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Programmable Diesel Injector Transducer Test Results

机译:可编程柴油喷射器换能器测试结果

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In order to approach the Carnot efficiency in modern diesel engines that see variable loads and high speeds, programmable electrically controlled fuel injections are required. Traditional solenoid based transducers are binary and cannot achieve this programmability while newer piezoelectric transducers are susceptible to performance degradation due to high pressures and temperatures. This paper presents the experimental characterization of a programmable diesel fuel injector transducer designed by Great Plains Diesel Technologies, L.C. to address the limitations of existing technology. This transducer employs a little-known magnetostrictive alloy to position its needle. In contrast to piezoelectric ceramics, quantum mechanics endows this alloy with the indestructible property of magnetostriction, the ability to strain proportional to a magnetic field. This allows it to be fast and infinitely adjustable (or, "programmable") without degradation. A fuel injector based on this alloy has the inherent durability to survive on an engine while maximizing performance. In the tested prototype, the magnetostrictive rod is surrounded by a coil excited by a current pulse to energize the alloy. The prestress needed to achieve maximum performance is provided by the pressurized diesel fuel. This paper presents the results of a series of tests run to determine the effect of the amplitude of the excitation current and the prestress provided by the pressurized fuel, and to characterize the amplitude and speed of the transducer output displacement and its proportionality.
机译:为了接近在可变负载和高速下运行的现代柴油发动机中的卡诺效率,需要可编程的电控燃油喷射。传统的基于螺线管的换能器是二进制的,无法实现这种可编程性,而新型的压电换能器则容易因高压和高温而导致性能下降。本文介绍了由大平原柴油技术公司(LC)设计的可编程柴油喷射器换能器的实验特性。解决现有技术的局限性。该换能器采用鲜为人知的磁致伸缩合金来定位其针头。与压电陶瓷相反,量子力学赋予这种合金不可破坏的磁致伸缩性能,即与磁场成比例应变的能力。这使得它可以快速,无限地可调(或“可编程”)而不会降低性能。基于这种合金的燃油喷射器具有固有的耐用性,可以在发动机上生存,同时最大限度地提高性能。在经过测试的原型中,磁致伸缩杆被线圈包围,线圈受到电流脉冲的激励而使合金通电。达到最高性能所需的预应力由加压柴油提供。本文介绍了一系列测试的结果,以确定激励电流的幅度和加压燃料提供的预应力的影响,并表征换能器输出位移的幅度和速度及其比例。

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