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在沼氣資源化的利用鏈條中,脫硫往往是決定項(xiàng)目成敗的關(guān)鍵一環(huán)。未經(jīng)處理的沼氣中,硫化氫(H?S)含量通常在1000至12000 ppm之間,這種帶有強(qiáng)烈臭雞蛋氣味的無(wú)色氣體,不僅是腐蝕管道、發(fā)電機(jī)組和鍋爐的“隱形殺手”,燃燒后產(chǎn)生的二氧化硫更是酸雨的主要成因。因此,選擇一種、經(jīng)濟(jì)的脫硫工藝,是實(shí)現(xiàn)沼氣變廢為寶的前提。目前的脫硫技術(shù)主要分為干法、濕法和生物法三大陣營(yíng)。
In the utilization chain of biogas resources, desulfurization is often a key link that determines the success or failure of the project. In untreated biogas, the content of hydrogen sulfide (H2S) is usually between 1000 and 12000 ppm. This colorless gas with a strong odor of rotten eggs is not only a "hidden killer" that corrodes pipelines, generator sets, and boilers, but also the main cause of acid rain is the sulfur dioxide produced after combustion. Therefore, choosing an efficient and economical desulfurization process is a prerequisite for turning biogas waste into treasure. At present, desulfurization technologies are mainly divided into three camps: dry, wet, and biological methods.
干法脫硫:簡(jiǎn)單適用的“守門(mén)員”
Dry desulfurization: a simple and applicable "gatekeeper"
干法脫硫是應(yīng)用非常早、也非常為直觀的技術(shù)。其核心原理是利用固體吸附劑(如氧化鐵、活性炭或氧化鋅)表面的活性成分與硫化氫發(fā)生化學(xué)反應(yīng)或物理吸附。以非常常見(jiàn)的氧化鐵法為例,硫化氫與氧化鐵反應(yīng)生成硫化鐵和水,從而被固定在脫硫塔內(nèi)。
Dry desulfurization is the earliest and most intuitive technology applied. The core principle is to use the active ingredients on the surface of solid adsorbents (such as iron oxide, activated carbon, or zinc oxide) to undergo chemical reactions or physical adsorption with hydrogen sulfide. Taking the most common iron oxide method as an example, hydrogen sulfide reacts with iron oxide to produce iron sulfide and water, which are then fixed in the desulfurization tower.
干法的非常大優(yōu)勢(shì)在于工藝流程短、設(shè)備簡(jiǎn)單、操作方便,且不需要復(fù)雜的水循環(huán)系統(tǒng),非常適合中小規(guī)模的沼氣工程或作為精脫硫的終端把關(guān)。然而,它的短板也十分明顯:脫硫劑一旦飽和,更換或再生過(guò)程繁瑣,勞動(dòng)強(qiáng)度大,且處理高濃度硫化氫時(shí)運(yùn)行成本。因此,它通常適用于硫化氫濃度較低(低于5000 mg/m?)且氣量較小的場(chǎng)景。

The biggest advantage of dry process lies in its short process flow, simple equipment, easy operation, and no need for complex water circulation systems. It is particularly suitable for small and medium-sized biogas projects or as a terminal control for fine desulfurization. However, its shortcomings are also very obvious: once the desulfurizer is saturated, the replacement or regeneration process is cumbersome, the labor intensity is high, and the operating cost when dealing with high concentrations of hydrogen sulfide is extremely high. Therefore, it is usually suitable for low concentrations of hydrogen sulfide (below 5000 mg/m)? )And scenes with small gas volume.
濕法脫硫:處理高濃度的“重武器”
Wet desulfurization: treating high concentration 'heavy weapons'
當(dāng)面對(duì)大型垃圾填埋場(chǎng)或工業(yè)廢水產(chǎn)生的高濃度、大氣量沼氣時(shí),干法顯得力不從心,濕法脫硫便成為了主流選擇。濕法脫硫利用液體吸收劑(如氫氧化鈉、碳酸鈉溶液或有機(jī)胺液)在吸收塔內(nèi)與沼氣逆流接觸,利用酸堿中和反應(yīng)將硫化氫從氣相轉(zhuǎn)移到液相中。
When faced with high concentrations and atmospheric amounts of biogas generated by large landfills or industrial wastewater, dry methods seem inadequate, and wet desulfurization has become the mainstream choice. Wet flue gas desulfurization utilizes liquid absorbents (such as sodium hydroxide, sodium carbonate solution, or organic amine solution) to come into countercurrent contact with biogas in the absorption tower, and uses acid-base neutralization reaction to transfer hydrogen sulfide from the gas phase to the liquid phase.
濕法脫硫的脫硫效率,且能夠連續(xù)運(yùn)行,自動(dòng)化程度高。非常是化學(xué)吸收法,能將硫化氫濃度降至出彩低水平。但濕法工藝復(fù)雜,涉及吸收、再生、硫回收等多個(gè)單元,設(shè)備投資大,且若管理不當(dāng),化學(xué)藥劑的消耗和廢液的處理會(huì)帶來(lái)二次污染風(fēng)險(xiǎn)。
The desulfurization efficiency of wet desulfurization is extremely high, and it can operate continuously with a high degree of automation. Especially the chemical absorption method can reduce the concentration of hydrogen sulfide to extremely low levels. However, the wet process is complex and involves multiple units such as absorption, regeneration, and sulfur recovery. The equipment investment is large, and if not managed properly, the consumption of chemical agents and the treatment of waste liquids can pose a risk of secondary pollution.
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