General Knowledge - Chemistry - Discussion
Discussion Forum : Chemistry - Section 1 (Q.No. 16)
16.
The mass of P4O10 that will be obtained from the reaction of 1.33 gram of P4 and 5.07 of oxygen is
Discussion:
27 comments Page 1 of 3.
Aruna said:
1 decade ago
Not clear please explain answer this question.
(1)
Cindy said:
1 decade ago
Not clear! How?
(1)
Prashant said:
1 decade ago
I can't understand this question. Please clear this question.
(1)
Vikram said:
1 decade ago
Balance chemical equation
P4 + 5 O2 -> P4O10
1 mol 5 mol 1 mol
124g 160g 284g
Here limiting reagent is P4.
124g of P4 produce P4O10 = 284g
So, 1.33g of P4 produce P4O10 = (284/124)*1.33 = 3.05g
P4 + 5 O2 -> P4O10
1 mol 5 mol 1 mol
124g 160g 284g
Here limiting reagent is P4.
124g of P4 produce P4O10 = 284g
So, 1.33g of P4 produce P4O10 = (284/124)*1.33 = 3.05g
(1)
Dinesh maurya said:
1 decade ago
Please explain in detail.
Prashant bhanuadsji chouke said:
1 decade ago
I understand that very well expalined.
Mehulkumar said:
1 decade ago
P4+5O2 ->P4O10
124+5(16)=204
124gm Of P4 produce 204 gram P4O10
So,
1.33gm P4 produce (204/124)*1.33=2.18gm
So close answer is 2.04gm Option (A)
124+5(16)=204
124gm Of P4 produce 204 gram P4O10
So,
1.33gm P4 produce (204/124)*1.33=2.18gm
So close answer is 2.04gm Option (A)
Rajesh said:
1 decade ago
Four mole phosphorus (4* mwt 31=124)equal to one mole of P4 (mwt 124) react with 5 moles of Oxygen molecule (5* mwt 32=160)to give one mole of Phosphorus Decaoxide (mwt 284)
124 gm P4 will react with 160 gm oxygen molcule (O2) to give 284 gm P4O10.
Therfore 1.33 gm P4 will react with 1.72 gm of O2 (1.33*32*5/124 = 1.72, here Oxgen is taken in excess i.e. 5.07 gm)) will give (1.33*284/124 = 3.05 gm of P4O10.
So the right answer is option [B]
@ Mehulkumar: Here you have to take molecular wt of oxygen molecule and not oxygen atom.
124 gm P4 will react with 160 gm oxygen molcule (O2) to give 284 gm P4O10.
Therfore 1.33 gm P4 will react with 1.72 gm of O2 (1.33*32*5/124 = 1.72, here Oxgen is taken in excess i.e. 5.07 gm)) will give (1.33*284/124 = 3.05 gm of P4O10.
So the right answer is option [B]
@ Mehulkumar: Here you have to take molecular wt of oxygen molecule and not oxygen atom.
Faruque Abdullah said:
1 decade ago
P4+5O2 = P4O10.
124 gm+ 160 gm = 284 gm.
284 gm produce from 124 gm.
1.33 gm will react with (284/124)*1.33 gm=3.046129032. That means 3.05. Therefore the right answer will B.
124 gm+ 160 gm = 284 gm.
284 gm produce from 124 gm.
1.33 gm will react with (284/124)*1.33 gm=3.046129032. That means 3.05. Therefore the right answer will B.
Awanish nishad (NIT Jalandhar) said:
1 decade ago
p4+5 O2 =P4O10.
124gm 160gm 284gm.
Moles of p4 consumed =1.33/124=0.0107258065.
Moles of o2 consumed=5.07/160=0.0316875.
Now for limiting reagent.
p4 is limiting.
Now,
1 mole of p4 produced 1 mole of p4O10
Then 0.0107258065 mole.......=0.0107258065 mole.
Now weight of p4o10 in gm=moles *molecular wt.
=0.0107258065*284=3.046129046.
Approximate answer 3.05.
124gm 160gm 284gm.
Moles of p4 consumed =1.33/124=0.0107258065.
Moles of o2 consumed=5.07/160=0.0316875.
Now for limiting reagent.
p4 is limiting.
Now,
1 mole of p4 produced 1 mole of p4O10
Then 0.0107258065 mole.......=0.0107258065 mole.
Now weight of p4o10 in gm=moles *molecular wt.
=0.0107258065*284=3.046129046.
Approximate answer 3.05.
Post your comments here:
Quick links
Quantitative Aptitude
Verbal (English)
Reasoning
Programming
Interview
Placement Papers