并联液压混合动力装载机的系统配置和能源控制策略的研究.doc
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1、Research on the system configuration and energy control strategy for parallel hydraulic hybrid loaderSun Hui, , Jing JunqingJiangsu Xuzhou Construction Machinery Research Institute, Jiangsu, ChinaAccepted 30 October 2009. Available online 22 November 2009.dx.doi.org/10.1016/j.autcon.2009.10.006, How
2、 to Cite or Link Using DOIPermissions & ReprintsAbstractAimed at the frequent starts/stops operation characteristics of the loader, an energy saving scheme with parallel hydraulic hybrid system is proposed to regenerate and reuse the braking energy normally lost in a conventional loader. Hydraulic h
3、ybrid system is designed and sized to capture braking energy from normalmoderate braking operating modes while ensures hybrid system working in higher efficiency region. According to the higher power density characteristic of hydraulic hybrid system, the regenerative braking strategy and energy reus
4、e strategy are designed to coordinate all the powertrain components in an optimal manner while satisfying performance constraints of loader. Energy controller using logic threshold approach is built up to control the dynamic transitions among the various operation modes. Simulation and experimental
5、results show the parallel hydraulic hybrid loader effectively recovered and reused the braking energy, improved the working performance of loader and effectively reduced the fuel consumption.KeywordsLoader; Hydraulic hybrid system; Braking energy regeneration; Energy management; Hydraulic pump/motor
6、1. IntroductionWith the rising concern in a global scale environmental issue, energy saving in automobiles is a very important subject 1and2. Off-road vehicles have been paid much attention in the field of energy saving and environment protection, for the reason of their large application quantities
7、, high fuel consumption and bad emissions 3. Loader has the characteristics of frequent starts/stops and larger vehicle weight which generated significant amounts of braking energy. Usually, this part of energy is wasted by the frictional braking system which caused the energy loss and heat generati
8、on in the system. Therefore, the braking energy recovery and reuse is a promising way to improve fuel economy and working performance of off-road vehicles 4and5. There is a wealth of literature focused on hybrid electric engineering vehicles, but the publications devoted to hydraulic propulsion opti
9、ons are relatively scarce 6and7.A parallel hydraulic hybrid loader is one that contains two sources of power, with one source being an internal combustion engine. The other power source is hydraulic pump/motor and accumulators. One feature of PHHL is the ability to recover energy normally lost durin
10、g braking and store the energy in a hydraulic accumulator. The stored energy is used to provide the total command power during loader launching or provide auxiliary traction power during shoveling operation mode, which avoids the engine working in the regions of low efficiency and significant emissi
11、ons. In this paper, an energy saving scheme with parallel hydraulic hybrid system is proposed to capture the braking energy normally lost to friction brakes. Hydraulic hybrid system is designed and sized to capture braking energy from normal-moderate braking operating modes while ensures hybrid syst
12、em working in higher efficiency region. According to the advantage of high power density for hydraulic accumulator and the operation characteristics of loader , the regenerative braking strategy and energy reuse strategy are designed to coordinate all the powertrain components in an optimal manner w
13、hile satisfying performance constraints. Energy control strategy is built up around the concept of multi-level hierarchic control system. PHHL simulation model and the control system simulation model based on the proposed energy control strategy are developed in Matlab/Simulink environment. Experime
14、ntal results and simulation results demonstrate that PHHL with proposed control strategy effectively improves the fuel economy and working performance.2. Configuration of the PHHL2.1. Operating principle of PHHLFig.1 presents the configuration of proposed PHHL, which consists primarily of an engine,
15、 hydraulic torque converter, boom tanks, dump tanks, a high pressure accumulator, a hydraulic reservoir, a variable displacement hydraulic pump, and a variable displacement hydraulic pump/motor unit, clutch, transmission, torque coupler and differential. The hydraulic pump/motor is coupled to the pr
16、opeller shaft via a torque coupler. Engine is the power source of the loader, one part of the engine power is used to drive the loader through hydraulic torque converter and transmission, the remainder part of engine power is used to realize the shifting and loading functions by means of hydraulic c
17、ylinders. Hydraulic regenerative system, which consists of a hydraulic pump/motor, hydraulic accumulator, hydraulic reservoir and hydraulic relief valve, et al. drives the loader together with the engine. During deceleration, the hydraulic pump/motor decelerates the loader while operating as a pump
18、to capture the energy normally lost to friction brakes in a conventional loader. Also, when the vehicle brake is applied, the hydraulic pump/motor uses the braking energy to charge the hydraulic fluid from a low pressure hydraulic accumulator into a high-pressure accumulator, increasing the pressure
19、 of the nitrogen gas in the high pressure accumulator. The high pressure hydraulic fluid is used by the hydraulic pump/motor unit to generate torque during the next acceleration 8and9. Hydraulic pump/motor is designed and sized to capture braking energy from normal, moderate braking events and is su
20、pplemented by friction brakes for aggressive braking. While shoveling and digging, the hydraulic pump/motor works in motor mode to provide auxiliary traction power for the loader which ensures the engine working in better fuel economy region and reducing the overflow losses of hydraulic system.Fig.1
21、.Configuration of parallel hydraulic hybrid loader.View thumbnail imagesLoader has the characteristics of frequent starts/stops and larger weight, which ensures regenerating and reusing significant amounts of braking energy in the hybrid configurations. Electric hybrid technology has the advantage o
22、f high energy density which is well suited for light vehicles to improve fuel economy and emissions 10. But a large challenge is the relatively low power density of electrical storage media. Due to their high internal resistance, both fuel cells as well as batteries have a low power density and are
23、only marginally suitable for recovering brake energy 11and12. Unlike electric batteries, hydraulic accumulators have the ability of accepting exceptionally high rates of charging and discharging. A combination of high efficiency and high charging/discharging rates enables effective regeneration and
24、re-use of braking energy in heavy engineering vehicles. In general, the major advantages of the proposed hydraulic hybrid drive over other solutions are the higher efficiency, higher power performance and relatively minor modifications to the drive train, thereby making it possible to retrofit exist
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