Answer to Question #288538 in Abstract Algebra for Siva

"O(G)=11^{2} 13^{2}"

The number of 11 Sylow subgroups are of the form t=1+11 k

since t divides O(G)

"\\Rightarrow t\\ divides\\ 11^{2} 13^{2}\n\n\\\\\\Rightarrow 1+11 k\\ divides\\ 13^{2}\n\n\\\\\\Rightarrow 1+11 k=1\n\n\\\\\\Rightarrow k=0"

Number of 11- Sylow subgroup =1

Since all 11-Sylow subgroups are conjugate and there is only one 11-Sylow subgroup implies the 11-Sylow subgroup is normal.

With the similar argument we can show that there is one 13-Sylow subgroup which is normal.