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a) Sửa đề: dd H2SO4 9,8%
Ta có: \(n_{H_2}=\dfrac{7,84}{22,4}=0,35\left(mol\right)\) \(\Rightarrow m_{H_2}=0,35\cdot2=0,7\left(g\right)\)
Bảo toàn nguyên tố: \(n_{H_2SO_4}=n_{H_2}=0,35\left(mol\right)\) \(\Rightarrow m_{ddH_2SO_4}=\dfrac{0,35\cdot98}{9,8\%}=350\left(g\right)\)
\(\Rightarrow m_{dd}=m_{KL}+m_{H_2SO_4}-m_{H_2}=361,6\left(g\right)\)
b) Tương tự câu a
`2Fe + 6H_2 SO_[4(đ,n)] -> Fe_2(SO_4)_3 + 3SO_2 \uparrow + 6H_2 O`
`0,05` `0,15` `0,025` `(mol)`
`Cu + 2H_2 SO_[4(đ,n)] -> CuSO_4 + SO_2 \uparrow + 2H_2 O`
`0,225` `0,45` `0,225` `(mol)`
`n_[SO_2]=[6,72]/[22,4]=0,3(mol)`
Gọi `n_[Fe]=x` ; `n_[Cu]=y`
`=>` $\begin{cases} \dfrac{3}{2}x+y=0,3\\56x+64y=17,2 \end{cases}$
`<=>` $\begin{cases}x=0,05\\y=0,225 \end{cases}$
`@m_[Fe_2(SO_4)_3]=0,025.400=10(g)`
`@m_[CuSO_4]=0,225.160=36(g)`
`@m_[dd H_2 SO_4]=[(0,15+0,45).98]/80 .100=73,5(g)`
Sửa đề: 80% ---> 98% (80% chưa đặc nên không giải phóng SO2 được)
Gọi \(\left\{{}\begin{matrix}n_{Fe}=a\left(mol\right)\\n_{Cu}=b\left(mol\right)\end{matrix}\right.\)
\(\rightarrow56a+64b=17,2\left(1\right)\)
PTHH:
\(2Fe+6H_2SO_{4\left(đặc,nóng\right)}\rightarrow Fe_2\left(SO_4\right)_3+3SO_2\uparrow+6H_2O\)
a------>3a------------------->0,5a--------------->1,5a
\(Cu+2H_2SO_{4\left(đặc,nóng\right)}\rightarrow CuSO_4+SO_2\uparrow+2H_2O\)
b----->2b------------------->b------------->b
\(\rightarrow1,5a+b=\dfrac{6,72}{22,4}=0,3\left(2\right)\)
Từ \(\left(1\right)\left(2\right)\rightarrow\left\{{}\begin{matrix}a=0,05\left(mol\right)\\b=0,225\left(mol\right)\end{matrix}\right.\)
\(\rightarrow\left\{{}\begin{matrix}m_{Fe_2\left(SO_4\right)_3}=0,5.0,05.400=10\left(g\right)\\m_{CuSO_4}=0,225.160=36\left(g\right)\\m_{ddH_2SO_4}=\dfrac{\left(0,05.3+0,225.2\right).98}{98\%}=60\left(g\right)\end{matrix}\right.\)
Bài 3 :
a) $Mg + H_2SO_4 \to MgSO_4 + H_2$
$n_{Mg} = n_{H_2} = \dfrac{3,36}{22,4} = 0,15(mol)$
$\%m_{Mg} = \dfrac{0,15.24}{13,2}.100\% = 27,27\%$
$\%m_{Cu} = 100\% -27,27\% = 72,73\%$
b) $n_{Cu} = \dfrac{13,2 - 0,15.24}{64}= 0,15(mol)$
$\Rightarrow m_{muối} = 0,15.120 + 0,15.160= 42(gam)$
Bài 4 :
Gọi $n_{Fe} = a(mol) ; n_{Mg} = b(mol)$
$56a + 24b = 18,4(1)$
$Fe + 2HCl \to FeCl_2 + H_2$
$Mg + 2HCl \to MgCl_2 + H_2$
Theo PTHH : $n_{H_2} = a + b = \dfrac{11,2}{22,4} = 0,5(2)$
Từ (1)(2) suy ra a = 0,2 ; b = 0,3
$\%m_{Fe} = \dfrac{0,2.56}{18,4}.100\% = 60,87\%$
$\%m_{Mg} = 100\% -60,87\% = 39,13\%$
b) $n_{HCl} = 2n_{H_2} = 1(mol)$
$V_{dd\ HCl} = \dfrac{1}{0,8}= 1,25(lít)$
\(Fe+H_2SO_4\rightarrow FeSO_4+H_2\)
\(CuO+H_2SO_4\rightarrow CuSO_4+H_2O\)
\(n_{H_2}=n_{Fe}=\dfrac{4.48}{22.4}=0.2\left(mol\right)\)
\(m_{CuO}=35.2-0.2\cdot56=24\left(g\right)\)
\(n_{CuO}=\dfrac{24}{80}=0.3\left(mol\right)\)
\(\%Fe=\dfrac{11.2}{35.2}\cdot100\%=31.82\%\)
\(\%CuO=100-31.82=68.18\%\)
\(n_{H_2SO_4}=0.2+0.3=0.5\left(mol\right)\)
\(m_{H_2SO_4}=0.5\cdot98=49\left(g\right)\)
\(C\%H_2SO_4=\dfrac{49}{800}\cdot100\%=6.125\%\)
\(m_{FeSO_4}=0.2\cdot152=30.4\left(g\right)\)
\(m_{CuSO_4}=0.3\cdot160=48\left(g\right)\)
\(n_{H^+}=0,5.0,8+0,25.0,8.2=0,8\left(mol\right)\\ \Rightarrow n_{H_2}=\dfrac{n_{H^+}}{2}=\dfrac{0,8}{2}=0,4\left(mol\right)\\ V_{H_2\left(đktc\right)}=0,4.22,4=8,96\left(l\right)\)
Không phải KL hhX cho rồi à ta?
Đáp án C.
Kim loại không phản ứng với H2SO4 loãng là Cu.
Gọi nCu = x, nMg = y, nAl = z
Ta có:
64x + 24y + 27z = 33,2 (1)
Bảo toàn e:
2nMg + 3nAl = 2nH2
=> 2y + 3z = 2.1 (2)
2nCu = 2nSO2 => x = 0.2 (mol) (3)
Từ 1, 2, 3 => x = 0,2; y = z = 0,4 (mol)
mCu = 0,2.64 = 12,8 (g)
mMg = 0,4.24 = 9,6 (g)
mAl = 10,8 (g)
a, \(n_{H_2}=\dfrac{4,48}{22,4}=0,2\left(mol\right)\)
PTHH: Fe + H2SO4 ---> FeSO4 + H2
0,2<---------------------------0,2
\(\rightarrow\left\{{}\begin{matrix}m_{Fe}=0,2.56=11,2\left(g\right)\\m_{Cu}=16-11,2=4,8\left(g\right)\end{matrix}\right.\)
b, \(\left\{{}\begin{matrix}n_{Fe}=\dfrac{32}{16}.0,2=0,4\left(mol\right)\\n_{Cu}=\dfrac{4,8}{64}.\dfrac{32}{16}=0,15\left(mol\right)\end{matrix}\right.\)
PTHH:
Cu + 2H2SO4 (đặc, nóng) ---> CuSO4 + SO2 + 2H2O
0,15--------------------------------------------->0,15
2Fe + 6H2SO4 (đặc, nóng) ---> Fe2(SO4)3 + 3SO2 + 6H2O
0,4------------------------------------------------------>0,6
=> VSO2 = (0,6 + 0,15).22,4 = 16,8 (l)
c, \(n_{NaOH}=0,375.2=0,75\left(mol\right)\)
\(T=\dfrac{0,75}{0,6+0,15}=1\) => tạo duy nhất muối axit (NaHSO3)
PTHH: NaOH + SO2 ---> NaHSO3
0,75----------------->0,75
=> mmuối = 0,75.104 = 78 (g)
a)\(n_{H_2}=\dfrac{5,6}{22,4}=0,25\left(mol\right)\)
PTHH: 2Al + 3H2SO4 → Al2(SO4)3 + 3H2
Mol: x 1,5x
PTHH: Mg + H2SO4 → MgSO4 + H2
Mol: y y
Ta có: \(\left\{{}\begin{matrix}27x+24y=5,1\\1,5x+y=0,25\end{matrix}\right.\Leftrightarrow\left\{{}\begin{matrix}x=0,1\\y=0,1\end{matrix}\right.\)
\(\%m_{Al}=\dfrac{0,1.27.100\%}{5,1}=52,94\%;\%m_{Mg}=100-52,94=47,06\%\)
b)
PTHH: 2Al + 3H2SO4 → Al2(SO4)3 + 3H2
Mol: 0,1 0,15 0,05
PTHH: Mg + H2SO4 → MgSO4 + H2
Mol: 0,1 0,1 0,1
\(m_{ddH_2SO_4}=\dfrac{\left(0,1+0,15\right).98.100}{9,8}=250\left(g\right)\)
mdd sau pứ = 5,1+250-0,15.2 = 254,8(g)
\(C\%_{ddAl_2\left(SO_4\right)_3}=\dfrac{0,05.342.100\%}{254,8}=6,71\%\)
\(C\%_{ddMgSO_4}=\dfrac{0,1.120.100\%}{254,8}=4,71\%\)
\(a) Mg + H_2SO_4 \to MgSO_4 + H_2\\ n_{Mg} = n_{H_2} = \dfrac{1,12}{22,4} =0,05(mol)\\ m_{Mg} = 0,05.24 =1,2(gam)\\ m_{Cu} = 7,6 -1,2 = 6,4(gam)\\ b) n_{H_2SO_4} = n_{H_2} = 0,05(mol) \Rightarrow V_{dd\ H_2SO_4} = \dfrac{0,05}{0,5} =0,1(lít)\\ c) n_{MgSO_4} = n_{H_2} = 0,05(mol) \Rightarrow m_{MgSO_4} = 0,05.120 = 6(gam)\\ d) \text{Bảo toàn electron: } 2n_{Mg} + 2n_{Cu} = 2n_{SO_2}\\ \Rightarrow n_{SO_2} = 0,05 + \dfrac{6,4}{64} = 0,15(mol) \Rightarrow V_{SO_2} = 0,15.22,4 = 3,36(lít)\)