Control device to achieve variable compression ratio for triangle rotary engine
10995618 · 2021-05-04
Assignee
Inventors
Cpc classification
F01C19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C20/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B53/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C20/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C2021/1606
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03C4/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C20/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An actuator of a rotary engine that can realize different compression ratios includes three parts: an eccentric shaft, a triangle rotor and a control system. The eccentric shaft includes the front part of the eccentric shaft, the combination of an electric three-jaw and the rear part of the eccentric shaft. The triangle rotor includes the variable volume actuator, the front part of the rotor and the rear part of the rotor. The control system controls expansion and contraction of the electric three-jaw. The eccentric shaft part passes through the triangle rotor part to make the combination of electric three jaw to arrange in the annular groove. The reciprocating motion of the variable volume actuator is controlled by the expansion and contraction of the claw top of the electric three-jaw. Engine compression ratio may therefore be adjusted using the compression ratio adjustment system.
Claims
1. An actuator for a rotary engine comprising: an eccentric shaft comprising an electric three-jaw having first, second, and third claw tops each connected to a respective first, second, and third inner support arc blocks; a triangle rotor comprising: a rotor pocket formed in an outer surface of the triangle rotor, an interior opening within the rotor, and a through hole connecting the rotor pocket and the interior opening; a variable volume actuator comprising a variable volume plate and an outer support arc block, wherein: the variable volume plate is located within the rotor pocket, the outer support arc block is located within the interior opening, the variable volume plate and the outer support arc block are fixedly connected to one another by a connecting cylinder that extends through the through hole, the variable volume actuator is configured to telescopically move with respect to the rotor; and a control system configured to control expansion and contraction of the electric three-jaw based on electrical signals received at the control system through a wire passing through the eccentric shaft, causing movement of the first, second, and third claw tops and their corresponding respective first, second, and third inner support arc blocks to actuate the variable volume actuator such that the variable volume plate moves within the rotor, wherein when the actuator is used in the rotary engine, movement of the variable volume plate within the rotor pocket achieves different compression ratios for the rotary engine, further wherein the variable volume plate is arranged with a seal groove comprising a wave spring and a sealing strip installed on an outside of the wave spring to form a seal between the variable volume plate and the rotor pocket.
2. The actuator for a rotary engine of claim 1, wherein a shape of the rotor pocket is a square groove.
3. The actuator for a rotary engine of claim 1, wherein an angle of each of two ends of the outer support arc block are chamfered outwards, so that an outer arc length of a section of the outer support arc block is longer than an inner arc length of the section of the outer support arc block.
4. The actuator for a rotary engine of claim 1, wherein an angle of each of two ends of the inner support arc block are chamfered inwards, so that an outer arc length of a section of inner support arc block is shorter than an inner arc length of the section of inner support arc block.
5. The actuator for a rotary engine of claim 1, wherein: the eccentric shaft further comprises a front part and a rear part each having an eccentric circular table; and the front part comprises a second through hole having the wire passing therethrough.
6. The actuator for a rotary engine of claim 5, wherein the eccentric circular table of the front part of the eccentric shaft is coaxial with the electric three-jaw and the eccentric circular table of the rear part of the eccentric shaft.
7. The actuator for a rotary engine of claim 1, wherein the triangle rotor comprises a front part and a rear part fixedly connected by a bolt, and further wherein the interior opening within the rotor is formed by a first annular groove in the front part and a second annular groove in the rear part.
8. The actuator for a rotary engine of claim 7, wherein the rotor pocket is formed by a combination of first openings in the outer surfaces of the front part and the rear part of the triangle rotor, and further wherein the through hole is also formed by a combination of second openings between the first openings and the first and second annular grooves.
9. The actuator for a rotary engine of claim 1, further comprising at least one extension spring connected to the variable volume plate and a surface of the rotor pocket.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
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(5)
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(8) In the figures: 1—the eccentric shaft part; 2—the triangle rotor part; 3—the second bolt; 4—the front part of the triangle rotor; 5—the variable volume plate; 6—the outer support arc block; 7—the connecting cylinder; 8—the rear part of the triangle rotor; 9—the front part of the eccentric shaft; 10—the end cap of the electric three-jaw; 11—electric three-jaw; 12—the combination of electric three-jaw; 13—the inner support arc block; 14—the rear part of the eccentric shaft; 15—the extension spring; 16—the rotating joint; 17—the second opening; 18—the control system of electric three jaw; 19—the second through hole; 20—the first opening; 21—the first annular groove; 22—the seal groove; 23—the wave spring; 24—the sealing strip; 25—the first bolt; 26—the angle which is chamfered outwards; 27—the outer arc length of a section of the outer support arc block 6; 28—the inner arc length of the section of the outer support arc block 6; 29—the angle which is chamfered inwards; 30—the outer arc length of a section of inner support arc block 13; 31—the inner arc length of the section of inner support arc block 13; 32—the eccentric circular table of the front part of the eccentric shaft 9; 33—the eccentric circular table of the rear part of the eccentric shaft 14; 34—the wire passing through the second through hole 19; 35—the outer surfaces of the front part of the triangle rotor 4; 36—the outer surface of the rear part of the triangle rotor 8.
Embodiments
(9) Hereunder the embodiments of the present invention will be described in detail with reference to the accompanying drawings.
(10) Combining
(11) The eccentric shaft part 1 which is described above, includes the front part of the eccentric shaft 9, the combination of electric three-jaw 12 and the rear part of the eccentric shaft 14. The combination of electric three-jaw 12 which is described above, includes the end cap of the electric three-jaw 10 and the electric three-jaw 11. The telescopic distance of the claw top of the electric three jaw 11 is controlled by the electric three-jaw 11, by using the control system described above. Each claw top of the electric three-jaw 11 which is described above, is fitted with the inner support arc block 13. The front part of the eccentric shaft 9 has an eccentric circular table 32. The rear part of the eccentric shaft 14 has an eccentric circular table 33. The front part of the eccentric shaft 9, is provided with the second through hole 19, which is internally fixed with a wire 34 which is used to control the electric three-jaw 11. The front part of the eccentric shaft 9, the combination of electric three-jaw 12 and the rear part of the eccentric shaft 14, are fixedly connected through the second bolt 3. In addition, the above connection ensures that the eccentric circular table 32 of the front part of the eccentric shaft 9, is coaxial with the combination of electric three-jaw 12 and the eccentric circular table 33 of the rear part of the eccentric shaft 14.
(12) The triangle rotor part 2 which is described above, includes the variable volume actuator, the front part of the triangle rotor 4 and the rear part of the triangle rotor 8. The shapes of the front part of the triangle rotor 4 and the rear part of the triangle rotor 8 are the same. The outer surface 35 of the front part of the triangle rotor 4 and the outer surface 36 of the rear part of the triangle rotor 8 which are described above, both have the first opening 20. The front part of the triangle rotor 4 and the rear part of the triangle rotor 8 which are described above, both have the second opening 17. The interior of the rear part of the triangle rotor 8 which are described above, is equipped with a first annular groove 21. The interior of the front part of the triangle rotor 4 which are described above, is equipped with a second annular groove (Not shown in the accompanying drawings). The location and shape of the first annular groove 21 and the second annular groove which are described above, are the same. The second opening 17 of the rear part of the triangle rotor 8 is used to connect the first opening 20 of the rear part of the triangle rotor 8 and the first annular groove 21 which are described above. The second opening 17 of the front part of the triangle rotor 4 is used to connect the first opening 20 of the front part of the triangle rotor 4 and the second annular groove (Not shown in the accompanying drawings) which are described above. The front part of the triangle rotor 4 and the rear part of the triangle rotor 8, are fixedly connected through the first bolt 25 to make the first opening 20 of the front part of the triangle rotor 4 align with the first opening 20 of the rear part of the triangle rotor 8. The rotor pocket is formed by a combination of the first opening 20 in the outer surface 35 of the front part of the triangle rotor 4 and the first opening 20 in the outer surface 36 of the rear part of the triangle rotor 8. The shape of the rotor pocket, is a square groove. The through hole is formed by a combination of the second opening 17 in the front part of the triangle rotor 4 and the second opening 17 in the rear part of the triangle rotor 8. The interior opening within the rotor is formed by a combination of the first annular groove 21 in the rear part of the triangle rotor 8 and the second annular groove (Not shown in the accompanying drawings) in the front part of the triangle rotor 4. The through hole is used to connect the rotor pocket and the interior opening within the rotor which are described above. The variable volume actuator described above, is installed in the interior opening within the rotor. The variable volume actuator described above, comprises of the variable volume plate 5 and the outer support arc block 6. The connecting cylinder 7 is used to connect variable volume plate 5 and the outer support arc block 6. One end of the extension spring 15 is fixed on variable volume plate 5, and the other end of the extension spring 15 is fixed in the rotor pocket. The outer support arc block 6, is installed in the interior opening within the rotor.
(13) The control system which is described above, includes the control system of electric three-jaw 18 and the rotating joint 16. One end of the rotating joint 16 described above, is connected with the wire 34 in the second through hole 19. The other end of the rotating joint 16 is connected with the wire of the control system of electric three-jaw 18. The expansion and contraction of the electric three-jaw 11, are controlled by the control system of electric three-jaw 18.
(14) The eccentric shaft part 1 described above, passes through the triangle rotor part 2, to make the combination of electric three-jaw 12 to arrange in the interior opening within the rotor. The reciprocating motion of the variable volume actuator described above, is controlled by the expansion and contraction of the claw top of the electric three-jaw 11.
(15) As the wire 34 in the second through hole 19 connects to the electric three-jaw 11, the wire 34 in the second through hole 19 and the eccentric shaft part 1, do rotational motion together in the actual working process of the rotary engine. Therefore, the wire 34 in the second through hole 19 uses hard wire. In addition, the wire 34 in the second through hole 19 is linked to the control system of electric three-jaw 18, by using the rotating joint 16. The above method can prevent the torsion of the wire 34 in the second through hole 19, which protects the normal operation of the control system of electric three jaw 18.
(16) The specific work process is as follows:
(17) According to the compression ratio requirements on the different working conditions, the expansion and contraction of the electric three-jaw 11 are controlled by the control system of electric three jaw 18. When the compression ratio needs to be increased, the electric three jaw 11 is extended. The motion of the variable volume actuator is driven by the inner support arc block 13, to reduce the volume of the rotor pocket which is used as a part of combustion chamber. When the compression ratio needs to be decreased, the electric three-jaw 11 is contracted. At the same time, the variable volume actuator is pulled back by the extension spring 15 which is fixed in the rotor pocket, to increase the volume of the rotor pocket which is used as a part of combustion chamber.
(18) As there is a reciprocating motion of the variable volume plate 5 in the rotor pocket, there is a need to take measures to ensure the seal between the variable volume plate 5 and the rotor pocket. The surroundings of the variable volume plate 5, as shown in
(19) As shown in
(20) The embodiments of the invention described above, is the preferred implementation method. However, the invention is not restricted to the embodiments of the invention described above. Without deviating from the essential content of the invention, any visible improvement, replacement or modification made by the technical staff in the field, is all within the scope of protection of the invention.