\(\begin{array}{l}\frac{{2{{\rm{x}}^2} + 1}}{{4{\rm{x}} - 1}} = \frac{{8{{\rm{x}}^3} + 4{\rm{x}}}}{Q}\\ \Rightarrow Q = \frac{{\left( {8{{\rm{x}}^3} + 4{\rm{x}}} \right)\left( {4{\rm{x}} - 1} \right)}}{{2{{\rm{x}}^2} + 1}}\\Q = \frac{{4{\rm{x}}\left( {2{{\rm{x}}^2} + 1} \right)\left( {4{\rm{x}} - 1} \right)}}{{2{{\rm{x}}^2} + 1}}\\Q = 4{\rm{x}}\left( {4{\rm{x}} - 1} \right) = 16{{\rm{x}}^2} - 4{\rm{x}}\end{array}\)

Đáp án D

a)

\(\begin{array}{l}\frac{2}{{3{\rm{x}}}} + \frac{x}{{x - 1}} + \frac{{6{{\rm{x}}^2} - 4}}{{2{\rm{x}}\left( {1 - x} \right)}}\\ = \frac{2}{{3{\rm{x}}}} - \frac{x}{{1 - x}} + \frac{{6{{\rm{x}}^2} - 4}}{{2{\rm{x}}\left( {1 - x} \right)}}\\ = \frac{{4\left( {1 - x} \right) - 6{{\rm{x}}^2} + 3\left( {6{{\rm{x}}^2} - 4} \right)}}{{6{\rm{x}}\left( {1 - x} \right)}}\\ = \frac{{4 - 4{\rm{x}} - 6{{\rm{x}}^2} + 18{{\rm{x}}^2} - 12}}{{6{\rm{x}}\left( {1 - x} \right)}}\\ = \frac{{12{{\rm{x}}^2} - 4{\rm{x}} - 8}}{{6{\rm{x}}\left( {1 - x} \right)}}\end{array}\)

b)

\(\begin{array}{l}\frac{{{x^3} + 1}}{{1 - {x^3}}} + \frac{x}{{x - 1}} - \frac{{x + 1}}{{{x^2} + x + 1}}\\ = \frac{{ - {x^3} - 1}}{{{x^3} - 1}} + \frac{x}{{x - 1}} - \frac{{x + 1}}{{{x^2} + x + 1}}\\ = \frac{{ - {x^3} - 1 + x\left( {{x^2} + x + 1} \right) - \left( {{x^2} - 1} \right)}}{{\left( {x - 1} \right)\left( {{x^2} + x + 1} \right)}}\\ = \frac{{ - {x^3} - 1 + {x^3} + {x^2} + x - {x^2} + 1}}{{\left( {x - 1} \right)\left( {{x^2} + x + 1} \right)}}\\ = \frac{x}{{{x^3} - 1}}\end{array}\)

c)

 \(\begin{array}{l}\left( {\frac{2}{{x + 2}} - \frac{2}{{1 - x}}} \right).\frac{{{x^2} - 4}}{{4{{\rm{x}}^2} - 1}}\\ = \frac{{2\left( {1 - x} \right) - 2\left( {x + 2} \right)}}{{\left( {x + 2} \right)\left( {1 - x} \right)}}.\frac{{{x^2} - 4}}{{4{{\rm{x}}^2} - 1}}\\ = \frac{{2 - 2{\rm{x}} - 2{\rm{x}} - 4}}{{\left( {x + 2} \right)\left( {1 - x} \right)}}.\frac{{{x^2} - 4}}{{4{{\rm{x}}^2} - 1}}\\ = \frac{{ - 4{\rm{x  -  2}}}}{{\left( {x + 2} \right)\left( {1 - x} \right)}}.\frac{{{x^2} - 4}}{{4{{\rm{x}}^2} - 1}}\\ = \frac{{\left( { - 4{\rm{x}} - 2} \right)\left( {x - 2} \right)\left( {x + 2} \right)}}{{\left( {x + 2} \right)\left( {1 - x} \right)\left( {2{\rm{x}} - 1} \right)\left( {2{\rm{x}} + 1} \right)}}\\ = \frac{{ - 4{{\rm{x}}^2} + 8{\rm{x}} - 2{\rm{x}} + 4}}{{\left( {1 - x} \right)\left( {2{\rm{x}} - 1} \right)\left( {2{\rm{x}} + 1} \right)}}\\ = \frac{{ - 4{{\rm{x}}^2} + 6{\rm{x}} + 4}}{{\left( {1 - x} \right)\left( {4{{\rm{x}}^2} - 1} \right)}}\end{array}\)

d)

\(\begin{array}{l}1 + \frac{{{x^3} - x}}{{{x^2} + 1}}\left( {\frac{1}{{1 - x}} - \frac{1}{{1 - {x^2}}}} \right)\\ = 1 + \frac{{{x^3} - x}}{{{x^2} + 1}}\left( {\frac{1}{{1 - x}} - \frac{1}{{1 - {x^2}}}} \right)\\ = 1 + \frac{{{x^3} - x}}{{{x^2} + 1}}.\frac{{1 + x - 1}}{{1 - {x^2}}}\\ = 1 + \frac{{x\left( {{x^2} - 1} \right)}}{{{x^2} + 1}}.\frac{x}{{1 - {x^2}}}\\ = 1 + \frac{{ - {x^2}\left( {{x^2} - 1} \right)}}{{\left( {{x^2} + 1} \right)\left( {{x^2} - 1} \right)}}\\ = 1 + \frac{{ - {x^2}}}{{{x^2} + 1}}\\ = \frac{{{x^2} + 1 - {x^2}}}{{{x^2} + 1}}\\ = \frac{1}{{{x^2} + 1}}\end{array}\)

Khẳng định C là khẳng định sai vì:

Nếu: \(\frac{{x + 1}}{{x - 1}} = \frac{{{x^2} + x + 1}}{{{x^2} - x + 1}}\)

\(\begin{array}{l} \Rightarrow \frac{{x + 1}}{{x - 1}} - \frac{{{x^2} + x + 1}}{{{x^2} - x + 1}} = 0\\ \Rightarrow \frac{{\left( {x + 1} \right)\left( {{x^2} - x + 1} \right) - \left( {{x^2} + x + 1} \right)\left( {x - 1} \right)}}{{\left( {x - 1} \right)\left( {{x^2} - x + 1} \right)}} = 0\\ \Rightarrow \frac{{\left( {{x^3} + 1} \right) - \left( {{x^3} - 1} \right)}}{{\left( {x - 1} \right)\left( {{x^2} - x + 1} \right)}} = \frac{2}{{\left( {x - 1} \right)\left( {{x^2} - x + 1} \right)}} = 0\end{array}\)

\( \Rightarrow \) vô lý

Cặp phân thức có cùng mẫu thức: \(\frac{{5{\rm{x}} + 10}}{{4{\rm{x}} - 8}}\) và \(\frac{{4 - 2{\rm{x}}}}{{4\left( {x - 2} \right)}}\)

a) Đây là kết luận đúng vì: \( - 6.2{y^2} =  - 3y.4y\)

b) Đây là kết luận đúng vì: \(5{\rm{x}}\left( {x + 3} \right) = 5\left( {{x^2} + 3{\rm{x}}} \right) = 5{{\rm{x}}^2} + 15{\rm{x}}\)

c) Đây là kết luận đúng vì: \(3{\rm{x}}\left( {4{\rm{x}} + 1} \right)\left( {1 - 4{\rm{x}}} \right) = 3{\rm{x}}\left( {1 - 16{{\rm{x}}^2}} \right) =  - 3{\rm{x}}\left( {16{{\rm{x}}^2} - 1} \right)\)

\(a)\left( { - \frac{{3{\rm{x}}}}{{5{\rm{x}}{y^2}}}} \right):\left( { - \frac{{5{y^2}}}{{12{\rm{x}}y}}} \right) = \frac{{ - 3{\rm{x}}}}{{5{\rm{x}}{y^2}}}.\frac{{ - 12{\rm{x}}y}}{{5{y^2}}} = \frac{{36{{\rm{x}}^2}y}}{{25{\rm{x}}{y^4}}}\)

b) \(\frac{4{{\text{x}}^{2}}-1}{8{{\text{x}}^{3}}-1}:\frac{4{{\text{x}}^{2}}+4\text{x}+1}{4{{\text{x}}^{2}}+2\text{x}+1}=\frac{4{{\text{x}}^{2}}-1}{8{{\text{x}}^{3}}-1}.\frac{4{{\text{x}}^{2}}+2\text{x}+1}{4{{\text{x}}^{2}}+4\text{x}+1}\)

\(=\frac{\left( 2\text{x}-1 \right)\left( 2\text{x}+1 \right)\left( 4{{\text{x}}^{2}}+2\text{x}+1 \right)}{\left( 2\text{x}-1 \right)\left( 4{{\text{x}}^{2}}+2\text{x}+1 \right){{\left( 2\text{x}+1 \right)}^{2}}}=\frac{1}{2\text{x}+1}\).

\(\begin{array}{l}a)\frac{{4{{\rm{x}}^2} - 1}}{{16{{\rm{x}}^2} - 1}}.\left( {\frac{1}{{2{\rm{x}} + 1}} + \frac{1}{{2{\rm{x}} - 1}} + \frac{1}{{1 - 4{{\rm{x}}^2}}}} \right)\\ = \frac{{4{{\rm{x}}^2} - 1}}{{16{{\rm{x}}^2} - 1}}.\frac{{2{\rm{x}} - 1 + 2{\rm{x}} + 1 - 1}}{{\left( {2{\rm{x}} - 1} \right)\left( {2{\rm{x}} + 1} \right)}}\\ = \frac{{\left( {2{\rm{x}} - 1} \right)\left( {2{\rm{x}} + 1} \right)}}{{\left( {4{\rm{x}} - 1} \right)\left( {4{\rm{x + 1}}} \right)}}.\frac{{4{\rm{x}} - 1}}{{\left( {2{\rm{x}} - 1} \right)\left( {2{\rm{x}} + 1} \right)}}\\ = \frac{1}{{4{\rm{x}} + 1}}\\b)\left( {\frac{{x + y}}{{xy}} - \frac{2}{x}} \right).\frac{{{x^3}{y^3}}}{{{x^3} - {y^3}}}\\ = \frac{{x + y - 2y}}{{xy}}.\frac{{{x^3}{y^3}}}{{{x^3} - {y^3}}}\\ = \frac{{\left( {x - y} \right).{x^3}{y^3}}}{{xy\left( {x - y} \right)\left( {{x^2} + xy + {y^2}} \right)}} = \frac{{{x^2}{y^2}}}{{{x^2} + xy + y{}^2}}\end{array}\)

\(\begin{array}{l}a)P.\frac{{x + 1}}{{2{\rm{x}} + 1}} = \frac{{{x^2} + x}}{{4{{\rm{x}}^2} - 1}}\\P = \frac{{{x^2} + x}}{{4{{\rm{x}}^2} - 1}}:\frac{{x + 1}}{{2{\rm{x}} + 1}}\\P = \frac{{{x^2} + x}}{{4{{\rm{x}}^2} - 1}}.\frac{{2{\rm{x}} + 1}}{{x + 1}}\\P = \frac{{x\left( {x + 1} \right).\left( {2{\rm{x}} + 1} \right)}}{{\left( {2{\rm{x}} - 1} \right)\left( {2{\rm{x}} + 1} \right)\left( {x + 1} \right)}}\\P = \frac{x}{{2{\rm{x}} - 1}}\end{array}\)

\(\begin{array}{l}b)Q:\frac{{{x^2}}}{{{x^2} + 4{\rm{x}} + 4}} = \frac{{\left( {x + 1} \right)\left( {x + 2} \right)}}{{{x^2} - 2{\rm{x}}}}\\Q = \frac{{\left( {x + 1} \right)\left( {x + 2} \right)}}{{{x^2} - 2{\rm{x}}}}.\frac{{{x^2}}}{{{x^2} + 4{\rm{x}} + 4}}\\Q = \frac{{\left( {x + 1} \right)\left( {x + 2} \right).{x^2}}}{{x\left( {x - 2} \right).{{\left( {x + 2} \right)}^2}}}\\Q = \frac{{x\left( {x + 1} \right)}}{{{x^2} - 4}}\end{array}\)

\(\)\(a)\frac{1}{{4{\rm{x}}{y^2}}}\)và \(\frac{5}{{6{{\rm{x}}^2}y}}\)

Ta có: MTC là : \(12{{\rm{x}}^2}{y^2}\).

Nhân tử phụ của phân thức \(\frac{1}{{4{\rm{x}}{y^2}}}\)là 3x

Nhân tử phụ của phân thức \(\frac{5}{{6{{\rm{x}}^2}y}}\)là 2y

Khi đó: \(\frac{1}{{4{\rm{x}}{y^2}}} = \frac{{1.3{\rm{x}}}}{{4{\rm{x}}{y^2}.3{\rm{x}}}} = \frac{{3{\rm{x}}}}{{12{{\rm{x}}^2}{y^2}}}\)

\(\frac{5}{{6{{\rm{x}}^2}y}} = \frac{{5.2y}}{{6{{\rm{x}}^2}y.2y}} = \frac{{10y}}{{12{{\rm{x}}^2}{y^2}}}\)

 \(b)\frac{9}{{4{{\rm{x}}^2} - 36}}\)và \(\frac{1}{{{x^2} + 6{\rm{x}} + 9}}\).

Ta có: \(\begin{array}{l}4{{\rm{x}}^2} - 36 = 4({x^2} - 9) = 4(x - 3)(x + 3)\\{x^2} + 6{\rm{x}} + 9 = {(x + 3)^2}\end{array}\)

MTC là: \(4(x - 3){(x + 3)^2}\)

Nhân tử phụ của phân thức \(\frac{9}{{4{{\rm{x}}^2} - 36}}\)là: x + 3

Nhân tử phụ của phân thức \(\frac{1}{{{x^2} + 6{\rm{x}} + 9}}\)là 4(x – 3)

Khi đó: \(\begin{array}{l}\frac{9}{{4{{\rm{x}}^2} - 36}} = \frac{9}{{4({x^2} - 9)}} = \frac{9}{{4(x - 3)(x + 3)}} = \frac{{9(x + 3)}}{{4(x - 3){{(x + 3)}^2}}}\\\frac{1}{{{x^2} + 6{\rm{x}} + 9}} = \frac{1}{{{{(x + 3)}^2}}} = \frac{{4(x - 3)}}{{4(x - 3){{(x + 3)}^2}}}\end{array}\)