ADSORBENT MATERIAL FOR REDUCING HYDROCARBON BLEED EMISSION IN AN EVAPORATIVE EMISSION CONTROL SYSTEM
Disclosed in certain embodiments are hydrocarbon adsorbents and evaporative emission control systems incorporating the same to reduce hydrocarbon bleed emissions from fuel systems. In one embodiment, a hydrocarbon adsorbent structure comprises a zeolite having a silica-to-alumina ratio of at least 20.
1 . A hydrocarbon adsorbent structure comprising:
a zeolite having a silica-to-alumina ratio of at least 20, wherein
the repeatable TGA butane adsorption of the zeolite is greater than 2 wt. %.
2 . (canceled)
3 . The hydrocarbon adsorbent structure of claim 1 , wherein the silica to alumina ratio is in the range of from 20 to 600.
4 . The hydrocarbon adsorbent structure of claim 1 , wherein the repeatable TGA butane adsorption of the zeolite is greater than 3 wt. %.
5 . The hydrocarbon adsorbent structure of claim 1 , wherein an average pore width of micropores of the zeolite is less than 20 Å.
6 . (canceled)
7 . The hydrocarbon adsorbent structure of claim 5 , wherein the zeolite is in the form of characterized by an average d90 particle size from about 5 micrometers to about 50 micrometers.
8 . The hydrocarbon adsorbent structure of claim 1 , wherein the zeolite comprises a zeolite selected from a group consisting of: AEI, BEA, BEC, CHA, EMT, FAU, FER, MFI, and combinations thereof.
9 . (canceled)
10 . (canceled)
11 . The hydrocarbon adsorbent structure of claim 1 , wherein the hydrocarbon adsorbent structure comprises a substrate and a hydrocarbon adsorbent coating formed thereon, the hydrocarbon adsorbent coating comprising the zeolite.
12 . (canceled)
13 . The hydrocarbon adsorbent structure of claim 11 , wherein the a loading of the hydrocarbon adsorbent coating on the substrate ranges from about 0.5 g/in 3 to about 2.0 g/in 3 , and wherein a thickness of the hydrocarbon adsorbent coating is less than about 500 micrometers.
14 . (canceled)
15 . The hydrocarbon adsorbent structure of claim 11 , wherein the hydrocarbon adsorbent coating comprises a binder, wherein the binder comprises a styrene/acrylic copolymer, and wherein the binder is present in an amount from about 5 wt. % to about 50 wt. % based a total weight of the hydrocarbon adsorbent coating.
16 . (canceled)
17 . (canceled)
18 . The hydrocarbon adsorbent structure of claim 11 , wherein the hydrocarbon adsorbent coating further comprises activated carbon.
19 . The hydrocarbon adsorbent structure of claim 1 , wherein the hydrocarbon adsorbent structure is in a form of a monolithic body, and wherein at least 50% of the zeolite forms the monolithic body.
20 . A bleed emission scrubber comprising an adsorbent volume, at least one adsorbent volume comprising at least one hydrocarbon adsorbent structure of claim 1 .
21 . An air intake system comprising at least one hydrocarbon adsorbent structure of claim 1 .
22 . A cabin air purification system comprising at least one hydrocarbon adsorbent structure of claim 1 .
23 . An evaporative emission control canister comprising:
one or more adsorbent volumes located within or external to the evaporative emission control canister; and
at least one bleed emission scrubber contained within the adsorbent volume of the evaporative emission control canister and fluidly coupled thereto, wherein each bleed emission scrubber comprises at least one hydrocarbon adsorbent structure of claim 1 .
24 . (canceled)
25 . (canceled)
26 . The evaporative emission control canister of claim 23 , wherein the bleed emission scrubber is incorporated into an evaporative emission control canister system having a canister volume of 3.5 L or less, wherein a volume of the bleed emission scrubber or the hydrocarbon adsorbent structure is less than 4 dL, and wherein at least a portion of micropores of the zeolite exhibit a pore volume of greater than 0.01 mL/g.
27 . (canceled)
28 . (canceled)
29 . An evaporative emission control system comprising:
a fuel tank for fuel storage;
an engine adapted to receive and consume fuel from the fuel tank; and
an evaporative emission control canister system fluidly coupled to the engine, the evaporative emission control canister system comprising:
at least one bleed emission scrubber fluidly coupled to an evaporative emission control canister, wherein the at least one bleed emission scrubber comprises an adsorbent volume, the adsorbent volume comprising at least one hydrocarbon adsorbent structure of any of claim 1 .
30 . (canceled)
31 . An evaporative emission control system comprising:
a fuel tank for fuel storage;
an engine adapted to receive and consume fuel from the fuel tank; and
an evaporative emission control canister system fluidly coupled to the engine, the evaporative emission control canister system comprising:
at least one bleed emission scrubber fluidly coupled to an evaporative emission control canister, wherein the bleed emission scrubber comprises an adsorbent volume, the adsorbent volume comprising at least one hydrocarbon adsorbent structure comprising a zeolite having a silica-to-alumina ratio of at least 20, wherein the repeatable TGA butane adsorption of the zeolite is greater than 2 wt. %.
32 . (canceled)
33 . A zeolite comprising micropores that account for at least about 90% of a total pore volume of the zeolite, wherein:
the micropores have pore widths of less than 20 Å,
the zeolite is hydrogen (H + ) or ammonium (NH 4 + ) ion exchanged, and
the zeolite has a silica-to-alumina ratio of the zeolite is greater than about 100.
34 . The zeolite of claim 33 , wherein the zeolite is in a form of zeolite particles characterized by an average d90 particle size from about 5 micrometers to about 50 micrometers, and wherein the zeolite comprises a zeolite selected from a group consisting of: AEI, BEA, BEC, CHA, EMT, FAU, FER, MFI, and combinations thereof.
35 - 39 . (canceled)