Start-stop systems for combustion engines provide fuel savings
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Peer-reviewed literature establishes that automatic engine stop-start systems reduce fuel consumption by turning off the engine during idles and traffic stops, delivering measurable fuel economy improvements.
<div class="htmlview paragraph">During city traffic or heavily congested roads, a vehicle can consume a substantial amount of fuel idling when the vehicle is stopped. Due to regulation enforcement, auto manufacturers are developing systems to increase the mileage and reduce emissions. Turning off the engine at traffic lights and regenerative braking systems are simple ways to reduce emissions and fuel consumption. In order to develop strong manufacturer and consumer interest, this type of operation needs to be automated such that the stop/start functionality requires no driver interaction and takes place without the intervention of the vehicle operator.</div>
<div class="htmlview paragraph">Valeo Electrical Systems has developed such a system that replaces the OEM engine alternator with a starter/alternator driven by a standard multi-ribbed V belt. To avoid a break and dual voltage network, this system is based on a 12V electrical system using an Enhanced Power Supply. In 2004, this system was designed for and integrated into a 2003 GMC Envoy and is capable of starting the vehicle's engine very quickly and quietly. In order to obtain smooth, transparent start/stop operation on the road, a substantial amount of integration work with the factory PCM, engine, and transmission was accomplished. During operation, the Start/Stop system can start and stop the vehicle very quickly and is able to produce acceleration from vehicle rest that feels identical to a production factory vehicle.</div>
<div class="htmlview paragraph">Baseline vehicle fuel economy was measured for the OEM configuration and after installation of the start/stop system using standard chassis dynamometer fuel economy test procedures. This testing demonstrated 5.3% improvement in the city cycle and found approximately a 4.0% improvement in the highway drive cycle due to regenerative braking.</div>
<div class="htmlview paragraph">Future development of the start/stop system was done using a forward looking vehicle simulation model to determine the fuel economy impact of modifying this system to operate as a mild hybrid electric system. Using the vehicle simulation software (RAPTOR), it was determined that hybridization of the start/stop system could obtain a 10% improvement in the city cycle and a 5% improvement in the highway drive cycle, based on the applied system architecture and design.</div>
<div class="htmlview paragraph">This type of system can be easily integrated into a production vehicle and could provide significant fuel economy improvements with minimal cost or affect on vehicle performance.</div>
<div class="section abstract"><div class="htmlview paragraph">Current significant challenges in the automotive industry for increasing fuel economy and reducing CO₂ emissions remain with traditional combustion engines. Moderately small increases in fuel efficiency lead to major reductions in CO₂ emissions, primarily due to large production volumes utilizing incremental fuel saving technologies.</div><div class="htmlview paragraph">Enhancements of today's vehicle powertrains, including micro-hybrids and mild-hybrids with stop-start systems, and coasting and energy recuperation have shown a positive cost benefit and shorter payback period. This is identified when the technology is compared to more complex and expensive HEVs (Hybrid Electric Vehicles) and BEVs (Battery Electric Vehicles).</div><div class="htmlview paragraph">This paper describes the development of a baseline conventional vehicle model for estimating fuel savings and CO₂ reduction; it provides a benchmark for the development of fuel saving energy management technologies such as stop-start, coasting, and dual voltage architecture with regenerative braking and "on-demand" fuel senders. It will be shown that a stop-start system will provide a simulated 2.9% FE (Fuel Economy) benefit for the EPA unadjusted combined city/highway driving cycles. Also enhanced stop-start with aggressive coasting with engine-off (≺100 km/hr) provides an additional benefit of 7.1%.</div><div class="htmlview paragraph">In addition, this pa
propulsion and battery recharge during regenerative braking for fuel savings in internal combustion engine vehicles, especially mild hybrid vehicles. Traditionally
A 48-volt DC electrical system voltage is a relatively low-voltage electrical system that is increasingly used in vehicles. Interest in the concept began in the 2010s as a way to increase the propulsion and battery recharge during regenerative braking for fuel savings in internal combustion engine vehicles, especially mild hybrid vehicles.
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