a,\(ab^2\sqrt{\dfrac{3}{a^2b^4}}=ab^2.\dfrac{\sqrt{3}}{\sqrt{a^2b^4}}=ab^2.\dfrac{\sqrt{3}}{ab^2}=\sqrt{3}\)

b,\(\sqrt{\dfrac{27\left(a-3\right)^2}{48}}=\dfrac{3\sqrt{3}\left(a-3\right)}{4\sqrt{3}}=\dfrac{3}{4}\left(a-3\right)\)

c,\(\sqrt{\dfrac{9+12a+4a^2}{b^2}}=\dfrac{\sqrt{\left(3+2a\right)^2}}{\sqrt{b^2}}=\dfrac{3+2a}{b}\)

d, \(\left(a-b\right).\sqrt{\dfrac{ab}{\left(a-b\right)^2}}=\left(a-b\right).\dfrac{\sqrt{ab}}{\sqrt{\left(a-b\right)^2}}=\left(a-b\right).\dfrac{\sqrt{ab}}{\left(a-b\right)}=\sqrt{ab}\)

Lời giải:

\(\sqrt{\frac{9+12a+4a^2}{b^2}}=\sqrt{\frac{(2a)^2+2.2a.3+3^2}{b^2}}=\sqrt{\frac{(2a+3)^2}{b^2}}\)

\(=|\frac{2a+3}{b}|\)

Vì $a>-1,5; b< 0$ nên \(\frac{2a+3}{b}< 0\Rightarrow \sqrt{\frac{9+12a+4a^2}{b^2}}= |\frac{2a+3}{b}|=\frac{-2a-3}{b}\)

\((a-b)\sqrt{\frac{ab}{(a-b)^2}}=(a-b)\sqrt{ab}.\frac{1}{|a-b|}\)

Do $a< b< 0$ nên $a-b< 0\rightarrow |a-b|=b-a$

\(\Rightarrow (a-b)\sqrt{\frac{ab}{(a-b)^2}}=(a-b).\frac{\sqrt{ab}}{|a-b|}=(a-b).\frac{\sqrt{ab}}{b-a}=-\sqrt{ab}\)

a: \(=2ab\cdot\dfrac{-15}{b^2a}=\dfrac{-30}{b}\)

b: \(=\dfrac{2}{3}\cdot\left(1-a\right)=\dfrac{2}{3}-\dfrac{2}{3}a\)

c: \(=\dfrac{\left|3a-1\right|}{\left|b\right|}=\dfrac{3a-1}{b}\)

d: \(=\left(a-2\right)\cdot\dfrac{a}{-\left(a-2\right)}=-a\)

\(A=\left(x-2\right)\cdot\sqrt{\dfrac{9}{\left(x-2\right)^2}}+3=\dfrac{3\left(x-2\right)}{\left|x-2\right|}+3=\dfrac{3\left(x-2\right)}{-\left(x-2\right)}=-3+3=0\)

\(B=\sqrt{\dfrac{a}{6}}+\sqrt{\dfrac{2a}{3}}+\sqrt{\dfrac{3a}{2}}=\dfrac{\sqrt{a}}{\sqrt{6}}+\dfrac{\sqrt{2a}}{\sqrt{3}}+\dfrac{\sqrt{3a}}{\sqrt{2}}=\dfrac{\sqrt{a}+2\sqrt{a}+3\sqrt{a}}{\sqrt{6}}=\dfrac{6\sqrt{a}}{\sqrt{6}}=\sqrt{6a}\)

\(E=\sqrt{9a^2}+\sqrt{4a^2}+\sqrt{\left(1-a\right)^2}+\sqrt{16a^2}=3\left|a\right|+2\left|a\right|+\left|1-a\right|+4\left|a\right|=9\left|a\right|+1-a=-9a+1-a=-10a+1\)

\(F=\left|x-2\right|\cdot\dfrac{\sqrt{x^2}}{x}=\left|x-2\right|\cdot\dfrac{\left|x\right|}{x}=\dfrac{x\left(x-2\right)}{x}=x-2\)

\(H=\dfrac{x^2+2\sqrt{3}\cdot x+3}{x^2-3}=\dfrac{\left(x+\sqrt{3}\right)^2}{\left(x-\sqrt{3}\right)\left(x+\sqrt{3}\right)}=\dfrac{x+\sqrt{3}}{x-\sqrt{3}}\)

\(I=\left|x-\sqrt{\left(x-1\right)^2}\right|-2x=\left|x-\left(-\left(x-1\right)\right)\right|-2x=\left|x+x-1\right|-2x=\left|2x-1\right|-2x=1-4x\)

Lời giải:

a)

\(\sqrt{36(b-2)^2}=\sqrt{6^2(b-2)^2}=6\sqrt{(b-2)^2}=6|b-2|=6(2-b)\) do \(b<2\)

b)

\(\sqrt{b^2(b-1)^2}=\sqrt{b^2}\sqrt{(b-1)^2}=|b||b-1|\)

Do \(b< 0\Rightarrow b,b-1< 0\)

\(\Rightarrow \sqrt{b^2(b-1)^2}=|b||b-1|=-b(1-b)=b(b-1)\)

c) \(\sqrt{a^2(a+1)^2}=\sqrt{a^2}\sqrt{(a+1)^2}=|a||a+1|\)

\(=a(a+1)\) do \(a>0\)

d) \(\sqrt{(2a-1)^2}-4a=|2a-1|-4a\)

Vì \(a< \frac{1}{2}\Rightarrow 2a-1< 0\)

\(\Rightarrow \sqrt{(2a-1)^2}-4a=|2a-1|-4a=(1-2a)-4a=1-6a\)

a) ab2.√3a2b4=ab2.√3√a2b4ab2.3a2b4=ab2.3a2b4

=ab2.√3√a2.√b4=ab2.√3|a|.|b2|=ab2.3a2.b4=ab2.3|a|.|b2|

=ab2.√3(−a).b2=ab2.3(−a).b2 (Do a<0a<0 nên |a|=−a|a|=−a và b≠0b≠0 nên b2>0b2>0 ⇒⇒  ∣∣b2∣∣=b2|b2|=b2)

=−√3=−3.

b) √27(a−3)248=√9(a−3)21627(a−3)248=9(a−3)216

=√9.√(a−3)2√16=3.|a−3|4=9.(a−3)216=3.|a−3|4

=3(a−3)4=3(a−3)4. 

(Do a>3a>3 nên |a−3|=a−3|a−3|=a−3)

c) √9+12a+4a2b2=√32+2.3.2a+(2a)2√b29+12a+4a2b2=32+2.3.2a+(2a)2b2

=√(3+2a)2√b2=|3+2a||b|=(3+2a)2b2=|3+2a||b|
=3+2a−b=−2a+3b=3+2a−b=−2a+3b.

(Do a≥−1,5a≥−1,5 ⇒⇒ 3+2a≥03+2a≥0 nên |3+2a|=3+2a|3+2a|=3+2a và b<0b<0 nên |b|=−b|b|=−b)

d) (a−b).√ab(a−b)2=(a−b).√ab√(a−b)2(a−b).ab(a−b)2=(a−b).ab(a−b)2

=(a−b).√ab|a−b|=(a−b).√ab−(a−b)=(a−b).ab|a−b|=(a−b).ab−(a−b)

=−√ab=−ab.

(Do a<b<0a<b<0 nên |a−b|=−(a−b)|a−b|=−(a−b) và ab>0ab>0)

a) ab2.√3a2b4=ab2.√3√a2b4ab2.3a2b4=ab2.3a2b4

=ab2.√3√a2.√b4=ab2.√3|a|.|b2|=ab2.3a2.b4=ab2.3|a|.|b2|

=ab2.√3(−a).b2=ab2.3(−a).b2 (Do a<0a<0 nên |a|=−a|a|=−a và b≠0b≠0 nên b2>0b2>0 ⇒⇒  ∣∣b2∣∣=b2|b2|=b2)

=−√3=−3.

b) √27(a−3)248=√9(a−3)21627(a−3)248=9(a−3)216

=√9.√(a−3)2√16=3.|a−3|4=9.(a−3)216=3.|a−3|4

=3(a−3)4=3(a−3)4. 

(Do a>3a>3 nên |a−3|=a−3|a−3|=a−3)

c) √9+12a+4a2b2=√32+2.3.2a+(2a)2√b29+12a+4a2b2=32+2.3.2a+(2a)2b2

=√(3+2a)2√b2=|3+2a||b|=(3+2a)2b2=|3+2a||b|
=3+2a−b=−2a+3b=3+2a−b=−2a+3b.

(Do a≥−1,5a≥−1,5 ⇒⇒ 3+2a≥03+2a≥0 nên |3+2a|=3+2a|3+2a|=3+2a và b<0b<0 nên |b|=−b|b|=−b)

d) (a−b).√ab(a−b)2=(a−b).√ab√(a−b)2(a−b).ab(a−b)2=(a−b).ab(a−b)2

=(a−b).√ab|a−b|=(a−b).√ab−(a−b)=(a−b).ab|a−b|=(a−b).ab−(a−b)

=−√ab=−ab.

(Do a<b<0a<b<0 nên |a−b|=−(a−b)|a−b|=−(a−b) và ab>0ab>0)

câu a là j có b mà điều kiện b < 2

b: \(=\left|b\cdot\left(b-1\right)\right|=b\cdot\left|b-1\right|\)

c: \(=\left|a\right|\cdot\left|a+1\right|=a\left(a+1\right)=a^2+a\)

d: \(=1-2a-4a=-6a+1\)

a, Vì trong dấu căn là số âm nên biểu thức này vô nghĩa. b)\(\sqrt{\dfrac{1}{200}}=\dfrac{1}{\sqrt{200}}=\dfrac{1}{10\sqrt{2}}=\dfrac{\sqrt{2}}{10\sqrt{2}.\sqrt{2}}=\dfrac{\sqrt{2}}{20}\)

c,\(\sqrt{\dfrac{7}{500}}=\dfrac{\sqrt{7}}{\sqrt{500}}=\dfrac{\sqrt{7}}{10\sqrt{5}}=\dfrac{\sqrt{7}.\sqrt{5}}{10\sqrt{5}.\sqrt{5}}=\dfrac{\sqrt{35}}{50}\)