TY - JOUR
T1 - Development of Fugine Based on Supermulti-Jets Colliding with Pulse
T2 - SAE 2014 International Powertrains, Fuels and Lubricants Meeting, FFL 2014
AU - Naitoh, Ken
AU - Hasegawa, Kenya
AU - Kubota, Tomoaki
AU - Hashimoto, Taiki
AU - Nojima, Yoshiyuki
AU - Tanaka, Masato
AU - Kojima, Kentaro
N1 - Publisher Copyright:
Copyright © 2014 SAE International.
PY - 2014/10/13
Y1 - 2014/10/13
N2 - In our previous reports based on computational experiments and fluid dynamic theory, we proposed a new compressive combustion principle for an inexpensive, lightweight, and relatively quiet engine reactor that has the potential to achieve incredible thermal efficiency over 60% even for small combustion chambers having less than 100 cc. This level of efficiency can be achieved with colliding supermulti-jets that create complete air insulation to encase burned gas around the chamber center, thereby avoiding contact with the chamber walls, including the piston. We originally developed an actual prototype engine system for gasoline. The engine has a strongly-asymmetric double piston and the supermulti-jets colliding with pulse, although there are no poppet valves. The number of jets pulsed for intake and exhaust is eight, while both of bore and stroke are about 40mm. The present prototype engine can widely vary point-compression strength due to the supermulti-jets and mechanical homogeneous compression level, by changing the phase of two gears and size ratio of two gears between the double piston. Experimental data obtained by combustion tests with a traditional starter motor indicates a possibility of stable engine start for gasoline without any plugs in case of mechanical compression ratio less than 10:1.
AB - In our previous reports based on computational experiments and fluid dynamic theory, we proposed a new compressive combustion principle for an inexpensive, lightweight, and relatively quiet engine reactor that has the potential to achieve incredible thermal efficiency over 60% even for small combustion chambers having less than 100 cc. This level of efficiency can be achieved with colliding supermulti-jets that create complete air insulation to encase burned gas around the chamber center, thereby avoiding contact with the chamber walls, including the piston. We originally developed an actual prototype engine system for gasoline. The engine has a strongly-asymmetric double piston and the supermulti-jets colliding with pulse, although there are no poppet valves. The number of jets pulsed for intake and exhaust is eight, while both of bore and stroke are about 40mm. The present prototype engine can widely vary point-compression strength due to the supermulti-jets and mechanical homogeneous compression level, by changing the phase of two gears and size ratio of two gears between the double piston. Experimental data obtained by combustion tests with a traditional starter motor indicates a possibility of stable engine start for gasoline without any plugs in case of mechanical compression ratio less than 10:1.
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U2 - 10.4271/2014-01-2639
DO - 10.4271/2014-01-2639
M3 - Conference article
AN - SCOPUS:84938533992
SN - 0148-7191
VL - 2014-October
JO - SAE Technical Papers
JF - SAE Technical Papers
Y2 - 20 October 2014 through 22 October 2014
ER -