Fundamentals of Transportation/Queueing/Solution1

Application of Single-Channel Undersaturated Infinite Queue Theory to Tollbooth Operation. Poisson Arrival, Negative Exponential Service Time

• Arrival Rate = 500 vph,
• Service Rate = 700 vph

Determine

• Percent of Time operator will be free
• Average queue size in system
• Average wait time for vehicles that wait

Note: For operator to be free, vehicles must be 0

${\displaystyle \rho =\frac{\lambda }{\mu }=\left(\frac{500}{700}\right)=0.714}$

${\displaystyle P\left(n\right)={\rho }^n\left(1-\rho \right)={\left(0.714\right)}^0\left(1-0.714\right)=28.6\mathrm{\%}}$

${\displaystyle Q=\frac{\rho }{1-\rho }=\frac{0.714}{0.286}=2.5}$

${\displaystyle w=\frac{\lambda }{\mu \left(\mu -\lambda \right)}=\frac{500}{700\left(700-500\right)}=0.003571hours=12.8571\sec }$

${\displaystyle Q=\lambda w=500*0.00357=1.785}$

${\displaystyle ServiceTime=\frac{1}{\mu }=\frac{1}{700}=0.001429hours=5.142\sec }$

${\displaystyle t=\frac{1}{\left(\mu -\lambda \right)}=\frac{1}{\left(700-500\right)}=0.005hours=18\mathrm{s}\mathrm{e}\mathrm{c}\mathrm{o}\mathrm{n}\mathrm{d}\mathrm{s}}$