Question: Values of x for which the sixth term of the expansion of \(E = {\left( {{3^{{{\log }_3}\sqrt {9|x - ...

Question

Values of x for which the sixth term of the expansion of $E = {\left( {{3^{{{\log }_3}\sqrt {9|x - 2|} }} + {7^{\left( {\dfrac{1}{5}} \right){{\log }_7}\left[ {(4){{.3}^{|x - 2|}} - 9} \right]}}} \right)^7}$ is 567, are
(). 1
(). 2
(). 3
(). None of these

Answer 1

Solution

The given binomial expansion is of the form ${(a + b)^7}$ , hence the r+1, term of the binomial expansion is given by- ${T_{r + 1}} = {}^n{C_r}{a^{n - r}}{b^r}$ . Put r = 5, in this equation to find the 6th term.

Complete step-by-step answer :
We have been given in the question the binomial expansion, $E = {\left( {{3^{{{\log }_3}\sqrt {9|x - 2|} }} + {7^{\left( {\dfrac{1}{5}} \right){{\log }_7}\left[ {(4){{.3}^{|x - 2|}} - 9} \right]}}} \right)^7}$ .
Also, the 6th term of the expansion is 567.
Therefore, using the hint, the value of the 6th term of the expansion can be found out by using the formula,
${T_{r + 1}} = {}^n{C_r}{a^{n - r}}{b^r}$
Now we have to find 6th term, so keep r = 5, n = 7, $a = {3^{{{\log }_3}\sqrt {9|x - 2|} }}$ , $b = {7^{\left( {\dfrac{1}{5}} \right){{\log }_7}\left[ {(4){{.3}^{|x - 2|}} - 9} \right]}}$ in the given equation.
We get-

{T_{5 + 1}} = {}^7{C_5}{\left[ {{3^{{{\log }_3}\sqrt {9|x - 2|} }}} \right]^{7 - 5}}{\left[ {{7^{\left( {\dfrac{1}{5}} \right){{\log }_7}\left[ {(4){{.3}^{|x - 2|}} - 9} \right]}}} \right]^5} \\\ {T_6} = {T_{5 + 1}} = {}^7{C_5}{\left[ {{3^{{{\log }_3}\sqrt {9|x - 2|} }}} \right]^2}{\left[ {{7^{\left( {\dfrac{1}{5}} \right){{\log }_7}\left[ {(4){{.3}^{|x - 2|}} - 9} \right]}}} \right]^5} \\\ \Rightarrow {T_6} = \dfrac{{7!}}{{5!.2!}}{\left[ {\sqrt {{9^{|x - 2|}}} } \right]^2}{\left[ {{7^{{{\log }_7}\left[ {(4){{.3}^{|x - 2|}} - 9} \right]}}^{\dfrac{1}{5}}} \right]^5} \\\ = 21{\left[ {\sqrt {{9^{|x - 2|}}} } \right]^2}\left[ {\left[ {(4){{.3}^{|x - 2|}} - 9} \right]} \right] \\\ = {21.9^{|x - 2|}}.\left\\{ {{{4.3}^{|x - 2|}} - 9} \right\\} \\\ = {21.3^{2|x - 2|}}.\left\\{ {{{4.3}^{|x - 2|}} - 9} \right\\} \\\

Now, we have been given that the 6th term is 567. Therefore keeping, ${T_6} = 567$ , we get-

{T_6} = {21.3^{2|x - 2|}}\left\\{ {{{4.3}^{|x - 2|}} - 9} \right\\} = 567 \\\ \Rightarrow {21.3^{2|x - 2|}}\left\\{ {{{4.3}^{|x - 2|}} - 9} \right\\} = 21 \times 27 \\\ \Rightarrow {3^{2|x - 2|}}\left\\{ {{{4.3}^{|x - 2|}} - 9} \right\\} = 27 \\\ \Rightarrow {4.3^{3|x - 2|}} - (9){3^{2|x - 2|}} = 27 \\\

Put $u = {3^{|x - 2|}}$ , we get-
$4{u^3} - 9{u^2} - 27 = 0$
Now, we can see u = 3 satisfies the equation, so we can write-
${3^{|x - 2|}} = 3 \\\ \Rightarrow |x - 2| = 1 \\\ \Rightarrow x - 2 = \pm 1 \\\ \Rightarrow x = 2 \pm 1 \\\ \Rightarrow x = 3,1 \\\$
Therefore, we have two values of x for which the 6th term of the expansion is 567.
Hence, the correct options are [A] and [C].

Note : Whenever solving such types of questions, always write down the information provided in the question, and then use the standard formula of binomial expansion, as mentioned in the solution, i.e., ${T_{r + 1}} = {}^n{C_r}{a^{n - r}}{b^r}$ , to find the 6th term of the given expansion, and then equate it to 567 to find the values of x.