Answer to Question #147401 in Abstract Algebra for Sourav Mondal

Let H be a Sylow p-subgroup of G. Then since G is abelian, then H is normal. But any two sylow p-subgroups are conjugate. Hence if K is another, then "gHg^{-1}=K" for some "g\\in H." But H being normal, "gHg^{-1}=H." Hence "K=H." So nly one Sylow p-subgroup.

"|\\mathbb{Z}_{24}|=24=2^3.3." So Sylow 2-subgroup has order 8. "\\mathbb{Z}_{24}" being cyclic each subgroup is cyclic. Cyclic subgroup of order 8 is generated by 24/8=3. Hence

"H=\\{[0],[3],[6],[9],[12],[15],[18],[21]\\}" is the unique Sylow 2 -subgroup.

Similarly, Sylow 3 is "K=\\{[0],[8],[16]\\}." It is a cyclic group generated by the element. Its order is 24. Now sylow 3 subgroup will have order 3. Hence it is also cyclic of order 3 and must be generated by an element of order 3. Since 1 has order 24, so 24/3=8 will have order 3. And hence the result.