I have two different, but related, questions about the type of geometry one can get on a knot complement.
Quickly some notation: $K$ will be a non-trivial smooth knot - living in $S^3$ - and $M$ will be the complement of a regular neighborhood of $K$.
QUESTION 1
How can $M$ ever admit a hyperbolic geometry (as in, how can hyperbolic knots exist)? $\pi_1(M)$ will contain a $\mathbb{Z}\times\mathbb{Z}$ subgroup (coming from the boundary of that regular neighborhood), and so $\pi_1(M)$ cannot be a hyperbolic group.
Most likely I am confusing details about hyperbolic structures and having a hyperbolic fundamental group.
QUESTION 2
This time let $K$ be the trefoil knot. A reliable source (who almost surely knows what he's talking about) told me, in this case, $M$ admits an $\widetilde{SL(2,\mathbb{R})}$ geometry. [I don't understand all the details of how he explained it, but I think it boiled down to viewing $M$ as $SL(2,\mathbb{R})$, quotient the action of the discrete group $SL(2,\mathbb{Z})$].
But wait! It is well-known in this case that $\pi_1(M)\cong B_3$, the braid group on $3$ strands. And $B_3$ has a subgroup of index $6$ which looks like $\mathbb{Z}\times F_2$, where $F_2$ is the free group on $2$ generators. This subgroup corresponds to a six-sheeted covering space $\hat{M}$; we also have $\hat{M}\sim N\times S^1$, with $N$ a compact surface and $\pi_1(N)\cong F_2$. Now this means $\hat{M}$ has an $\mathbb{H}^2\times\mathbb{R}$ geometry, and so $M$ must as well. [In fact, the underlying ideas here work for any torus knot.]
So what exactly went wrong?