Mathematics
Answer
Let numbers be a - 3d, a - d, a + d, a + 3d.
Given, sum = 20
⇒ a - 3d + a - d + a + d + a + 3d = 20
⇒ 4a = 20
⇒ a = 5.
Given, sum of squares is 120.
⇒ (a - 3d)2 + (a - d)2 + (a + d)2 + (a + 3d)2 = 120
⇒ (5 - 3d)2 + (5 - d)2 + (5 + d)2 + (5 + 3d)2 = 120
⇒ 25 + 9d2 - 30d + 25 + d2 - 10d + 25 + d2 + 10d + 25 + 9d2 + 30d = 120
⇒ 100 + 20d2 = 120
⇒ 20d2 = 20
⇒ d2 = 1.
⇒ d = ±1
Let d = 1,
Numbers = (5 - 3(1)), (5 - 1), (5 + 1), (5 + 3(1))
= 2, 4, 6, 8.
Let d = -1,
Numbers = (5 - 3(-1)), (5 - (-1)), (5 + (-1)), (5 + 3(-1))
= 8, 6, 4, 2.
Hence, numbers are 2, 4, 6, 8 or 8, 6, 4, 2.
Related Questions
Split 207 into three parts such that these parts are in A.P. and the product of the two smaller parts is 4623.
The sum of three numbers in A.P. is 15 and the sum of the squares of the extreme terms is 58. Find the numbers.
Insert one arithmetic mean between 3 and 13.
The angles of a polygon are in A.P. with common difference 5°. If the smallest angle is 120°, find the number of sides of the polygon.