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![[Post New]](/templates/default/images/icon_minipost_new.gif) 6 Feb 2007 21:27:22 IST
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Solve - A block of mass m is placed on a smooth wedge of inclination theta . The whole system is accelerated horizontally so that the block does not slip on the wedge . Find the magnitude of the force exerted by the wedge on the block . Pls give the detailed solution !!!
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Umang |
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6 Feb 2007 22:21:50 IST
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as system is moving with acc a hor; therefore a pseudo force a will act on the block now actual normal force =mg*cos  and pseudo force=ma*sin therefore net force on block due to wedge i.e. normal force=mgcos +masin
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7 Feb 2007 01:49:50 IST
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Since the mass remain static on the wdge, hence there is a force exerted on the mass by the wedge in horizontal direction. Hence mg Sin =F Cos F=mg tan If this is correct, then plz rate me
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7 Feb 2007 09:20:17 IST
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i will be solving the question from ground frame
since the body is having accl in horizontal direction only,
thus balancing forces in vertical direction gives
N cos(theta)=mg
N=mg sec(theta)
this is the contact force that should be acting
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8 Feb 2007 20:53:26 IST
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Hey pearlypeeble , yes , this is the right answer . But , i want to know why cant we resolve weight force ???Why only normal force ? Pls explain as soon as possible !!!
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Umang |
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9 Feb 2007 11:43:09 IST
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we can resolve weight force along the normal but the component of accl. will also come in that direction. since the accl. is in horizontal direction therefore balancing along vertical direction will directly give the answerand let me tell u that this answer is same as that of sen_holmes
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10 Feb 2007 15:26:40 IST
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Hey nikhil , the correct answer is mg/cos(theta) . Also , the 'a' (acceleration) used by sen_holmes is not provided in the question !!!!!!
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Umang |
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10 Feb 2007 18:51:33 IST
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u can eliminate accl. by resolving forces acting along the inclined plane
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