An exhaust purifying device provided in an exhaust passage of an internal combustion engine comprises: a column-shaped honeycomb carrier; a cylindrical case member adapted to house the honeycomb carrier; a holding member provided between the honeycomb carrier and the case member to surround the outer circumference of the honeycomb carrier; buffer members provided on a peripheral edge of the edge surface of at least one side of an inflow side edge surface and an outflow side edge surface of the honeycomb carrier so as to regulate the movement of the honeycomb carrier in the central axis X direction; and setting members secured to the case member to regulate the movement of the buffer members by allowing their position regulation parts to contact the buffer members; wherein the buffer members are provided, on the outer circumferential sides, with recesses into which the position regulation parts of the setting members are fitted.
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1. An exhaust purifying device for an internal combustion engine provided in an exhaust passage of the internal combustion engine to purify exhaust of the internal combustion engine comprising:
a column-shaped honeycomb carrier comprising a plurality of cells extending from an exhaust inflow side end surface of the honeycomb carrier to an exhaust outflow side end surface of the honeycomb carrier and each being a flow passage of the exhaust, the plurality of cells being defined by porous partitions;
a cylindrical case member configured to house the honeycomb carrier;
a holding member provided between the honeycomb carrier and the case member to surround an outer circumference of the honeycomb carrier;
a buffer member provided on a peripheral edge of at least one of the inflow side end surface and the outflow side end surface of the honeycomb carrier so as to regulate movement of the honeycomb carrier along a central axis direction of the honeycomb carrier; and
a setting member secured to the case member and including a position regulation member configured to contact the buffer member to regulate movement of the buffer member;
wherein the buffer member includes a recess into which the position regulation member of the setting member is fitted.
2. The exhaust purifying device for an internal combustion engine according to
3. The exhaust purifying device for an internal combustion engine according to
4. The exhaust purifying device for an internal combustion engine according to
5. The exhaust purifying device for an internal combustion engine according to
6. The exhaust purifying device for an internal combustion engine according to
7. The exhaust purifying device for an internal combustion engine according to
8. The exhaust purifying device for an internal combustion engine according to
9. The exhaust purifying device for an internal combustion engine according to
10. The exhaust purifying device for an internal combustion engine according to
11. The exhaust purifying device for an internal combustion engine according to
12. The exhaust purifying device for an internal combustion engine according to
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The present application claims priority under 35 U.S.C. § 119 to Japanese Patent Application No. 2017-204572, filed Oct. 23, 2017, entitled “EXHAUST PURIFYING DEVICE FOR INTERNAL COMBUSTION ENGINE” and Japanese Patent Application No. 2018-018394, filed Feb. 5, 2018, entitled “EXHAUST PURIFYING DEVICE FOR INTERNAL COMBUSTION ENGINE” The contents of these applications are incorporated herein by reference in their entirety.
The present disclosure relates to an exhaust purifying device for an internal combustion engine.
Conventionally, an exhaust purifying device provided in an exhaust passage of an internal combustion engine is constituted by including a carrier (a honeycomb carrier) in which an exhaust purifying catalyst is carried and a cylindrical case member adapted to house the carrier therein. In the case of housing the carrier within the case member, it is important to firmly hold the carrier within the case member. For this reason, it is known that a holding member commonly known as a mat is caused to lie between an inner circumferential surface of the case member and an outer circumferential surface of the carrier and a stopper member is provided on each edge periphery of inflow and outflow sides of exhaust in the carrier. A buffer member is inserted between the stopper member and the carrier (e.g., refer to Japanese published unexamined application No. 2013-160149).
In order to strengthen coupling of a ring-shaped stopper member with an edge inner circumferential surface of a cylindrical case member, when a contact area of both members is made larger, the case member is extended in the axial direction of the cylindrical body and as a result, the exhaust purifying device becomes longer as a whole and miniaturization of the device is inhibited. For this reason, in the exhaust purifying device of Japanese published unexamined application No. 2013-160149, one part of a ring-shaped stopper member is divided to have a C-shape. Once the C-shaped stopper member is reduced in diameter, it is then press-fitted into the edge section of the cylindrical case member. After press-fitting is completed, the diameter of the stopper member is increased to make a pressure contact with the inner circumferential surface of the case member. In addition, in such a pressure contact condition, the stopper member is welded to the edge section of the case member by welding. At this time, it is said that, since the stopper member is installed in such a position that it enters the inside from the edge section of the cylindrical case member, a total length of the exhaust purifying device is shortened.
The inventous found that, in the technique of Japanese published unexamined application No. 2013-160149, a stopper member is caused to weld to an edge section of a case member by welding, but it is not desirable in terms of durability to perform welding at an area of the edge section of the case member which repeats expansion or contraction under the effect of heat. Also, since welding is an essential process, production efficiency is inhibited.
Thus, it is desirable to provide an exhaust purifying device for an internal combustion engine which is excellent in durability and has good production efficiency.
To attain the above-mentioned, the following techniques are proposed.
(1) An exhaust purifying device (e.g., an exhaust purifying device 1 described later) provided in an exhaust passage of an internal combustion engine to purify exhaust of the internal combustion engine comprises: a column-shaped honeycomb carrier (e.g., a honeycomb carrier 11 described later) in which a plurality of cells extending from an inflow side edge surface (e.g., an inflow side edge surface 110a described later) to an outflow side edge surface (e.g., an outflow side edge surface 110b described later) of exhaust to become a flow passage of the exhaust are provided to allow porous partitions to form compartments therein; a cylindrical case member (e.g., a case member 12 described later) adapted to house the honeycomb carrier therein; a holding member (e.g., a holding member 13 described later) provided between the honeycomb carrier and the case member so as to surround the outer circumference of the honeycomb carrier; a buffer member (e.g., buffer members 14a, 14b described later) provided on a peripheral edge of the edge surface of at least one side of the inflow and outflow side edge surfaces of the honeycomb carrier to regulate the movement of the honeycomb carrier in the central axis (e.g., a central axis X described later) direction; and a setting member (e.g., setting members 15a, 15b described later) secured to the case member to regulate the movement of the buffer member by allowing its position regulation part (e.g., position regulation parts 151a, 151b described later) to contact the buffer member; wherein the buffer member is provided with a recess (e.g., recesses 141a, 141b described later) into which the position regulation part of the setting member is fitted.
In the exhaust purifying device for an internal combustion engine of the item (1) above, the buffer member is provided on a peripheral edge of the edge surface of at least one side of an inflow and outflow side edge surfaces of the honeycomb carrier so as to regulate the movement of the honeycomb carrier in the central axis direction. Further, a setting member is provided so as to regulate the movement of the buffer member. The setting member is secured to the case member and has a position regulation part designed to contact the buffer member. The buffer member is provided with a recess into which the position regulation part of the setting member is fitted. Accordingly, the buffer member is provided in such a manner that its position is regulated under the sufficient regulation force by allowing the position regulation part of the setting member to be fitted into the recess. Therefore, without using a technique like welding which has a problem with durability, the buffer member can be maintained in a predetermined position and as a result, the exhaust purifying device is excellent in durability. Also, without performing welding or the like, since the position regulation part of the setting member is caused to be fitted into the recess of the buffer member, a process for performing welding or the like can be omitted and production efficiency is good.
(2) The exhaust purifying device for an internal combustion engine according to item (1) is provided, in which at least one part of a fitting section of the position regulation part of the setting member to be fitted into the recess of the buffer member of the honeycomb carrier reaches a position of the inner circumferential side than the outer circumferential surface (e.g., outer circumferential surface 11P described later) of the honeycomb carrier.
In the exhaust purifying device for an internal combustion engine of the item (2) above, at least one part of the fitting section of the position regulation part to be fitted into the recess of the buffer member of the honeycomb carrier reaches a position of the inner circumferential side than the outer circumferential surface of the honeycomb carrier. Accordingly, even though stress is applied from the honeycomb carrier side, it is possible to effectively prevent the deformation or slip-off of the buffer member.
(3) The exhaust purifying device for an internal combustion engine according to item (1) or item (2) is provided, in which the position regulation part of the setting member, in a cross-section view of the honeycomb carrier in the radial direction, extends to the inner circumferential side than the outer circumferential surface of the honeycomb carrier, facing toward the central axis of the honeycomb carrier from its outer circumferential end and it is then folded back to the outside.
In the exhaust purifying device for an internal combustion engine of the item (3) above, the position regulation part of the setting member, in a cross-sectional view of the honeycomb carrier in the radial direction, extends to the inner circumferential side than the outer circumferential surface of the honeycomb carrier, facing toward the central axis of the honeycomb carrier from its outer circumferential end and it is then folded back to the outside. Thus, the setting member can firmly embrace the buffer member and as a result, it is possible to cause the setting member to hold the buffer member more tightly. It is therefore possible to effectively prevent the deformation or slip-off of the buffer member.
(4) The exhaust purifying device for an internal combustion engine according to item (1) or item (2), wherein an edge ring member (e.g., the edge ring member 16a described later) with a cylindrical section fitted onto the outer circumferential side of a fitting body of the buffer member and the setting member is provided, and the setting member, in a cross-section view of the honeycomb carrier in the radial direction, has an extension (e.g., an extension 156e described later) extending in a direction away from the honeycomb carrier along the inner circumferential surface of the cylindrical section (e.g., the cylindrical section 161e) of the edge ring member.
In the exhaust purifying device for an internal combustion engine of the item (4) above, since the cylindrical section of the edge ring member and the setting member can be welded at the extension extending in a direction away from the honeycomb carrier, welding of the edge ring member to the setting member is performed easily and the buffer member is less subject to heat damage by welding.
(5) The exhaust purifying device for an internal combustion engine according to any one of items (1) to (4) is provided, in which the setting member is provided, at its position regulation part, with a projection (e.g., a projection 154a described later) projecting toward the honeycomb carrier.
According to the exhaust purifying device for an internal combustion engine of the item (5) above, by allowing the projection to strongly engage with the recess of the buffer member, it is possible to strongly prevent the deformation or slip-off of the buffer member.
(6) The exhaust purifying device for an internal combustion engine according to any one of items (1) to (5) is provided, in which the buffer member is formed in an annular shape in a view of the honeycomb carrier in the central axis direction and at least one part is divided.
According to the exhaust purifying device for an internal combustion engine of the item (6) above, since the deformation of the buffer member is performed easily at assembling because of the existence of an part of an aperture by the division, production efficiency is good and it is possible to absorb the deformation at the part of the aperture, thereby being capable of reducing the distortion of the setting member and the case member at the time of hot working.
(7) The exhaust purifying device for an internal combustion engine according to any one of items (1) to (3), (5), and (6) is provided, in which the setting member is the same member as the case member.
According to the exhaust purifying device for an internal combustion engine of the item (7) above, since a part of the case member itself constitutes the setting member, the number of parts is reduced and the number of welding spots is reduced as a result, further improvement of production efficiency is attained.
(8) The exhaust purifying device for an internal combustion engine according to any one of items (1) to (6) is provided, in which the setting member is provided in such a manner that the position regulation part is formed in an annular shape in a view of the honeycomb carrier in the central axis direction and at least one part is divided.
According to the exhaust purifying device for an internal combustion engine of the item (8) above, since the deformation of the position regulation part in the setting member is performed easily at assembling because of the existence of an aperture by the division, production efficiency is good and it is possible to absorb the deformation at a part of the aperture produced by the division, thereby being capable of reducing the distortion of the setting member and the case member at the time of hot working.
(9) The exhaust purifying device for an internal combustion engine according to any one of items (1) to (8) is provided, in which the honeycomb carrier is a gasoline articulate filter.
According to the exhaust purifying device for an internal combustion engine of the item (9) above, the honeycomb carrier which is the gasoline articulate filter is properly held by the buffer member and protected against damage.
(10) The exhaust purifying device for an internal combustion engine according to any one of items (1) to (9), wherein at least a part of the peripheral wall of the edge ring member is provided with a projection projecting toward the buffer member.
According to the exhaust purifying device for an internal combustion engine of the item; (10) above, since the projection formed on the peripheral wall of the edge ring member is provided to press the buffer member, the buffer member is brought into close contact with the setting member. As a result, a sufficient position holding force of the setting member to the buffer member is secured. Accordingly, there is no risk that the buffer member rotates in the circumferential direction relative to the setting member.
According to the present disclosure, it is possible to embody an exhaust purifying device for an internal combustion engine which is excellent in durability and has good production efficiency. In the above explanation of the exemplary embodiment, specific elements with their reference numerals are indicated by using brackets. These specific elements are presented as mere examples in order to facilitate understanding, and thus, should not be interpreted as any limitation to the accompanying claims.
Preferred embodiments of the present disclosure will now be described below in detail for clarification with reference to the accompanying drawings.
The exhaust purifying device 1, in one embodiment, is provided in an exhaust pipe extending downward along a side of a front side of a vehicle with a gasoline engine, right under a gasoline engine (not shown). Namely, the exhaust purifying device 1 is provided in the exhaust pipe in a state in which the flow direction of exhaust is set downward.
As shown in
The honeycomb carrier 11 is provided with a plurality of cells extending through from an inflow side edge (end) surface 110a to an outflow side edge (end) surface 110b of the exhaust which are one and the other edge surfaces in the central axis X direction and become a flow passage of the exhaust, and porous partitions designed to form compartments in the cells.
The honeycomb carrier 11 is formed in a column-shape which is circular in cross-section. However, any honeycomb carrier can be applied as long as it is column-shaped, for example, it may be formed in a shape having an ellipse or a plurality of circular arcs in the cross-section of the radial direction.
The shape of each cell is formed in a square column shape which is square in cross-section, but it may be formed in a polygonal shape.
The honeycomb carrier 11 is formed by porous, fire-resistant ceramics composed of a cordierite. The honeycomb carrier 11 composed of the cordierite is obtained by a firing process after it is integrally formed by an extrusion molding method. During firing, an outer envelope is formed at the same time. Accordingly, since the honeycomb carrier 11 of the present embodiment is provided in such a manner that the outer circumferential side surface is covered with the outer envelope, catalysts do not leak from the outer circumferential side surface in a catalyst holding process or the exhaust does not leak from the outer circumferential side surface during use.
The pore size and porosity of the honeycomb carrier 11 can be set properly within the range in which the partitions serve as a filter medium for filtering PM in the exhaust.
The honeycomb carrier 11 carries an exhaust purifying catalyst for purifying the exhaust. Specifically, the honeycomb carrier 11 of the present embodiment carries a three-way catalyst for purifying HC, CO and NOx in the exhaust. The three-way catalyst including at least one precious metal of Pt, Pd and Rh is preferably used.
The case member 12 is formed in a cylindrical shape which is toric in cross-section and is adapted to house the above described honeycomb carrier 11 therein. However, any case member 12 can be applied as long as it is cylindrical according to the shape of the honeycomb carrier 11, for example, it may be formed in a shape having an elliptical annular shape or a plurality of circular arc rings in the cross-section of the radial direction.
This case member 12, for example, is made of metal such as SUS.
The case member 12 is a case member of a clamshell type composed of a half-case which was divided in two parts in the circumferential direction along the central axis X direction (the vertical direction of
The honeycomb carrier 11 of which the outer shape in
Materials with heat resistance, vibration resistance and sealing efficiency are used for the holding member 13. Specifically, in addition to ceramic fibers such as alumina fiber, silica fiber, alumina-silica fiber and glass ceramic fiber, a metal mesh or the like are also used.
Also, a buffer member 14a is provided at a peripheral edge of the inflow side edge surface 110a of the honeycomb carrier 11 so as to regulate the movement of the honeycomb carrier 11 in the central axis X direction. Similarly, a buffer member 14b is provided at the peripheral edge of the outflow side edge surface 110b so as to regulate the movement of the honeycomb carrier 11 in the central axis X direction. The buffer member 14a and the buffer member 14b are formed in an annular shape along each periphery of the inflow side edge surface 110a and the outflow side edge surface 110b of the honeycomb carrier 11.
Further, in response to the buffer member 14a, a setting member 15a is provided so as to regulate the position of the buffer member. The setting member 15a is constituted in such a manner that one part thereof is secured to the case member 12 and a position regulation part 151a formed on the other part contacts the buffer member 14a to regulate the movement of the buffer member 14a.
Similarly, in response to buffer member 14b, a setting member 15b is provided so as to regulate the position of buffer member 14b. The setting member 15b is constituted in such a manner that one part thereof is secured to the case member 12 and a position regulation part 151b formed on the other part contacts the buffer member 14b to regulate the movement of the buffer member 14b.
The annular buffer members 14a, 14b are respectively provided, on their outer circumferential sides, with recesses 141a, 141b into which the above described position regulation parts 151a, 151b of the corresponding setting members 15a, 15b are fitted.
In addition, an edge ring member 16a is fitted so as to cover each part of the buffer member 14a and the setting member 15a from outside. In the same way, an edge ring member 16b is fitted so as to cover one part of the buffer member 14b and the setting member 15b from outside.
Next, referring to both
In
As shown in
Also, in the embodiment of
The setting member 15b is provided in such a manner that the other part extending further to the downstream side of the exhaust from the cylindrical section 153b is bent in an arc shape to be held in reduced diameter state. A part facing further toward the central axis X of the honeycomb carrier 11 from the reduced diameter section contacts the buffer member 14b to form the position regulation part 151b for regulating the movement of the buffer member 14b.
As described above, the extended part of the position regulation part 151b toward the inner diameter side is fitted, with almost no space, into the recess 141b formed on the outer circumferential surface side of the buffer member 14b. The tip section of the part fitted in this manner facing toward the central axis X of the honeycomb carrier 11 reaches a position of the inner circumferential side than the outer circumferential surface 11P of the honeycomb carrier 11.
Also, in
Next, effects of the exhaust purifying device for an internal combustion engine as one embodiment of the present disclosure described referring to
In the device of
Accordingly, the buffer members 14a, 14b is provided in such a manner that its position is regulated under the sufficient regulation force by allowing the position regulation parts 151a, 151b of the setting members 15a, 15b to be fitted into the recesses 141a, 141b. Therefore, without using a technique like welding which has a problem with durability, the buffer members 14a, 14b can be maintained in a predetermined position and as a result, the exhaust purifying device 1 is excellent in durability. Also, without performing welding or the like, since the position regulation parts 151a, 151b of the setting members 15a, 15b is caused to be fitted into the recesses 141a, 141b of the buffer members 14a, 14b, a process for performing welding or the like can be omitted and production efficiency is good.
In particular, the edge sections of the position regulation parts 151a, 151b of the setting members 15a, 15b facing toward the central axis X of the honeycomb carrier 11 reach the position of the inner circumferential side than the outer circumferential surface 11P of the honeycomb carrier 11. For this reason, even though stress is applied from the honeycomb carrier 11 side, it is possible to effectively prevent the deformation or slip-off of the buffer members 14a, 14b.
In
In the embodiment of
Also, since the buffer member 14b is composed of the material which can be deformed by applying an adequate force, in a production process, the buffer member 14b is once caused to deform by applying force thereto and then, as shown in
According to the embodiment of
In
In the embodiment of
Since a part of the case member 12 itself constitutes the setting member 15bb, the number of parts is reduced and the number of welding spots is reduced and as a result, further improvement of production efficiency is attained.
The projection 154b (154a) in the embodiment of
The projection 154b (154a) in the embodiments of
The buffer member 14a (14b) of
Further, the buffer member 14aa (14bb) of
According to the embodiments to which such divided buffer members 14a (14b), 14aa (14bb) as shown in
Although not shown in the figure, the setting members 15a, 15b which take the forms shown in
In this case, since the deformation of the position regulation parts 151a, 151b in the setting members 15a, 15b is performed easily at assembling because of the existence of an aperture by the division, production efficiency is good and it is possible to absorb the deformation at a part of the aperture produced by the division, thereby being capable of reducing the distortion of the setting members 15a, 15b and the case member 12 at the time of hot working.
Here, still further embodiment of the present disclosure is described referring to
In
Also,
In
Specifically, the setting member 15d shown in the figure is provided to pair up with the corresponding arc-shaped (partially annular) setting member to have a toric shape.
Also, the buffer member 14d is provided to pair up with the corresponding arc-shaped (partially annular) buffer member to have a toric shape.
Namely, the setting member 15d and the buffer member 14d of
A cross-sectional view of
As shown in
In the process of
Specifically, a fitting body of the arc-shaped (partially annular) setting member 15d and buffer member 14d of
In this case, the arc-shaped (partially annular) fitting body of the setting member 15d and the buffer member 14d which form one toroid in pairs has an arc-shaped (partially annular) form in which the toroid is divided respectively as shown in
As shown in
Further, as shown in
In the cross-sectional view of
Accordingly, in the embodiments of the
Although not shown in the figure, but a projection of which the projecting direction of the pointed section is opposite (a downward direction in
In
Since the edge ring member, the setting member and the buffer member disposed on the upstream side take on the symmetric aspect with each corresponding member disposed on the downstream side as shown in
Even in the embodiment of
The setting member 15e in the embodiment of
The setting member 15e is welded to the edge ring member 16e (and its cylindrical section 161e) at a location near the extended end of the extension part 156e to form a welding spot 152e.
In the embodiment of
In
Since the edge ring member, the setting member and the buffer member disposed on the upstream side take on a symmetric aspect with each corresponding member disposed on the downstream side as shown in
Even in a state of
Also, in the working process of
In a state of
In the case of
On the other hand, in
In a state of
The outer periphery of the cylindrical edge ring member 16f is divided into quarters in the circumferential direction and arc-shaped split patterns 21, 22, 23 and 24 of a constant thickness are disposed for an equally divided zone. The first split pattern 21 has a pressing part 211, 212 projecting toward the inner periphery at each end. In the same way, the second split pattern 22 has a pressing part 221, 222, the third split pattern 23 has a pressing part 231, 232, and the fourth split pattern 24 has a pressing part 241, 242, respectively. The split patterns 21, 22, 23, and 24 are made so each pattern can be displaced by a driving mechanism (not shown) in the diameter reducing direction and form a pressing jig 20 as a whole.
When the split patterns 21, 22, 23, and 24 for the pressing jig 20 synchronize to displace in the diameter reducing direction, there is formed one projection 17 by plastic deformation on the periphery wall of the edge ring member 16f by the pressing parts 211 and 242 described above. In the same way, by the pressing parts 212 and 221, the pressing parts 222 and 231 and the pressing parts 232 and 241, each corresponding projection is formed and there are formed four projections 17 on the peripheral wall of the edge ring member 16f at regular intervals in the circumferential direction.
As shown in
Also, the detailed description is given in the above mainly for the exhaust purifying device in which the buffer member is provided on each peripheral edge of the inflow side edge surface and the outflow side edge surface of the honeycomb carrier, but it is also possible to provide the buffer member on the periphery edge of the edge surface of at least one side of the inflow side edge surface and the outflow side edge surface of the honeycomb carrier. Although a specific form of embodiment has been described above and illustrated in the accompanying drawings in order to be more clearly understood, the above description is made by way of example and not as limiting the scope of the invention defined by the accompanying claims. The scope of the invention is to be determined by the accompanying claims. Various modifications apparent to one of ordinary skill in the art could be made without departing from the scope of the invention. The accompanying claims cover such modifications.
Yokoyama, Hiroki, Hatakeyama, Yoshiaki
Patent | Priority | Assignee | Title |
Patent | Priority | Assignee | Title |
4142864, | May 31 1977 | Engelhard Corporation | Catalytic apparatus |
4279864, | Dec 04 1978 | Nippon Soken, Inc. | Monolithic catalyst converter |
4353873, | Apr 30 1980 | Honda Giken Kogyo Kabushiki Kaisha | Support apparatus for catalyst block |
4795615, | Jul 25 1985 | Interatom GmbH | Mounting for a metallic exhaust gas catalyst carrier body and method for manufacturing the same |
5250269, | May 21 1992 | MINNESOTA MINING AND MANUFACTURING COMPANY, A CORP OF DE | Catalytic converter having a metallic monolith mounted by a heat-insulating mat of refractory ceramic fibers |
5551621, | Aug 10 1994 | STANLEY FASTENING SYSTEMS, L P | Convertible contact/sequential trip trigger with double actuation prevention structure |
6613296, | Jan 31 2000 | Delphi Technologies, Inc | Relieved support material for catalytic converter and the process of making the same |
7241426, | Dec 15 2000 | KATCON GLOBAL S A | Exhaust manifold with catalytic converter shell tube |
8454898, | Mar 27 2008 | PUREM GMBH, FORMERLY, EBERSPÄCHER EXHAUST TECHNOLOGY GMBH | Exhaust gas treatment device |
8839517, | Jul 24 2008 | Cummings Filtration IP, Inc. | Spin formed catalyst |
JP2013160149, |
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