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Journal Article

A Simple Method to Insure Bus-to-Bus Safety in Dual-Voltage Automotive Systems

2014-04-01
2014-01-0244
In some automotive electrical systems, it is advantageous to use power supplies and loads at two or more voltages. Often it is desirable to retain the single wire power architecture, with the car body providing the return circuit. A major difficulty in achieving this end is the matter of dealing with the possibility of a short circuit between feed wires at different voltages. It can be shown that source-side fuses cannot be relied upon to return the system to a safe state in all cases. Substantial effort was applied to this problem in the early years of the 21st century, but the results were less than completely satisfactory. Using entirely separate cable harnesses for each voltage, with physically separated routing, minimizes the risk of such a short occurring in the harness.
Technical Paper

Direct Conversion of Heat to Electricity

2008-10-20
2008-21-0049
The prime candidate for direct conversion from heat to electricity has historically been thermoelectric energy conversion. More recently, advances in thermophotovoltaic systems render them potentially interesting. Neither class of systems is used in automobiles to any significant extent today, and neither class of systems is poised on the brink of a large-scale adoption. In this paper, the characteristics of these types of energy conversion are discussed, with special emphasis on their utility in automobiles.
Technical Paper

42 Volts - The View from Today

2004-10-18
2004-21-0094
A few years ago, the automobile industry agreed to adopt standards for a new voltage for the production and use of electrical power. The perception was near universal that 14 Volts was at the limits of its capability, and that 42 Volts would be adopted in a rush. The universal perception was wrong. Since then, much of the auto industry has encountered hard financial times. In a totally separate development, parts suppliers introduced innovations at 14 Volts, some of which a few years ago were thought to require 42 Volts. Today, there are 42-Volt cars and trucks for sale, but only at numbers far lower than necessary to begin to achieve economies of scale. But the factor which caused the industry to develop the 42 Volt standard, the growth of electricity use on motor vehicles, continues with no sign of letup. Further, the true technical obstacles to adoption of 42 Volts have been discovered and at least provisionally solved.
Technical Paper

An Electromechanical Valve Drive Incorporating a Nonlinear Mechanical Transformer

2003-03-03
2003-01-0036
In traditional internal combustion engines, a camshaft acts on the valve stems to open and close the valves. Valve timing is fixed relative to piston position. On the other hand, if a valve is flexibly controlled by a variable valve actuation (VVA) system, we can achieve significant improvements in fuel efficiency, engine performance, emissions, etc. One of the most advanced variable valve actuation systems is the VVA operated by an electromechanical actuator without a camshaft, the so-called bi-positional electromechanical valve drive (BPVD). Existing BPVD's characteristically use a spring to provide the required mechanical power for operating a valve. The use of a spring provides many benefits to the design of the system, but it also results in difficult design challenges.
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