The question being:
"The pKa of methanoic acid is 3.8. Methanoic acid/methanoate is going to be used as a buffer for a reaction. The unbuffered reaction at pH 4.5 results in a decrease in the pH of 2.5 units. What is the minimum concentration of the buffer needed to prevent the pH falling below 4.25?"
All I have calculated is that without buffer present, [H+] will increase by 9.97x10-3M whereas in the presence of buffer [H+] will only increase by 2.46x10-5M, so the buffer must accept 9.95x10-3M protons. However I'm not sure how to use this to find the concentration of buffer, as every time a proton is accepted the position of equilibrium will shift.