A $5 L$ $5 L$ container holds $8$ $8$ mol and $5$ $5$ mol of gasses A and B, respectively. Every five of molecules of gas B bind to four molecule of gas A and the reaction changes the temperature from $320^{o} K$ $320^oK$ to $450^{o} K$ $450 ^oK$ . By how much does the pressure change?

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A $5 L$ $5 L$ container holds $8$ $8$ mol and $5$ $5$ mol of gasses A and B, respectively. Every five of molecules of gas B bind to four molecule of gas A and the reaction changes the temperature from $320^{o} K$ $320^oK$ to $450^{o} K$ $450 ^oK$ . By how much does the pressure change?

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Answer 1 · 2017-10-15T06:22:33

-39,5 Atm

Explanation:

If every 5 of molecules of gas B bind to 4 molecules of gas A and You have at first
5 mol of B and 8 of A, at the end it remains 4 mol of A and one compound $A_{4} B_{5}$ $A_4B_5$ of which we don't know if it is condensed or gas, neither what is its formula so i suppose it is solid.

Al the beginning the Pressure is given by ideal gases law. $P = n R \frac{T}{V} = \frac{(8 + 5) m o l \times 0, 082 \frac{L \times A t m}{m o l \times K} \times 320 K}{5 L} = 68 A t m$ $P = nRT/V = ((8+5)mol xx 0,082 (L xx Atm) /(mol xx K) xx 320K)/ (5L) = 68 Atm$
at the end you will have $P = n R \frac{T}{V} = \frac{(4 + n A B) m o l \times 0, 082 \frac{L \times A t m}{m o l \times K} \times 450 K}{5 L} = 29, 5 A t m$ $P = nRT/V = ((4 + nAB)mol xx 0,082 (L xx Atm) /(mol xx K) xx 450K)/ (5L) = 29,5 Atm$
where with nAB i have indicate the possible number of gas moles formed by the reaction I considered null. the pressure change decreasing from 69 to 29,5 atm that is - 39,5 atm.

Pay attention!. With a pressure so high you cannot use the ideal gases law, but the real gases law and for that you must know what are your gases

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A $5 L$ $5 L$ container holds $8$ $8$ mol and $5$ $5$ mol of gasses A and B, respectively. Every five of molecules of gas B bind to four molecule of gas A and the reaction changes the temperature from $320^{o} K$ $320^oK$ to $450^{o} K$ $450 ^oK$ . By how much does the pressure change?

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A 5L5 L container holds 88 mol and 55 mol of gasses A and B, respectively. Every five of molecules of gas B bind to four molecule of gas A and the reaction changes the temperature from 320oK320^oK to 450oK450 ^oK. By how much does the pressure change?

1 Answer

Explanation:

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A $5 L$ $5 L$ container holds $8$ $8$ mol and $5$ $5$ mol of gasses A and B, respectively. Every five of molecules of gas B bind to four molecule of gas A and the reaction changes the temperature from $320^{o} K$ $320^oK$ to $450^{o} K$ $450 ^oK$ . By how much does the pressure change?