Gauge fixing and instanton calculation

$newcommand{rto}{overset{scriptscriptstyle rtoinfty}{longrightarrow}} newcommand{v}[1]{boldsymbol{#1}} newcommand{t}{tau} newcommand{pd}{partial} newcommand{demeqq}{overset{!}{=}}$ One should make a distinction between time-dependent and time-independent gauge transformations. I will denote $x=(t,v x)$. What is described in the book is the following. You have boundary condition: $$A_mu(x) demeqq U^{-1}(x),pd_mu, U(x)tag{bc}label{bc}$$ and gauge-fixing condition $$A_0(x) demeqq 0,, qquad text{for all} x. tag{gfc}label{gfc}$$ What they now say is that a time-independent gauge transformation doesn't change (ref{gfc}). Such a gauge transformation is one that $pd_0tilde{U}(v x)=0$ begin{align} A_0(x)mapsto A_0'(x) &= tilde{U}^{-1}(v x) A_0(x) tilde{U}(v x) + tilde{U}^{-1}(v x)pd_0, tilde{U}(v x) &= tilde{U}^{-1}(v x); color{red}{0}; tilde{U}(v x) + tilde{U}^{-1}(v x);color{blue}{underset{0}{underbrace{pd_0, tilde{U}(v x)}}} &= color{red}{0}+color{blue}{0}=0. end{align} This means then that having gauge-fixed in (ref{gfc}) we have not completely gauge-fixed, as those time-independent gauge transformations are still allowed. The next claim in the book is that the only gauge field consistent with both (ref{bc}) and (ref{gfc}) is one that is always pure gauge, and moreover, time-independent gauge, so $$A_mu(x) = left(begin{array}{cc} A_0(x) A_i(x) end{array} right) = left(begin{array}{cc} 0 A_i(v x) end{array} right) = left(begin{array}{cc} 0 V^{-1}(v x) pd_i V(v x) end{array} right).tag{$star$}label{*} $$ You can see that because if you had any time-dependence in (ref{*}), the gauge transformations would necessarily generate some $A_0$, and this is forbidden by (ref{gfc}).

A comment: What you also have wrong in your understanding is in the phrase "chooses another gauge". In fact, this was the first time the authors chose a gauge; previously they merely said it is some pure gauge at $rtoinfty$.