OXIDIZER INJECTOR FOR MOTOR
20200291897 ยท 2020-09-17
Assignee
Inventors
Cpc classification
F02K9/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05D2240/35
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02K9/72
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An oxidizer injector for motor, which is mainly suitable for using in a combustion chamber, the oxidizer injector mainly comprises a body having a first runner assembly and a second runner assembly arranged along an axis, the first runner assembly injects oxidizer into the combustion chamber to form a forward swirl, and the second runner assembly injects oxidizer into the combustion chamber to form a reverse swirl, the axial torsion generated by the forward swirl and the axial torsion generated by the reverse swirl counteract each other, so as to solve the problem of axial torsion imbalance in the combustion chamber.
Claims
1. An oxidizer injector for motor, comprising: a body having a feed passage as well as a first runner assembly and a second runner assembly which communicate with the feed passage, the feed passage having an axis, the first runner assembly and the second runner assembly being sequentially arranged along the axis, the first runner assembly having a plurality of forward runners, and the second runner assembly having a plurality of reverse runners, each of the forward runners being disposed along a forward running direction, and each of the reverse runners being disposed along a reverse running direction, one of the forward running directions being defined as a first forward running direction, and one of the reverse running directions being defined as a first reverse running direction, the first forward running direction and the first reverse running direction extending and a position of intersection being an intersection point, and an extending direction of the intersection point to the axis being a central axis, the first forward runner being on one side of the central axis, and the first reverse runner being on another side of the central axis, a forward angle being formed between the first forward running direction and the central axis, a reverse angle being formed between the first reverse running direction and the central axis, and an absolute value of the forward angle and an absolute value of the reverse angle being equal.
2. An oxidizer injector for motor, comprising: a body having a feed passage and a first runner assembly and a second runner assembly which communicate with the feed passage, the feed passage having an axis, the first runner assembly and the second runner assembly being sequentially arranged along the axis, the first runner assembly having a plurality of forward runners, and the second runner assembly having a plurality of reverse runners, the forward runners being inclined in a clockwise direction along the axis, and the reverse runners being inclined in a counterclockwise direction along the axis, one of the forward running directions being defined as a first forward running direction, and one of the reverse running directions being defined as a first reverse running direction, the first forward running direction and the first reverse running direction extending and a position of intersection being an intersection point, and an extending direction of the intersection point to the axis being a central axis, a forward angle being formed between the first forward running direction and the central axis, a reverse angle being formed between the first reverse running direction and the central axis, and an absolute value of the forward angle and an absolute value of the reverse angle being equal.
3. An oxidizer injector for motor, comprising: a body having a feed passage, a plurality of communication holes penetrating the feed passage, a first runner assembly and a second runner assembly, wherein each of the forward runners and the reverse runners extends along the radial direction of the body, a plurality of first through pipes and a plurality of second through pipes are respectively connected to an outer wall surface of the body, each of the first through pipes communicates with each of the forward runners respectively, and is disposed along the first forward running direction, each of the second through pipes communicates with each of the reverse runners, and is disposed along the first reverse running direction, the feed passage having an axis, the first forward running direction and the first reverse running direction extending and a position of intersection being an intersection point, and an extending direction of the intersection point to the axis being a central axis, a forward angle being formed between the first forward running direction and the central axis, a reverse angle being formed between the first reverse running direction and the central axis, and an absolute value of the forward angle and an absolute value of the reverse angle being equal.
4. The oxidizer injector for motor as claimed in claim 1, wherein the absolute value of the forward angle and the absolute value of the reverse angle are between 20 and 80 degrees.
5. The oxidizer injector for motor as claimed in claim 2, wherein the absolute value of the forward angle and the absolute value of the reverse angle are between 20 and 80 degrees.
6. The oxidizer injector for motor as claimed in claim 3, wherein the absolute value of the forward angle and the absolute value of the reverse angle are between 20 and 80 degrees.
7. The oxidizer injector for motor as claimed in claim 1, wherein the body has an inner wall surface facing the feed passage, an injection angle is formed between each of the forward runners and the inner wall surface, as well as between each of the reverse runners and the inner wall surface, the injection angle is located on a side close to the combustion chamber, and the injection angle is between 20 and 90 degrees.
8. The oxidizer injector for motor as claimed in claim 2, wherein the body has an inner wall surface facing the feed passage, an injection angle is formed between each of the forward runners and the inner wall surface, as well as between each of the reverse runners and the inner wall surface, the injection angle is located on a side close to the combustion chamber, and the injection angle is between 20 and 90 degrees.
9. The oxidizer injector for motor as claimed in claim 3, wherein the body has an inner wall surface facing the feed passage, an injection angle is formed between each of the forward runners and the inner wall surface, as well as between each of the reverse runners and the inner wall surface, the injection angle is located on a side close to the combustion chamber, and the injection angle is between 20 and 90 degrees.
10. The oxidizer injector for motor as claimed in claim 1, wherein the combustion chamber has a bulkhead surrounding and defining a combustion port, one end of the bulkhead is disposed with an oxidizer injector, and another end opposite to the oxidizer injector is disposed with a nozzle, a direction of the oxidizer injector extending to the nozzle is an axis; a solid fuel segment is installed in the combustion port and located on the bulkhead, on the solid fuel segment is disposed with a plurality of protrusions along the axis, the protrusion has a protrusion top surface, and a first distance is between the protrusion top surface and the bulkhead, a recess is formed between the each two protrusions, the recess has a recess top surface, a second distance is between the recess top surface and the bulkhead, and the first distance is greater than the second distance.
11. The oxidizer injector for motor as claimed in claim 2, wherein the combustion chamber has a bulkhead surrounding and defining a combustion port, one end of the bulkhead is disposed with an oxidizer injector, and another end opposite to the oxidizer injector is disposed with a nozzle, a direction of the oxidizer injector extending to the nozzle is an axis; a solid fuel segment is installed in the combustion port and located on the bulkhead, on the solid fuel segment is disposed with a plurality of protrusions along the axis, the protrusion has a protrusion top surface, and a first distance is between the protrusion top surface and the bulkhead, a recess is formed between the each two protrusions, the recess has a recess top surface, a second distance is between the recess top surface and the bulkhead, and the first distance is greater than the second distance.
12. The oxidizer injector for motor as claimed in claim 3, wherein the combustion chamber has a bulkhead surrounding and defining a combustion port, one end of the bulkhead is disposed with an oxidizer injector, and another end opposite to the oxidizer injector is disposed with a nozzle, a direction of the oxidizer injector extending to the nozzle is an axis; a solid fuel segment is installed in the combustion port and located on the bulkhead, on the solid fuel segment is disposed with a plurality of protrusions along the axis, the protrusion has a protrusion top surface, and a first distance is between the protrusion top surface and the bulkhead, a recess is formed between the each two protrusions, the recess has a recess top surface, a second distance is between the recess top surface and the bulkhead, and the first distance is greater than the second distance.
13. The oxidizer injector for motor as claimed in claim 10, wherein the nozzle has a nozzle throat, the nozzle throat has a radial length extending along a radial direction, a length of the first distance is 10% to 50% of the radial length.
14. The oxidizer injector for motor as claimed in claim 11, wherein the nozzle has a nozzle throat, the nozzle throat has a radial length extending along a radial direction, a length of the first distance is 10% to 50% of the radial length.
15. The oxidizer injector for motor as claimed in claim 12, wherein the nozzle has a nozzle throat, the nozzle throat has a radial length extending along a radial direction, a length of the first distance is 10% to 50% of the radial length.
16. The oxidizer injector for motor as claimed in claim 10, wherein each of the protrusion top surfaces respectively has a first length along the extending direction, and one end of the combustion chamber extends to another end is a second length, and a total length of the first lengths is 5% to 25% of a total length of the second length.
17. The oxidizer injector for motor as claimed in claim 11, wherein each of the protrusion top surfaces respectively has a first length along the extending direction, and one end of the combustion chamber extends to another end is a second length, and a total length of the first lengths is 5% to 25% of a total length of the second length.
18. The oxidizer injector for motor as claimed in claim 12, wherein each of the protrusion top surfaces respectively has a first length along the extending direction, and one end of the combustion chamber extends to another end is a second length, and a total length of the first lengths is 5% to 25% of a total length of the second length.
19. The oxidizer injector for motor as claimed in claim 10, wherein the absolute value of the forward angle and the absolute value of the reverse angle are between 20 and 80 degrees; the body has an inner wall surface facing the feed passage, an injection angle is formed between each of the forward runners and the inner wall surface, as well as between each of the reverse runners and the inner wall surface, the injection angle is located on a side close to the combustion chamber, and the injection angle is between 20 and 90 degrees.
20. The oxidizer injector for motor as claimed in claim 11, wherein the absolute value of the forward angle and the absolute value of the reverse angle are between 20 and 80 degrees; the body has an inner wall surface facing the feed passage, an injection angle is formed between each of the forward runners and the inner wall surface, as well as between each of the reverse runners and the inner wall surface, the injection angle is located on a side close to the combustion chamber, and the injection angle is between 20 and 90 degrees.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE INVENTION
[0033] The foregoing and other technical contents, features and effects of the present invention to achieve the above objective will be clearly presented in the following detailed description of the preferred embodiments with reference to the drawings.
[0034] Referring to
[0035] A body 30 has a feed passage 31 as well as a first runner assembly 32 and a second runner assembly 33 communicating with the feed passage 31. The feed passage 31 has an axis 311, the first runner assembly 32 and the second runner assembly 33 are sequentially arranged along the axis 311. The first runner assembly 32 has a plurality of forward runners 321, and the second runner assembly 33 has a plurality of reverse runners 331, each of the forward runners 321 is disposed along a forward running direction U, and each of the reverse runners 331 is disposed along a reverse running direction U. The first forward running direction U and the first reverse running direction U extend and a position of intersection is an intersection point A, as shown in
[0036] In particular, the absolute value of the forward angle 1 and the absolute value of the reverse angle 2 are between 20 and 80 degrees to obtain an optimum combustion efficiency.
[0037] In a first embodiment, quantities of the first runner assembly 32 and the second runner assembly 33 are plural, and each of the first runner assemblies 32 and each of the second runner assemblies 33 are arranged in a staggered manner along an extending direction of the axis 311.
[0038] Referring to
[0039] In particular, referring to
[0040] Please refer to
[0041] The above is the structural configuration and the connection relationship of the first embodiment and the second embodiment of the present invention, and the mode of use of the present invention is as follows.
[0042] Referring to
[0043] In particular, referring to
[0044] Referring to
[0045] Referring to
[0046] The solid fuel segment 50 is installed in the combustion port 21 and located on the bulkhead 22, on the solid fuel segment 50 is disposed with a plurality of protrusions 51 along the axis 311, the protrusion 51 has a protrusion top surface 511, a first distance M1 is between the protrusion top surface 511 and the bulkhead 22, and a recess 52 is formed between the each two protrusions 51, the recess 52 has a recess top surface 521, a second distance M2 is between the recess top surface 521 and the bulkhead 22, and the first distance M1 is greater than the second distance M2. Each of the protrusions 51 respectively has a diffusion flame surface 512 facing the nozzle 40, and a flame holding hot-gas region 53 is formed between each of the diffusion flame surfaces 512 and the connected recess top surface 521, respectively.
[0047] When the propellant mixture is burned in the combustion chamber 21, since the solid fuel segment 50 has the protrusions 51, when the propellant mixture passes through the flame holding hot-gas region 53, eddies are formed in the flame holding hot-gas region 53, so that the propellant mixture has a better mixing and combustion efficiency as it passes through the flame holding hot-gas region 53, thereby allowing the solid fuel segment 50 to have an even regression rate.
[0048] Preferably, the nozzle 40 has a nozzle throat 41, the nozzle throat 41 has a radial length W1 extending along a radial direction, and a length of the first distance M1 is 10% to 50% of the radial length W1.
[0049] Preferably, each of the protrusion top surfaces 511 respectively has a first length N1 along the extending direction, and one end of the combustion chamber 20 extends to another end is a second length N2, and a total length of the first lengths N1 is 5% to 25% of a total length of the second length N2.
[0050] In summary, the above embodiments and drawings are merely the preferred embodiments of the present invention, and the scope of implementation of the present invention is not limited thereto. In other words, all the equivalent changes and modifications made according to the appended claims shall still fall within the scope covered by the appended claims of the present invention.