Question

Question #9a058

Answer 1

`e`

Explanation:

`lim_(x->0)((3+x)/(3-2x))^(1/x)=lim_(x->0)((3-2x+2x+x)/(3-2x))^(1/x)=`

`=lim_(x->0)(1+(3x)/(3-2x))^(1/x)=A`

Let `(3x)/(3-2x)=1/t`, then:

`3tx=3-2x => x(3t+2)=3 => 1/x=(3t+2)/3=t+2/3`

It's obvious that when `x->0` then `t->oo`.

`A=lim_(t->oo)(1+1/t)^(t+2/3)=`

`=lim_(t->oo)(1+1/t)^(2/3) * lim_(t->oo)(1+1/t)^t=`

`=1 * e=e`

Note:
`t->oo => 1/t->0`

`lim_(t->oo)(1+1/t)^t =e`

Note 2:

`lim_(x->0)((3-2x+2x+x)/(3-2x))^(1/x)=`

`lim_(x->0)((3-2x)/(3-2x)+(2x+x)/(3-2x))^(1/x)=`

`lim_(x->0)(1+(3x)/(3-2x))^(1/x)`