Particulate Filter
Disclosed herein is a particulate filter for use in an emission treatment system of an internal combustion engine. The particulate filter provides high fresh filtration efficiency and has minimal to no impact on backpressures.
1 . A particulate filter for exhaust gas treatment from an internal combustion engine comprising:
(1) a filter having an inlet side and an outlet side; and
(2) a functional material layer coated onto the inlet side, the outlet side, or both sides of the filter;
wherein the functional material layer comprises calcium aluminate.
2 . The particulate filter according to claim 1 , wherein the calcium aluminate has a specific surface area of no more than 10 m 2 /g, in a fresh state.
3 . The particulate filter according to claim 1 , wherein the calcium aluminate has a specific surface area of no more than 10 m 2 /g, after 4 hr calcination in air at 1000° C.
4 . The particulate filter according to claim 1 , wherein the calcium aluminate has a D 90 of 6 to 400 μm.
5 . The particulate filter according to claim 1 , wherein the calcium aluminate has a bulk density of 0.2 to 3.0 g/cm 3 .
6 . The particulate filter according to claim 1 , wherein the mass ratio of aluminum oxide to calcium oxide is 1.1 to 9.
7 . The particulate filter according to claim 1 , wherein the calcium aluminate comprises no more than 20% wt of an inorganic impurity, calculated as its oxide.
8 . The particulate filter according to claim 7 , wherein the inorganic impurity comprises at least one component selected from the group consisting of silicon, titanium, magnesium, iron, copper, zirconium, cerium, and barium.
9 . The particulate filter according to claim 1 , wherein the functional material layer is coated in a particulate form.
10 . The particulate filter according to claim 1 , wherein the loading of the functional material layer is between 0.1 and 100 g/L.
11 . The particulate filter according to claim 1 , wherein the filter further comprises a porous body comprising a plurality of pores, and a catalytic washcoat within at least a portion of the plurality of pores;
wherein the catalytic washcoat comprises one or more components selected from the group consisting of a selective catalytic reduction (SCR) catalyst, a diesel oxidation catalyst (DOC), a three-way conversion (TWC) catalyst, an AMOx catalyst, a NOx trap, a NOx absorber catalyst, and a hydrocarbon trap catalyst; and
wherein the catalytic washcoats are applied to the particulate filter prior to application of the functional material layer.
12 . A system for exhaust gas treatment from an internal combustion engine comprising: the particulate filter according to claim 1 , and one or more components selected from the group consisting of a selective catalytic reduction (SCR) catalyst, a three way conversion (TWC) catalyst, a diesel oxidation catalyst (DOC), an ammonia oxidation (AMOx) catalyst, a NOx trap, a NOx absorber catalyst, and a hydrocarbon trap catalyst.
13 . A method for the treatment of exhaust gas from an internal combustion engine comprising:
(1) providing the particulate filter according to claim 1 , and
(2) conducting the exhaust gas from the engine through the particulate filter.
14 . The method according to claim 13 , wherein the exhaust gas comprises unburnt hydrocarbons, carbon monoxide, nitrogen oxides, and particulate matter.
15 . The particulate filter according to claim 1 , wherein the calcium aluminate has a D 90 of 10 to 200 μm.
16 . The particulate filter according to claim 1 , wherein the calcium aluminate has a bulk density of 0.3 to 1.8 g/cm 3 .
17 . The particulate filter according to claim 1 , wherein the mass ratio of aluminum oxide to calcium oxide is 1.5 to 5 in the calcium aluminate.
18 . The particulate filter according to claim 1 , wherein the calcium aluminate comprises no more than 15% wt of an inorganic impurity, calculated as its oxide.
19 . The particulate filter according to claim 1 , wherein the functional material layer is coated in a particulate form via gas phase carrier.
20 . The particulate filter according to any claim 1 , wherein the loading of the functional material layer is between 1 and 75 g/L.