the sum of 3 consecutive terms of an Ap is 21 and the sum of the squares of these terms is 165.find these terms.
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these terms are 4,7and 10
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Heya user,
Let the terms be ( a - d ), a, ( a + d )
Then, ATQ --> According to question --->
a - d + a + a + d = 21
=> 3a = 21 => a = 7;
Now, (a-d)² + a² + (a+d) = 3a² + 2d² = 165;
=> 3 * 7² + 2d² = 165
=> 49 * 3 + 2d² = 165
=> 147 + 2d² = 165
=> 2d² = 18
=> d = +3 or -3
Hence, The no.s are ( 7 + 3 ), ( 7 ), ( 7 - 3 ) = 10, 7, 4 or vice versa.....
_________________☺__________________☺______________________
Let the terms be ( a - d ), a, ( a + d )
Then, ATQ --> According to question --->
a - d + a + a + d = 21
=> 3a = 21 => a = 7;
Now, (a-d)² + a² + (a+d) = 3a² + 2d² = 165;
=> 3 * 7² + 2d² = 165
=> 49 * 3 + 2d² = 165
=> 147 + 2d² = 165
=> 2d² = 18
=> d = +3 or -3
Hence, The no.s are ( 7 + 3 ), ( 7 ), ( 7 - 3 ) = 10, 7, 4 or vice versa.....
_________________☺__________________☺______________________
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