Answers by visitors named: Aanya
x^2 +2ax+b is the expression #PsyDAG
8 years ago
Thank you very much Emily! And if we titrate 25cm^3 of the final solution with 0.1 M HCl,using Me.O as the indicator,is there any reaction taking place? I think no as they are both acids(KOH is reacted completely) and the concentrations of OH- we get from...
8 years ago
Let the shortest side be x(cm).So the longest side equals to (x+10)cm and the other side equals to (x+x+10)/2 So perimeter of the triangle= x + (x+10)+[(x+x+10)/2] =60 2x+10+[(2x+10)/2] =60 Now let's multiply both sides by 2 to get, 2(2x+10) + (2x+10) = 6...
8 years ago
There's a typo in the in the fourth line from the bottom.It should be corrected as, 4x +20 +2x +10 = * 120 * is to indicate the place I've corrected
8 years ago
Thank you very much DrBob222.I totally forgot about the Henderson equation! I think you cleared out all my doubts.Thank you very much for the help..
8 years ago
Thank you very much for your concern on this question in the first place. And I forgot to include that It is given that the temperature is 25°C. Again I'm also having doubts.I will wait for your answer and in the mean time I'll try this again.
8 years ago
Thank you very much! Now it sounds more reasonable! And I have another question regarding this. If we titrate the final solution with NaOH of same concentration what are the changes which should be done in this experiment?
8 years ago
Thank you very much! Now it sounds more reasonable! And I have another question regarding this. If we titrate the final solution with NaOH of same concentration as HClmentioned in the last part what are the changes which should be done in this experiment?
8 years ago
DrBob222 don't we have to consider the hydrolysis of HX- here? H2O(l)+ HX-(aq)<==>H2X(aq)+OH-(aq)-->(1) equ. (0.1-x) x x (moldm-3) Kh= [H2X][OH-]/[HX-] Kh=kw/ka(HX-) But we are not given the kW value and we can take it as 14 only if the temperature is 25°...
8 years ago
Some corrections should be added! x^2==>2*(10)^-6 M x==>1.41*(10)^-3 M y^2= 9*1.41*(10)^-8 M y^2=12.69*(10)^-8 M y ==>3.56*(10)^-4 M [H+]=> 3.56*(10)^-4 M
8 years ago
Emily there are two reactions of H2X with NaOH ,as of what I've learned.. H2X+NaOH ---> NaHX + H2O when there's excess NaOH, H2X+ 2NaOH ---> Na2X +2H2O
8 years ago
First find the moles of H2X with the help of the NaOH moles.Now you get the moles of H2X in 25ml.Multiply it by 4 to find the moles in 100ml. Find the concentration of NaOH with the given data in the titration of KHP. Find the molar mass of H2X by dividin...
8 years ago
So what are the changes which should be made,if we titrate the final solution with NaOH,not with HCl? Change of indicators or molarities etc.
8 years ago
Sn^(2+)?
8 years ago
Thank you! I was worried about ths question stating Fe3+ becoming colourless
8 years ago
Yes that is what I meant! :-)
8 years ago
*H2CO will create?
8 years ago
Is that what you meant?
8 years ago
1 picometer= 1*(10)^-12 m
8 years ago
Than O2?
8 years ago
The same here :-(
8 years ago
Thanks a lot!!
8 years ago
Radius of the beaker?
8 years ago
*1/2m(w^2)=aRd
8 years ago
But they have given it like that in the question, that A reaches the previous point.
8 years ago
E°cell= E°cathode-E°anode E°cell=-0.44-(-0.74) = 0.30V Ecell= E°cell - 0.0591/n log [Cr3+]^2/[Fe2+]^3 Ecell= 0.30- 0.0591/6 log[0.1]^2/[0.1]^3 Ecell= 0.30 - 0.0591/6 log 10 Ecell= 0.30 - 0.0591= 0.2409V
4 years ago