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1.
提出了基于CaO的钙循环捕集CO2与CaO/Ca(OH)2体系热化学储热耦合新工艺,在双固定床反应器上,研究了循环捕集CO2中煅烧条件和碳酸化条件对CaO储热性能的影响,探究CaO循环捕集CO2过程和循环水合/脱水储热过程的相互作用。研究表明,多次循环碳酸化/煅烧捕集CO2后CaO仍具有较高储热性能,10次循环捕集CO2后再经10次储热循环,CaO水合转化率可达0.66mol/mol。与苛刻煅烧条件相比,温和煅烧条件下经历多次循环捕集CO2后CaO的储热性能更高。在碳酸化气氛中加入水蒸气对经历多次循环捕集CO2后CaO储热性能的影响不大。钙循环捕集CO2过程和水合/脱水循环储热过程能够相互促进。该工艺有望同时实现CO2捕集和储热,具有一定的应用前景。  相似文献   

2.
烟气中水蒸气对钙基吸收剂碳酸化的影响特性   总被引:4,自引:4,他引:0       下载免费PDF全文
陈惠超  赵长遂  沈鹏 《化工学报》2013,64(4):1364-1372
在循环煅烧/碳酸化反应系统上考察煅烧气氛和碳酸化气氛中水蒸气含量以及CO2分压对钙基吸收剂成型颗粒碳酸化的影响,通过对钙基吸收剂微观结构分析(扫描电镜、氮吸附分析)以理解水蒸气影响碳酸化特性的机理。结果表明,煅烧气氛和碳酸化气氛中的水蒸气均可提高钙基吸收剂的碳酸化转化率,水蒸气含量分别为10%和5%时,吸收剂的碳酸化性能较好;水蒸气在碳酸化气氛中对高铝水泥改性吸收剂的改善作用较石灰石显著。煅烧气氛中的CO2分压越高,烧结现象越严重,降低钙基吸收剂的捕集效率;碳酸化气氛CO2分压提高,有利于提高钙基吸收剂的碳酸化转化率。烟气中水蒸气丰富了吸收剂的微观孔隙,使得吸收剂捕集CO2性能得到改善。  相似文献   

3.
马晓彤  李英杰  王文静  张婉  王泽岩 《化工学报》2016,67(12):5268-5275
提出在碳酸化气氛中间歇加入HCl(间歇氯化)提高电石渣在循环煅烧/碳酸化反应中捕集CO2性能的新思路。在双固定床反应器上,在不同循环次数加入HCl、碳酸化温度、CO2/HCl体积比等条件下,研究HCl间歇加入对电石渣循环碳酸化特性的影响。结果表明,在循环煅烧/碳酸化反应中间歇加入HCl使电石渣间歇氯化能提高其循环捕集CO2性能。在前N次循环碳酸化时加入0.1% HCl,当N=4时能使电石渣获得最优CO2捕集性能,第10个循环时的CO2吸收量比无HCl时提高了51%。HCl与CaCO3发生氯化反应,破坏致密产物层对CO2扩散的阻碍,提高了电石渣的碳酸化转化率。在碳酸化气氛加入HCl时,最佳碳酸化温度仍为700℃。随CO2/HCl体积比增大,HCl对电石渣捕集CO2性能的促进作用减弱。  相似文献   

4.
刘岱  陈绍云  黄纯洁  费潇瑶  张永春 《化工进展》2016,35(11):3701-3706
用共沉淀法制备了一系列Ce-Cu-Al-O复合金属氧化物吸附剂,用于低温下脱除CO2气体中的微量H2S。采用XRD、N2物理吸附、SEM及XPS等手段对脱硫前后的吸附剂结构进行表征。研究了Ce含量、煅烧温度、气体空速、杂质气体及吸附温度对吸附剂脱除H2S性能的影响。结果表明,Ce-Cu-Al-O系列吸附剂在40℃条件下可有效脱除CO2气体中的H2S,Ce含量为10%的吸附剂(10Ce-Cu-Al-O)具有最大H2S穿透吸附量,为94.1mg/g。研究发现,引入CeO2能有效改善CuO的分散性,提高吸附剂的比表面积和孔容。提高煅烧温度,较大空速均不利于吸附剂的脱硫效果;平衡气CO2会抑制H2S的吸附;吸附温度不高于100℃时,10Ce-Cu-Al-O的穿透吸附量随温度升高而增加且不会生成COS副产物。表征结果显示,硫化后吸附剂的组分团聚导致了比表面积和孔容降低。此外,失活后的脱硫剂可在100℃用空气再生。  相似文献   

5.
燃煤锅炉污染物超低排放标准对电厂脱硫和脱硝系统提出了更高的要求。CaO作为脱硫剂可以实现循环流化床锅炉烟气中SO2的高效脱除,焦炭作为还原剂直接还原NO,同时CaO的存在对焦炭还原NO起催化作用,可以实现燃煤烟气中SO2/NO的联合脱除。为了探究连续温度变化对CaO/生物质焦联合脱硫脱硝性能的影响,在钙循环捕集CO2技术背景下,研究了等速升温流态化下CaO/生物质焦的SO2/NO联合脱除特性。探究了烟气中O2和CO2对CaO/椰壳焦脱除SO2/NO的影响。结果表明,O2通过对椰壳焦表面碳原子的活化作用降低了异相还原NO温度,在300~950℃等速升温过程中CaO/椰壳焦的NO脱除效率逐渐增加,780℃以上能实现100%脱硝。O2也提高了CaO/椰壳焦的脱硫效率。CO2与CaO的碳酸化反应以及与椰壳焦的气化反应对同时脱除SO2/NO有明显抑制作用。O2和CO2共同作用下,在500~800℃内CaO/椰壳焦的脱硝效率随温度升高而增加,脱硫效率先降低后升高。NO促进了CaO/椰壳焦脱除SO2,而SO2对脱硝有抑制作用。800℃时CaO/椰壳焦同时脱除SO2和NO的效率分别为97.7%和93.9%。  相似文献   

6.
陈亮  赵帆  闫广精  王春波 《化工学报》2018,69(9):3859-3868
采用自制恒温热重分析仪,研究了CFB工况下石灰石同时煅烧/硫化反应中H2O和SO2对石灰石煅烧动力学和孔结构的协同作用。煅烧环境中的H2O能够促进石灰石的分解,但SO2会减慢石灰石分解速度,且测试发现SO2使煅烧后颗粒的孔容积下降,分解反应的效率因子减小。基于此提出SO2减缓煅烧反应的机理:高温下,石灰石颗粒外层首先分解并生成多孔CaO层,其中的孔隙作为内部CaCO3分解产生CO2的外扩散通道,当煅烧气氛中含有SO2时,颗粒的CaO层与SO2反应生成CaSO4,堵塞了CaO中的孔隙,增加了CO2扩散的阻力,从而减缓了其分解速度。当石灰石在含有15% H2O和0.3% SO2的环境中分解时,其分解速度比不含二者的环境下快,而比含15% H2O但不含SO2的环境下慢,说明H2O和SO2对改变石灰石分解的速度有协同效应,但15% H2O的作用比0.3% SO2的作用更大。对效率因子的计算表明,该现象可能由于石灰石煅烧反应的速度控制步骤中本征反应速度的影响比扩散阻力的作用更大,而H2O能够直接加速煅烧反应的本征速度。温度、粒径等均能够影响石灰石同时煅烧/硫化反应的中的煅烧速度。H2O还能够促进CaO的烧结,并且H2O和SO2在降低石灰石煅烧产物的孔面积和孔容积上具有叠加效应。  相似文献   

7.
孙锋  申成  罗聪  罗童 《洁净煤技术》2021,(2):180-186
钙基吸附剂进行多次CO2捕集后,碳酸化效率会大幅衰减,此时的吸附剂能否高效脱硫利用是值得重点关注的问题。鉴于此,筛选了高性能合成钙基吸附剂和天然石灰石吸附剂,通过热重分析仪分析对比其在多循环CO2捕集后的碳酸化和硫酸化反应性能,采用微粒模型研究其硫酸化反应动力学特征。结果发现,高性能合成钙基吸附剂的碳酸化反应速率和CO2吸附能力明显高于石灰石吸附剂。在长达500循环的CO2捕集试验后,高性能合成钙基吸附剂的CO2吸附能力比石灰石高10倍以上,其SO2吸附能力相较于石灰石提升约40%。经历多次CO2捕集反应循环后,2种吸附剂的硫酸化能力均有提升:其中,石灰石吸附剂的提升幅度更大,硫酸化转化率从26%提升到35%,而高性能合成钙基吸附剂的硫酸化转化率则从38%提升到43%。通过微粒模型计算发现,2种吸附剂的硫酸化反应均是与SO2浓度相关的一级反应,多循环捕集CO2反应后,石灰石吸附剂的硫酸化反应活化能下降接近30%,而高性能合成钙基吸附剂的硫酸化反应活化能只下降了5%。研究结果说明2种不同钙基吸附剂在进行循环CO2捕集后,脱硫能力得到了不同程度的提高,且均可以较好地应用于SO2的脱除。  相似文献   

8.
田江  易春雄  米铁  吴正舜 《化工进展》2018,37(4):1408-1413
以谷壳作为生物质研究对象,在石英管反应器中研究了基于CO2原位捕集的谷壳热解制H2,考察了不同温度、不同的CO2捕集剂(CaO)配比对其热解的产气量、气体中H2的体积分数的影响。实验结果表明,谷壳热解的产气量随温度的升高而增大,当反应温度在800℃时有最大产气量340mL/g;捕集剂CaO的添加通过原位吸收CO2促进相关反应向生成氢气的方向移动。在600℃,不同比例CaO下CO2体积分数都保持在22%左右,谷壳热解产生的气体中H2的体积分数为14%~26%;在700℃,当CaO与生物质质量比为1:4时,添加CaO捕集剂能够较好地捕集CO2,有效提高H2的体积分数,此时获得较高的H2产率41%,较低的CO2体积分数16%,CaO的捕集率为64%;GC-MS表征分析发现,CaO在800℃的温度下对热解过程中产生的焦油有部分催化裂解效果。  相似文献   

9.
H2S杂质对固态胺吸附剂吸附CO2性能的干扰机制还缺少全面研究。以Al2O3为载体负载聚乙烯亚胺(PEI)制备铝基固态胺吸附剂(PEI@Al2O3),系统探究了H2S对其CO2吸附容量、吸附速率和循环吸附性能的影响规律。结果表明:H2S与CO2共存时,会相互抢占吸附剂上的胺基活性位点,从而发生竞争性吸附,但在模拟沼气条件(40%CO2+59.5%CH4+0.5%H2S)下,H2S的吸附竞争力远小于CO2,H2S吸附被抑制,且二者的最佳吸附温度不一致,在CO2最佳吸附温度下,PEI@Al2O3的CO2吸附容量和循环稳定性均不受H2S干...  相似文献   

10.
黄宏  杨思宇 《化工学报》2017,68(10):3860-3869
传统的煤制甲醇过程所需合成气的氢碳比为2.1左右,而煤气化粗合成气氢碳比仅为0.7左右,因此需要将部分合成气进行变换来调节氢碳比。然而,变换气与未变换气混合后使得CO2浓度降低,从而导致CO2捕集能耗增加。提出了一种低能耗捕集CO2煤基甲醇和电力联产过程。新联产过程中部分粗合成气首先经过变换,将CO转变为H2和CO2,CO2浓度提高,在此时进行CO2捕集可实现捕集能耗的降低。经CO2捕集后,得到富H2气体,富H2气体分流后与另一部分煤气化粗合成气混合调节甲醇合成的氢碳比。对新的过程进行了建模、模拟与分析。结果表明相比传统的带CO2捕集的煤制甲醇和IGCC发电过程,新的联产过程的能量节约率可达到16.5%,CO2捕集能耗下降30.3%。  相似文献   

11.
abstract Calcium looping method has been considered as one of the efficient options to capture CO2 in the combustion flue gas. CaO-based sorbent is the basis for application of calcium looping and shou...  相似文献   

12.
The use of natural calcium carbonates as regenerable CO2 sorbents in industrial processes is limited by the rapid decay of the carbonation conversion with the number of cycles carbonation/calcination. However, new processes are emerging to capture CO2 using these cycles, that can take advantage of the intrinsic benefits of high temperature separations in energy systems. This work presents an analysis of a general carbonation/calcination cycle to capture CO2, incorporating a fresh feed of sorbent to compensate for the decay in activity during sorbent re-cycling. A general design equation for the maximum CO2 capture efficiency is obtained by incorporating to the cycle mass balances a simple but realistic equation to estimate the decay in sorbent activity with the number of cycles.  相似文献   

13.
将经历多次循环后失活的钙基吸收剂置于环境中吸水自活化,通过XRD分析了自活化过程吸收剂物相演变规律,在双固定床反应器系统上分析了吸水率对失活钙基吸收剂循环捕集CO2性能的影响规律, 通过SEM和N2吸附分析了自活化提高钙基吸收剂循环碳酸化转化率的机理。结果表明:失活钙基吸收剂首先吸收环境中水分生成Ca(OH)2,当吸水率达到100%后继续吸水生成Ca(OH)2?2H2O,自活化极限为170%;自活化可以提高失活钙基吸收剂循环碳酸化转化率,自活化后钙基吸收剂循环捕集CO2性能与吸水率呈线性比例关系,重复自活化可再次提高吸收剂循环碳酸化转化率;自活化过程中,失活钙基吸收剂颗粒表面重新生成孔隙,比孔容和比表面积增加,有利于吸收剂中CO2的扩散,因此自活化后钙基吸收剂循环捕集CO2性能提高。  相似文献   

14.
The reversible reaction between CaO(s) and CO2(g) may ultimately find application in a high temperature process to control CO2 emissions from advanced power generation processes. At appropriate temperature and pressure combinations, CO2(g) is removed from the gas phase and captured as CaC3(s). At higher temperature and/or lower pressure, the reaction is reversed to produce a gas stream having high CO2(g) concentration suitable for use or ultimate disposal. Both the calcination and carbonation reactions have been studied in an electrobalance reactor as a function of temperature, pressure, and gas composition. Multicycle tests have provided preliminary information on sorbent durability. Solid structural property characteristics have been measured as a supplement to the reaction studies.

Rapid and complete calcination of CaCO3 can be achieved at temperatures as low as 750°C under one atmosphere of N2. Higher pressure reduces the calcination rate while the presence of CO2 in the calcination atmosphere requires the use of higher temperature. Mild calcination conditions produce a CaO product which is most reactive during the carbonation phase. Carbonation is characterized by a rapid initial reaction rate followed by an abrupt transition to a quite slow rate. Significant reduction in CO2 capacity between the first and second carbonation cycles, ranging from 15% under favorable reaction conditions to more than 30% at severe conditions, was found. However, the capacity loss tended to moderate as the number of cycles increased.  相似文献   

15.
The effect of self-reactivation on the CO_2 capture capacity of the spent calcium based sorbent was investigated in a dual-fixed bed reactor.The sampled sorbents from the dual-fixed bed reactor were sent for XRD,SEM and N_2 adsorption analysis to explain the self-reactivation mechanism.The results show that the CaO in the spent sorbent discharged from the calciner absorbs the vapor in the air to form Ca(OH)_2 and further Ca(OH)_2·2 H_2 O under environmental conditions,during which process the CO_2 capture capacity of the spent sorbent can be self-reactivated.The microstructure of the spent sorbent is improved by the self-reactivation process,resulting in more porous microstructure,higher BET surface area and pore volume.Compared with the calcined spent sorbent that has experienced 20 cycles,the pore volume and BET surface area are increased by 6.69 times and 56.3% after self-reactivation when φ=170%.The improved microstructure makes it easier for the CO_2 diffusion and carbonation reaction in the sorbent.Therefore,the CO_2 capture capacity of the spent sorbent is enhanced by self-reactivation process.A self-reactivation process coupled with calcium looping process was proposed to reuse the discharged spent calcium based sorbent from the calciner.Higher average carbonation conversion and CO_2 capture efficiency can be achieved when self-reactivated spent sorbent is used as supplementary sorbent in the calciner rather than fresh CaCO_3 under the same conditions.  相似文献   

16.
High-temperature pyrolysis technology can effectively solve the problem of municipal solid waste pollution. However, the pyrolysis gas contains a large amount of CO2, which would adversely affect the subsequent utilization. To address this problem, a novel method of co-precipitation modification with Ca, Mg and Zr metals was proposed to improve the CO2 capture performance. X-ray diffraction (XRD) patterns and energy dispersive X-ray spectroscopy analysis showed that the two inert supports MgO and CaZrO3 were uniformly distributed in the modified calcium-based sorbents. In addition, the XRD results indicated that CaZrO3 was produced by the reaction of ZrO2 and CaO at high temperatures. The effects of doping ratios, adsorption temperature, calcination temperature, CO2 concentration and calcination atmosphere on the adsorption capacity and cycle stability of the modified calcium-based sorbent were studied. The modified calcium-based sorbent achieved the best CO2 capture performance when the doping ratio was 10:1:1 with carbonation at 700 ℃ under 20% CO2/80% N2 atmosphere and calcination at 900 ℃ under 100% N2 atmosphere. After ten cycles, the average carbonation conversion rate of Ca-10 sorbent was 72%. Finally, the modified calcium-based sorbents successfully reduced the CO2 concentration of the pyrolysis gas from 37% to 5%.  相似文献   

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