Internal Group Direct Product of Normal Subgroups

Theorem
Let $G$ be a group whose identity is $e$.

Let $H_1, H_2$ be subgroups of $G$.

Let $\phi: H_1 \times H_2 \to G$ be a mapping defined by $\phi \left({\left({h_1, h_2}\right)}\right) = h_1 h_2$.

Let $H_1$ and $H_2$ be normal subgroups of $G$, and let $H_1 \cap H_2 = \left\{{e}\right\}$.

Then $\phi$ is a (group) homomorphism.

Proof
Let $H_1$ and $H_2$ be normal subgroups of $G$.

Let $h_1 \in H_1, h_2 \in H_2$.

Consider $x \in G: x = h_1 h_2 h_1^{-1} h_2^{-1}$.

As $H_2$ is normal, we have $h_1 h_2 h_1^{-1} \in H_2$ and thus $x \in H_2$.

Similarly, we can show that $x \in H_1$ and so $x \in H_1 \cap H_2$ and thus $x = e$.

From Product of Commuting Elements with Inverses, $h_1 h_2 h_1^{-1} h_2^{-1} = e$ iff $h_1$ and $h_2$ commute.

Thus $h_1 h_2 = h_2 h_1$.

As $h_1$ and $h_2$ are arbitrary elements of $H_1$ and $H_2$, it follows that every element of $H_1$ commutes with every element of $H_2$.

Thus from Mapping from Cartesian Product Homomorphism iff Abelian, $\phi$ is a homomorphism.