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26 Nov 2021, 04:15
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E
Be sure to select an answer first to save it in the Error Log before revealing the correct answer (OA)!
Difficulty:
55%
(hard)
Question Stats:
62% (02:21) correct
38%
(02:35)
wrong
based on 165
sessions
History
Date
Time
Result
Not Attempted Yet
If a and b are negative and \(a^2b^2 = 21 - 4ab\) then \(a^2 = ?\)
A. \(\frac{16-4b}{b^3}\)
B. \(\frac{28}{b^3}\)
C. \(\frac{16}{b^2+7b}\)
D. \(\frac{49}{b^2}\)
E. \(\frac{9}{b^2}\)
A. \(\frac{16-4b}{b^3}\)
B. \(\frac{28}{b^3}\)
C. \(\frac{16}{b^2+7b}\)
D. \(\frac{49}{b^2}\)
E. \(\frac{9}{b^2}\)
26 Nov 2021, 05:04
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Bunuel
Given:
a and b are negative.
&
a^2b^2 = 21 -4ab
We need to find the value of a^2
Solving question stem:
a^2b^2 = 21 -4ab can be recalibrated as a^2b^2+4ab-21=0
a^2b^2 + 7ab -3ab -21 =0
ab(ab+7)-3(ab+7)=0
So, ab = 3 or -7
It cannot be -7 as a and b are -ve and product of two -ve terms is always +ve.
So ab=3
(ab)^2 = 9
a^2b^2 = 9
a^2 = 9/b^2 E is the ans
26 Nov 2021, 05:36
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Bunuel
Solution:
Let us assume \(ab=x\).
So, the equation \(a^2b^2 = 21 - 4ab\) will become \(x^2=21-4x\) or \(x^2+4x-21=0\).
We can solve \(x^2+4x-21=0\) like we solve any other quadratic equation.
\(⇒ x^2+7x-3x-21=0\)
\(⇒ x(x+7)-3(x+7)=0\)
\(⇒ (x+7)(x-3)=0\)
So the value of x can be either \(-7\) or \(3\).
We need to keep in mind that \(x=ab\) and a and b are negative numbers. This means \(ab\) will be positive.
Thus, \(ab=-7\) is discarded.
We have \(ab=3\)
\(⇒ a=\frac{3}{b}\)
\(⇒ a^2 = (\frac{3}{b})^2\)
\(⇒ a^2 = \frac{9}{b^2}\)
Hence the right answer is Option E.
