Hi
I'm have trouble with an acid-base titration activity.

The experiment used 50ml of 0.1M NaOH and 50ml of unknown concentration HCl.
The titrant was NaOH (sorry, not sure if correct use of term), or was put into the burette. The HCl was diulted with with 200ml of de-ionised water.
These are the results after completing the experiment:
Inital Reading Final Reading Titre
1 5.59 ml 7.89 ml 2.30 ml
2 7.89 ml 10.35 ml 2.46 ml
3 10.35 ml 12.68 ml 2.33 ml
Average Titre 2.37 ml
I'm not really sure what to do for the following calculations:
1. The amount of sodium hydroxide (in moles), present in the average titre of sodium hydroxide solution.
2. The amount of hydrochloric acid present in each 20ml aliquot of diluted hydrochloric acid.
3. The concentration of hydrochloric acid, in moles per litre, in the undiluted hydrochloric acid.
I'm sorry if this wasn't the right place to post, I wasn't sure if I was supposed to make a new thread. If there's something I might have left out could you please tell me? Again, sorry if this wasn't correct and thanks in advance for any help.