Answer to Question #233064 in Abstract Algebra for 123

"\\text{The set $A = \\{ a + b\\sqrt2\\}$ is a subring of $R$ since for any arbitrary elements: }\\\\\na + b\\sqrt2, c+ d\\sqrt2\\\\\na + b\\sqrt2 - c+ d\\sqrt2 = (a-c) + (b-d)\\sqrt2 \\in A \\\\\n\\text{and } (a + b\\sqrt2) (c+ d\\sqrt2) = (ac + 2bd)(bc + ad)\\sqrt2 \\in A \\\\\n\\text{Hence since $A$ form a subring, thus it suffices to say that $A$ form a ring.} \\\\\n\\text{$A$ is commutative since:} (a + b\\sqrt2) (c+ d\\sqrt2) = (c+ d\\sqrt2)(a + b\\sqrt2) = (ac + 2bd)(bc + ad)\\sqrt2 \\in A \\\\\n\\text{It has a unity since $1 \\in A$ and } 1\\cdot(a + b\\sqrt2) = (a + b\\sqrt2) \\cdot 1= (a + b\\sqrt2)"