Explanation of problem please

[Kezzer]

I would be extremely grateful if someone can help me with this problem. I understand part of it, but not the final section.

Residence time equals: 1.5x10¹⁶kg of water (H₂O) divided by 5.05x10¹⁷kg of H₂O

What is the residence time of H₂O in the atmosphere to the nearest day?

So for the equation I get 2.97, but the answer gives the following workings out and I don't understand where all the other bits come from:

(2.97x10^-2y) 1/y^-1
= 2.97 x10^-2y
=0.0297y x 365.4 days y^-1
= 11 days

Many thanks for your help.

 

[lev888]

Residence time equals: 1.5x10¹⁶kg of water (H₂O) divided by 5.05x10¹⁷kg of H₂O

What is the unit of time used in the relevant formula?

 

[Kezzer]

Year?

 

[lev888]

Year?

Are you asking me? I am not familiar with the formula. Please look it up.
Also, double check your answer - are you sure it's 2.97 (years)?
So, assuming the correct answer is 0.0297 years, how do we convert it into days?
1 year is 365.4 days
0.0297 years is X days
X = ?

 

[Dr.Peterson]

One thing you need to do is to show us the entire problem, rather than drop us into the middle of your work. I imagine the problem gave some units, which we need to know; it will also clarify what you are required to find.

Then, as was mentioned, check your work; you made a mistake with the scientific notation.

 

[Kezzer]

Hi, the info I have is as follows:

Dividing the mass of a substance in a reservoir by its rate of transfer through that reservoir gives us its residence time:

Residence time equals: mass of substance in reservoir divided by rate at which substance enters (and/or leaves) reservoir,

or the average time that a substance spends in a reservoir.

The atmosphere contains 1.5 x 10¹⁶kg of water (H₂O) mostly as water vapour, and precipitation and evaporation are balanced, transferring 5.05 x 10¹⁷kg of H₂O per year between the atmosphere and the oceans/land.

What is the residence time of H₂O in the atmosphere to the nearest day?

Many thanks for your input.

 

[Dr.Peterson]

The atmosphere contains 1.5 x 10¹⁶kg of water (H₂O) mostly as water vapour, and precipitation and evaporation are balanced, transferring 5.05 x 10¹⁷kg of H₂O per year between the atmosphere and the oceans/land.

What is the residence time of H₂O in the atmosphere to the nearest day?

The bits I've bolded are what we need. You calculated the residence time in years, since you divided a mass in kg by a rate in kg/year. Then you had to convert that to days.

Now, let's get the calculation fixed: what is 1.5 x 10¹⁶kg divided by 5.05 x 10¹⁷? It will help if you show the steps you took.

 

[Kezzer]

I have cracked it: never do things when you are tired!

So 1.5 x 10¹⁶ divided by 5.05 x 10¹⁷ = 0.02970297029 or 10^-2y

0.0297y x 365.4 days y-1 = 11 days

Or at least I think I have! Thanks everyone for your input.

 

[Dr.Peterson]

I have cracked it: never do things when you are tired!

So 1.5 x 10¹⁶ divided by 5.05 x 10¹⁷ = 0.02970297029 or 10^-2y

0.0297y x 365.4 days y^-1 = 11 days

Or at least I think I have! Thanks everyone for your input.

Yes, that looks good.

I assume what you meant there was "or 2.97 x 10^-2y".

Presumably you have no trouble with the notation you and your book are using, where "365.4 days y^-1" means 365.4 days per year, as a conversion factor. I haven't yet figured out what was meant in your OP, by "(2.97x10^-2y) 1/y^-1", where the last bit seems out of place.

 

[Kezzer]

Apologies for the delay in responding: I have major problems with my phone line and internet connection. Thank you for correcting me on the "or 2.97 x 10^-2yr". Yes I understand the y^_1. I haven't figured out the 1/y^-1 either, but in the line below that it gives the figures without the brackets and without that 1/y^-1, so I can't understand the point of it. Many thanks for your help.