CONTROL DEVICE TO ACHIEVE VARIABLE COMPRESSION RATIO FOR TRIANGLE ROTARY ENGINE
20190010806 ยท 2019-01-10
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
F01C20/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D15/04
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
F01C20/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present invention provides an actuator that can realize the different compression ratios of the rotary engine. The invention actuator described above, includes three parts: the eccentric shaft part, the triangle rotor part and the control system. The eccentric shaft part which is described above, includes the front part of the eccentric shaft, the combination of electric three jaw and the rear part of the eccentric shaft. The triangle rotor part which is described above, includes the variable volume actuator, the front part of the rotor and the rear part of the rotor. The control system which is described above, includes the control system of electric three jaw and the rotating joint. The expansion and contraction of the electric three jaw described above, are controlled by the control system of electric three jaw described above. The eccentric shaft part described above passes through the triangle rotor part described above, to make the combination of electric three jaw to arrange in the annular groove described above. 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. The invention can adjust the engine compression ratio through the whole compression ratio adjustment system, to make the rotary engine always work in the best compression ratio under different working conditions. Therefore, the invention can improve the performance of rotary engine significantly.
Claims
1. (canceled)
2. The actuator of claim 6, which can achieve different compression ratios for rotary engine, wherein the surroundings of the variable volume plate, is arranged with the seal groove; The seal groove described above, is equipped with the wave spring; The sealing strip which is used as a seal between the variable volume plate and the rotor pocket, is installed on the outside of the wave spring.
3. The actuator of claim 6, which can achieve different compression ratios for rotary engine, wherein the shape of the rotor pocket described above, is a square groove.
4. The actuator of claim 6, which can achieve different compression ratios for rotary engine, wherein the angle of the two ends of the outer support arc block is chamfered outwards, so that the outer arc length of the section of outer support arc block is longer than the inner arc length of the section of outer support arc block.
5. The actuator of claim 6, which can achieve different compression ratios for rotary engine, wherein the angle of the two ends of the inner support arc block is chamfered inwards, so that the outer arc length of the section of inner support arc block is shorter than the inner arc length of the section of inner support arc block.
6. A actuator that can achieve different compression ratios for rotary engine, comprising: a eccentric shaft part; a triangle rotor part; and a control system; wherein the eccentric shaft part, includes the front part of the eccentric shaft, the combination of electric three-jaw and the rear part of the eccentric shaft; wherein the combination of electric three jaw which is described above, includes the end cap of the electric three-jaw and the electric three-jaw; wherein the telescopic distance of the claw top of the electric three-jaw is controlled by the electric three-jaw, by using the control system described above; wherein each claw top of the electric three-jaw which is described above, is fitted with the inner support arc block; wherein the front part of the eccentric shaft and the rear part of the eccentric shaft both have an eccentric circular table, respectively; wherein the front part of the eccentric shaft, is provided with the second through hole, which is internally fixed with a wire which is used to control the electric three-jaw; wherein the front part of the eccentric shaft, the combination of electric three-jaw and the rear part of the eccentric shaft, are fixedly connected through the second bolt; wherein the above connection ensures that the eccentric circular table of the front part of the eccentric shaft, is coaxial with the combination of electric three jaw and the eccentric circular table of the rear part of the eccentric shaft; wherein the triangle rotor part which is described above, includes the variable volume actuator, the front part of the rotor and the rear part of the rotor; wherein the outer surface of the front part of the rotor and the rear part of the rotor which are described above, is equipped with the rotor pocket; wherein the interior of the front part of the rotor and the rear part of the rotor, is equipped with the annular groove; wherein the first through hole is used to connect the rotor pocket and the annular groove which are described above; wherein the front part of the rotor and the rear part of the rotor, are fixedly connected through the first bolt to make the rotor pocket of the front part of the rotor align with the rotor pocket of the rear part of the rotor; wherein the variable volume actuator described above, is installed in the annular groove; wherein the variable volume actuator described above, comprises of the variable volume plate and the outer support arc block; wherein the connecting cylinder is used to connect variable volume plate and the outer support arc block; wherein one end of the extension spring is fixed on variable volume plate and the other end of the extension spring is fixed in the rotor pocket; wherein the outer support arc block is installed in the annular groove; wherein the control system which is described above, includes the control system of electric three-jaw and the rotating joint; wherein one end of the rotating joint described above, is connected with the wire in the second through hole; wherein the other end of the rotating joint is connected with the wire of the control system of electric three jaw; wherein the expansion and contraction of the electric three-jaw, is controlled by the control system of electric three-jaw; wherein the eccentric shaft part described above, passes through the triangle rotor part, to make the combination of electric three-jaw to arrange in the annular groove; wherein 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.
Description
DESCRIPTION OF DRAWINGS
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023] In the figures: 1the eccentric shaft part; 2the triangle rotor part; 3the second bolt; 4the front part of the rotor; 5the variable volume plate; 6the outer support arc block; 7the connecting cylinder; 8the rear part of the rotor; 9the front part of the eccentric shaft; 10the end cap of the electric three-jaw; 11electric three-jaw; 12the combination of electric three-jaw; 13the inner support arc block; 14the rear part of the eccentric shaft; 15the extension spring; 16the rotating joint; 17the first through hole; 18the control system of electric three-jaw; 19the second through hole; 20the rotor pocket; 21the annular groove; 22the seal groove; 23the wave spring; 24the sealing strip; 25the first bolt.
EMBODIMENTS
[0024] Hereunder the embodiments of the present invention will be described in detail with reference to the accompanying drawings.
[0025] Combining
[0026] 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 and the rear part of the eccentric shaft 14 both have an eccentric circular table, respectively. The front part of the eccentric shaft 9, is provided with the second through hole 19, which is internally fixed with a wire 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 of the front part of the eccentric shaft 9, is coaxial with the combination of electric three-jaw 12 and the eccentric circular table of the rear part of the eccentric shaft 14.
[0027] The triangle rotor part 2 which is described above, includes the variable volume actuator, the front part of the rotor 4 and the rear part of the rotor 8. The outer surface of the front part of the rotor 4 and the rear part of the rotor 8 which are described above, is equipped with the rotor pocket 20. The interior of the front part of the rotor 4 and the rear part of the rotor 8, is equipped with the annular groove 21. The first through hole 17 is used to connect the rotor pocket 20 and the annular groove 21 which are described above. The shape of the rotor pocket 20, is a square groove. The front part of the rotor 4 and the rear part of the rotor 8, are fixedly connected through the first bolt 25 to make the rotor pocket 20 of the front part of the rotor 4 align with the rotor pocket 20 of the rear part of the rotor 8. The variable volume actuator described above, is installed in the annular groove 21. 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 20. The outer support arc block 6, is installed in the annular groove 21.
[0028] 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 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.
[0029] 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 annular groove 21. 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.
[0030] As the wire in the second through hole 19 connects to the electric three-jaw 11, the wire 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 in the second through hole 19 uses hard wire. In addition, the wire 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 in the second through hole 19, which protects the normal operation of the control system of electric three jaw 18.
[0031] The specific work process is as follows:
[0032] 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 20 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 20, to increase the volume of the rotor pocket 20 which is used as a part of combustion chamber.
[0033] As there is a reciprocating motion of the variable volume plate 5 in the rotor pocket 20, there is a need to take measures to ensure the seal between the variable volume plate 5 and the rotor pocket 20. The surroundings of the variable volume plate 5, as shown in
[0034] As shown in
[0035] 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.