Author Topic: ALL CIE CHEMISTRY DOUBTS HERE !!  (Read 122951 times)

Offline Dania

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Re: CIE Chemistry doubts.
« Reply #60 on: October 07, 2010, 05:47:44 pm »
Thanks :) I have a MCQ also:

The density of ice is 1.00 g cm–3.

What is the volume of steam produced when 1.00 cm3 of ice is heated to 323 °C (596 K) at a
pressure of one atmosphere (101 kPa)?

[1 mol of a gas occupies 24.0 dm3 at 25 °C (298 K) and one atmosphere.]
A 0.267 dm3
B 1.33 dm3
C 2.67 dm3
D 48.0 dm3

The answer is C. How would I obtain it? I'm not sure what equation to use.
:)

Offline Deadly_king

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Re: CIE Chemistry doubts.
« Reply #61 on: October 07, 2010, 06:04:49 pm »
Thanks :) I have a MCQ also:

The density of ice is 1.00 g cm–3.

What is the volume of steam produced when 1.00 cm3 of ice is heated to 323 °C (596 K) at a
pressure of one atmosphere (101 kPa)?

[1 mol of a gas occupies 24.0 dm3 at 25 °C (298 K) and one atmosphere.]
A 0.267 dm3
B 1.33 dm3
C 2.67 dm3
D 48.0 dm3

The answer is C. How would I obtain it? I'm not sure what equation to use.

First you need to find the number of moles present in 1cm3 of ice.

Using density = 1gcm-3, we take the mass present in 1 cm3 of ice to be 1g.

Number of moles = Mass/Mr ----> Number of moles = 1/18 = 0.0556

Now we use the formula for ideal gas ---> PV = nRT

V = (0.0556 x 8.31 x 596)/(101 x 103) =  0.0027m3

This is equal to 2.7dm3

Am not sure though.........since I did not obtain 2.67 dm3  :-[

nid404

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Re: CIE Chemistry doubts.
« Reply #62 on: October 07, 2010, 06:05:34 pm »
You've become faster :P

Offline Deadly_king

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Re: CIE Chemistry doubts.
« Reply #63 on: October 08, 2010, 07:50:11 am »
You've become faster :P

Hehe......yeah I guess so  ;)

Anyway it would be nice if you could confirm the method since I didn't obtain the exact answer  ???

Offline Dania

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Re: CIE Chemistry doubts.
« Reply #64 on: October 08, 2010, 10:04:34 am »
The answer is D.
Why?
:)

Offline Dania

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Re: CIE Chemistry doubts.
« Reply #65 on: October 08, 2010, 11:17:00 am »
The answer is B. Why?
:)

Offline Deadly_king

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Re: CIE Chemistry doubts.
« Reply #66 on: October 08, 2010, 12:08:56 pm »
The answer is D.
Why?
Since it is unreactive to mild oxidising agents, the compound should have been a tertiary alcohol before dehydration. Only D offers this possibility.

NOTE : Tertiary alcohols cannot be oxidised.

Offline ashish

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Re: CIE Chemistry doubts.
« Reply #67 on: October 08, 2010, 02:02:59 pm »
The answer is B. Why?

CaCO3(limestone)  -----> CaO + CO2

from equation 1 mole CaCO3 produced 1 mole CO2


Mr CaCO3 =100.1

Mr CaO=56.1

Mr CO2=44

1000mt CaCO3 will give 560.1mt Cao and 440mt CO2
200mt  CaCO3 will give 112.02mt Cao and 88mt CO2

mt=million tonnes

total CO2 = 440+88
=528 --- near to 527

IS that CIE i never worked out such question before
i am not sure whether the method is good or not
« Last Edit: October 08, 2010, 03:00:55 pm by ashish »

Offline Dania

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Re: CIE Chemistry doubts.
« Reply #68 on: October 08, 2010, 06:33:51 pm »
Ah, yes. I think I didn't read the question properly, I get it now. Yeah, it's a CIE paper question.
:)

Offline Deadly_king

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Re: CIE Chemistry doubts.
« Reply #69 on: October 08, 2010, 06:38:34 pm »
CaCO3(limestone)  -----> CaO + CO2

from equation 1 mole CaCO3 produced 1 mole CO2


Mr CaCO3 =100.1

Mr CaO=56.1

Mr CO2=44

1000mt CaCO3 will give 560.1mt Cao and 440mt CO2
200mt  CaCO3 will give 112.02mt Cao and 88mt CO2

mt=million tonnes

total CO2 = 440+88
=528 --- near to 527

IS that CIE i never worked out such question before
i am not sure whether the method is good or not

Good job pal........though it was a bit long  ;)

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Offline moon

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Re: CIE Chemistry doubts.
« Reply #70 on: October 08, 2010, 09:24:05 pm »
plz help in Nov.2009 ppr22 Q2(v) &

also Nov.2009 ppr42 Q8(c) (ii), d(ii),(iv)

thanx in advanc.

Offline moon

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Re: CIE Chemistry doubts.
« Reply #71 on: October 09, 2010, 01:01:15 am »
can u plz another question?

complete combustion of a hydrocarbon gave 0.352gm of CO2 & 0.072gm of water. What is the formula of hydrocarbon? ??? ???

elemis

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Re: CIE Chemistry doubts.
« Reply #72 on: October 09, 2010, 04:57:58 am »
can u plz another question?

complete combustion of a hydrocarbon gave 0.352gm of CO2 & 0.072gm of water. What is the formula of hydrocarbon? ??? ???

Your question is incomplete I need the mass of the original hydrocarbon.

But the methodology is as follows :

If there are 2 grams of Hydrogen in 18 grams of water   THEN

there are    X grams of Hydrogen in 0.072 grams of water

Hence, X = 8*10-3

If there are 12 grams of Carbon in 44 grams of CO2 THEN

there are     Y grams of Carbon in 0.352 grams of CO2

Hence, Y = 0.096

At this point you would add X and Y and subtract that value from the mass of the Hydrocarbon to find the mass of oxygen.

Then you would have the mass of C H and O

You could then calculate the Empirical formula.

Offline Deadly_king

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Re: CIE Chemistry doubts.
« Reply #73 on: October 09, 2010, 05:13:44 am »
can u plz another question?

complete combustion of a hydrocarbon gave 0.352gm of CO2 & 0.072gm of water. What is the formula of hydrocarbon? ??? ???

Nan Ari......the data provided is sufficient to find the answer.

CxHy + (x + y/4)O2 ----> xCO2 + (y/2) H2O

Number of moles CO2 = Mass / Mr = 0.352/44 = 0.008

Number of moles of H2O = 0.072/18 = 0.004

1 mole of the hydrocarbon gives 0.008 moles of CO2 and 0.004 moles of H2O

Therefore from equation above we can note that x = 0.008 while y/2 = 0.004

Empirical formula will hence be C8H8

If you don't understand, let me know :)

elemis

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Re: CIE Chemistry doubts.
« Reply #74 on: October 09, 2010, 05:17:13 am »
Ah, damn. I didnt think of it in that way.  :-X

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