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Development of an engine variable geometry intake system for a Formula SAE application

机译:为Formula SAE应用开发发动机可变几何进气系统

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摘要

The Formula SAE is an international competition for vehicle fully designed and built by students from worldwide Universities. The engine and vehicle design in the Formula SAE competition has to comply with a strict regulation. Regarding the engine intake line an air restrictor of circular cross-section no greater than 20 mm must be fitted between the throttle valve and the engine inlet. The aim of the throat is to limit the engine air flow rate as it strongly influences the volumetric efficiency and then the maximum power. The present paper is focused on the design of the engine intake system of the Firenze Race Team vehicle in order to optimize its performance in terms of both the maximum power and the drivability of the vehicle. One of the typical solutions for limiting the air restrictor influence consists of a plenum chamber placed along the intake line downstream of the restrictor. However the plenum involves also a delay in the engine response during the transient phases. The greater is the plenum, the lower are the power losses but the greater is the engine response delay. Taking advantage of a calibrated 1D model of the engine and a simplified vehicle model, the authors numerically analyzed an innovative solution that is constituted by a variable length duct inside the plenum. When the duct is at the maximum extension, the plenum is excluded from the intake line improving the engine response time. The optimization of the plenum volume and the definition of a preliminary control logic of the innovative system were done in order to obtain the maximum advantages in terms of both performance and engine drivability.
机译:Formula SAE是一项国际竞赛,由世界各地的大学学生共同设计和制造。 Formula SAE竞赛中的发动机和车辆设计必须遵守严格的规定。关于发动机进气管路,必须在节气门和发动机进气口之间安装不超过20 mm的圆形横截面空气限制器。喉咙的目的是限制发动机空气流量,因为它会严重影响容积效率,进而影响最大功率。本文着重于佛罗伦萨赛车队车辆的发动机进气系统的设计,以便在车辆的最大功率和驾驶性能方面优化其性能。限制空气限制器影响的典型解决方案之一是沿着限制器下游的进气管线放置增压室。然而,增压室还涉及过渡阶段期间发动机响应的延迟。增压室越大,功率损失越小,但是发动机响应延迟越大。利用发动机的校准一维模型和简化的车辆模型,作者通过数值分析了一种创新的解决方案,该解决方案由气室内部的可变长度管道组成。当管道处于最大延伸位置时,增压室将从进气管线中排除,从而改善了发动机响应时间。为了获得性能和发动机可驾驶性方面的最大优势,对增压室容积进行了优化,并定义了创新系统的初步控制逻辑。

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