Let the numbers be, a−3d,a−d,a+3d,a+d

Given,

a−3d+a−d+a+3d+a+d=28
⇒4a=28,
∴a=7

(a−3d)^2+(a−d)^2+(a+3d)^2+(a+d)^2=216

2(a^2+9d^2)+2(a^2+d^2)=216

4a^2+20d^2=216

4(7^2)+20d^2=216
⇒d=±1

for d=1

the series is 7−3(−1),7−(−1),7−1,7−3⇒10,8,6,4

For d=1

the series is 7−3,7−1,7+1,7+3⇒4,6,8,10

Therefore the numbers are, 4,6,8,10