Porous inorganic macrostructure materials and process for their preparation
Abstract
There is provided macrostructures of porous inorganic material which can have controlled size, shape, and/or porosity and a process for preparing the macrostructures. The macrostructures comprise a three-dimension network of particles of porous inorganic materials. The process for preparing the macrostructures involves forming an admixture containing a porous organic ion exchanger and a synthesis mixture capable of forming a porous inorganic material and then converting the synthesis mixture to a solid porous inorganic material. After formation of the composite material, the porous organic ion exchanger can be removed from the composite material to obtain the macrostructures, either before or after the porous inorganic material is hydrothermally treated with a structure directing agent to convert at least a portion of such porous inorganic material to a crystalline molecular sieve composition. The resulting macrostructure is composed of particles of the crystalline molecular sieve composition.
Claims
exact text as granted — not AI-modified1 - 32 . (canceled)
33 . Macrostructures prepared by a process comprising the steps of
(a) forming a composite material composed of an organic ion exchanger having a three-dimensional pore structure and a matrix of a mesoporous inorganic material within the three-dimensional pore structure of the organic ion exchanger; and (b) removing the organic ion exchanger from the composite material to yield the macrostructures (c) treating said three-dimensional matrix of mesoporous inorganic material, before or after removal of said organic ion exchanger from the composite material, under hydrothermal conditions to convert at least a portion of said mesoporous inorganic material to a crystalline molecular sieve composition.
34 . The macrostructures of claim 33 , wherein in the process the step of treating said continuous three-dimensional matrix of mesoporous inorganic material under hydrothermal conditions is conducted in the presence of a structuring agent to convert at least a portion of said mesoporous inorganic material to a crystalline molecular sieve composition.
35 . The macrostructures of claim 33 , wherein in the process the step of treating under hydrothermal conditions occurs before the step of removing the organic ion exchanger from the composite material.
36 . The macrostructures of claim 33 , wherein in the process the step of treating under hydrothermal conditions occurs after the step of removing the organic ion exchanger from the composite material.
37 . A process for converting hydrocarbons comprising contacting a hydrocarbon feedstream under hydrocarbon conversion conditions with a catalyst having macrostructures comprised of a crystalline molecular sieve composition prepared by a process comprising:
(a) forming a composite material composed of an organic ion exchanger having a three-dimensional pore structure and a matrix of a mesoporous inorganic material within the three-dimensional pore structure of the organic ion exchanger; and (b) removing the organic ion exchanger from the composite material to yield the macro structures (c) treating said three-dimensional matrix of mesoporous inorganic material, before or after removal of said organic ion exchanger from the composite material, under hydrothermal conditions to convert at least a portion of said mesoporous inorganic material to a crystalline molecular sieve composition.
38 . The process recited in claim 37 , wherein the step of treating said three-dimensional matrix of mesoporous inorganic material under hydrothermal conditions is conducted in the presence of a structuring agent to convert at least a portion of said mesoporous inorganic material to a crystalline molecular sieve composition.
39 . The process recited in claim 37 , wherein the step of treating under hydrothermal conditions occurs before the step of removing the organic ion exchanger from the composite material.
40 . The process recited in claim 37 , wherein the step of treating under hydrothermal conditions occurs after the step of removing the organic ion exchanger from the composite material.
41 . The process recited in claim 37 , wherein said macrostructures have a size and shape of the three-dimensional pore structure of said porous organic ion exchanger.
42 . The process recited in claim 41 , wherein said organic ion exchanger is a porous organic anionic ion exchanger.
43 . The process recited in claims 37 , wherein the hydrocarbon conversion process is selected from the group consisting of cracking of hydrocarbons, isomerization of alkyl aromatics, transalkylation of aromatics, disproportionation of alkylaromatics, alkylation of aromatics, reforming of naphtha to aromatics, conversion of paraffins and/or olefins to aromatics, and conversion of oxygenates to hydrocarbon products.
44 . The process recited in claim 37 , wherein said hydrocarbon conversion is carried out at conditions comprising a temperature of from 100° C. to 760° C., a pressure of 0.1 atmosphere to 100 atmospheres, a weight hourly space velocity of form 0.08 hr −1 to 200 hr −1 .Join the waitlist — get patent alerts
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