A 0.1270 g sample of solid acid is titrated with 28.21 mL of 0.1095 M NaOH. This overshot the endpoint and 2.51 mL of 0.1064 M HCl was used in the back titration. (Back Titration is when you add excess NaOH and have to use HCl to neutralize the excess) Total moles of NaOH = (moles H+ from HCl) + (moles H+ from sample)

a. Calculate the total moles of NaOH added

b. Calculate the total moles of HCl added

c. Calculate the moles NaOH that only reacted with the solid acid (This also equals the moles of H+ from the solid acid).

d. Calculate the equivalent mass of the acid (grams acid per mole H+).

e. If this is a diprotic acid, what is the molar mass?

Show Working Please

1) A 0.2998 gram sample of an unknown acid requires 37.21 mL of 0.1064 M NaOH for neutralization to the phenolphthalein endpoint. The unknown acid reacts with the NaOH in a 1:1 molar ratio.

A. How many moles of NaOH were used in the titration? ____________________ moles NaOH

B. How many moles of acid were present in the unknown sample? ____________________ moles acid

C. What is the molar mass of the acid [use (MM=Grams of acid/ Moles of H⁺ ion furnished)]? ______________________ grams/mole

advance study assignment molar mass of an acid.
1. 7.2ml of 6.0M NaOH there are in 7.2ml of 6.0 M NaOH are diluted with water to a volume of 400.0ml. you are asked to find the molarity of the resulting must be solution.
a. first find out how many moles of NaOH there are in 7.2ml of 6.0 M NaOH. use equation 1. note that the volume must be in liters.
b. since the total number of moles of NaOH is not changed on dilution, the molarity after dilution can also be found by equation 1. using the final volume of the solution. calulate the molarity.
2. in an acid base titration, 21.16ml of an NaOH solution are needed to neutralize 20.04ml of a 0.0997M HCL solution. to find the molarity of the NaOH solution, we can use the following procedures.
a. first note the value of MH+ in HCL solution.
b. find MOH- in NaOH solution equation 3
c. obtain M NAOH from M OH
3. a 0.3012g sample of an unknown monoprotic acid requires 24.13ml of 0.0944 M NaOH of neutralization to a phenolpthalein end point. there are 0.32ml of 0.0997 M HCL used for back titration.
a. how many moles of OH- are used?
how many moles of H+ from HCL?
_____moles OH- _______ moles H+
b. how many moles of H+ are there in the solid acid? use eq 5.
____moles H+ in solid
c. what is the molar mass of the unknown acid? use equation 4.
______g/mol

step by step and answer all
thank you

Please show all work!! Thank you!! :)

A 0.6841 gram sample of an antacid is weighed out and then 50.00 mL of 0.098 M HCL is added to the antacid.

A. Calculate the moles of acid added to the antacid.

B. The solution is titrated to its endpoint. What color is the solution at the endpoint this week?

c. To reach the endpoint, 22.83 mL of 0.1032 M NaOH are required. How many moles of base are used for the back titration?

d. How many moles of acid were neutralized by the antacid?

e. Based on this data, what is the acid consuming capacity (ACC) of the antacid (moles/g)?