题目内容
(1)计算:
lg2+
-
÷
;
(2)已知lga+lgb=21g(a-2b)求
的值.
| 1 |
| 2 |
(lg
|
| 3 |
| ||||
| 3 |
| ||||||
(2)已知lga+lgb=21g(a-2b)求
| a |
| b |
(1)原式=lg
+
-
÷
=lg
+1-lg
-1
=0
(2)∵lga+lgb=2(lg(2-2b)
∴lg(ab)=lg(a-2b)2
∴ab=(a-2b)2即a2+4b2-5ab=0∴(
)2-5
+4=0
解之得
=1或
=4
∵a>0,b>0若
=1则a-2b<0
∴
=1(舍去)
∴
=4
| 2 |
(lg
|
| 3 | a
| ||||
| 3 | a
| ||||
=lg
| 2 |
| 2 |
=0
(2)∵lga+lgb=2(lg(2-2b)
∴lg(ab)=lg(a-2b)2
∴ab=(a-2b)2即a2+4b2-5ab=0∴(
| a |
| b |
| a |
| b |
解之得
| a |
| b |
| a |
| b |
∵a>0,b>0若
| a |
| b |
∴
| a |
| b |
∴
| a |
| b |
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