问题
解答题
若自然是x<y<z,a为整数,且
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答案
分析由题设可知x≥1,y≥2,z≥3,所以
0≤a=
+1 1
+1 2
=11 3 5 6
又因a是整数,故a=1.若x=1,则1+
+1 y
=1,1 z
+1 y
=0,与题意不符,所以x≠1.1 z
又x≥3时,a=
+1 x
+1 y
≤1 z
+1 3
+1 4
=1 5
<1,也不成立,故x只能为2.47 60
当x=2,
+1 y
=1-1 z
=1 2
.1 2
令y=3,则z=6.
当x=2,y≥4时,
+1 y
=1-1 z
=1 2 1 2
当x=2,y=4时,
+1 y
=1 z
+1 4
=1 5
<9 20
,不成立.1 2
故本题只有一组解,即x=2,y=3,z=6.
答:x=2,y=3,z=6.