the following data were collected when titrating 25.00 mL samples of HCL with 0.511 M NaOH:

Question

initial burette reading (mL): trial 1=1.06 trial2=0.04 trial3=1.03

final burette reading (mL): trial1= 27.60 trial2=26.21 trial3=27.22

bobpursley · Answer

MolarityAcid*.025=.511M*volumebase averaging the volume of base: 27.60-1.06=26.54 26.21-.04=26.17 27.22-1.03=26.18 Now I am wondering what your question is.

jj reddick · Answer

using this data what is the [HCL]?