Answer:
Step-by-step explanation:
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In this case, when methane is burnt in the presence of carbon dioxide, the following chemical reaction is carried out:
![CH_4+2O_2\rightarrow CO_2+2H_2O](https://img.qammunity.org/2022/formulas/chemistry/high-school/jvscucf85oouvy9z67e81ets22gwwkc0g2.png)
Thus, since there is a 1:2 mole ratio between methane and oxygen, we set up the following mathematical expression to obtain the produced mass of carbon dioxide as a result of the reaction:
![m_(CO_2)=62.8gCH_4*(1molCH_4)/(16.05gCH_4)*(1molCO_2)/(1molCH_4) *(44.01gCO_2)/(1molCO_2) \\\\m_(CO_2)=172.2gCO_2](https://img.qammunity.org/2022/formulas/chemistry/college/ubl0my358zp4grvouzntis3qwn2bvyheei.png)
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