ASTM D7206 D7206M-2006(2012)e1 red 8583 Standard Guide for Cyclic Deactivation of Fluid Catalytic Cracking (FCC) Catalysts with Metals《金属流花催化裂化 (FCC) 催化剂循环失活的标准指南》.pdf
《ASTM D7206 D7206M-2006(2012)e1 red 8583 Standard Guide for Cyclic Deactivation of Fluid Catalytic Cracking (FCC) Catalysts with Metals《金属流花催化裂化 (FCC) 催化剂循环失活的标准指南》.pdf》由会员分享,可在线阅读,更多相关《ASTM D7206 D7206M-2006(2012)e1 red 8583 Standard Guide for Cyclic Deactivation of Fluid Catalytic Cracking (FCC) Catalysts with Metals《金属流花催化裂化 (FCC) 催化剂循环失活的标准指南》.pdf(6页珍藏版)》请在麦多课文档分享上搜索。
1、Designation:D720606 Designation: D7206/D7206M 06 (Reapproved 2012)1Standard Guide forCyclic Deactivation of Fluid Catalytic Cracking (FCC)Catalysts with Metals1This standard is issued under the fixed designation D7206/D7206M; the number immediately following the designation indicates theyear of orig
2、inal adoption or, in the case of revision, the year of last revision. A number in parentheses indicates the year of lastreapproval. A superscript epsilon () indicates an editorial change since the last revision or reapproval.1NOTEUpdated units statement and made a combined standard editorially in Ap
3、ril 2012.1. Scope1.1 This guide covers the deactivation of fluid catalytic cracking (FCC) catalyst in the laboratory as a precursor to small scaleperformance testing. FCC catalysts are deactivated in the laboratory in order to simulate the aging that occurs during continuoususe in a commercial fluid
4、 catalytic cracking unit (FCCU). Deactivation for purposes of this guide constitutes hydrothermaldeactivation of the catalyst and metal poisoning by nickel and vanadium. Hydrothermal treatment is used to simulate the physicalchanges that occur in the FCC catalyst through repeated regeneration cycles
5、. Hydrothermal treatment (steaming) destabilizes thefaujasite (zeolite Y), resulting in reduced crystallinity and surface area. Further decomposition of the crystalline structure occursin the presence of vanadium, and to a lesser extent in the presence of nickel. Vanadium is believed to form vanadic
6、 acid in ahydrothermal environment resulting in destruction of the zeolitic portion of the catalyst. Nickels principle effect is to poison theselectivity of the FCC catalyst. Hydrogen and coke production is increased in the presence of nickel, due to the dehydrogenationactivity of the metal. Vanadiu
7、m also exhibits significant dehydrogenation activity, the degree of which can be influenced by theoxidation and reduction conditions prevailing throughout the deactivation process. The simulation of the metal effects that onewould see commercially is part of the objective of deactivating catalysts i
8、n the laboratory.1.2 The two basic approaches to laboratory-scale simulation of commercial equilibrium catalysts described in this guide are asfollows:1.2.1 Cyclic Propylene Steaming (CPS) Method, in which the catalyst is impregnated with the desired metals via an incipientwetness procedure (Mitchel
9、l method)2followed by a prescribed steam deactivation.1.2.2 Crack-on Methods, in which fresh catalyst is subjected to a repetitive sequence of cracking (using a feed with enhancedmetals concentrations), stripping, and regeneration in the presence of steam. Two specific procedures are presented here,
10、 aprocedure with alternating metal deposition and deactivation steps and a modified Two-Step procedure, which includes a cyclicdeactivation process to target lower vanadium dehydrogenation activity.1.3The values stated in SI units are to be regarded as standard. The values given in parentheses are f
11、or information only.1.3 The values stated in either SI units or inch-pound units are to be regarded separately as standard. The values stated in eachsystem may not be exact equivalents; therefore, each system shall be used independently of the other. Combining values from thetwo systems may result i
12、n non-conformance with the standard.1.4 This standard does not purport to address all of the safety concerns, if any, associated with its use. It is the responsibilityof the user of this standard to establish appropriate safety and health practices and determine the applicability of regulatorylimita
13、tions prior to use.2. Terminology2.1 Definitions:2.1.1 crack-ontechnique of depositing metals onto a catalyst through cracking of an FCC feed with enhanced metal contentin a fluidized catalyst bed that is at cracking temperature.2.2 Acronyms:2.2.1 E-catequilibrium catalyst from commercial FCCU.2.2.2
14、 FCCfluid catalytic cracking.2.2.3 FCCUfluid catalytic cracking unit.2.2.4 LGOlight gas oil, fluid at 40C, initial boiling point 250C, sulfur content of 2-3 mass percent.3. Significance and Use3.1 This guide describes techniques of deactivation that can be used to compare a series of cracking cataly
15、sts at equilibriumconditions or to simulate the equilibrium conditions of a specific commercial unit and a specific catalyst.4. Reagents4.1 Feed, VGO.4.2 Feed, LGO.4.3 Hydrogen (H2), 42.8 % in nitrogen balance.4.4 Nickel naphthenate or nickel octoate solution.4.5 Nitrogen (N2).4.6 Oxygen (O2), 40 %
16、in nitrogen balance.4.7 Vanadium naphthenate solution.4.8 Cyclo-hexaneCyclohexane.4.9 N-pentanen-pentane.4.10 N-hexanen-hexane.4.11 Water, demineralized.5. Hazards5.1 The operations described in this guide involve handling heated objects, fragile glassware, and toxic organic nickel andvanadium compo
17、unds.5.2 All work with organic metals precursor solutions and other organic solvents should be completed in suitable vented fumehood.5.3 Appropriate personal protection equipment, including chemical goggles, laboratory smock, and disposable gloves should beworn.5.4 Waste organic metal solutions and
18、organic solvents shall be disposed of properly in suitable waste containers and accordingto regulations.5.5 Vented furnaces and hoods should be regularly monitored for proper ventilation before using.5.6 Evaporating dishes should be checked for cracks before use.5.7 The muffle furnace used for the p
19、ost-impregnation thermal treatment of the sample shall be appropriately and adequatelyventilated. Catalyst load sizes should be selected to avoid overwhelming the ventilation capacity of the furnace and allowing fumesto escape into the laboratory.5.8 To avoid the potential hazard of explosion in the
20、 muffle furnace, impregnated samples shall be completely dry of pentaneprior to beginning the thermal post-treatment.5.9 Material safety data sheets (MSDS) for all materials used in the deactivation should be read and understood by operatorsand should be kept continually available in the laboratory
21、for review.6. CPS Method6.1 Summary of PracticeA fresh FCC catalyst is impregnated with nickel, or vanadium, or both. Nickel and vanadium levelsare controlled by a predetermined concentration for the sample. The catalyst is wetted with a mixture of pentane and nickel, orvanadium naphthenate, or solu
22、tions of both and then mixed to dryness. After drying, the sample is thermally treated to removeresidual naphthenates. The sample is then ready for hydrothermal treatment of analysis as desired.6.2 Procedure:6.2.1 Catalyst Pre-treatment Before ImpregnationFor a muffle furnace pre-treatment (standard
23、), place the sample in a dishusing a shallow bed (12 in. maximum). Calcine the sample for 1 h at 204C (400F),400F, then3hat593C (1100F).1100F.The sample is then removed and allowed to cool to room temperature. Catalyst should be returned to a sealed container as soonas it is cool.6.2.2 Steam Deactiv
24、ation Pre-treatmentTypical conditions included hydrothermal treatment for2hat816C(1500F),1500F, 100 % steam, and 0 psi. The catalyst is charged to a pipe reactor, fluidized in air, and then lowered over a 3-hperiod into a 816C (1500F)1500F sand bath furnace. Air flow is switched off and steam introd
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