2C\(_2\)H\(_2\)(g) + 5O\(_2\)(g) → 4CO\(_2\)(g) + 2H\(_2\)O(g)
In the reaction above, the mass of carbon(IV)oxide produced on burning 78 g of ethyne is
[C =12, O = 16, H = 1]
264 g
39 g
352 g
156 g
Explanation
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Discussions (23)
according 2 d rxn,52g of ethyne require 176g of CO2.
52g_____________176g
78g_____________176/52 X 78/1
3.385g X 78=264g.
therefore,
78g of ethyne require 264g of carbon(iv) oxide.so d ansa is A
Here is the correct explanation:
2 moles of C2H2- 4 moles of CO2
2*26- 4*44
52g of ethyne will give 176g of carbon(iv)oxide
78g of ethyne will give xg of carbon(iv) oxide
52/78=176/x
176*78=52x
13728=52x
x=13728/52
x=264. Option A
The answer is A not C..
no. of moles of Ethyne is 3mol
2mole of ethyne = 4mole of carbon(iv)oxide
therefore no of mole of carbon(iv)oxide is
(3*4)/2 = 6mol
mass of carbon(iv)oxide = 6 * (44)
= 264g of Carbon(iv)oxide
Yea dey represented the ratio well bt there was a miss calculation along so d ans is A
The selected answer is wrong:
2moles of C2H2 produce 4moles of CO2,it therefore implies that 2*26g of C2H2 produces 4*44g of CO2 52g produces 176g 78g produces xg of CO2;cross multiply 78*176/52=264g
plz the past questions are not updating on mine when I want to study past questions
Why all these silly silly mistakes??? Plz myschool run fast and correct these mistakes b4 it mislead ur students...
