Bộ 10 đề thi giữa kì 2 Toán 6 Cánh diều có đáp án - Đề 09

Cho hai biểu thức: A =2/(5.7) + 5/(7,12) +7/(12.19)+9/(19,28) +11/(28.39) + 1/(39.40) Chứng minh A > B

11/11

Cho hai biểu thức:

\(A = \frac{2}{{5.7}} + \frac{5}{{7\,.\,\,12}} + \frac{7}{{12\,.\,19}} + \frac{9}{{19\,.\,28}} + \frac{{11}}{{28\,.\,39}} + \frac{1}{{39\,.\,40}}\) và \[B = \frac{1}{{20}} + \frac{1}{{44}} + \frac{1}{{77}} + \frac{1}{{119}} + \frac{1}{{170}}.\]

Chứng minh \(A > B\).

0/3000 ký tự
Giải thích

 Ta có: \(A = \frac{2}{{5.7}} + \frac{5}{{7.12}} + \frac{7}{{12.19}} + \frac{9}{{19.28}} + \frac{{11}}{{28.39}} + \frac{1}{{39.40}}\)

\( = \frac{1}{5} - \frac{1}{7} + \frac{1}{7} - \frac{1}{{12}} + \frac{1}{{12}} - \frac{1}{{19}} + \frac{1}{{19}} - \frac{1}{{28}} + \frac{1}{{28}} - \frac{1}{{39}} + \frac{1}{{39}} - \frac{1}{{40}}\)

\( = \frac{1}{5} - \frac{1}{{40}}\)\( = \frac{8}{{40}} - \frac{1}{{40}} = \frac{7}{{40}}\);

\[B = \frac{1}{{20}} + \frac{1}{{44}} + \frac{1}{{77}} + \frac{1}{{119}} + \frac{1}{{170}}\]

\[ = \frac{2}{{40}} + \frac{2}{{88}} + \frac{2}{{154}} + \frac{2}{{238}} + \frac{2}{{340}}\]

\[ = 2.\left( {\frac{1}{{5.8}} + \frac{1}{{8.11}} + \frac{1}{{11.14}} + \frac{1}{{14.17}} + \frac{1}{{17.20}}} \right)\]

\[ = 2.\frac{1}{3}.\left( {\frac{3}{{5.8}} + \frac{3}{{8.11}} + \frac{3}{{11.14}} + \frac{3}{{14.17}} + \frac{3}{{17.20}}} \right)\]

\[ = \frac{2}{3}.\left( {\frac{1}{5} - \frac{1}{8} + \frac{1}{8} - \frac{1}{{11}} + \frac{1}{{11}} - \frac{1}{{14}} + \frac{1}{{14}} - \frac{1}{{17}} + \frac{1}{{17}} - \frac{1}{{20}}} \right)\]

\[ = \frac{2}{3}.\left( {\frac{1}{5} - \frac{1}{{20}}} \right)\]\[ = \frac{2}{3}.\left( {\frac{4}{{20}} - \frac{1}{{20}}} \right)\]\[ = \frac{2}{3}.\frac{3}{{20}}\]\[ = \frac{1}{{10}}\].

Ta có: \(\frac{7}{{40}} > \frac{4}{{40}} = \frac{1}{{10}}\). Do đó \(A > B\).