| 研究生: |
范真鳴 Fan, Chen-Ming |
|---|---|
| 論文名稱: |
預混合二甲醚與空氣於部分均質進氣壓燃引擎燃燒特性與汙染物研究 Investigation on Combustion Characteristics and Emissions of a Partial HCCI Engine Using Premixed Dimethyl Ether with Air |
| 指導教授: |
吳鴻文
Wu, Horng-Wen |
| 學位類別: |
碩士 Master |
| 系所名稱: |
工學院 - 系統及船舶機電工程學系 Department of Systems and Naval Mechatronic Engineering |
| 論文出版年: | 2017 |
| 畢業學年度: | 105 |
| 語文別: | 英文 |
| 論文頁數: | 97 |
| 中文關鍵詞: | 柴油引擎 、二甲醚 、進氣口導入 、廢氣再循環 、燃燒特性 |
| 外文關鍵詞: | Diesel Engine, Dimethyl Ether, Port Injection, Exhaust Gas Recirculation, Combustion Characteristics |
| 相關次數: | 點閱:139 下載:2 |
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內燃機是人類運輸的主要動力源,適用於車輛,船舶,飛機等各種運輸方式。然而,多年來內燃機一直依賴石油化工能源,造成許多環境污染和能源危機。因此,國內外學者正在研究減少發動機污染和替代燃料的技術,以解決這些危機。
考慮到二甲醚作為柴油發動機的清潔替代燃料,其優點包括高十六烷值,低自燃溫度和低氮氧化物排放,且柴油發動機僅需進行部份的改裝就能夠燃燒二甲醚。本文的目的是研究於進氣口引入二甲醚的柴油發動機燃燒特性和排放。同時利用田口法獲得柴油引擎最佳操作參數,如二甲醚噴射正時,二甲醚預混比和廢氣再循環(EGR)百分比,用於獲得高制動熱效率(ηb)低NOx、PM2.5、CO、HC和黑煙。同時也進行優化參數發動機和基準柴油發動機之間的ηb,NOX,HC,黑煙和燃燒性能比較。噴油正時與二甲醚流量由電控單元(ECU)控制。實驗結果表明,入口處添加二甲醚和EGR可以顯著降低NOx,PM2.5和黑煙排放,但略有增加CO和HC排放。此外,與基準引擎相比,優化參數的發動機條件有較高的制動熱效率。
The Internal combustion engine is the main power source of the human transportation, and it is applied on the vehicles, ships, aircrafts and other various modes of transport. However, the internal combustion engine has long been dependent on petrochemical energy, causing many environment pollution and energy crisis. Therefore, domestic and foreign scholars have been studying on technology of decreasing pollution and alternative fuels for engines in order to solve these crises.
Considering dimethyl ether as a clean alternative fuel for diesel engines gains its advantage including the high cetane number, low spontaneous combustion temperature and low nitrogen oxide emissions. Also, only moderate modifications are needed to convert a diesel engine to burn dimethyl ether. The purpose of this thesis is to investigate the combustion characteristics and emissions in a neat diesel engine inducting dimethyl ether at the intake port. Simultaneously, the optimal operating factors such as dimethyl ether injection timings, dimethyl ether premix ratios and EGR ratios are obtained for high brake thermal efficiency (ηb), low NOX, PM2.5, CO, HC, smoke, combustion performance and exhaust emissions between the optimal engine and conventional diesel engine are also compared. The injection timings and the quantity of dimethyl ether is controlled by electric control unit (ECU). The experimental results show that inducting dimethyl ether and EGR at the intake port can significantly reduce both NOx, PM2.5 and smoke emissions, but slightly increase in CO and HC emissions. Also, the optimal engine condition gains higher ηb compared with the conventional engine.
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