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沼氣提純是一項(xiàng)復(fù)雜的系統(tǒng)工程,其非常終目標(biāo)是將甲烷(CH)濃度提升至95%甚至97%以上,使其達(dá)到天然氣管網(wǎng)注入或車用燃?xì)鈽?biāo)準(zhǔn)。為了實(shí)現(xiàn)這一目標(biāo),構(gòu)建一條科學(xué)、協(xié)同的工藝鏈,涵蓋脫硫、脫氧、脫水、脫碳及脫氮等多個(gè)關(guān)鍵環(huán)節(jié)。
Biogas purification is a complex system engineering, with the ultimate goal of increasing methane (CH) concentration to over 95% or even 97%, to meet the standards for natural gas pipeline injection or vehicle gas. To achieve this goal, it is necessary to build a scientific and collaborative process chain that covers multiple key links such as desulfurization, deoxygenation, dehydration, decarbonization, and denitrification.
核心脫碳技術(shù)與工藝選擇
Core decarbonization technology and process selection
脫除二氧化碳(CO)是沼氣提純的核心環(huán)節(jié)。目前主流的技術(shù)路線包括變壓吸附(PSA)和膜分離法。變壓吸附利用活性炭或沸石分子篩對(duì)CO的強(qiáng)吸附能力,在加壓時(shí)捕獲雜質(zhì),降壓時(shí)解吸再生,該技術(shù)提純效率高,但對(duì)進(jìn)料氣的預(yù)處理要求出彩為苛刻。膜分離技術(shù)則依靠不同氣體在膜材料中溶解和擴(kuò)散速率的差異實(shí)現(xiàn)分離,具有啟??臁⒛芎牡偷膬?yōu)勢(shì),但需通過多級(jí)膜設(shè)計(jì)來減少甲烷損失。此外,壓力水洗技術(shù)利用CO在水中溶解度遠(yuǎn)高于甲烷的物理特性,通過二段式吸收塔強(qiáng)化水洗過程,不僅環(huán)保廉價(jià),還能穩(wěn)定達(dá)到97%的提純效果。

Removing carbon dioxide (CO) is the core process of biogas purification. The current mainstream technological routes include pressure swing adsorption (PSA) and membrane separation methods. Pressure swing adsorption utilizes the strong adsorption capacity of activated carbon or zeolite molecular sieves for CO, capturing impurities under pressure and desorbing and regenerating under pressure. This technology has high purification efficiency, but requires extremely strict pre-treatment of the feed gas. Membrane separation technology relies on the difference in dissolution and diffusion rates of different gases in membrane materials to achieve separation, which has the advantages of fast start stop and low energy consumption, but requires multi-stage membrane design to reduce methane loss. In addition, the pressure water washing technology utilizes the physical property that CO has a much higher solubility in water than methane. By strengthening the water washing process through a two-stage absorption tower, it is not only environmentally friendly and inexpensive, but also achieves a stable purification effect of 97%.
前置凈化與全局協(xié)同優(yōu)化
Pre purification and global collaborative optimization
提純工藝的成功與否,很大程度上取決于前置預(yù)處理環(huán)節(jié)的完善度。首先是脫硫環(huán)節(jié),根據(jù)沼氣規(guī)模與HS濃度選擇生物脫硫、干法或濕法脫硫,以保護(hù)后續(xù)昂貴的吸附劑或膜組件免受毒害。其次是脫水與脫氧,冷凝法脫水非常為常用,而催化脫氧則能在200-500°C下將氧氣降至出彩低水平,但需防范甲烷損耗。對(duì)于來自垃圾填埋場(chǎng)等含氮量高的沼氣源,還需引入變壓吸附脫氮工藝。
The success of the purification process largely depends on the completeness of the pre-treatment stage. Firstly, in the desulfurization process, biological desulfurization, dry or wet desulfurization must be selected based on the scale of biogas and HS concentration to protect expensive adsorbents or membrane components from toxicity. Next are dehydration and deoxygenation. Condensation dehydration is the most commonly used method, while catalytic deoxygenation can reduce oxygen to extremely low levels at 200-500 ° C, but it is necessary to prevent methane loss. For biogas sources with high nitrogen content such as landfills, it is necessary to introduce pressure swing adsorption denitrification technology.
構(gòu)建非常優(yōu)工藝鏈的策略
Strategies for Building the Optimal Process Chain
選擇非常優(yōu)的沼氣提純方案需要進(jìn)行詳細(xì)的技術(shù)經(jīng)濟(jì)比較。企業(yè)應(yīng)首先進(jìn)行原料氣成分分析,明確產(chǎn)品規(guī)格;隨后根據(jù)處理規(guī)模和投資預(yù)算確定核心脫碳技術(shù);接著反向設(shè)計(jì)前置的脫硫、脫水方案以滿足核心技術(shù)的需求;非常后進(jìn)行全局優(yōu)化,例如將脫硫置于脫水前以防管道腐蝕,或?qū)嚎s產(chǎn)生的熱量用于再生工序。只有各環(huán)節(jié)緊密協(xié)同,才能在保證高純度生物甲烷產(chǎn)出的同時(shí),實(shí)現(xiàn)運(yùn)行成本與經(jīng)濟(jì)效益的平衡。
Choosing the optimal biogas purification scheme requires a detailed technical and economic comparison. Enterprises should first conduct an analysis of the composition of raw gas and clarify product specifications; Subsequently, the core decarbonization technology will be determined based on the processing scale and investment budget; Then reverse design the pre desulfurization and dehydration scheme to meet the requirements of the core technology; Finally, perform global optimization, such as placing desulfurization before dehydration to prevent pipeline corrosion, or using the heat generated by compression for the regeneration process. Only by closely coordinating all aspects can we achieve a balance between operating costs and economic benefits while ensuring the production of high-purity biogas.
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