Step 1: Use Thevenin equivalent circuit.
The load current is
\[
I_L
=
\frac{V_{th}}{R_{th}+R_L}.
\]
Given,
\[
V_{th}=20\,\mathrm{V},\qquad
R_{th}=4\,\Omega,\qquad
R_L=4\,\Omega.
\]
Step 2: Calculate the load current.
\[
I_L
=
\frac{20}{4+4}
=
\frac{20}{8}
=
2.5\,\mathrm{A}.
\]
Hence,
\[
\boxed{2.5\,\mathrm{A}}
\]
Therefore,
\[
\boxed{(A)}
\]
is the correct answer.