if a,b,c, are in h.p. prove that a^2+c^2 2b^2 ?

Question

if a,b,c, are in h.p. prove that a^2+c^2> 2b^2 ?
answer= 1/a,1/b, and 1/c are in h.p.
=1/b-1/a=1/c-1/b
=1/b+1/b=1/c+1/a
=b+b/b^2=a+c/ac
=2/b^2=a+c/ac
=b^2(a+c)=2ac
=(a+c)ac=2b^2
=a^2+b^2 >2b^2

Steve · Answer

google is your friend. This should help. http://www.askiitians.com/forums/Algebra/22/42109/progressions.htm