Two-Stroke Engine Exhaust Resonator With Exhaust Gas Catalytic Converter

20210115823 · 2021-04-22

    Inventors

    Cpc classification

    International classification

    Abstract

    A two-stroke engine exhaust resonator with an exhaust gas catalytic converter comprising an inlet opening, wherein the inlet opening is followed by the first end of a stabilizing tube with a catalytic converter mounted thereon, characterized in that the other end of the stabilizing tube is directed towards the primary reflective surface, the primary reflective surface is followed by the first end of a resonator casing, which is surrounding the stabilizing tube, wherein the resonator casing exceeds at least over a part of the catalytic converter on the stabilizing tube, wherein a resonator outlet opening is arranged in the resonator casing between its first and second end or in the primary reflective surface, and at least a part of the resonator casing surrounding the stabilizing tube is surrounded by a cooler.

    Claims

    1. A two-stroke engine exhaust resonator with an exhaust gas catalytic converter comprising an inlet opening, the inlet opening is connected to the first end of a stabilizing tube with a catalytic converter mounted thereon, the other end of the stabilizing tube (2) is directed towards a primary reflective surface (3), the primary reflective surface (3) is connected to the first end of a resonator casing which is surrounding the stabilizing tube (2) and thus defining the space in the resonant chamber between the resonator casing and the stabilizing tube (2) and said space comprising a narrowing part defined by the body of the catalytic converter (8) and the resonator casing enabling a compression of combustion gases between the stabilizing tube and the resonator casing following a previous expansion of combustion gases coming out from the catalytic converter (8) inside the stabilizing tube and further reflection at the primary reflective surface outside the stabilizing tube, wherein the resonator casing exceeds at least over a part of the catalytic converter (8) on the stabilizing tube (2), wherein a resonator outlet opening (7) is arranged in the resonator casing between its first and second end or in the primary reflective surface (3), and at least a part of the resonator casing surrounding the stabilizing tube (2) is surrounded by a cooler (10).

    2. The two-stroke engine exhaust resonator according to claim 1, wherein the resonator casing exceeds over the whole catalytic converter (8) on the stabilizing tube (2).

    3. The two-stroke engine exhaust resonator according to claim 1, wherein the resonator casing is formed by a resonator primary casing (4) and a resonator secondary casing (6), the resonator primary casing (4) connects to the primary reflective surface (3) with its first end, surrounds the stabilizing tube (2) of the resonator, exceeds at least a part of the catalytic converter (8) on the stabilizing tube (2) and is directed towards a secondary reflective surface (5) which is connected to the first end of the resonator secondary casing (6) surrounding at least a part of the resonator primary casing (4) exceeding at least a part of the catalytic converter (8) on the stabilizing tube (2) and terminated with the other end of the resonator secondary casing (6).

    4. The two-stroke engine exhaust resonator according to claim 1, wherein the cooler (10) surrounds at least a part of the primary reflective surface (3).

    5. The two-stroke engine exhaust resonator according to claim 1, wherein the cooler (10) is provided with a coolant outlet (13) in the form of injection openings directed from the cooler through the resonator casing into the resonant chamber for injecting the coolant into the combustion gas flow in the resonant chamber.

    6. The two-stroke engine exhaust resonator according to claim 1, wherein the outlet opening (7) of the resonator exits the primary reflective surface in the axis of the resonator.

    7. The two-stroke engine exhaust resonator according to claim 1, wherein the catalytic converter (8) is mounted on the stabilizing tube (2) in its initial part.

    8. The two-stroke engine exhaust resonator according to claim 3, wherein the resonator casing exceeds over the whole catalytic converter (8) on the stabilizing tube (2).

    9. The two-stroke engine exhaust resonator according to claim 4, wherein the resonator casing exceeds over the whole catalytic converter (8) on the stabilizing tube (2).

    10. The two-stroke engine exhaust resonator according to claim 8, wherein the cooler (10) surrounds at least a part of the primary reflective surface (3).

    11. The two-stroke engine exhaust resonator according to claim 10, wherein the cooler (10) is provided with a coolant outlet (13) in the form of injection openings directed from the cooler through the resonator casing into the resonant chamber for injecting the coolant into the combustion gas flow in the resonant chamber.

    12. The two-stroke engine exhaust resonator according to claim 11, wherein the outlet opening (7) of the resonator exits the primary reflective surface in the axis of the resonator.

    13. The two-stroke engine exhaust resonator according to claim 12, wherein the catalytic converter (8) is mounted on the stabilizing tube (2) in its initial part.

    14. The two-stroke engine exhaust resonator according to claim 2, wherein the outlet opening (7) of the resonator exits the primary reflective surface in the axis of the resonator.

    15. The two-stroke engine exhaust resonator according to claim 2, wherein the catalytic converter (8) is mounted on the stabilizing tube (2) in its initial part.

    16. The two-stroke engine exhaust resonator according to claim 6, wherein the catalytic converter (8) is mounted on the stabilizing tube (2) in its initial part.

    17. The two-stroke engine exhaust resonator according to claim 11, wherein the catalytic converter (8) is mounted on the stabilizing tube (2) in its initial part.

    Description

    BRIEF DESCRIPTION OF THE DRAWINGS

    [0015] The object of the invention is further illustrated by means of examples of its implementation which are described with reference to the attached drawings. State of the art is demonstrated as follows:

    [0016] FIG. 1 shows a graph of catalytic conversion dependency on the temperature of inlet gases.

    [0017] FIG. 2 shows a conventional embodiment of the placement of the exhaust gas catalytic converter in the exhaust pipe system.

    [0018] FIG. 3 shows schematic view of the two-stroke engine exhaust resonator with three catalytic converters known from the state of art.

    [0019] Further drawings show exemplary embodiments of this invention:

    [0020] FIG. 4—Elementary embodiment of the exhaust resonator with the catalytic converter, resonator simple casing, closed cooling circuit and combustion gas outlet into the silencer in the axis of the resonator.

    [0021] FIG. 5—Basic embodiment of the exhaust resonator with the catalytic converter, resonator simple casing, closed cooling circuit, and combustion gas outlet into the silencer in the axis of the resonator.

    [0022] FIG. 6—Basic embodiment of the exhaust resonator with the catalytic converter, resonator simple casing, lossy cooling with the coolant outlet into the resonator, and combustion gas outlet outside the axis of the resonator.

    [0023] FIG. 7—Embodiment of the exhaust resonator with the catalytic converter, resonator casing made of primary and secondary casing, closed cooling circuit, and combustion gas outlet into the silencer in the axis of the resonator.

    [0024] FIG. 8—Embodiment of the exhaust resonator with the catalytic converter, resonator casing made of primary and secondary casing, lossy cooling with the coolant outlet into the resonator, and combustion gas outlet outside the axis of the resonator.

    [0025] FIG. 9—Embodiment of the exhaust resonator with the catalytic converter, resonator casing made of primary and secondary casing, closed cooling circuit, and combustion gas outlet outside the axis of the resonator.

    EXEMPLARY EMBODIMENTS OF THE INVENTION

    [0026] The present embodiments illustrate exemplary varieties of the embodiments of the invention, which are not limiting in terms of scope of the invention.

    [0027] The first exemplary embodiment of the invention is illustrated in FIG. 4. In this embodiment, the two-stroke engine exhaust resonator with exhaust gas catalytic converter 8 has the resonant chamber closed only in the resonator simple casing. Exhaust resonator starts with the inlet opening 1, wherein the inlet opening 1 is followed by the first end of the stabilizing tube 2 directed towards the outlet opening 7 of the resonator which is realized in the axis of the resonator. On the initial part, the stabilizing tube 2 is provided with a catalytic converter 8, casing of which has cylindrical shape, and it further consists of casing of a truncated cone opening towards the outlet opening 7 of the resonator. In the stabilizing tube 2, after passing of combustion gases through the catalytic converter 8, an expansion thereof occurs, which then continues into a following part of the resonant chamber defined by the outer surface of the stabilizing tube 2 and resonator casing, which consists of three parts, wherein two parts of truncated cone shape have interconnected bigger circular cross-sections of the truncated cone by the third short cylindrical part. The resonator casing exceeds over the whole length of the catalytic converter 8 and the compression of the combustion gases occurs in the second narrowing part of the resonant chamber defined by the body of the catalytic converter 8 and the resonator casing. Opposite to the second end of the opening stabilizing tube 2 a narrow outlet opening 7 of the resonator surrounded by primary reflective surface 3 is realized, which is followed by the first end of the resonator casing 4. To the outlet opening 7 of the resonator is connected the silencer 11 with a reverse valve. A part of the resonator casing starting at the primary reflective surface and extending towards the catalytic converter 8 is surrounded by a cooler 10. This cooler 10 is lossy, it is provided on its side with a coolant inlet 9 and its coolant outlet 13 guides coolant away into the exhaust resonator at the outlet opening 7 of the resonator. The cooler in this embodiment is realized as a two-chamber cooler and for the regulation of the coolant flow it is provided with one three-way valve 14. In the drawings, the three-way valve 14 has an inlet from one chamber, an outlet into the second chamber and an outlet outside or into the closed cooling system, illustrated by arrows. It operates so that it either shifts coolant from one chamber to another or returns it into the closed cooling system or, in case of open cooling system, this outlet is guided to the inlet point of the coolant to the combustion gas flow. If the cooler 10 was divided into more chambers, it would be provided with adequate number of three-way valves 14.

    [0028] Second exemplary embodiment of the invention is illustrated in FIG. 5. This embodiment differs from the previous one by the cooler 10, which is, in this case, lossless. Lossless cooler 10 is part of the closed cooling circuit. Its inlet 9 and outlet of the coolant are connected to the superior cooling circuit 16 of the powered device, e.g. cooling circuit of a motorbike, etc., and controlled by an electric valve 15.

    [0029] Third exemplary embodiment of the invention is illustrated in FIG. 6. This embodiment differs from the first one by that the inlet opening 7 of the resonator does not extend from the primary reflective surface in the axis of the resonator, it is rather realized in the resonator casing, in this case particularly on its side, and at the level of the catalytic converter 8 which is mounted right at the beginning of the stabilizing tube 2. The opening opposite to the mouth of the stabilizing tube in the axis of the resonator is closed by a plug of the axial combustion gas outlet.

    [0030] Above illustrated elementary embodiments of the exhaust resonator have simple resonator casing. In the following embodiments, the resonator casing is double and it is formed by the resonator primary casing 4 and the resonator secondary casing 6.

    [0031] The fourth embodiment of the invention is illustrated in FIG. 7. This embodiment differs from the second exemplary embodiment in FIG. 5 only in the embodiment of the resonator casing. In this case, the resonator primary casing 4 follows with its first end the primary reflective surface 3, surrounds the stabilizing tube 2 of the resonator, exceeds almost all of the catalytic converter 8 on the stabilizing tube 2, and is directed towards the secondary reflective surface 5. The secondary reflective surface 5 is placed, due to production reasons, as close to the inlet opening 1 as possible, in this embodiment at the level of the first end of the catalytic converter 8, so that warm combustion gases, as well as in the previous exemplary embodiments, pass around the whole surface of the catalytic converter 8, and this secondary reflective surface 5 is followed by the first end of the resonator secondary casing 6 surrounding, in this case, a part of the resonator primary casing 4 covering the catalytic converter 8 on the stabilizing tube 2, and concluded by the second end of the resonator secondary casing 6 connected to the resonator primary casing. The resonator primary casing corresponds with its shape to the simple casing from the second implementation, only its second casing is a little bit shorter, secondary casing is cylindrically shaped, wherein in other embodiments it can be cone shaped, thus the cross-section of a part of the resonant chamber between the primary casing and the secondary casing of the resonator is getting smaller. This embodiment is characterized in that combustion gases reflected from the first reflective surface pass through the resonant chamber in the direction to the secondary reflective surface 5 and part of them gets into the space between the outer part of the primary casing 4 and the secondary casing 6. Between the second end of the primary casing 4 and the secondary reflective surface 5, which are not interconnected, remains a space for a passage of combustion gas into the interspace between primary and secondary casing 4 and 6.

    [0032] The fifth exemplary embodiment illustrated in FIG. 8 differs from the third one in FIG. 6 also only by the embodiment of the resonator casing. Thus, an exhaust resonator comprising the primary and the secondary casing 4 and 6 of the resonator, lossy cooling with the coolant outlet 13 into the resonator, and combustion gasses outlet outside the axis of the resonator, are concerned. The casing is realized the same way as it is in the fourth embodiment, resonator outlet opening 7 is realized in the resonator casing and, also in this case, namely on its side and at the level of the catalytic converter 8 which is mounted right at the beginning of the stabilizing tube 2. The opening opposite to the mouth of the stabilizing tube in the axis of the resonator is again closed by the plug of the axial combustion gas outlet.

    [0033] The sixth exemplary embodiment illustrated in FIG. 9 differs from the fifth one in FIG. 8 by closed cooling circuit only.

    INDUSTRIAL APPLICABILITY

    [0034] The two-stroke engine exhaust resonator with the exhaust gas catalytic converter according to this invention which enables the thermal control of the catalytic reaction can be used in variety of applications with requirement for low emission of exhaust combustion gas and at the same time low installation dimensions. Exemplary usage can be e.g. in motorized surfboards, small single-track vehicles, etc.

    LIST OF REFERENCE SIGNS

    [0035] 1—Inlet opening

    [0036] 2—Stabilizing tube

    [0037] 3—Primary reflective surface

    [0038] 4—Resonator primary casing

    [0039] 5—Secondary reflective surface

    [0040] 6—Resonator secondary casing

    [0041] 7—Outlet opening

    [0042] 8—Catalytic converter

    [0043] 9—Coolant inlet

    [0044] 10—Cooler

    [0045] 11—Silencer

    [0046] 12—Plug of the axial combustion gas outlet

    [0047] 13—Coolant outlet

    [0048] 14—Three-way valve

    [0049] 15—Electronic valve

    [0050] 16—Superior cooling circuit