Honeycomb adsorbent, method of manufacturing the honeycomb adsorbent and canister
RE049587 · 2023-07-25
Assignee
Inventors
Cpc classification
B01J20/2803
PERFORMING OPERATIONS; TRANSPORTING
F02M25/0854
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B28B11/243
PERFORMING OPERATIONS; TRANSPORTING
B01J20/28011
PERFORMING OPERATIONS; TRANSPORTING
B01J20/20
PERFORMING OPERATIONS; TRANSPORTING
B01J20/28045
PERFORMING OPERATIONS; TRANSPORTING
B01J20/28085
PERFORMING OPERATIONS; TRANSPORTING
B01D53/0407
PERFORMING OPERATIONS; TRANSPORTING
F02M25/089
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D2259/4516
PERFORMING OPERATIONS; TRANSPORTING
B28B3/20
PERFORMING OPERATIONS; TRANSPORTING
B01J20/06
PERFORMING OPERATIONS; TRANSPORTING
B01D2253/25
PERFORMING OPERATIONS; TRANSPORTING
F02M35/10222
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
B01J20/28
PERFORMING OPERATIONS; TRANSPORTING
B01J20/06
PERFORMING OPERATIONS; TRANSPORTING
B01J20/20
PERFORMING OPERATIONS; TRANSPORTING
B28B3/20
PERFORMING OPERATIONS; TRANSPORTING
B28B11/24
PERFORMING OPERATIONS; TRANSPORTING
F02M25/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cylindrical column-shaped honeycomb adsorbent has a plurality of cell passages extending along an axial direction of the honeycomb adsorbent. The plurality of cell passages are configured so that a pitch of adjacent cell passages is within a range of 1.5 mm˜1.8 mm, and so that a thickness of a wall between the cell passages is within a range of 0.45 mm˜0.60 mm. With this configuration, the honeycomb adsorbent exhibits BWC (Butane Working Capacity) of 6.5 g/dL or greater. By mixing fibrous meltable core melting away during baking, the honeycomb adsorbent has macropores configured to have a volume of 0.15 mL/g˜0.35 mL/g with respect to an overall weight of the honeycomb adsorbent and metal oxide particles having a proportion of weight of 150˜250% with respect to the activated carbon.
Claims
1. A honeycomb adsorbent having a cylindrical column shape, the honeycomb adsorbent formed by molding and baking powdery activated carbon together with binder and installed in a closest chamber to a drain port of a canister having a plurality of chambers, the honeycomb adsorbent comprising: a plurality of cell passages extending along an axial direction of the honeycomb adsorbent; macropores formed with fibrous meltable core melting away during the baking, the macropores being configured to have a volume of 0.15 mL/g˜0.35 mL/g with respect to an overall weight of the honeycomb adsorbent; and metal oxide particles having .[.a.]. .Iadd.an optimized .Iaddend.proportion of weight .[.of 150˜250%.]. with respect to the activated carbon, and the plurality of cell passages being configured so that a pitch of adjacent cell passages is within a range of 1.5 mm˜1.8 mm, and so that a thickness of a wall between the cell passages is within a range of 0.45 mm˜0.60 mm, and the honeycomb adsorbent being configured to exhibit BWC (Butane Working Capacity) of 6.5 g/dL or greater.
2. The honeycomb adsorbent as claimed in claim 1, wherein: an occupation ratio that is determined by outside dimensions of the honeycomb adsorbent and dimensions of the cell passages is at least 50%.
3. The honeycomb adsorbent as claimed in claim 1, wherein: a shape in a cross-section of the cell passage is any one of a hexagon, a quadrangle, a triangle and a circle.
4. The honeycomb adsorbent as claimed in claim 3, wherein: the shape in the cross-section of the cell passage is the hexagon.
5. The honeycomb adsorbent as claimed in claim 1, wherein: the metal oxide particles are iron oxide particles.
6. A canister having the honeycomb adsorbent as claimed in claim 1.
7. The canister as claimed in claim 6, further comprising: at least an additional adsorbent.
8. A method of manufacturing a honeycomb adsorbent for a canister, comprising: making mixture as mold material by adding, to powdery activated carbon, metal oxide particles having .[.a.]. .Iadd.an optimized .Iaddend.proportion of weight .[.of 150˜250%.]. with respect to the activated carbon, meltable core made of fiber whose specific gravity is 1.1 g/cm.sup.3˜1.3 g/cm.sup.3 and having a proportion of weight of 40˜100% with respect to the activated carbon, the meltable core melting away during baking, and binder; extruding the mold material into a cylindrical column-shaped intermediate mold body having therein a plurality of honeycomb cell passages, the plurality of cell passages being configured so that a pitch of adjacent cell passages is within a range of 1.5 mm˜1.8 mm and so that a thickness of a wall between the cell passages is within a range of 0.45 mm˜0.60 mm after the baking; and baking the intermediate mold body, the baked intermediate mold body of the honeycomb adsorbent exhibiting BWC (Butane Working Capacity) of 6.5 g/dL or greater.
9. The method of manufacturing the honeycomb adsorbent for the canister as claimed in claim 8, wherein: the fiber forming the meltable core is polyamide resin fiber or polyester resin fiber.
10. The method of manufacturing the honeycomb adsorbent for the canister as claimed in claim 8, wherein: the fiber forming the meltable core has a diameter of 10 μm and a length of 0.5 mm.
.Iadd.11. The honeycomb adsorbent as claimed in claim 1, wherein the macropores are a pore whose diameter is equal to or greater than 50 nm and less than 1000 nm..Iaddend.
.Iadd.12. The honeycomb adsorbent as claimed in claim 1, wherein the optimized proportion of weight is ˜0 to ˜423% of the metal oxide particles with respect to the activated carbon..Iaddend.
.Iadd.13. The method of manufacturing the honeycomb adsorbent for the canister in claim 8, wherein the optimized proportion of weight is ˜0 to ˜423% of the metal oxide particles with respect to the activated carbon..Iaddend.
.Iadd.14. The method of manufacturing the honeycomb adsorbent for the canister in claim 8, further comprising optimizing an amount of the meltable core with respect to a bleed emission..Iaddend.
.Iadd.15. The method of manufacturing the honeycomb adsorbent for the canister in claim 14, wherein the bleed emission is 20 mg or less..Iaddend.
.Iadd.16. A honeycomb adsorbent for a canister, the honeycomb adsorbent comprising: a plurality of cell passages extending along an axial direction of the honeycomb adsorbent; macropores formed with fibrous meltable core melting away during baking, the macropores being configured to have an optimized volume with respect to an overall weight of the honeycomb adsorbent; and metal oxide particles having a proportion of weight with respect to the activated carbon to increase the specific heat of the adsorbent; the honeycomb adsorbent being configured to exhibit BWC (Butane Working Capacity) of 6.5 g/dL or greater with a flow resistance of 10 Pa/cm or lower..Iaddend.
.Iadd.17. The honeycomb adsorbent as claimed in claim 16, wherein the plurality of cell passages is configured so that a pitch of adjacent cell passages is within a range of 1.5 mm to 1.8 mm, and so that a thickness of a wall between the cell passages is within a range of 0.45 mm to 0.6 mm..Iaddend.
.Iadd.18. The honeycomb adsorbent as claimed in claim 16, wherein a shape in a cross-section of the plurality of cell passages is a hexagon..Iaddend.
.Iadd.19. The honeycomb adsorbent as claimed in claim 16, wherein a bleed emission of the canister is 20 mg or less..Iaddend.
.Iadd.20. The honeycomb adsorbent as claimed in claim 16, including a composition amount of nylon fiber between about ˜0 g per 100 g of activated carbon to about ˜170 g per 100 g of activated carbon..Iaddend.
.Iadd.21. A honeycomb adsorbent for a canister, the honeycomb adsorbent comprising: a plurality of cell passages extending along an axial direction of the honeycomb adsorbent; macropores formed with fibrous meltable core melting away during baking, the macropores being configured to have an optimized volume with respect to an overall weight of the honeycomb adsorbent; and metal oxide particles having a proportion of weight with respect to the activated carbon to increase the specific heat of the adsorbent; the honeycomb adsorbent being configured to exhibit BWC (Butane Working Capacity) of 6.5 g/dL or greater per testing by ASTM D5228; wherein the fuel canister has a Diurnal Breathing Loss (DBL) bleed emission of 20 mg or less..Iaddend.
.Iadd.22. The honeycomb adsorbent as claimed in claim 21, wherein the plurality of cell passages is configured so that a pitch of adjacent cell passages is within a range of 1.5 mm to 1.8 mm, and so that a thickness of a wall between the cell passages is within a range of 0.45 mm to 0.6 mm..Iaddend.
.Iadd.23. The honeycomb adsorbent as claimed in claim 21, wherein a shape in a cross-section of the plurality of cell passages is a hexagon..Iaddend.
.Iadd.24. The honeycomb adsorbent as claimed in claim 21, wherein a flow resistance of the honeycomb absorbent is 10 Pa/cm or lower..Iaddend.
.Iadd.25. The honeycomb adsorbent as claimed in claim 21, wherein a composition amount of nylon fiber is between about ˜0 g per 100 g of activated carbon to about ˜170 g per 100 g of activated carbon..Iaddend.
.Iadd.26. A honeycomb adsorbent formed from activated carbon, comprising: a plurality of cell passages extending along an axial direction of the honeycomb adsorbent having a pitch of adjacent cell passages in a range of 1.5 mm to 1.8 mm, and a thickness of a wall between the cell passages in a range of 0.45 mm to 0.60 mm; macropores having a volume of about 0.15 mL/g to about 0.35 mL/g with respect to an overall weight of the honeycomb adsorbent measured by ISO 15901-1; metal oxide particles having an optimized proportion of weight with respect to the activated carbon; and wherein the fuel canister has a Diurnal Breathing Loss (DBL) bleed emission of 20 mg or less..Iaddend.
.Iadd.27. The honeycomb adsorbent as claimed in claim 26, wherein a composition amount of nylon fiber is between about ˜0 g per 100 g of activated carbon to about ˜170 g per 100 g of activated carbon. .Iaddend.
.Iadd.28. The honeycomb adsorbent as claimed in claim 26, wherein the optimized proportion of weight is ˜0 to ˜423% of the metal oxide particles with respect to the activated carbon..Iaddend.
.Iadd.29. The honeycomb adsorbent as claimed in claim 26, wherein the macropores are a pore whose diameter is equal to or greater than 50 nm and less than 1000 nm..Iaddend.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(10)
(11) In the casing 2, a plurality of adsorbent chambers are provided along the flow direction. For instance, a first chamber 6, a second chamber 7 and a third chamber 8 are arranged in series. The first chamber 6 and the second chamber 7 are filled with granular adsorbent 9 made of granular molded activated carbon or crushed or pulverized activated carbon. The granular adsorbent 9 in the first chamber 6 and the granular adsorbent 9 in the second chamber 7 could be the same adsorbent or may be a different adsorbent. As an example, the granular adsorbent 9 in the first chamber 6 has micropores (microscopic pores) and mesopores (mesoscopic pores) which the activated carbon itself has, but does not actively have macropores (macroscopic pores) formed by meltable core. On the other hand, the granular adsorbent 9 in the second chamber 7 has the macropores formed by the meltable core.
(12) The honeycomb adsorbent 11 of the present invention is molded into a cylindrical column shape, and installed in the third chamber 8 that is a closest chamber to the drain port 5. The first chamber 6, the second chamber 7 and the third chamber 8 are each divided by, for instance, a porous plate or a filter which is permeable to the air. Here, a plurality of third chambers 8 could be arranged parallel to each other, and each third chamber 8 could be provided with the honeycomb adsorbent 11.
(13)
(14) The honeycomb adsorbent 11 and a method of manufacturing the honeycomb adsorbent 11 will be explained below.
(15) First, powdery activated carbon of 300 g, preferably powdery activated carbon whose grain diameter (grain size) is 100 μm or less of 300 g and as meltable core that forms macropores, synthetic resin short fiber (preferably polyamide resin fiber or polyester resin fiber) whose fiber diameter is 10 μm and whose fiber length is 1 mm or less of 120 g to 300 g are mixed together with these powdery activated carbon and short resin fiber being dried.
(16) By mixing the powdery activated carbon and the short resin fiber in the dried state, dispersibility of each of the powdery activated carbon and the short resin fiber is increased.
(17) Subsequently, as binder, at least one of powdery bentonite, knot clay, silica sol and alumina sal of 120 g to 200 g, as shape-retaining agent upon molding, a proper amount of methyl cellulose, and powdery metallic oxide (powdery metal oxide or metal oxide particles) (preferably, for instance, iron oxide or magnesium oxide) (whose grain diameter (grain size or particle diameter) is substantially 10 μm) of 450 g to 750 g are added to the mixture of the powdery activated carbon and the short resin fiber, and are further mixed together.
(18) Water is added to this mixture as necessary, and mold material (material to be molded) for extrusion molding is prepared. The mold material is extruded (extrusion-molded) into a cylindrical column whose circular cross section has a diameter of approx. 20 mm to 40 mm and which has therein the plurality of regular-hexagonal cell passages 12, by performing the extrusion molding. Further, by cutting this extrusion-molded material to an arbitrary length such as 50 mm to 200 mm, a cylindrical column-shaped intermediate mold body is obtained.
(19) Finally, the cylindrical column-shaped intermediate mold body is baked at 650° C.˜1000° C. under a deoxygenation atmosphere using a belt-type electric furnace, then the honeycomb adsorbent 11 is obtained. A shape of cross section of the extrusion-molded material upon extrusion molding (in other words, a shape of a mold) is set so that after the baking, the pitch P of the adjacent cell passages 12 is within a range of 1.5 mm˜1.8 mm and the thickness T of the wall 13 between the cell passages 12 is within a range of 0.45 mm˜0.60 mm.
(20) The honeycomb adsorbent 11 of the present invention formed in this manner has a relatively large wall thickness T and a relatively small pitch P, as compared with a well-known honeycomb adsorbent that is disposed in a position closest to the drain port in the canister with the aim of reducing the bleed emission. Further, as a structural feature, an occupation ratio that is a ratio at which adsorbent material occupies the honeycomb adsorbent 11 having a honeycomb structure is relatively high. This occupation ratio is, for instance, 50% or more. With this structural feature, the following three elements; reduction in the bleed emission, ensuring of the sufficient BWC and the lower flow resistance, can be satisfied at the same time.
(21) Next, specific embodiments of the honeycomb adsorbent 11 will be explained below.
Embodiment 1
(22) Compositions of the mold material are as follows; 100 parts by weight of powdery activated carbon (grain diameter (grain size) is 100 μm or less), 40 parts by weight of nylon fiber (fiber diameter is 10 μm, fiber length is 0.5 mm), 67 parts by weight of binder (bentonite) and 250 parts by weight of powdery iron oxide. This mold material was extruded (extrusion-molded) into the cylindrical column having therein the honeycomb structure shown in
(23) The honeycomb adsorbent 11 obtained after the baking is a cylindrical column having a 30 mm diameter and a 75 mm length. Further, the pitch P of the adjacent cell passages 12 is 1.7 mm and the thickness T of the wall 13 is 0.55 mm. Weight ratio of the metallic oxide (the iron oxide) after the baking is 60 wt %. An amount of the macropores (a volume of the macropores that occupies a unit weight of the honeycomb adsorbent 11) formed by the meltable core (the nylon fiber) disappearing (or melting away) during the baking is 0.18 mL/g. The volume of the macropores can be measured by, for instance, a method of mercury penetration provided by “ISO 15901-1”.
(24) The occupation ratio that is the ratio at which adsorbent material occupies the honeycomb adsorbent 11 having the honeycomb structure is geometrically determined from outside dimensions of the honeycomb adsorbent 11, a size of the cell passage 12 and the number of the cell passages 12. This occupation ratio is 54% in the embodiment 1.
(25) The BWC and the flow resistance of the honeycomb adsorbent 11 obtained in this manner was measured.
(26) Measurement of the BWC was carried out pursuant to ASTM D5228. A measurement result of the BWC is 7.3 g/dL.
(27) Regarding the flow resistance, a pressure difference between front and rear (top and bottom) of the honeycomb adsorbent 11 (not assembled in the canister) is measured by flowing gas, then by dividing this pressure difference by a length of the honeycomb adsorbent 11, flow resistance [Pa/cm] per unit length is determined. Further, by dividing a flow amount at the measurement by a cross-sectional area of the honeycomb adsorbent 11, a line flow velocity (a line air velocity) [cm/s] is determined, then a flow resistance per unit length at 100 cm/s is determined. The result is 8.2 Pa/cm. A target flow resistance of the present invention is 10 Pa/cm in order to secure a flow of gas during the charge and the purge in the canister 1.
(28) Further, a test similar to a DBL test was carried out with the honeycomb adsorbent 11 of the embodiment 1 installed in a test canister 1 as shown in
(29) As a method of test, after a predetermined amount of the fuel component evaporated from the charge port 3 flows in the canister 1, the purge is performed by a purging air of a predetermined air amount and a predetermined air velocity. This adsorbing and desorbing cycle are repeated several times to stabilize an adsorption/desorption amount. Next, butane is introduced in the canister 1 through the charge port 3, and is adsorbed to the adsorbent. Then, the canister 1 is left as it is until a temperature of the adsorbent becomes constant. After the temperature of the adsorbent becomes constant, the purge is performed, and the canister 1 is further left as it is half-day. Subsequently, the canister 1 is connected to a fuel tank of a vehicle, and the bleed emission is measured with temperature changed while simulating an outside air temperature. The amount of the bleed emission is an amount obtained by detecting a concentration of hydrocarbon contained in the gas exhausted or emitted from the drain port 5 and converting this concentration of the hydrocarbon into a weight.
(30) A target bleed emission amount of the present invention is 20 mg in accordance with a new regulation enacted in North America which specifies a legal limit of a canister in itself.
(31) As explained above, the honeycomb adsorbent 11 of the present invention can reduce the bleed emission to 20 mg or less that is the target of the present invention, and at the same time, the honeycomb adsorbent 11 can reduce the flow resistance to 10 Pa/cm or less that is the target of the present invention. Further, as mentioned above, since the BWC is 7.3 g/dL, a relatively high BWC value can be ensured. Moreover, as described above, the occupation ratio is relatively high and its value is 54%. Therefore, adsorbing capacity per apparent unit volume with reference to the outside dimensions of the honeycomb adsorbent 11 can be high, thereby effectively suppressing the leak of the fuel component from the drain port 5 by the small-sized honeycomb adsorbent 11.
Embodiment 2
(32) In an embodiment 2, as compared with the embodiment 1, a composition ratio (or a mixing ratio) of the nylon fiber that becomes the meltable core, a composition ratio of the iron oxide, the pitch P of the cell passage 12 and the thickness T of the wall 13 are changed. The other dimensions and ratios are the same as those of the embodiment 1.
(33) Compositions of the mold material are as follows; 100 parts by weight of powdery activated carbon, 43 parts by weight of nylon fiber, 67 parts by weight of binder and 233 parts by weight of powdery iron oxide.
(34) The pitch P of the cell passage 12 after the baking is 1.8 mm and the thickness T of the wall 13 after the baking is 0.6 mm. Further, the weight ratio of the iron oxide after the baking is 58 wt %. The amount of the macropores is 0.15 mL/g, and the occupation ratio is 56%.
(35) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 7.8 g/dL, the flow resistance is 7.5 Pa/cm, and the amount of the bleed emission is 15 mg.
Embodiment 3
(36) In an embodiment 3, as compared with the embodiment 1, a composition ratio of the nylon fiber that becomes the meltable core is doubled, and a composition ratio of the iron oxide is changed. The other dimensions and ratios are the same as those of the embodiment 1.
(37) Compositions of the mold material are as follows; 100 parts by weight of powdery activated carbon, 85 parts by weight of nylon fiber, 67 parts by weight of binder and 233 parts by weight of powdery iron oxide.
(38) The pitch P of the cell passage 12 after the baking is 1.7 mm and the thickness T of the wall 13 after the baking is 0.55 mm. Further, the weight ratio of the iron oxide after the baking is 58 wt %. The amount of the macropores is 0.35 mL/g, and the occupation ratio is 54%.
(39) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 6.6 g/dL, the flow resistance is 8.0 Pa/cm, and the amount of the bleed emission is 15 mg.
Embodiment 4
(40) In an embodiment 4, as compared with the embodiment 1, a composition ratio of the iron oxide is reduced, a composition ratio of the binder, the pitch P of the cell passage 12 and the thickness T of the wall 13 are changed. The other dimensions and ratios are the same as those of the embodiment 1.
(41) Compositions of the mold material are as follows; 100 parts by weight of powdery activated carbon, 40 parts by weight of nylon fiber, 40 parts by weight of binder and 150 parts by weight of powdery iron oxide.
(42) The pitch P of the cell passage 12 after the baking is 1.5 mm and the thickness T of the wall 13 after the baking is 0.45 mm. Further, the weight ratio of the iron oxide after the baking is 50 wt %. The amount of the macropores is 0.20 mL/g, and the occupation ratio is 50%.
(43) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 7.6 g/dL, the flow resistance is 8.3 Pa/cm, and the amount of the bleed emission is 13 mg.
Embodiment 5
(44) In an embodiment 5, as compared with the embodiment 1, as the fiber that becomes the meltable core, polyester resin fiber is used. Further, a composition ratio of the iron oxide is changed. The other dimensions and ratios are the same as those of the embodiment 1.
(45) Compositions of the mold material are as follows; 100 parts by weight of powdery activated carbon, 45 parts by weight of polyester resin fiber, 67 parts by weight of binder and 233 parts by weight of powdery iron oxide. Here, specific gravity of the polyester resin fiber that becomes the meltable core is 1.3 g/cm.sup.3.
(46) The pitch P of the cell passage 12 after the baking is 1.7 mm and the thickness T of the wall 13 after the baking is 0.55 mm. Further, the weight ratio of the iron oxide after the baking is 58 wt %. The amount of the macropores is 0.21 mL/g, and the occupation ratio is 54%.
(47) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 7.1 g/dL, the flow resistance is 8.2 Pa/cm, and the amount of the bleed emission is 14 mg.
(48) As comparative examples, several honeycomb adsorbents 11 were produced, and the same test (measurement) was performed.
Comparative Example 6
(49) Compositions of the mold material of a comparative example 6 are as follows; 100 parts by weight of powdery activated carbon, 86 parts by weight of nylon fiber, 134 parts by weight of binder and 466 parts by weight of powdery iron oxide.
(50) The pitch P of the cell passage 12 after the baking is 1.6 mm and the thickness T of the wall 13 after the baking is 0.52 mm. Further, the weight ratio of the iron oxide after the baking is 67 wt %. The amount of the macropores is 0.28 mL/g, and the occupation ratio is 54%.
(51) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 5.2 g/dL, the flow resistance is 8.4 Pa/cm, and the amount of the bleed emission is 47 mg. Therefore, the BWC and the bleed emission amount do not meet the respective target values.
Comparative Example 7
(52) Compositions of the mold material of a comparative example 7 are as follows; 100 parts by weight of powdery activated carbon, 22 parts by weight of nylon fiber and 75 parts by weight of binder. The metallic oxide is not added.
(53) The pitch P of the cell passage 12 after the baking is 1.5 mm and the thickness T of the wall 13 after the baking is 0.70 mm. The amount of the macropores is 0.41 mL/g, and the occupation ratio is 72%.
(54) The same measurement of the honeycomb adsorbent 11. as that of the embodiment 1 was carried out. The BWC is 8.2 g/dL, the flow resistance is 35.5 Pa/cm, and the amount of the bleed emission is 30 mg. Therefore, the flow resistance and the bleed emission amount do not meet the respective target values.
Comparative Example 8
(55) Compositions of the mold material of a comparative example 8 are as follows; 100 parts by weight of powdery activated carbon, 22 parts by weight of nylon fiber, 35 parts by weight of binder and 40 parts by weight of powdery iron oxide.
(56) The pitch P of the cell passage 12 after the baking is 1.5 mm and the thickness T of the wall 13 after the baking is 0.70 mm. Further, the weight ratio of the iron oxide after the baking is 23 wt %. The amount of the macropores is 0.40 mL/g, and the occupation ratio is 72%.
(57) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 7.8 g/dL, the flow resistance is 35.5 Pa/cm, and the amount of the bleed emission is 25 mg. Therefore, the flow resistance and the bleed emission amount do not meet the respective target values.
Comparative Example 9
(58) Compositions of the mold material of a comparative example 9 are as follows; 100 parts by weight of powdery activated carbon, 40 parts by weight of nylon fiber, 63 parts by weight of binder and 423 parts by weight of powdery iron oxide.
(59) The pitch P of the cell passage 12 after the baking is 1.5 mm and the thickness T of the wall 13 after the baking is 0.70 mm. Further, the weight ratio of the iron oxide after the baking is 72 wt %. The amount of the macropores is 0.10 mL/g, and the occupation ratio is 72%.
(60) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 6.5 g/dL, the flow resistance is 35.5 Pa/cm, and the amount of the bleed emission is 20 mg. Therefore, the flow resistance does not meet the target value.
Comparative Example 10
(61) Compositions of the mold material of a comparative example 10 are as follows; 100 parts by weight of powdery activated carbon, 120 parts by weight of binder and 240 parts by weight of powdery iron oxide. The nylon fiber that becomes the meltable core is not added.
(62) The pitch P of the cell passage 12 after the baking is 1.5 mm and the thickness T of the wall 13 after the baking is 0.70 mm. Further, the weight ratio of the iron oxide after the baking is 52 wt %. The amount of the macropores is 0.08 mL/g, and the occupation ratio is 72%.
(63) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 7.8 g/dL, the flow resistance is 35.5 Pa/cm, and the amount of the bleed emission is 40 mg. Therefore, the flow resistance and the bleed emission amount do not meet the respective target values.
Comparative Example 11
(64) Compositions of the mold material of a comparative example 11 are as follows; 100 parts by weight of powdery activated carbon, 170 parts by weight of nylon fiber, 67 parts by weight of binder and 233 parts by weight of powdery iron oxide.
(65) The pitch P of the cell passage 12 after the baking is 1.7 mm and the thickness T of the wall 13 after the baking is 0.55 mm. Further, the weight ratio of the iron oxide after the baking is 58 wt %. The amount of the macropores is 0.58 mL/g, and the occupation ratio is 54%.
(66) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 6.3 g/dL, the flow resistance is 8.6 Pa/cm, and the amount of the bleed emission is 45 mg. Therefore, the BWC and the bleed emission amount do not meet the respective target values.
Comparative Example 12
(67) Compositions of the mold material of a comparative example 12 are as follows; 100 parts by weight of powdery activated carbon, 43 parts by weight of nylon fiber, 67 parts by weight of binder and 233 parts by weight of powdery iron oxide.
(68) The pitch P of the cell passage 12 after the baking is 1.8 mm and the thickness T of the wall 13 after the baking is 0.44 mm. Further, the weight ratio of the iron oxide after the baking is 58 wt %. The amount of the macropores is 0.18 mL/g, and the occupation ratio is 43%.
(69) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 5.3 g/dL, the flow resistance is 5.4 Pa/cm, and the amount of the bleed emission is 16 mg. Therefore, the BWC does not meet the target value.
Comparative Example 13
(70) Compositions of the mold material of a comparative example 13 are as follows; 100 parts by weight of powdery activated carbon and 400 parts by weight of binder. The nylon fiber and the metallic oxide are not added.
(71) The pitch P of the cell passage 12 after the baking is 1.6 mm and the thickness T of the wall 13 after the baking is 0.27 mm. The amount of the micropores is 0.05 mL/g, and the occupation ratio is 31%.
(72) The same measurement of the honeycomb adsorbent 11 as that of the embodiment 1 was carried out. The BWC is 4.7 g/dL, the flow resistance is 5.3 Pa/cm, and the amount of the bleed emission is 14 mg. Therefore, the BWC does not meet the target value.
(73) A measurement result of the embodiment 1 to 5 and the comparative examples 6 to 13 are shown in Table 1.
(74) Next,
(75) Likewise,
(76) Likewise,
(77) As shown in
(78) With regard to the bleed emission, if the wall thickness T is thinner, since an adsorption residual amount decreases, the adsorbent has the advantage of reducing the bleed emission.
(79) However, as shown in
(80)
(81)
(82)
(83) Hence, by adjusting the amount of the macropores and the amount of the metallic oxide to within respective certain ranges and further by properly setting the relationship between the pitch P of the cell passage 12 and the thickness T of the wall 13, the three elements; reduction in the bleed emission, ensuring of the sufficient BWC and the lower flow resistance, can be satisfied at the same time.
(84) The entire contents of Japanese Patent Application No. 2016-251646 filed on Dec. 26, 2016 are incorporated herein by reference.
(85) Although the invention has been described above by reference to certain embodiments of the invention, the invention is not limited to the embodiments described above. Modifications and variations of the embodiments described above will occur to those skilled in the art in light of the above teachings. The scope of the invention is defined with reference to the following claims.
(86) TABLE-US-00001 TABLE 1 COMPOSITION RATIO OF SAMPLE BINDER MELTABLE CORE (CLAY) METALLIC OXIDE ACTI- COMPO- COMPO- COMPO- WEIGHT HONEYCOMB VATED SITION SITION SITION RATIO cell CARBON RATIO RATIO RATIO AFTER cell wall parts by parts by parts by parts by BAKING pitch thickness SAMPLE weight MATERIAL weight weight weight (wt %) (mm) (mm) EMBODI- 1 100 NYLON FIBER 40 67 250 60 1.7 0.55 MENTS 2 100 NYLON FIBER 43 67 233 58 1.8 0.60 3 100 NYLON FIBER 85 67 233 58 1.7 0.55 4 100 NYLON FIBER 40 40 150 50 1.5 0.45 5 100 POLYESTER 45 67 233 58 1.7 0.55 FIBER COMPA- 6 100 NYLON FIBER 86 134 466 67 1.6 0.52 RATIVE 7 100 NYLON FIBER 22 75 0 0 1.5 0.70 EXAMPLES 8 100 NYLON FIBER 22 35 40 23 1.5 0.70 9 100 NYLON FIBER 40 63 423 72 1.5 0.70 10 100 NYLON FIBER 0 120 240 52 1.5 0.70 11 100 NYLON FIBER 170 67 233 58 1.7 0.55 12 100 NYLON FIBER 43 67 233 58 1.8 0.44 13 100 NYLON FIBER 0 400 0 0 1.6 0.27 AMOUNT OF MACRO- PORES ADSORPTION FLOW 50-1000 CAPACITY OCCU- RESISTANCE BLEED nm BWC PATION at 100 cm/s EMISSION SAMPLE (mL/g) (g/dL) RATIO (Pa/cm) (mg) EMBODI- 1 0.18 7.3 54% 8.2 14 MENTS 2 0.15 7.8 56% 7.5 15 3 0.35 6.6 54% 8.0 15 4 0.20 7.6 50% 8.3 13 5 0.21 7.1 54% 8.2 14 COMPA- 6 0.28 5.2 54% 8.4 47 RATIVE 7 0.41 8.2 72% 35.5 30 EXAMPLES 8 0.40 7.8 72% 35.5 25 9 0.10 6.5 72% 35.5 20 10 0.08 7.8 72% 35.5 40 11 0.58 6.3 54% 8.6 45 12 0.18 5.3 43% 5.4 16 13 0.05 4.7 31% 5.3 14