-122
+1+2.113.A∵a
+1=a
+l
1+
,
+11∴a
+1-a
=l
1+
=l
=l
+1-l
又a1=2,∴a
=a1+a2-a1+a3-a2+a4-a3+…+a
-a
-1=2+l
2-l
1+l
3-l
2+l
4-l
3+…+l
-l
-1=2+l
-l
1=2+l
.
f14.解
1当
=1时,a1=S1,所以a1=4a1+12,解得a1=1
1112当
≥2时,a
=S
-S
-1=4a
+12-4a
-1+12=4a2
-a
-1+2a
-2a
-1,2∴a
-a2
-1-2a
+a
-1=0,∴a
+a
-1a
-a
-1-2=0∵a
+a
-10,∴a
-a
-1-2=0∴a
-a
-1=2∴a
是首项为1,公差为2的等差数列.∴a
=1+2
-1=2
-1
fr
