A 5 kg block is moved up a 30 degree incline by a force of 50 N, parallel to the incline. The coefficient of kinetic friction between the block and the incline is 0.25. What is the net work done on the block over this distance?

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Chapter1: Units, Trigonometry. And Vectors
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I asked you yesterday this questions and you solved it like this!!!! Where did you get the distance from???? You used 10 for distance…. I did not give you a distance in the question??? A 5 kg block is moved up a 30 degree incline by a force of 50 N, parallel to the incline. The coefficient of kinetic friction between the block and the incline is 0.25. What is the net work done on the block over this distance?
5:04
◄ Mail
←
Step1
a)
sy
given
mass=5kg
Angle = 30degree
force = 50N
MK =0-25
work done = 9
Step2
b)
Component of weight force along the incline
= my sino
Perpendicular to encline
work done
EX
Jovmg
work done
friction force = M₂N = 0·25×
= 10.60N
work done by applied force = F²x2
= 50x10
=800]
by
work done by weight force
= mg Coso
by
Normal force = Fd cos 90'
=0J
?
5x98xCos 30°
:
friction = -fd
--mg sino xd
=-5x9.8 xsin 30x10
=-245
J
= -106.1J
Net work done = 500-245-106.1 = 148.9J
√x
65
Do
Transcribed Image Text:5:04 ◄ Mail ← Step1 a) sy given mass=5kg Angle = 30degree force = 50N MK =0-25 work done = 9 Step2 b) Component of weight force along the incline = my sino Perpendicular to encline work done EX Jovmg work done friction force = M₂N = 0·25× = 10.60N work done by applied force = F²x2 = 50x10 =800] by work done by weight force = mg Coso by Normal force = Fd cos 90' =0J ? 5x98xCos 30° : friction = -fd --mg sino xd =-5x9.8 xsin 30x10 =-245 J = -106.1J Net work done = 500-245-106.1 = 148.9J √x 65 Do
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