 ⇒ F T 1y = F g ⇒ F T 1 sin θ = mg ⇒ F T 1 = mg sin θ = 0.155 ( ) 9.81 ( ) sin 28 ( ) = 3.238854 ≈ 3.2N F x ∑ = F T 2 − F T 1x = ma x = m 0 () = 0 ⇒ F T 2 − F T 1x = 0 ⇒ F T 2 = F T 1x = F T 1 cosθ ⇒ F T 2 = 3.238854 ( ) cos 28 ( ) = 2.85974 ≈ 2.9N Note: The mass hanging is an object in translational equilibrium because the net force acting on it equals zero.
Transcript of 0121 Lecture Notes - An Introductory Tension Force Problem...0121 Lecture Notes - An Introductory...
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0121 Lecture Notes - An Introductory Tension Force Problem.docx page 1 of 1
Flipping Physics Lecture Notes: An Introductory Tension Force Problem
m
hanging=155.0g × 1kg
1000g= 0.155kg;θ = 28°; F
T1= ?; F
T2= ?
sinθ = OH
=F
T1y
FT1
⇒ FT1y
= FT1
sinθ &
cosθ = AH
=F
T1x
FT1
⇒ FT1x
= FT1
cosθ
F
y∑ = FT1y − Fg = may = m 0( ) = 0⇒ FT1y − Fg = 0⇒ FT1y = Fg ⇒ FT1 sinθ = mg
⇒ FT1= mg
sinθ=
0.155( ) 9.81( )sin 28( ) = 3.238854 ≈ 3.2N
F
x∑ = FT2 − FT1x = max = m 0( ) = 0⇒ FT2 − FT1x = 0⇒ FT2 = FT1x = FT1 cosθ
⇒ F
T2= 3.238854( )cos 28( ) = 2.85974 ≈ 2.9N
Note: The mass hanging is an object in translational equilibrium because the net force acting on it equals zero.