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New Traction Drive Pairing with Inner Spherical Rotor for Automobile Usage. Depart of Mechanical Design, Pusan National Univ. South Korea. Researcher: Ilkeun Ku Professor: Nogill Park. Layout. - Basic components. Driving / driven rotor Traction ball assembly Pressure device
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New Traction Drive Pairing withInner Spherical Rotor for Automobile Usage Depart of Mechanical Design, Pusan National Univ. South Korea. Researcher: Ilkeun Ku Professor: Nogill Park
Layout - Basic components • Driving / driven rotor • Traction ball assembly • Pressure device • Ratio changer
Operation principle - ISCVT assemnly
Operation principle - Pressure device
Operation principle - Traction ball assembly components 1. One pair of countor rotor 2. Two bearings 3. Countor rotor shaft 4. Countor rotor housing 5. Connector between CRA and RC
Operation principle - Ratio changer and speed ratio
Numerical investigation - Design specification for the passenger car
Numerical investigation - Flow chart Simulation start Input design parameter • Kinematic analysis • Calculate traction ball angle range • Kinetic analysis • Direction vector declaration • Torque equilibrium Equations • Hertzian contact theory • Life time • Transmission efficiency Simulation results End program
Numerical investigation - Simulation results
Stress analysis • Driving rotor, traction ball, • Frame and bearing housing
Performance analysis Transmission efficiency (%)
Performance analysis Maximum shear stress (MPa) Driven rotor Driving rotor
Performance analysis Life time (Hour) Driven rotor Driving rotor
Performance analysis Ratio changer work (Joul)
Performance analysis Gradeability (Degree)
Capacity expantion Transmission efficiency (%)
Capacity expansion Maximum shear stress (MPa)
Capacity expansion Life time (Hour)
Comparison with toroidal CVT Performance analysis
Comparison with toroidal CVT Performance analysis
Comparison with toroidal CVT Performance
Comparison with toroidal CVT Power density
Conclusion • Introduce a new traction drive ISCVT. • Perform kinematic / kinetic analysis and derive the speed ratio. • Numerical investigation and conceptual design on the basis of • simulation results. • ▪ CAD and stress analysis • Apply to the 110 kW automobile and evaluate its performances. • ▪ Transimssion efficiency, • ▪ Maximum shear stress • ▪ Life time • ▪ Gradeability • ▪ Ratio changer work • Comparison with toroidal CVT and the results show the better • performances.