Exhaust gas stirring device
10352220 ยท 2019-07-16
Assignee
Inventors
Cpc classification
B01F25/3143
PERFORMING OPERATIONS; TRANSPORTING
F01N3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/4315
PERFORMING OPERATIONS; TRANSPORTING
F01N3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/431974
PERFORMING OPERATIONS; TRANSPORTING
F01N3/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2892
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01N3/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/28
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The exhaust gas stirring device comprises a cylindrical frame on an inner surface of a flow path member forming an exhaust flow path; supporting parts arranged to radially reach across the frame; a shielding part shielding a central axis of the frame and its circumference in the axis direction of the frame. One of the supporting parts comprises a pair of first skeletons extending radially outwardly from the central axis of the frame. The frame and the supporting parts are configured by assembling assembling members. One of the assembling members comprises the pair of first skeletons, and second skeletons respectively extending in an arc shape from one end of each of the first skeletons and constituting a part of the frame. Each of the first skeletons and the second skeletons in the assembling members comprises a vane part formed to protrude respectively from each of the first and second skeletons.
Claims
1. An exhaust gas stirring device that stirs an exhaust gas flowing through an exhaust flow path, comprising: a frame in a cylindrical shape arranged on an inner surface of a flow path member that forms the exhaust flow path; supporting parts arranged to reach across the frame in a radial direction; a shielding part intersecting and orthogonal to a central axis of the frame to block flow near the central axis, wherein a first one of the supporting parts comprises a pair of first skeletons that extends outwardly from the central axis of the frame in a radial direction, wherein the frame and the supporting parts are configured by combining assembling members, wherein a first one of the assembling members comprises the pair of first skeletons, and second skeletons that are respectively extended in an arc shape from one end of each one of the pair of first skeletons and constitute a part of the frame, wherein each skeleton comprises a respective vane part that is formed to protrude, and wherein each first skeleton includes a respective shielding piece that is bent orthogonal to the central axis, such that the shielding pieces combine to form the shielding part.
2. The exhaust gas stirring device according to claim 1, wherein the first one of the assembling members comprises the first one of the supporting parts having the pair of first skeletons, and a pair of the second skeletons respectively extended in an arc shape from both ends of the first one of the supporting parts.
3. The exhaust gas stirring device according to claim 2, wherein, in the first one of the assembling members, the vane parts disposed respectively on the pair of first skeletons are each formed in a first shape, and the vane parts disposed respectively on the pair of the second skeletons are each formed in a second shape.
4. The exhaust gas stirring device according to claim 1, wherein, in the plurality of assembling members, all of the vane parts disposed on the pair of first skeletons are each formed in the first shape, and all of the vane parts disposed on the second skeletons are each formed in the second shape.
5. The exhaust gas stirring device according to claim 1, wherein the first one of the assembling members is formed by bending a single plate member.
6. The exhaust gas stirring device according to claim 1, wherein the supporting parts are spaced at equal intervals so that distances between each of the supporting parts in the circumferential direction of the frame are equal.
7. An exhaust gas stirring device that stirs an exhaust gas flowing through an exhaust flow path, comprising: assembling members combined to form: a frame in a cylindrical shape arranged on an inner surface of a flow path member that forms the exhaust flow path; supporting parts arranged to radially extend across the frame; and a shielding part intersecting and orthogonal to a central axis of the frame to block axial flow of exhaust gas near the central axis of the frame, wherein each of the assembling members comprises a pair of first skeletons, and second skeletons, each first skeleton extending radially outward from a central axis of the frame to collectively form at least a portion of the supporting parts, and each second skeleton extending from one end of one of the first skeletons in an arc shape to collectively form at least a portion of the frame, wherein each of the first skeletons and the second skeletons comprises a respective vane part protruding therefrom, and wherein each first skeleton includes a respective shielding piece orthogonal to the central axis to collectively form at least a portion of the shielding part.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
(12)
(13)
(14)
(15)
(16)
EXPLANATION OF REFERENCE NUMERALS
(17) 10 . . . exhaust gas stirring device, 10A and 10B . . . assembling member, 11 . . . frame, 111 . . . second skeleton, 12 . . . supporting part, 121 . . . first skeleton, 13 . . . shielding part, 14 . . . vane part.
MODE FOR CARRYING OUT THE INVENTION
(18) Embodiments of the present invention will be explained hereinafter with reference to the drawings.
First Embodiment
(19) As illustrated in
(20) As illustrated in the figures, a supporting part 12 comprises a pair of first skeletons 121 that extends outwardly from the central axis X of the frame 11 in the radial direction. The frame 11 and the supporting parts 12 are configured by assembling an assembling member 10A and an assembling member 10B. The assembling members 10A and 10B each comprise one pair of first skeletons 121; from one end of each first skeleton 121, a second skeleton 111 is extended in an arc shape and constitutes a part of the frame 11. Each first skeleton 121 and second skeleton 111 in the assembling members 10A and 10B comprises a vane part 14 that is formed to protrude from each first skeleton 121 and second skeleton 111. Details of this exhaust gas stirring device 10 will be explained hereinafter.
(21) An exhaust gas purifying system 1 illustrated in
(22) The first flow path member 2 forms a part of the exhaust flow path to guide the exhaust gas discharged from the internal combustion engine to the outside of the automobile. Specifically, the first flow path member 2 forms the exhaust flow path that leads to the catalyst 4. The first flow path member 2 comprises a first tube part 2A, a second tube part 2B, a third tube part 2C, a fourth tube part 2D, and a fifth tube part 2E in this order from the upstream of the exhaust flow path (from the left side in
(23) The first tube part 2A is a circular tube part in a shape of a straight line. The third tube part 2C is a circular tube part in a shape of a straight line having the same inner diameter as the first tube part 2A. The third tube part 2C is different from the first tube part 2A in the direction of the flow of the exhaust gas. Specifically, the first tube part 2A forms a flow path that leads the exhaust gas to flow obliquely downward. The third tube part 2C forms a flow path that leads the exhaust gas to flow in the horizontal direction. Thereby, the first tube part 2A and the third tube part 2C are gently coupled together via the second tube part 2B that is curved into an ark-like shape in its side view.
(24) The second tube part 2B is formed, for example, by joining two pieces of exterior members together for its upper part and lower part. An exhaust flow path formed by the second tube part 2B (where the second flow path member 3 is inserted) is enlarged (expanded) to both sides in width direction (in right-left direction in
(25) The fifth tube part 2E is a circular tube part in a shape of a straight line having a common axis with the third tube part 2C (having the second axis C2 as the central axis). The fifth tube part 2E is formed to have an inner diameter larger than that of the third tube part 2C, so as to house the catalyst 4 having a column shape with an outer diameter larger than the inner diameter of the third tube part 2C. Thereby, the third tube part 2C and the fifth tube part 2E are gently coupled together via the fourth tube part 2D, which is a circular tube part having a shape (a truncated conical shape in the present embodiment) to form the enlarged-diameter flow path to gradually enlarge the inner diameter of the exhaust flow path. In other words, the first flow path member 2 forms an exhaust flow path that comprises an enlarged-diameter flow path upstream of the catalyst 4 as the exhaust flow path leading to the catalyst 4.
(26) The second flow path member 3 is so-called a dosing pipe that forms a flow path for the reducing agent to lead the reducing agent jetted from the jetting device 5 (dispersed in from a small-hole 5A located outside the exhaust flow path) to the upstream of the catalyst 4 in the exhaust flow path. The second flow path member 3 is a circular tube part having a common axis with the third tube part 2C (having the second axis C2 as the central axis). In the present embodiment, the second flow path member 3 is formed into a shape (a truncated conical shape in the present embodiment) having an inner diameter of the flow path for the reducing agent gradually enlarged towards the exhaust flow path so as not to let the jetted reducing agent easily in contact with the inner surface of the second flow path member 3 (so as not to let the inner surface of the second flow path member 3 easily eroded). The second flow path member 3 is coupled to the second tube part 2B of the first flow path member 2. The reducing agent jetted by the jetting device 5 is merged with the exhaust gas that flows inside the second tube part 2B. Specifically, the second flow path member 3 is inserted through a side wall of the second tube part 2B so as to protrude into the exhaust flow path (so as to locate a tip of the second flow path member 3 at the central part of the exhaust flow path).
(27) As mentioned above, the point of insertion of the second flow path member 3 on the exhaust flow path is enlarged so as to widen to both sides in the width direction. Thereby, as illustrated in
(28) The catalyst 4 is an SCR (Selective Catalytic Reduction) type catalyst having a function to reduce nitrogen oxide (NOx). The catalyst 4 is disposed downstream of the enlarged-diameter flow path in the exhaust flow path (specifically, in the fifth tube part 2E).
(29) The jetting device 5 jets the reducing agent in the form of a liquid, and functions as a supplying device to supply the reducing agent into upstream of the exhaust gas stirring device 10 in the exhaust flow path (specifically, into the second tube part 2B) via the second flow path member 3. In the present embodiment, the jetting device 5 jets a urea water as the reducing agent. To be exact, the urea water jetted into the exhaust gas is hydrolyzed by the heat of the exhaust gas and produces ammonia (NH3). And, thus produced ammonia functions as the reducing agent. A substance before undergoing hydrolysis (the urea water) is also referred to as the reducing agent herein.
(30) The exhaust gas stirring device 10 is disposed upstream of the enlarged-diameter flow path in the exhaust flow path (within the third tube part 2C). The exhaust gas stirring device 10 guides the exhaust gas that flows into the exhaust gas stirring device 10 to circle around (so as to be stirred) and out to disperse into the enlarged-diameter flow path, and reduces the bias (close to uniformity) of the exhaust gas that flows into the catalyst 4.
(31) As illustrated in
(32) The frame 11 is a part to be joined and fixed to an inner circumferential surface of the first flow path member 2 (specifically, of the third tube part 2C) by welding or other manners. The frame 11 is formed into a cylindrical shape so that an outer diameter of the frame 11 is sized to correspond to an inner diameter of the third tube part 2C (for example, equal to or slightly smaller than the inner diameter of the third tube part 2C). The frame 11 is arranged to have a common axis with the third tube part 2C (so as to have the second axis C2 as the central axis). The frame 11 is formed of second skeletons 111, which will be mentioned later.
(33) The supporting part 12 is arranged to reach across inside the frame 11 in the radial direction so as to pass through the central axis X of the frame 11. The supporting part 12 comprises a pair of the first skeletons 121 that extends outwardly from the central axis X of the frame 11 in the radial direction. Two supporting parts 12 are spaced at equal intervals so that the distances between each supporting part 12 in the circumferential direction of the frame 11 are equal. In the present embodiment, the angle between each first skeleton 121 is 90 in the circumferential direction of the frame 11.
(34) The exhaust gas stirring device 10 is configured by assembling two assembling members 10A and 10B. The assembling members 10A and 10B comprise the first skeletons 121, and the second skeletons 111 respectively extended in an arc shape from one end (outer end) of the first skeletons 121. The arc shape referred to herein includes, for example, not only mild curves as in an arc but also shapes with a plurality of line segments connected in a polygonal line. In the present embodiment, the assembling members 10A and 10B each comprise one supporting part 12 having a pair of the first skeletons 121, and a pair of the second skeletons 111 extended in an arc shape from both ends of the supporting part 12. The second skeletons 111 form a part of the frame 11. The frame 11 is configured to include four second skeletons 111 provided on two assembling members 10A and 10B.
(35) The supporting part 12 of one assembling member 10A comprises a slit 15 formed thereon by cutting from the upstream direction towards the downstream direction of the exhaust flow path. The supporting part 12 of the other assembling member 10B comprises a slit 15 formed thereon by cutting from the downstream direction towards the upstream direction of the exhaust flow path. Two assembling members 10A and 10B are assembled together by engaging their slits 15 to each other.
(36) Each of the pair of the first skeletons 121 and the pair of the second skeletons 111 in the assembling members 10A and 10B comprises one vane part 14. More specifically, four vane parts 14 are disposed on each of the assembling members 10A and 10B. The vane parts 14 are bent from the first skeletons 121, or, bent from the second skeletons 111 via erecting portions 16, and are formed to protrude towards the downstream of the exhaust flow path. Surfaces of the vane parts 14 are formed flat. The vane parts 14 formed on the first skeletons 121 and the vane parts 14 formed on the second skeletons 111 of the supporting part 12 are each arranged at equal intervals alternately one by one along the circumferential direction of the frame 11.
(37) In each of the assembling members 10A and 10B, two vane parts 14 disposed on the pair of the first skeletons 121 share the same shape; and two vane parts 14 disposed on the pair of the second skeletons 111 share the same shape. In two assembling members 10A and 10B, the total of four vane parts 14 respectively disposed on the first skeletons 121 shares the same shape; and the total of four vane parts 14 respectively disposed on the second skeletons 111 share the same shape.
(38) The vane parts 14 are designed to overlap with one another in the circumferential direction so as not to form an area where no vane parts 14 exist when viewed from the direction along a second axis C2 as much as possible. An area where no vane parts 14 exist (a vaneless part 17) is formed on the central axis X of the frame 11 and its circumference (central part) inside the frame 11 when viewed from the direction along the second axis C2. On the vaneless part 17, a plate-like shielding part 13 is disposed so as to shield the vaneless part 17. The shielding part 13 is configured to include a plurality (four, in the present embodiment) of shielding pieces 131. Each of the shielding pieces 131 is disposed on an edge, which faces the upstream side of the exhaust flow path, of each first skeleton 121 of the assembling members 10A and 10B.
(39) As mentioned above, the vane parts 14 and the shielding part 13 are designed so that the proportion of the aperture (opening area), where none of the vane parts 14 and the shielding part 13 exist, inside the frame 11 is close to 0% when viewed from the direction along the second axis C2.
(40) A method of manufacturing the exhaust gas stirring device 10 is explained next. As illustrated in
(41) The metal plate member 10a is formed for manufacturing one assembling member 10A; the metal plate member 10a comprises a belt part 101 for forming the pair of the first skeletons 121 and the pair of the second skeletons 111, the vane parts 14, and the shielding pieces 131 integrated together as illustrated in
(42) The belt part 101 is a part that forms the pair of the first skeletons 121 and the pair of the second skeletons 111; in other words, the belt part 101 is a part that forms a portion of the supporting part 12 and the frame 11 which are in one piece. The belt part 101 is in a shape of a straight line and also of a belt. The vane parts 14 are formed to protrude from one end-side of the belt part 101 in the width direction (upper side in
(43) Next, a processing to partially bend the vane parts 14 to a desired angle is applied to the metal plate member 10a. In this processing, one of two vane parts 14, which are formed on the portions that form the second skeletons 111, is bent to a near side of the belt part 101, and the other vane part 14 is bent to a far side of the belt part 101. Likewise, one of two vane parts 14, which are formed on portions that form the first skeletons 121, is bent to the near side of the belt part 101, and the other vane part 14 is bent to the far side of the belt part 101.
(44) Next, as illustrated in
(45) The metal plate member 10b is formed for manufacturing the other assembling member 10B in a like manner as described for the one assembling member 10A; the metal plate member 10b comprises the belt part 101 for forming the pair of the first skeletons 121 and the pair of the second skeletons 111, the vane parts 14, and the shielding pieces 131 integrated together as illustrated in
(46) Next, a processing to partially bend the vane parts 14 to a desired angle is applied to the metal plate member 10b in a like manner as described for the one assembling member 10A. And then, as illustrated in
(47) Next, the slit 15 of the one assembling member 10A is inserted to the slit 15 of the other assembling member 10B and the slits 15 of both members are engaged each other. Thereby, the exhaust gas stirring device 10 that is configured by assembling two assembling members 10A and 10B is manufactured.
(48) Function of the exhaust gas purifying system 1 is explained next.
(49) As illustrated in
(50) A part of the second flow path member 3 inserted into the exhaust flow path has a function of guiding an exhaust gas that hits the upper face on the exterior surface of the second flow path member 3, among the exhaust gas that flows from the first tube part 2A to the second tube part 2B, to go around along the exterior surface of the second flow path member 3. Thereby, the reducing agent that flowed out of the second flow path member 3 is scooped up and dispersed in the exhaust flow path.
(51) The exhaust gas that flowed into the exhaust gas stirring device 10 is then guided by the vane parts 14 to circle around (so as to be stirred), flows out to disperse into the enlarged-diameter flow path, and flows into the catalyst 4 with a reduced bias. In addition, the reducing agent jetted into the exhaust gas hits the shielding part 13 of the exhaust gas stirring device 10 and disperses. The dispersed reducing agent is further guided by the vane parts 14 to circle around, flows out to disperse into the enlarged-diameter flow path, and flows into the catalyst 4 with a reduced bias. Thereby, the reducing agent is efficiently dispersed.
(52) A function effect of the exhaust gas stirring device 10 according to the present embodiment is explained next.
(53) In the exhaust gas stirring device 10 according to the present embodiment, the frame 11 and the supporting parts 12 are configured by assembling the assembling members 10A and 10B. The assembling members 10A and 10B each comprise the first skeletons 121, and the second skeletons 111 that are respectively extended in an arc shape from one end of each of the first skeletons 121; and each of the first skeletons 121 and the second skeletons 111 comprises the vane part 14. Thus, a large number of the vane parts 14 can be arranged efficiently on the frame 11 and on the supporting parts 12, and the diffusibility of the exhaust gas can be improved. In the exhaust gas purifying system 1 in the present embodiment, the diffusibility and the exhaust gas purifying performance of the reducing agent jetted into the exhaust gas can be particularly improved.
(54) The exhaust gas stirring device 10 also comprises the shielding part 13 that shields the central axis X of the frame 11 and its circumference in the axis direction of the frame 11. More specifically, the shielding part 13 is disposed on an area inside the frame 11 where the aperture, which has no vane parts 14 when viewed from the direction along the central axis X of the frame 11, may be easily formed. Thus, the occurrence of bias in the flow of the exhaust gas and weakening of the diffusibility of the exhaust gas can be reduced. In the aforementioned exhaust gas purifying system 1, the shielding part 13 can particularly reduce a slipping-through of the reducing agent jetted into the exhaust gas. The reducing agent jetted into the exhaust gas is diffused by hitting the shielding part 13 and is further diffused at the vane part 14, thus providing additional effect of improving the diffusibility of the reducing agent.
(55) As mentioned above, the frame 11 and the supporting parts 12 are configured by assembling the assembling members 10A and 10B in the exhaust gas stirring device 10. Thereby, the whole shape of the frame 11 and the supporting parts 12 can be easily altered to meet a required performance or other requirements, and the degree of freedom in shape thereof can be improved. And, a yield rate in manufacturing can also be improved by shaping the parts that configure the assembling members 10A and 10B (for example, the first skeletons 121, the second skeletons 111, the vane parts 14, and other parts) into an identical or similar shape.
(56) In the exhaust gas stirring device 10 according to the present embodiment, the assembling members 10A and 10B each comprise the supporting part 12 having a pair of the first skeletons 121, and a pair of the second skeletons 111 respectively extended in an arc shape from both ends of the supporting part 12. Thus, the frame 11 and the supporting parts 12 can be easily configured by assembling the assembling members 10A and 10B.
(57) In the assembling members 10A and 10B, the vane parts 14 disposed respectively on the pair of the first skeletons 121 are formed in an identical shape, and the vane parts 14 disposed respectively on the pair of the second skeletons 111 are formed in an identical shape. This facilitates the manufacturing of the assembling members 10A and 10B.
(58) In the assembling members 10A and 10B, the vane parts 14 disposed on the first skeletons 121 are formed in an identical shape, and the vane parts 14 disposed on the second skeletons 111 are formed in an identical shape. Thereby, the assembling members 10A and 10B can be formed into a similar shape, and the yield rate can thus be improved.
(59) The assembling members 10A and 10B are each configured with one metal plate member, respectively, 10A and 10B. Thereby, by bending the metal plate members 10A and 10B at a specified point, it is possible to easily manufacture the assembling members 10A and 10B each comprising the first skeletons 121 and the second skeletons 111 that have the vane parts 14 formed thereon.
(60) The supporting parts 12 are spaced at equal intervals so that the distances between each supporting part 12 in the circumferential direction of the frame 11 are equal. This can reduce the bias in the flow of the exhaust gas and further improve the diffusibility of the exhaust gas. And, in the aforementioned exhaust gas purifying system 1, the diffusibility of and the exhaust gas purifying performance the reducing agent jetted into the exhaust gas can be further improved.
(61) As mentioned above, it is possible to provide the exhaust gas stirring device 10 that is capable of improving the diffusibility of the exhaust gas in the exhaust flow path, has a high degree of freedom in shape, and provides a high yield rate in manufacturing.
Second Embodiment
(62) As illustrated in
(63) As illustrated in
(64) The frame 11 is configured with two second skeletons 111 provided on the two assembling members 10A and 10B; the shape of the frame 11 in the circumferential direction is partially incomplete. Unlike the first embodiment, the two supporting parts 12 are not spaced at equal intervals in the circumferential direction of the frame 11. In the present embodiment, the angle between each first skeleton 121 is 60 or 120 in the circumferential direction of the frame 11. The shielding part 13 is configured with two shielding pieces 131. Each of the shielding pieces 131 are respectively disposed on the assembling members 10A and 10B.
(65) The assembling members 10A and 10B do not comprise a slit 15 as in the first embodiment (see,
Third Embodiment
(66) As illustrated in
(67) As illustrated in
Fourth Embodiment
(68) As illustrated in
(69) As illustrated in
Fifth Embodiment
(70) As illustrated in
(71) As illustrated in
(72) Three supporting parts 12 are spaced at equal intervals so that the distances between each supporting part 12 in the circumferential direction of frame 11 are equal. In the present embodiment, the angle between each first skeleton 121 is 60 in the circumferential direction of the frame 11. A shielding part 13 is configured with six shielding pieces 131. The assembling members 10A and 10B and the auxiliary member 19 each comprise two shielding pieces 131. Other basic configurations and function effects are the same as those in the first embodiment.
Other Embodiments
(73) It should be noted that the present invention is not limited at all to the aforementioned embodiments and may be practiced in various modes within the scope of the present invention.
(74) (1) The shapes of the exhaust gas stirring device 10, such as the number and shapes of the vane part 14, are not limited to those illustrated as examples in the aforementioned embodiments. Although each first skeleton 121 comprises one vane part 14 in the aforementioned embodiments, two or more vane parts 14 may be provided; and likewise for the second skeleton 111.
(75) Although the vane part 14 is provided in two shapes in the aforementioned embodiments, it may be provided in one shape, or in three or more shapes.
(76) (2) The assembling members that configures the exhaust gas stirring device 10 may be two in number as in the aforementioned embodiments, or they may be three or more in number. The cross-sectional shape of the frame 11 is not limited to a circular shape; it may be, for example, an ellipsoidal shape or a multangular shape or other shapes. The number of the supporting part 12 may be changed to any number equal to or greater than two. The shape of the shielding part 13 is also not limited to those illustrated as examples in the aforementioned embodiments.
(77) (3) Single metal plate members 10a and 10b, which respectively are materials of the assembling members 10A and 10B in the exhaust gas stirring device 10, may be formed by combining several types of metal plates such as to form a tailored material. For example, one metal plate member made by combining two types of metal plates having different plate thickness may be used as a material; the thinner part may be used to form the first skeleton 121 and the second skeleton 111, and the thicker part may be used to form the vane part 14. In this case, the vane part 14 will have a greater rigidity, and therefore, will be less deformable and will have an improved durability.
(78) (4) The exhaust flow path and the flow path for the reducing agent in the aforementioned embodiments are only examples; thus, an exhaust flow path and a flow path for the reducing agent are not limited to those examples. For example, assuming the configuration that the second flow path member 3 protrudes into the exhaust flow path, the cross-sectional shape of a part of the first flow path member 2 is made longer in width in the aforementioned embodiment; however, the cross-sectional shape of at least a part of a second flow path member 3 may be made longer in height. Alternatively, for example, a configuration may comprise a second flow path member 3 that does not protrude into the exhaust flow path; and the cross-sectional shapes of a first flow path member 2 and a second flow path member 3 may each be circular shapes. Alternatively, for example, a first tube part 2A and a third tube part 2C may have different inner diameters, and it is not required that a third tube part 2C, a fifth tube part 2E, and a second flow path member 3 share a common axis. Alternatively, for example, the exhaust flow path is not limited to having an enlarged-diameter flow path; the exhaust flow path may not have an enlarged-diameter flow path
(79) (5) A reducing agent is not limited to urea water; it is only required that a reducing agent contributes to purification of an exhaust gas in a catalyst. In addition, the present invention may be applied to exhaust systems other than exhaust gas purifying systems that utilize a reducing agent.
(80) (6) Functions of one component in the aforementioned embodiments may be distributed as two or more components; or, functions of two or more components may be combined into one component. At least a part of the configurations in the aforementioned embodiments may be replaced with known configurations having the same functions. At least a part of the configurations in the aforementioned embodiments may be omitted insofar as the problem can still be solved. At least a part of the configurations of the aforementioned embodiments may be added to or replaced with the configurations of other embodiments. Embodiments of the present invention include any modes that are encompassed in the technical ideas identified by the languages used in the claims.
(81) (7) The present invention can be realized in variety of forms, besides the aforementioned exhaust gas stirring device, such as exhaust gas purifying systems comprising the exhaust gas stirring device as a component, and methods of reducing bias in the flow of the exhaust gas.