CHEMICAL RECYCLING OF PLASTIC-DERIVED STREAMS TO A CRACKER SEPARATION ZONE WITH ENHANCED ENERGY EFFICIENCY
Methods and systems are provided for the conversion of waste plastics into various useful downstream recycle-content products. More particularly, the present system and method involves integrating a pyrolysis facility with a cracker facility by introducing at least a stream of r-pyrolysis gas into the cracker facility, in the cracker facility, the r-pyrolysis gas may be separated to form one or more recycle content products, and can enhance the operation of the facility.
1 - 30 . (canceled)
31 . A process for separating an olefin-containing stream to form one or more product streams, wherein said process comprises: introducing a stream comprising a recycle content pyrolysis gas (r-pyrolysis gas) into a cracker facility at a location downstream of an outlet of a cracker furnace.
32 . The process of claim 31 , wherein said cracker facility comprises at least one distillation column for separating a feed stream into an olefin-enriched stream and an alkane-enriched stream, wherein at least a portion of said alkane-enriched stream is recycled to an inlet of said cracker furnace, and wherein said r-pyrolysis gas is introduced into the recycle stream introduced into said inlet of said cracker furnace.
33 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said r-pyrolysis gas introduced at said location has a temperature of at least 500 and not more than about 1000° C.
34 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said r-pyrolysis gas introduced at said location has a pressure of at least 25 and not more than 100 psig.
35 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said location has a temperature of at least 300 and not more than about 700° C.
36 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said location has a temperature of at least 100 and not more than 350° C.
37 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said location has a temperature of at least 25 and not more than 150° C.
38 . The process of claim 31 , wherein the cracker facility includes a fractionation section and a compressor between said furnace and said fractionation section, wherein said r-pyrolysis gas introduced at said location is upstream of the last stage of said compressor.
39 . The process of claim 31 , wherein said cracker facility includes a quench column downstream of said furnace.
40 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said location is upstream of said quench column.
41 . The process of claim 31 , wherein said r-pyrolysis gas introduced at said location is downstream of said quench column.
42 . The process of claim 31 , further comprising compressing said r-pyrolysis gas in a separate compressor and introducing the compressed r-pyrolysis gas at said r-pyrolysis gas introduced at said location.
43 . The process of claim 31 , further comprising combining said r-pyrolysis gas with an olefin-containing stream withdrawn from said cracker furnace and compressing the combined stream in said compressor.
44 . The process of claim 31 , further comprising cracking a cracker feedstock in a cracker furnace to form an olefin-containing effluent, wherein the introducing includes combining the r-pyrolysis gas with at least a portion of said olefin-containing effluent.
45 . A process for separating an olefin-containing stream to form one or more product streams, wherein said process comprises:
(a) pyrolyzing a pyrolysis feed stream comprising recycled waste material to form a recycle content pyrolysis gas (r-pyrolysis gas); and
(b) introducing at least a portion of said r-pyrolysis gas into a cracker facility in at least one location downstream of an outlet of a cracker furnace.
46 . The process of claim 45 , further comprising combining at least a portion of said r-pyrolysis gas with an olefin-containing effluent stream withdrawn from an outlet of said cracker furnace.
47 . The process of claim 45 , wherein said introducing includes introducing said r-pyrolysis gas stream into a fractionator.
48 . The process of claim 45 , wherein said r-pyrolysis gas stream comprises at least 5 and not more than 60 weight percent of olefin, based on the total weight of the stream.
49 . The process of claim 48 , wherein said olefin comprises predominantly ethylene.
50 . The process of claim 45 , further comprising separating a stream of mixed waste plastic (MWP) into a polyethylene terephthalate (PET) enriched stream and a polyolefin (PO) enriched stream, wherein said PET-enriched stream is enriched in polyvinyl chloride (PVC) and said PO-enriched stream is depleted in PVC, wherein said recycled waste material comprises at least a portion of said PET-enriched stream and/or said PO-enriched stream.