\(n_{H_2}=\dfrac{33,6}{22,4}=1,5\left(mol\right)\\ n_{O_2}=\dfrac{33,6}{22,4}=1,5\left(mol\right)\)

PTHH: 2H₂ + O₂ --t^o--> 2H₂O

LTL: \(\dfrac{1,5}{2}< 1,5\rightarrow O_2\) dư

Theo pt: \(\left\{{}\begin{matrix}n_{O_2\left(pư\right)}=\dfrac{1}{2}n_{H_2}=\dfrac{1}{2}.1,5=0,75\left(mol\right)\\n_{H_2O}=n_{H_2}=1,5\left(mol\right)\end{matrix}\right.\)

\(\rightarrow\left\{{}\begin{matrix}m_{O_2\left(dư\right)}=\left(1,5-0,75\right).32=24\left(g\right)\\V_{O_2}\left(1,5-0,75\right).22,4=16,8\left(l\right)\\m_{H_2O}=1,5.18=27\left(g\right)\end{matrix}\right.\)

\(n_{H_2}=n_{O_2}=\dfrac{33,6}{22,4}=1,5\left(MOL\right)\) 
pthh: \(2H_2+O_2\underrightarrow{t^O}2H_2O\) 
LTL : \(\dfrac{1,5}{2}< \dfrac{1,5}{1}\) 
=> O2 dư , H2 hết 
theo pthh: nH2O = nH2 = 1,5 (mol) 
 => \(m_{H_2O}=1,5.18=27\left(g\right)\)

a) \(n_{H_2}=\dfrac{11,2}{22,4}=0,5\left(mol\right)\)

\(n_{O_2}=\dfrac{10,08}{22,4}=0,45\left(mol\right)\)

PTHH: 2H₂ + O₂ --t^o--> 2H₂O

Xét tỉ lệ: \(\dfrac{0,5}{2}< \dfrac{0,45}{1}\) => H₂ hết, O₂ dư

PTHH: 2H₂ + O₂ --t^o--> 2H₂O

           0,5-->0,25----->0,5

=> \(m_{O_2\left(dư\right)}=\left(0,45-0,25\right).32=6,4\left(g\right)\)

b) \(m_{H_2O}=0,5.18=9\left(g\right)\)

c) 

PTHH: 2KMnO₄ --t^o--> K₂MnO₄ + MnO₂ + O₂

            0,5<-----------------------------------0,25

=> \(m_{KMnO_4}=0,5.158=79\left(g\right)\)

\(n_{H_2}=\dfrac{V_{H_2}}{22,4}=\dfrac{2,4}{22,4}\approx0,11\left(mol\right)\)

\(n_{O_2}=\dfrac{V_{O_2}}{22,4}=\dfrac{1,6}{22,4}\approx0,07\)

\(2H_2+O_2\rightarrow2H_2O\)

2 mol-1mol---2 mol

Ta có: \(\dfrac{n_{H_2}}{2}=\dfrac{0,11}{2}\)

\(\dfrac{n_{O_2}}{1}=\dfrac{0,07}{1}\)

\(\Rightarrow\dfrac{n_{H_2}}{2}< \dfrac{n_{O_2}}{1}\)

Vậy \(O_2\) dư

Số mol O₂ dư:

\(n_{O_2}=\dfrac{0,07.1}{2}=0,035\left(mol\right)\)

Khối lượng O₂ dư

\(m_{O_2}=0,035.32=1,12\left(g\right)\)

Khối lượng nước thu được:

\(n_{H_2O}=\dfrac{0,07.2}{2}=0,07\left(mol\right)\)

\(\Rightarrow m_{H_2O}=n_{H_2O}.M_{H_2O}=0,07.18=1,26\left(g\right)\)

Bài 1:

a, PT: \(Na_2O+H_2O\rightarrow2NaOH\)

b, Ta có: \(n_{Na_2O}=\dfrac{31}{62}=0,5\left(mol\right)\)

\(n_{H_2O}=\dfrac{27}{18}=1,5\left(mol\right)\)

Xét tỉ lệ: \(\dfrac{0,5}{1}< \dfrac{1,5}{1}\), ta được H₂O dư.

Theo PT: \(n_{NaOH}=2n_{Na_2O}=1\left(mol\right)\)

\(\Rightarrow m_{NaOH}=1.40=40\left(g\right)\)

b, Theo PT: \(n_{H_2O\left(pư\right)}=n_{Na_2O}=0,5\left(mol\right)\)

\(\Rightarrow n_{H_2O\left(dư\right)}=1,5-0,5=1\left(mol\right)\)

\(\Rightarrow m_{H_2O\left(dư\right)}=1.18=18\left(g\right)\)

Bài 2:

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

Ta có: \(n_{CH_4}=\dfrac{2,24}{22,4}=0,1\left(mol\right)\)

\(n_{O_2}=\dfrac{3,36}{22,4}=0,15\left(mol\right)\)

b, Xét tỉ lệ: \(\dfrac{0,1}{1}>\dfrac{0,15}{2}\), ta được CH₄ dư.

Theo PT: \(n_{CH_4\left(pư\right)}=\dfrac{1}{2}n_{O_2}=0,075\left(mol\right)\)

\(\Rightarrow n_{CH_4\left(dư\right)}=0,1-0,075=0,025\left(mol\right)\)

\(\Rightarrow V_{CH_4\left(dư\right)}=0,025.22,4=0,56\left(l\right)\)

c, Theo PT: \(\left\{{}\begin{matrix}n_{CO_2}=\dfrac{1}{2}n_{O_2}=0,075\left(mol\right)\\n_{H_2O}=n_{O_2}=0,15\left(mol\right)\end{matrix}\right.\)

⇒ m _{sản phẩm} = m_CO2 + m_H2O = 0,075.44 + 0,15.18 = 6 (g)

Cảm ơn bạn @anayuiky đã nhắc lỗi sai. Mình sửa lại ý c):

PTHH: \(2KMnO_4\rightarrow^{t^o}K_2MnO_4+MnO_2+O_2\uparrow\)

Theo phương trình \(n_{KMnO_4}=n_{O_2}.2=0,25.2=0,5mol\)

\(\rightarrow m_{KMnO_4}=0,5.\left(39+55+16.4\right)=79g\)

a. \(n_{H_2}=\frac{V}{22,4}=\frac{11,2}{22,4}=0,5mol\)

\(n_{O_2}=\frac{V}{22,4}=\frac{10,08}{22,4}=0,45mol\)

PTHH:        \(2H_2+O_2\rightarrow^{t^o}2H_2O\)

Ban đầu:     0,5         0,45                     mol

Trong pứng:  0,5         0,25          0,5     mol

Sau pứng:       0          0,2            0,5      mol

\(\rightarrow M_{O_2\left(dư\right)}=n.M=0,2.32=6,4g\)

b. Theo phương trình \(n_{H_2O}=n_{H_2}=0,5mol\)

\(\rightarrow m_{H_2O}=n.M=0,5.18=9g\)

c. PTHH: \(2KMnO_4\rightarrow^{t^o}K_2MnO_4+MnO_2+O_2\uparrow\)

                      0,9                                                            0,45          mol

\(\rightarrow n_{KMnO_4}=\frac{2}{1}n_{O_2}=\frac{0,45.2}{1}=0,9mol\)

\(\rightarrow m_{KMnO_4}=n.M=0,9.158=142,2g\)

PTHH :     \(S+O_2\left(t^o\right)->SO_2\)      (1)

                 \(SO_2+H_2O->H_2SO_3\)      (2)

\(n_{SO_2}=\dfrac{V_{đktc}}{22,4}=\dfrac{1,12}{22,4}=0,05\left(mol\right)\)

Từ (1) ->    \(n_S=n_{SO_2}=0,05\left(mol\right)\)

->  \(m_S=n.M=1,6\left(g\right)\)

Từ (2) -> \(n_{H_2SO_3}=n_{SO_2}=0,05\left(mol\right)\)

->  \(m_{H_2SO_3}=n.M=0,05.\left(2+32+16.3\right)=4,1\left(g\right)\)

Câu 8:

Ta có: \(n_{H_2}=\dfrac{2,24}{22,4}=0,1\left(mol\right)\)

\(n_{O_2}=\dfrac{4,48}{22,4}=0,2\left(mol\right)\)

PT: \(2H_2+O_2\underrightarrow{t^o}2H_2O\)

Xét tỉ lệ: \(\dfrac{0,1}{2}< \dfrac{0,2}{1}\), ta được O₂ dư.

Theo PT: \(\left\{{}\begin{matrix}n_{O_2\left(pư\right)}=\dfrac{1}{2}n_{H_2}=0,05\left(mol\right)\\n_{H_2O}=n_{H_2}=0,1\left(mol\right)\end{matrix}\right.\)

\(\Rightarrow n_{O_2\left(dư\right)}=0,15\left(mol\right)\)

\(\Rightarrow V_{O_2\left(dư\right)}=0,15.22,4=3,36\left(l\right)\)

\(m_{H_2O}=0,1.18=1,8\left(g\right)\)

Bạn tham khảo nhé!

Câu 9:

a, PT: \(2R+O_2\underrightarrow{t^o}2RO\)

Theo ĐLBT KL, có: m_R + m_O2 = m_RO

⇒ m_O2 = 4,8 (g)

\(\Rightarrow n_{O_2}=\dfrac{4,8}{32}=0,15\left(mol\right)\)

\(\Rightarrow V_{O_2}=0,15.22,4=3,36\left(l\right)\)

b, Theo PT: \(n_R=2n_{O_2}=0,3\left(mol\right)\)

\(\Rightarrow M_R=\dfrac{19,2}{0,3}=64\left(g/mol\right)\)

Vậy: M là đồng (Cu).

Câu 10:

Ta có: m_BaCl2 = 200.15% = 30 (g)

a, m _dd  = 200 + 100 = 300 (g)

\(\Rightarrow C\%_{BaCl_2}=\dfrac{30}{300}.100\%=10\%\)

⇒ Nồng độ dung dịch giảm 5%

b, Ta có: \(C\%_{BaCl_2}=\dfrac{30}{150}.100\%=20\%\)

⇒ Nồng độ dung dịch tăng 5%.

Bạn tham khảo nhé!