Find the term independent of $x$ in the expansion of $$(2+x)\left(2x+\frac{1}{x}\right)^5$$
I am only able to do this with one binomial, but when there are two I do not totally understand the process to do this.
[Math] Question on binomial theorem: Find the term independent of $x$ in the expansion of $(2+x)\left(2x+\frac{1}{x}\right)^5$
algebra-precalculusbinomial theorembinomial-coefficientscalculus
Best Answer
First, rewrite the fifth power as a sum $$(2+x)\left(2x+\frac 1x\right)^5 = (2+x) \sum_{k=0}^5 {5\choose k} (2x)^\color{red}{5-k}\left(\frac 1x\right)^\color{blue}{k}$$ General idea: Note that to have a free (of $x$) term when multiplied by $(\color{orange}2+\color{purple}x)$, we must have a constant term (when multiplied by $\color{orange}2$ yields a free term) or term with $\frac{1}{x}$ (when multiplied by $\color{purple}x$ yields a free term) in the sum.
Let's see if there is a constant term in the sum. To check this, we equate the red and blue powers since $x$'s should cancel each other: $$5-k = k \implies k = 2.5 \qquad \color{red}{\sf X}$$ So, there is no such term since $k$ was not an integer.
Let's see if there is a term with $\frac{1}{x}$ in the sum. To check this, we set the $\color{red}{\text{red}} = \color{blue}{\text{blue}} - 1$ since after cancelling $x$'s, one $x$ should "survive" in the denominator: $$5-k = k - 1 \implies k = 3 \qquad \color{gree}{\checkmark}$$ Yes! There is such term when $k=3$: $${5\choose k} (2x)^{5-k}\left(\frac 1x\right)^k\Bigg|_{k=3} = {5\choose 3} \frac 4x$$
Finally, when we multiply the sum and $(2+x)$ our constant (free) term will be $$x \cdot {5\choose 3} \frac 4x = 4 {5\choose 3} = 40$$