Đáp án:
13:D
14:B
15:B
16:D
17:C
18: $Q=136,4J$
Giải thích các bước giải:
Câu 13: ${{m}_{Al}}=0,21kg;{{t}_{Al}}={{200}^{0}}C;{{t}_{nc}}={{30}^{0}}C;{{t}_{cb}}={{50}^{0}}C$
khi có sự cân bằng nhiệt:
$\begin{align}
& {{Q}_{toa}}={{Q}_{thu}} \\
& \Leftrightarrow {{m}_{Al}}.{{c}_{Al}}.({{t}_{Al}}-{{t}_{cb}})={{m}_{nc}}.{{c}_{nc}}.({{t}_{cb}}-{{t}_{nc}}) \\
& \Leftrightarrow 0,21.880.(200-50)={{m}_{nc}}.4200.(50-30) \\
& \Rightarrow {{m}_{nc}}=0,33kg \\
\end{align}$
Câu 14:
${{m}_{dong}}=0,6kg;{{t}_{d}}={{120}^{0}}C;{{m}_{nc}}=0,5kg;{{t}_{nc}}={{20}^{0}}C$
Khi có sự cân bằng nhiệt:
$\begin{align}
& {{Q}_{toa}}={{Q}_{thu}} \\
& \Leftrightarrow {{m}_{d}}.{{c}_{d}}.({{t}_{d}}-{{t}_{cb}})={{m}_{nc}}.{{c}_{nc}}.({{t}_{cb}}-{{t}_{nc}}) \\
& \Leftrightarrow 0,6.400.(120-{{t}_{cb}})=0,5.4200.({{t}_{cb}}-20) \\
& \Rightarrow {{t}_{cb}}=30,{{26}^{0}}C \\
\end{align}$
Câu 15:
${{m}_{1}}=0,2kg;{{t}_{1}};{{m}_{2}}=0,28kg;{{t}_{2}}={{20}^{0}}C;{{t}_{3}}={{80}^{0}}C$
Khi cân bằng nhiệt xảy ra:
$\begin{align}
& {{Q}_{toa}}={{Q}_{thu}} \\
& \Leftrightarrow {{m}_{1}}.{{c}_{1}}.({{t}_{1}}-{{t}_{3}})={{m}_{2}}.{{c}_{2}}.({{t}_{3}}-{{t}_{2}}) \\
& \Leftrightarrow 0,2.400.({{t}_{1}}-80)=0,28.4200.(80-20) \\
& \Rightarrow {{t}_{1}}={{962}^{0}}C \\
\end{align}$
Câu 16:
${{m}_{Al}}=0,5kg;{{m}_{nc}}=0,118kg;{{t}_{0}}={{20}^{0}}C;{{m}_{Fe}}=0,2kg;{{t}_{Fe}}={{75}^{0}}C$
Khi có sự cân bằng xảy ra:
$\begin{align}
& {{m}_{Al}}=0,5kg;{{m}_{nc}}=0,118kg;{{t}_{0}}={{20}^{0}}C;{{m}_{Fe}}=0,2kg;{{t}_{Fe}}={{75}^{0}}C \\
& {{Q}_{toa}}={{Q}_{thu}} \\
& \Leftrightarrow {{m}_{Fe}}.{{c}_{Fe}}.({{t}_{Fe}}-{{t}_{cb}})=\left( {{m}_{Al}}.{{c}_{Al}}+{{m}_{nc}}.{{c}_{nc}} \right).({{t}_{cb}}-{{t}_{0}}) \\
& \Leftrightarrow 0,2.460.(75-{{t}_{cb}})=(0,5.896+0,118.4180).({{t}_{cb}}-20) \\
& \Rightarrow {{t}_{cb}}={{25}^{0}}C \\
\end{align}$
Câu 17:
$p=100N/{{m}^{2}};{{V}_{1}}=4{{m}^{3}};{{t}_{1}}={{57}^{0}}C;{{t}_{2}}={{87}^{0}}C;$
đẳng áp:
$\begin{align}
& \dfrac{{{V}_{1}}}{{{T}_{1}}}=\dfrac{{{V}_{2}}}{{{T}_{2}}} \\
& \Leftrightarrow \dfrac{4}{57+273}=\dfrac{{{V}_{2}}}{87+273} \\
& \Rightarrow {{V}_{2}}=4,364{{m}^{3}} \\
\end{align}$
công do khối khí thực hiện:
$A=p.({{V}_{2}}-{{V}_{1}})=100.(4,364-4)=36,4J$
Câu 18:
$p=100N/{{m}^{2}};{{V}_{1}}=4{{m}^{3}};{{t}_{1}}={{57}^{0}}C;{{t}_{2}}={{87}^{0}}C;$
đẳng áp:
$\begin{align}
& \frac{{{V}_{1}}}{{{T}_{1}}}=\dfrac{{{V}_{2}}}{{{T}_{2}}} \\
& \Leftrightarrow \dfrac{4}{57+273}=\dfrac{{{V}_{2}}}{87+273} \\
& \Rightarrow {{V}_{2}}=4,364{{m}^{3}} \\
\end{align}$
công do khối khí thực hiện:
$A=p.({{V}_{2}}-{{V}_{1}})=100.(4,364-4)=36,4J$
Nội năng của khối khí:
$p=100N/{{m}^{2}};{{V}_{1}}=4{{m}^{3}};{{t}_{1}}={{57}^{0}}C;{{t}_{2}}={{87}^{0}}C;$
đẳng áp:
$\begin{align}
& \dfrac{{{V}_{1}}}{{{T}_{1}}}=\dfrac{{{V}_{2}}}{{{T}_{2}}} \\
& \Leftrightarrow \dfrac{4}{57+273}=\dfrac{{{V}_{2}}}{87+273} \\
& \Rightarrow {{V}_{2}}=4,364{{m}^{3}} \\
\end{align}$
công do khối khí thực hiện:
$A=p.({{V}_{2}}-{{V}_{1}})=100.(4,364-4)=36,4J$
