Given system of equations are
x+y+az=b.....(i)
2x+5y+2z=6.....(ii)
x+2y+3z=3.....(iii)
It is given that the system of equations have infinite solutions.
⇒Δ=0
⇒∣121152a23∣=0
⇒1(15−4)−1(6−2)+a(4−5)=0
⇒a=7
Also, we have ⇒Δ1=0
⇒∣b63152a23∣=0
⇒b(15−4)−1(18−6)+7(12−15)=0
⇒b=3
∴a=7,b=3
∴2a+3b=14+9=23
Hence, this is the correct option.