Câu hỏi của Tokuda

Question

$\sqrt{25x-50}-\dfrac{\sqrt{x-2}-1}{2}=8\sqrt{\dfrac{9x-18}{16}}$

2611 · Accepted Answer

`\sqrt{25x-50}-[\sqrt{x-2}-1]/2=8\sqrt{[9x-18]/16}` `ĐK: x >= 2``<=>\sqrt{5^2(x-2)}-[\sqrt{x-2}-1]/2=8\sqrt{[3^2(x-2)]/[4^2]}``<=>5\sqrt{x-2}-[\sqrt{x-2}-1]/2=6\sqrt{x-2}``<=>10\sqrt{x-2}-\sqrt{x-2}+1=12\sqrt{x-2}``<=>3\sqrt{x-2}=1``<=>\sqrt{x-2}=1/3``<=>x-2=1/9<=>x=19/9` (t/m)Vậy `S={19/9}`Câu trả lời: `\sqrt{25x-50}-[\sqrt{x-2}-1]/2=8\sqrt{[9x-18]/16}` `ĐK: x >= 2``<=>\sqrt{5^2(x-2)}-[\sqrt{x-2}-1]/2=8\sqrt{[3^2(x-2)]/[4^2]}``<=>5\sqrt{x-2}-[\sqrt{x-2}-1]/2=6\sqrt{x-2}``<=>10\sqrt{x-2}-\sqrt{x-2}+1=12\sqrt{x-2}``<=>3\sqrt{x-2}=1``<=>\sqrt{x-2}=1/3``<=>x-2=1/9<=>x=19/9` (t/m)Vậy `S={19/9}`

Kim San Hyn · Answer

`\sqrt{25x-50}-(\sqrt{x-2}-1)/2=8\sqrt{(9x-18)/16}ĐKXĐ:x>=2``<=>\sqrt{25}\sqrt{x-2}+(1-\sqrt{x-2})/2=8\sqrt{9/16}\sqrt{x-2}``<=>5\sqrt{x-2}+(1-\sqrt{x-2})/2=6\sqrt{x-2}``<=>10\sqrt{x-2}+1-\sqrt{x-2}-12\sqrt{x-2}=0``<=>-3\sqrt{x-2}=-1``<=>\sqrt{x-2}=1/3``<=>x-2=1/9``<=>x=1/9+2``<=>x=19/9(n)`Vậy `S={19/9}`Câu trả lời: `\sqrt{25x-50}-(\sqrt{x-2}-1)/2=8\sqrt{(9x-18)/16}ĐKXĐ:x>=2``<=>\sqrt{25}\sqrt{x-2}+(1-\sqrt{x-2})/2=8\sqrt{9/16}\sqrt{x-2}``<=>5\sqrt{x-2}+(1-\sqrt{x-2})/2=6\sqrt{x-2}``<=>10\sqrt{x-2}+1-\sqrt{x-2}-12\sqrt{x-2}=0``<=>-3\sqrt{x-2}=-1``<=>\sqrt{x-2}=1/3``<=>x-2=1/9``<=>x=1/9+2``<=>x=19/9(n)`Vậy `S={19/9}`

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