根据乙酸的电离平衡,[H+]*[Ac-]/[HAc] = 1.75*10^-5其中1.75*10^-5是乙酸的电离常数由于乙酸电离很弱,而且乙酸钠抑制乙酸的电离,所以乙酸根浓度约等于0.125mol/L。同理,乙酸浓度约等于0.05mol/L。所以[H+]*0.125/0.05 = 1.75*10^-5[H+] = 7*10^-6pH = 5.15
