150 cm3 0.24 M naoh solution react with excess al(no3)3, calculate the mass of saodium aluminate produced.

Please use conventional symbols as this makes things easier to read and you also practise with the 'language' of the subject.

Al(NO3)3 + 4NaOH -> NaAlO2 + 3 NaNO3 +2H2O

So 4 moles of NaOH produce 1 moles of NaAlO2.
or
So 1 mole of NaOH produce 1/4 moles of NaAlO2.

We start with

0.150 L x 0.24 mole L^-1 = 0.036 mole

this must produce

0.036 mole/4 moles of NaAlO2
=0.009 moles

The relative molecular mass of NaAlO2 is

23+27+32 = 82

so the mass produced is

0.009 moles x 82 g mole^-1

=0.738 g

so you are correct.