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首页> 外文期刊>Journal of Membrane Science >Development of large-scale applications in organic solvent nanofiltration and pervaporation for chemical and refining processes
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Development of large-scale applications in organic solvent nanofiltration and pervaporation for chemical and refining processes

机译:在化学和精炼过程中有机溶剂纳米过滤和全蒸发的大规模应用开发

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New membrane, modules, and systems are under development for large-scale organic/organic separations. Practical applications are envisioned in the refining, chemical, pharmaceutical, and polymer industries. A large-scale organic solvent nanofiltration (OSN) process is MAX-DEWAX (TM) for solvent recovery in lube dewaxing. A commercial installation has been in operation since 1998 at a feed rate of 5800 m(3)/day (36,000 barrels/day). A pervaporation process, S-Brane (TM), is also available for comparable large-scale operations. S-Brane selectively removes sulfur containing hydrocarbon molecules from fluidized catalytic cracking (FCC) and other naphtha streams. A 300 barrels/day demonstration plant has been run on-stream using FCC light and intermediate cat naphthas. S-Brane reduces the overall capital and operating cost for clean fuel compliance, and also provides a means for preserving octane value in hydrotreating based technology. There are several key steps in the development of a robust membrane process that can be moved from lab-scale to pilot plant trials to a demonstration unit on-line at a refinery. These steps expand in complexity and size as process development moves forward. Both MAX-DEWAX and S-Brane are presented as examples of applications that have moved through this progression. Since these processes are large-scale and relatively low capital cost compared to conventional technologies, gains in yield, quality, or energy savings are found to offer significant economic benefits. Experimentally, it appears that high-pressure nanofiltration and low-pressure pervaporation are governed by the principles found in solution-diffusion models. Data taken in OSN mode is used to estimate pervaporation performance. Choice of membrane operating systems is dependent on the composition of the feed stream and the required product quality. In some cases, the high throughput for OSN outweighs the higher selectivities gained in pervaporation, since OSN is inherently a lower cost process to operate. Further investigations of new applications include toluene recovery from a toluene disproportionation unit, lowering benzene levels in gasoline feedstocks to < 1%, and integration of membrane separation with aromatics reformer or distillation operations. (c) 2006 Elsevier B.V. All rights reserved.
机译:正在开发用于大规模有机/有机分离的新型膜,模块和系统。在炼油,化学,制药和聚合物行业中可以预见到实际应用。 MAX-DEWAX(TM)是一种大规模的有机溶剂纳米过滤(OSN)工艺,用于润滑油脱蜡中的溶剂回收。自1998年以来,一个商业装置已经投入运行,进料速度为5800 m(3)/天(36,000桶/天)。全蒸发过程S-Brane(TM)也可用于类似的大规模操作。 S-Brane从流化催化裂化(FCC)和其他石脑油物流中选择性除去含硫的烃分子。每天有300桶/天的示范厂使用FCC轻型和中间的猫石脑油进行生产。 S-Brane降低了清洁燃料合规性的总投资和运营成本,并且还提供了一种在基于加氢处理的技术中保持辛烷值的手段。开发坚固的膜工艺的几个关键步骤可以从实验室规模转移到中试工厂试验,再到炼油厂的在线演示装置。随着过程的发展,这些步骤的复杂性和规模不断扩大。 MAX-DEWAX和S-Brane均作为在此过程中不断发展的应用示例。与传统技术相比,由于这些过程规模大且投资成本相对较低,因此发现提高产量,质量或节省能源可带来显着的经济效益。从实验上看,高压纳米过滤和低压全蒸发受溶液扩散模型中原理的支配。 OSN模式下获取的数据用于估计渗透性能。膜操作系统的选择取决于进料流的组成和所需的产品质量。在某些情况下,由于OSN本质上是运行成本较低的过程,因此OSN的高通量超过了全蒸发获得的更高的选择性。对新应用的进一步研究包括从甲苯歧化装置回收甲苯,将汽油原料中的苯含量降低至<1%以及将膜分离与芳烃重整器或蒸馏操作整合在一起。 (c)2006 Elsevier B.V.保留所有权利。

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