Internal combustion engine
11066986 · 2021-07-20
Inventors
Cpc classification
F01C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2250/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C1/123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01C21/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B55/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A rotary internal combustion engine that has a housing, main rotors with an external cylindrical surface with rigidly fixed gear wheels and blades in the form of gear ledges (protrusions), as well as additional rotors with an external cylindrical surface with rigidly fixed gear wheels and recesses corresponding to the size of the blades on the main rotors. Additionally, the engine includes a unit for preparing and igniting the working mixture and a unit for discharging exhaust gases. Moreover, the circumference values of the main and additional rotors do not match, and are multiples of the length L1 between the nearest points of tangency (physical contact) of the center of the surface of the gear ledge with the housing.
Claims
1. An internal combustion engine comprising: a housing; a main rotor with an external cylindrical surface with blades in a form of gear ledges; additional rotors with an external cylindrical surface with recesses corresponding to a size of the blades on the main rotor; a spark plug for igniting a combustible mixture being supplied via an intake valve; and an outlet for discharging exhaust gases; wherein circumference values of the main rotor and each of the additional rotors do not match and are multiples of a length L.sub.1, between nearest points of tangency of a center of a surface of each of the gear ledges with the housing; wherein a number of the blades in a form of the gear ledges N corresponds to a formula L2/L1=N, where L2 is a circumference of the main rotor; and wherein a through hole is made in each of the recesses of said each of the additional rotors; wherein the through hole connects a working cavity with an environment; and wherein said each of the recesses of said each of the additional rotors is closed during each of the blades passing the intake valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
DETAILED DESCRIPTION
(2) The internal combustion engine represented in the figures is arranged as follows.
(3) Housing 1 is a part with cylindrical bores under the main 2 and additional 3 rotors located with a gap. On the external cylindrical surface 4 of the main rotor, there is a blade in the form of gear ledge 9, which is in contact with the inner surface of the bore of the housing 1. On the external cylindrical surface 5 of the additional rotor, there is a recess 10 that provides free synchronous passage of the ledge 9 of the rotor 2, while maintaining tight contact of the rotors along their external circumference for the formation of the working chamber of the engine. An intake valve through which the combustible mixture 6 is injected and the spark plug 7, which ignites the mixture, are located on the housing 1. The exhaust gases exit through the outlet 8. The rotation movement from the main rotor to the additional one is transmitted using gears 11 and 12 that are rigidly fixed to the rotors. The diameter of the gear wheel of the main rotor 12 corresponds to the diameter of the section with the external cylindrical surface of the main rotor 4, and the diameter of the gear wheel rigidly fixed to the additional rotor 11 corresponds to the diameter of the section with the external cylindrical surface of the additional rotor 5.
(4) The internal combustion engine represented in the figures operates as follows.
(5) When the blade 9 is moving, from the moment of its passing the recess 10 to the location of the intake valve 6, air is sucked (or pumped from the compressor) into the working cavity 20 through the hole 13 in the additional rotor. The moment of passage by the blade 9 of the intake valve 6 coincides with the moment of closing of the recess 10 during rotation of the section with the cylindrical external surface of the additional rotor 5, which acts as a disk shutter. With further movement of the blade, the combustible mixture is injected into the working cavity 20 through the intake valve 6, which mixture is ignited when the blade 7 passes the spark plug, while the expanding gas acting on the blade 9 generates a torque effect on the main rotor 2. The rotary piston moving in the direction of the outlet 8 displaces the exhaust gases formed by the previous combustion of the combustible mixture through the outlet 8.
(6) In order to increase the efficiency of the engine operation, an increase in torque effect is achieved, due to increasing the compression ratio, by means of reducing the volume of the combustion chamber, since greater compression is easier to achieve due to the small volume. In the claimed engine, this problem can be solved, for example, by dividing the working chamber of the engine into equal sectors, by arranging blades in the form of gear ledge on the main rotor, equidistant from each other at intervals L.sub.1 14. At the same time, N gear ledges fit along the entire circumference of the main rotor L.sub.2 15. Since the rotor comprises a rigidly fixed gear wheel, the number N for the gear will correspond to the ratio of the total number of gear teeth z.sub.2 19 to the number of gear teeth z.sub.1 18 per gap L.sub.1 14. At the same time, the teeth of the interacting gears of the main and additional rotor correspond optimally to each other. Thus, it is possible to create engines of any configuration with optimally selected volumes of combustion chambers, which increases the overall efficiency of the engine operation. In addition, the geometric dimensions of the elements of the desired engine can be reduced, which, while maintaining the specified parameters in terms of power, allows to create more compact mechanisms. Since the rotation force of the main rotor, resulting from the combustion of fuel, transfers part of the energy to provide the rotation of additional rotors, that ensure the operating capacity of the engine. That, in some cases, design will be appropriate, such as, for example, presented in
(7) Furthermore, the claimed ratios will be valid for additional rotors, and the number of recesses of the additional rotor will be determined as the ratio of the circumference value 15 to the length of the circular arc 14 between the nearest points of tangency of the center of the surface of the gear ledge with the housing. And the ratio of the number of teeth of the rigidly fixed gear wheels of the additional rotors will be determined as the total number of gear wheel teeth to the number of gear wheel teeth fit on the length of the circular arc 14 between the nearest points of tangency of the center of the surface of the gear ledge with the housing.
(8) Furthermore, the presented internal combustion engine may be configured, for example, to the case of the location of several main rotors around an additional one, while the radii of the main rotors are less than the radius of the additional one. In this case, all the dependencies presented in the claims remain valid.
(9) In order to increase the operational efficiency of the engine, ratios of the circumference values of the main and additional rotors do not match. Thus, it is possible to create an engine design in which the number of additional rotors will be equal to the number of gear ledges, and wherein additional rotor will comprise, for example, one recess. By reducing the circumference 17 of the additional rotor, both overcoming of the friction force of the rotor against the cylinder of the housing and the force moment that the main rotor must transmit to rotate the additional rotor are reduced, which undoubtedly increases the efficiency of the engine operation. In addition, with various circumference ratios, the “ledge-recess” combination works effectively, since all the elements become simultaneously involved.
(10) In addition, in order to reduce the number of interacting elements, the main rotor, which comprises an external cylindrical surface, rigidly fixed gear wheel, and a blade in the form of gear ledge, can be made as a monolithic element, for example, by printing on a 3D printer. Moreover, an additional rotor, which comprises an external cylindrical surface, rigidly fixed gear wheel, and a recess corresponding to the size of the blade on the main rotor, can be made as a monolithic element.
(11) Thus, the configuration of the rotary internal combustion engine using rotors with different circumference values of the working surfaces, allows to achieve the claimed technical result, namely, increasing the operational efficiency.
INDUSTRIAL APPLICABILITY
(12) The inventive internal combustion engine can be successfully used in modern automotive transport or for the manufacture of gasoline electric generators. It is made at the enterprises of the automotive industry or other facilities of the machine-building industry.