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Question

The sum k=120(1+2+3+.......+k)=


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Solution

Simplify the given function using the formula of Arithmetic Progression :

k=120(1+2+3+.......+k)=k=120(k(k+1)2)=12k=120(k2+k)=12[20(20+1)(20×2+1)6+20(1+20)2]=12[20×21×416+20×212]=1540

Hence , answer is =1540.


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