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Solution 19.5a

Revision as of 17:29, 27 March 2011 by Ian (Talk | contribs)

(diff) ←Older revision | Current revision (diff) | Newer revision→ (diff)

v=adt=−ktdt=−2kt2+ct=0 v=20 c=20v=20−2kt2 Usingt=40 v=5gives5=20−5k402800k=15k=15800=3160

Note that substituting for k and c in the expression for v we get

v=20−3t2320