3.0g of a mixture of potassium carbonate and potassium chloride were dissolve in a 250cm standard flask. 25cm of this solution required 40.00cm of 0.01mole HCl for neutralization what is the percentage by weight of K2Co3 in the mixture?

Note that cm means centimeter. You meant cm^3 or cubic centimeters. You can also write cc for that.

The millimols K2CO3 comes from the neutralization with HCl.
K2CO3 + 2HCl ==> 2KCl + H2O + CO2
millimols (mmol) HCl used = 40 cc HCl x 0.01 M HCl = 0.4 mmols HCl.
That 0.4 mmpl HCl was for 25 out of 250 cc original solution so that would be 4 mmols in the original 3.0 g sample. mmols K2CO3 = 1/2 mmols HCl = 2 mmols K2CO3.

mmols K2CO3 in original 3.0g = mmols K2CO3 from HCl rxn.
mmols K2CO3 in the 3.0 g sample = 1000X/molar mass K2CO3 or
(1000X/138.2) = 2 where X = mass K2CO3 in the original 3.0 g sample of the mixture of K2CO3 and KCl.

Solve for X = grams K2CO3
Then %K2CO3 = (grams K2CO3/3.0)*100 = ?
Post your work if you get stuck.