解:①防电墙与人体电阻串联,由串联分压可得$\frac {U_{1}}{U_{2}}=\frac {R_{1}}{R_{2}}=\frac {468 \ \mathrm {kΩ}}{2 \ \mathrm {kΩ}}=\frac {234}{1}$,由串联电路的电压规律可得$U_{1}+U_{2}=220\ \mathrm {V}$,联立可得,人体两端的电压$U_{2}≈0.9\ \mathrm {V}$,因为$0.9\ \mathrm {V}<36\ \mathrm {V}$,所以此防电墙能保证人的安全.
