31 Replies
@Dexter
Note for OP
+solved @user to close the thread when your doubt is solved. Mention the user who helped you solve the doubt. This will be added to their stats.4 th one
u here also damn
@Niggil bhai phir solubility se kya relation hai?
π₯ niggil influnce go mad
thinking one sec
more kh more pressure hence more solubility from what i know
isnt there a direct formula relating both
$P_{gas} = KH X{gas}$
Fermat's Last Theorem
solubility or mole fraction?
@Fermat's Last Theorem ??
βοΈ π
@nermal could u help
@iTeachChem
https://www.toppr.com/ask/question/an-ore-contains-134-of-the-mineral-argentite-ag-2-s-by-mass/
How is 248=mass of ag*mass of ore/100
@idk 4th one hai bhaiβ¦ solubility is inversely proportional to henryβs constant
but 4th wale me toh mole fraction likha hai
mole fraction directly proportional hai but solubility nhi haii
solubility mole fraction ke inversely proportional haiβ¦
what π
ok so solubility and mole fraction are directly proportional iska matlab
inversely
Partial Pressure = Kh * Mole fraction
idk about solubility one
alright
Solubility is directly proportional to partial pressure of the gas
thank you so much sir π
You are welcome dude.
+close @iTeachChem
oh my bad
+solved @iTeachChem
Post locked and archived successfully!
Archived by
<@719807591869317201> (719807591869317201)
Time
<t:1716481590:R>
Solved by
<@1035556259417571408> (1035556259417571408)
we should prolly make it close eh, good idea.
or no, it reads funny. lets keep it as solved for now π
iteachchem
Transcription requested by Aman | Jee 25
Depending on the unit of k h, you can figure out ki kaha pe daalna hai wo, theek hai. So if the unit of k h is that of pressure, then you say ki pressure is mole fraction times k h. If the unit of k h is 1 by pressure, then you say ki k h into pressure is equal to mole fraction. Either way. Both of it works. NCRT where one variant is given, you can also do the other one. Don't worry about it so much.
iteachchem
Transcription requested by Zura janai katsura da
Hey dude, please ask on a separate thread, no not here.