2Fe(OH)3+3H2SO4=Fe2(SO4)3+H2O
m р-ра(H2SO4)=142,35*1,124=160г
m в-ва(H2SO4)=160*0,18375=29,4г
n(H2SO4)=29,4/98=0,3 моль
n(Fe(OH)3):n(H2SO4)=2:3--->n(Fe(OH)3)=0.2моль
m(Fe(OH)3)=0.2*(56+16*3+1*3)=21,4г
n(H2SO4):n(Fe2(SO4)3)=3:1-->n(Fe2(SO4)3)= 0.1 моль
m(Fe2(SO4)3)=0,1*(56*2+(32+16*4)*3)=40 г
W=(40)/(160+21,4) *100% = 22%