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Physics, Chemistry and Biology: Post your doubts here!

D

Deevans

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I NEED THE MARK SCHEME TO BIOLOGY PAPER 1 MAY/JUNE 2002 0590/01!!! PLEASE ANYONE KIND ENOUGH? THANKSS!!
 
D

Deevans

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Please? anyone with the Mark Scheme to biology paper 1 may/June 2002 0590! Would really appreciate it! Need it asap. xo
 
Spirit95

Spirit95

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hredoymohammad said:
how does radiation ionize air into positive and negative ions
Click to expand...
Ionization is always about knocking-off electrons from an atom. Therefore, an alpha particle for example, which is the most ionizing, would knock-off electrons from air molecules, causing them to become anions. These electrons that are knocked-off are absorbed or attracted by other atoms, making them cations.
 
K

KZW

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ktc

ktc

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JOEJOE said:
O/N 2003 P6, 0625, Q1D, help me out!
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Q.1 d)

(i) To find the estimated volume, it is the area of the shaded part x c

[0.7 x 0.6 x 0.5] x 5.3

= 1.113 cm3

(ii) The actual external volume is the volume we calculated in part (c ) – the volume in part (d ) (i)

32.41 – 1.113 cm3

= 31.3 cm3

[This answer is an estimation, and therefore, you’re answer might not suite mine, but as long as it is within the range given in the marking scheme, you’re good to go]

The range for answer (d) (i) is 0.5 – 2 cm3
 
Iridescent

Iridescent

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ktc said:
Q.1 d)

(i) To find the estimated volume, it is the area of the shaded part x c

[0.7 x 0.6 x 0.5] x 5.3

= 1.113 cm3

(ii) The actual external volume is the volume we calculated in part (c ) – the volume in part (d ) (i)

32.41 – 1.113 cm3

= 31.3 cm3

[This answer is an estimation, and therefore, you’re answer might not suite mine, but as long as it is within the range given in the marking scheme, you’re good to go]

The range for answer (d) (i) is 0.5 – 2 cm3
Click to expand...
Why do we subtract the area? Shouldn't it be the volume which should subtracted from the actual volume?
 
waleed82

waleed82

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ktc said:
Q.1 d)

(i) To find the estimated volume, it is the area of the shaded part x c

[0.7 x 0.6 x 0.5] x 5.3

= 1.113 cm3

(ii) The actual external volume is the volume we calculated in part (c ) – the volume in part (d ) (i)

32.41 – 1.113 cm3

= 31.3 cm3

[This answer is an estimation, and therefore, you’re answer might not suite mine, but as long as it is within the range given in the marking scheme, you’re good to go]

The range for answer (d) (i) is 0.5 – 2 cm3
Click to expand...
hey can u help me with my question i.e can u solve it too for me.........
 
ktc

ktc

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waleed82 said:
hey can u help me with my question i.e can u solve it too for me.........
Click to expand...

A really good friend of mine already had the marking scheme for this year, luckily, and gave it to me. So here’s the answer to your question. :)


0625_s02_qp_6_q_4-jpg.5778
 
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