首页> 外文期刊>Applied Catalysis, A. General: An International Journal Devoted to Catalytic Science and Its Applications >Steam catalytic cracking of naphtha over ZSM-5 zeolite for production of propene and ethene: Micro and macroscopic implications of the presence of steam
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Steam catalytic cracking of naphtha over ZSM-5 zeolite for production of propene and ethene: Micro and macroscopic implications of the presence of steam

机译:ZSM-5沸石上石脑油的蒸汽催化裂化以生产丙烯和乙烯:存在蒸汽的微观和宏观意义

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摘要

One option to produce more ethene and propene can be to crack naphtha type fractions in dedicated smaller FCC units. We present here the results obtained for high temperature steam catalytic cracking (SCC) of a representative naphtha product (n-heptane) with ZSM-5. It has been found that under those conditions the presence of steam produces an irreversible dealumination of the zeolite as well as a reversible deactivation due to the interaction of water with active sites with a negative effect on pro-tolytic cracking. A kinetic decay model that takes into account the two phenomena has been developed. The apparent activation energy is lower in the presence of steam. It appears that whilst the presence of steam is vital when processing heavy feeds to achieve a better feed dispersion and a more effective catalytic cracking in conventional fluid catalytic cracking (FCC) units, in the case of steam catalytic cracking of naphtha (n-heptane) the presence of steam has a negative effect on the final performance of the catalyst. On the other hand, whilst steam does not modify ethene and propene selectivity, significantly decreases H2 and CH4 formation, as well as formation of potential coke precursors.
机译:生产更多乙烯和丙烯的一种选择是在专用的较小FCC装置中裂解石脑油型馏分。我们在此介绍ZSM-5代表石脑油产品(正庚烷)的高温蒸汽催化裂化(SCC)的结果。已经发现,在那些条件下,由于水与活性位点的相互作用对原水解裂化具有负面影响,蒸汽的存在使沸石发生不可逆的脱铝以及可逆的失活。已经建立了考虑这两种现象的动力学衰减模型。在蒸汽存在下,表观活化能较低。在石脑油(正庚烷)的蒸汽催化裂化的情况下,似乎在处理重质进料以实现更好的饲料分散性和更有效的催化裂化时蒸汽的存在对于常规流化催化裂化(FCC)装置而言至关重要。蒸汽的存在对催化剂的最终性能有负面影响。另一方面,尽管蒸汽不会改变乙烯和丙烯的选择性,但会显着降低H2和CH4的形成以及潜在的焦炭前体的形成。

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