Current experimental developments in 48 V-based CI-driven SUVs in response to expected future EU7 legislation

Gabriel Kühberger, Hannes Wancura, Lukas Nenning, Eberhard Schutting
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引用次数: 2

Abstract

In this paper, we describe experimental developments in an Exhaust Aftertreatment System (EAS) used in a four-cylinder Compression Ignition (CI) engine. To meet the carbon dioxide (CO\(_\mathrm {2}\)) fleet limit values and to demonstrate a clean emission concept, the CI engine needs to be further developed in a hybridized, modern form before it can be included in the future fleet. In this work, the existing EAS was replaced by an Electrically Heated Catalyst (EHC) and a Selective Catalytic Reduction (SCR) double-dosing system. We focused specifically on calibrating the heating modes in tandem with the electric exhaust heating, which enabled us to develop an ultra-fast light-off concept. The paper first outlines the development steps, which were subsequently validated using the Worldwide harmonized Light-duty vehicles Test Cycle (WLTC). Then, based on the defined calibration, a sensitivity analysis was conducted by performing various dynamic driving cycles. In particular, we identified emission species that may be limited in the future, such as laughing gas (N\(_\mathrm {2}\)O), ammonia (NH\(_\mathrm {3}\)), or formaldehyde (HCHO), and examined the effects of a general, additional decrease in the limit values, which may occur in the near future. This advanced emission concept can be applied when considering overall internal engine and external exhaust system measures. In our study, we demonstrate impressively low tailpipe (TP) emissions, but also clarify the system limits and the necessary framework conditions that ensure the applicability of this drivetrain concept in this sector.

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根据预期的未来欧盟7法规,48辆基于V的CI驱动SUV的当前实验发展
在本文中,我们描述了用于四缸压燃式发动机的排气后处理系统(EAS)的实验发展。为了满足二氧化碳(CO\(_\mathrm{2}\))车队的限值并证明清洁排放概念,CI发动机需要以混合的现代形式进一步发展,才能纳入未来的车队。在这项工作中,现有的EAS被电加热催化剂(EHC)和选择性催化还原(SCR)双剂量系统取代。我们特别专注于与电动排气加热同步校准加热模式,这使我们能够开发出超快熄灭概念。本文首先概述了开发步骤,随后使用全球统一轻型车辆测试循环(WLTC)对这些步骤进行了验证。然后,基于定义的校准,通过执行各种动态驾驶循环进行灵敏度分析。特别是,我们确定了未来可能受到限制的排放物种,如笑气(N\(_\mathrm{2}\)O)、氨(NH\(_\ mathrm{3}\。这种先进的排放概念可以在考虑整体内部发动机和外部排气系统措施时应用。在我们的研究中,我们展示了令人印象深刻的低排气尾管(TP)排放,但也澄清了系统限制和必要的框架条件,以确保该传动系概念在该行业的适用性。
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