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(ii) Find five numbers in A.P., whose gum is 25 and the sum of whose squares is135. |
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Answer» ong>Answer: term of an ap is 3,4,5,6,7 Step-by-step EXPLANATION: let the five term be (a-2d), (a-d) ,a (a+d), (a+2d) then, sum of term is 25 (a-2d) + (a-d) + a (a+d) + (a+2d) = 25 5a = 25 a = 5 given , sum of SQUARES is 135 (a-2d)^2 + (a-d)^2 + a^2 + (a+d)^2 + (a+2d)^2 = 135 put a=5 and evaluate, we get 4d^2 + d^2 + d^2 + 4d^2 = 135-125 10d^2 = 10 d^2 = 1 d = + - 1 when a = 5 and d = 1 (a-2d) = 5-2 = 3 (a-d) = 5-1 = 4 a = 5 (a+d) = 5+1 = 6 (a+2d) = 5+2 = 7 when a = 5 and d = -1 ( a-2d) = 5+2 = 7 (a-d) = 5+1 = 6 a = 5 (a+d) = 5-1 = 4 (a+2d) = 5-2 = 3 thus , term of AP are 3,4,5,6 and 7 |
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