\(n_{CO_2}=\dfrac{8,96}{22,4}=0,4\left(mol\right)\)

Đặt \(\left\{{}\begin{matrix}n_{CH_4}=x\\n_{C_2H_4}=y\end{matrix}\right.\)  ( mol ) \(\Rightarrow m_{hh}=16x+28y=6\left(g\right)\)   (1)

\(CH_4+2O_2\rightarrow\left(t^o\right)CO_2+2H_2O\)

 x                             x                    ( mol )

\(C_2H_4+3O_2\rightarrow\left(t^o\right)2CO_2+2H_2O\)

  y                               2y                    ( mol )

\(n_{CO_2}=x+2y=0,4\left(mol\right)\)    (2)

\(\left(1\right);\left(2\right)\Rightarrow\left\{{}\begin{matrix}x=0,2\\y=0,1\end{matrix}\right.\)

\(\%m_{CH_4}=\dfrac{0,2.16}{6}.100=53,33\%\)

\(\%m_{C_2H_4}=100-53,33=46,67\%\)

\(C_2H_4+Br_2\rightarrow C_2H_4Br_2\)

  0,1         0,1                   ( mol )

\(m_{Br_2}=0,1.160=16\left(g\right)\)

a, Ta có \(n_{CH_4}+n_{C_2H_4}=\dfrac{3,36}{22,4}=0,15\left(mol\right)\left(1\right)\)

PT: \(CH_4+2O_2\underrightarrow{t^o}CO_2+2H_2O\)

\(C_2H_4+3O_2\underrightarrow{t^o}2CO_2+2H_2O\)

Theo PT: \(n_{O_2}=2n_{CH_4}+3n_{C_2H_4}=\dfrac{8,96}{22,4}=0,4\left(mol\right)\left(2\right)\)

Từ (1) và (2) \(\Rightarrow\left\{{}\begin{matrix}n_{CH_4}=0,05\left(mol\right)\\n_{C_2H_4}=0,1\left(mol\right)\end{matrix}\right.\)

\(\Rightarrow\left\{{}\begin{matrix}V_{CH_4}=0,05.22,4=1,12\left(l\right)\\V_{C_2H_4}=0,1.22,4=2,24\left(l\right)\end{matrix}\right.\)

b, \(m_{CH_4}=0,05.16=0,8\left(g\right)\)

c, \(C_2H_4+Br_2\rightarrow C_2H_4Br_2\)

Theo PT: \(n_{Br_2}=n_{C_2H_4}=0,1\left(mol\right)\Rightarrow V_{ddBr_2}=\dfrac{0,1}{1}=0,1\left(l\right)\)

\(m_{C_2H_4}=0,1.28=2,8\left(g\right)\)

a)

\(C_2H_4 + Br_2 \to C_2H_4Br_2 n_{C_2H_4} = n_{Br_2} = \dfrac{8}{160} = 0,05(mol)\\ \Rightarrow \%V_{C_2H_4} = \dfrac{0,05.22,4}{2,24} .100\%= 50\%\\ \%V_{C_2H_4} = 100\%-50\% = 50\%\)

b)

\(C_2H_4 + H_2 \xrightarrow{t^o,Ni} C_2H_6\\ n_{H_2\ pư} = n_{C_2H_6} = \dfrac{0,896}{22,4} = 0,04(mol)\\ \Rightarrow m_{H_2\ pư} = 0,04.2 = 0,08(gam)\)

1.GS có 100g dd $HCl$

=>m$HCl$=100.20%=20g

=>n$HCl$=20/36,5=40/73 mol

=>n$H2$=20/73 mol

Gọi n$Fe$(X)=a mol n$Mg$(X)=b mol

=>n$HCl$=2a+2b=40/73
mdd sau pứ=56a+24b+100-40/73=56a+24b+99,452gam

m$MgCl2$=95b gam

C% dd $MgCl2$=11,79%=>95b=11,79%(56a+24b+99,452)

=>92,17b-6,6024a=11,725

=>a=0,13695 mol và b=0,137 mol

=>C%dd $FeCl2$=127.0,13695/mdd.100%=15,753%

2.Bảo toàn klg=>mhh khí bđ=m$C2H2$+m$H2$

=0,045.26+0,1.2=1,37 gam

mC=mA-mbình tăng=1,37-0,41=0,96 gam

HH khí C gồm $H2$ dư và $C2H6$ không bị hấp thụ bởi dd $Br2$ gọi số mol lần lượt là a và b mol

Mhh khí=8.2=16 g/mol

mhh khí=0,96=2a+30b

nhh khí=0,06=a+b

=>a=b=0,03 mol

Vậy n$H2$=n$C2H6$=0,03 mol

\(\left\{{}\begin{matrix}n_{CH_4}=a\left(mol\right)\\n_{C_2H_4}=b\left(mol\right)\end{matrix}\right.\)\(\Rightarrow a + b = \dfrac{3,36}{22,4} = 0,15(1) \)

\(CH_4 + 2O_2 \xrightarrow{t^o} CO_2 + 2H_2O\\ C_2H_4 + 3O_2 \xrightarrow{t^o} 2CO_2 + 2H_2O\\ n_{CO_2} = a + 2b = \dfrac{4,48}{22,4} = 0,2(2)\)

Từ (1)(2) suy ra: a = 0,1 ; b = 0,05

Suy ra:

\(\%V_{CH_4} = \dfrac{0,1}{0,15}.100\% = 66,67\%\\ \%V_{C_2H_4} = 100\% - 66,67\% = 33,33\%\)

b)

\(C_2H_4 + Br_2 \to C_2H_4Br_2\\ n_{Br_2} = n_{C_2H_4} = 0,05(mol)\\ \Rightarrow m_{Br_2} = 0,05.160 = 8\ gam\)

 \(CO+CuO\underrightarrow{t^0}Cu+CO_2\)

Hỗn hợp A gồm Cu và CuO dư sau phản ứng

\(Cu+2H_2SO_{4\left(đ,t^0\right)}\rightarrow CuSO_4+SO_2+2H_2O\)

\(CuO+H_2SO_{4\left(đ,t^0\right)}\rightarrow CuSO_4+H_2O\)

\(CO_2+Ca\left(OH\right)_2\rightarrow CaCO_3+H_2O\)

\(CO+CuO\xrightarrow[]{t^0}Cu+CO_2\\ Cu+2H_2SO_4\left(đặc,t^0\right)\xrightarrow[]{}CuSO_4+2H_2O+SO_2\\ CO_2+Ca\left(OH\right)_2+CaCO_3\downarrow+H_2O\)

a) C2H4 + Br2 ---> C2H4Br2

Khí thoát ra là CH4 (metan) ---> mCH4 = 0,2.16 = 3,2g ---> mC2H4 = 6 - 3,2 = 2,8g. (0,1 mol).

---> %CH4 = 0,2/0,3 = 66,7%; %C2H4 = 33,3%.

b) nCO2 = nCH4 + 2nC2H4 = 0,4 mol.

CO2 + Ca(OH)2 ---> CaCO3 + H2O

CO2 + CaCO3 + H2O ---> Ca(HCO3)2

---> nCaCO3 = 0,2 mol ---> m = 0,2.100 = 20g.

nCa(OH)2=0.3=>nCaCO3=0.3 chứ