COMPRESSOR, AIR CONDITIONING SYSTEM AND VEHICLE
20210260965 · 2021-08-26
Assignee
Inventors
Cpc classification
F04C19/004
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C18/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C29/0007
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0096
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60H1/3223
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00392
PERFORMING OPERATIONS; TRANSPORTING
B60H1/00
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present disclosure discloses a compressor, an air conditioning system and a vehicle. The compressor comprises a compression cavity, and further comprises a flash cavity capable of flashing a liquid refrigerant, and a communicating passage that communicates a flash cavity gas outlet of the flash cavity and an enthalpy increasing gas supply port of the compression cavity; the flash cavity is provided with an inlet and a liquid outlet, the inlet of the flash cavity is configured to be communicated with an outlet of a condenser, and the liquid outlet of the flash cavity is configured to be communicated with an inlet of an evaporator. The air conditioning system comprises the compressor, the evaporator, the condenser, a flasher, and various pipelines for connecting the entire system. The compressor comprises the flash cavity with a flash function, so that the entire enthalpy increasing system is simpler, the space for an additional flasher structure is saved, and the enthalpy increasing system is more suitable for a vehicle-mounted air conditioning system with a limited space. The present disclosure also discloses a vehicle, particularly an electric vehicle, using the air conditioning system.
Claims
1: A compressor, comprising: a compression cavity having an enthalpy increasing gas supply port; a flash cavity for flashing a liquid refrigerant, having a flash cavity inlet for communicating with an outlet of a condenser, a flash cavity gas outlet, and a flash cavity liquid outlet for communicating with an inlet of an evaporator; and a communicating passage communicating with the flash cavity gas outlet of the flash cavity and the enthalpy increasing gas supply port of the compression cavity.
2: The compressor according to claim 1, wherein the flash cavity is adjacent to the compression cavity, and the flash cavity and the compression cavity are separated by a common side wall.
3: The compressor according to claim 2, wherein the communicating passage is arranged on the common side wall.
4. (canceled)
5: The compressor according to claim 1, wherein the outer wall of the body of the compressor forms a part of the wall of the flash cavity.
6. (canceled)
7: The compressor according to claim 1, wherein the compressor is an electric compressor, and the flash cavity and a drive motor of the compressor are arranged on two sides of the compression cavity respectively.
8: The compressor according to claim 1, wherein the compressor is a scroll compressor having a body, and the body is provided with an inflow port, the compression cavity, a discharge port and the flash cavity; the inflow port, the discharge port and the flash cavity communicate with the compression cavity; wherein the compression cavity is configured to compress a first fluid entering via the inflow port; and the flash cavity is configured to produce a second fluid by flashing and deliver the second fluid to the compression cavity for compression.
9: The compressor according to claim 8, wherein the body comprises a static scroll plate, a dynamic scroll plate and a shell, the static scroll plate is provided with a first end plate and a first spiral scroll extending outward from the first end plate, and the dynamic scroll plate is provided with a second end plate and a second spiral scroll extending outward from the second end plate; the first spiral scroll and the second spiral scroll are matched, and when the dynamic scroll plate rotates relative to the static scroll plate, a plurality of mobile cavities being the compression cavity are defined between the first spiral scroll and the second spiral scroll; the static scroll plate and the dynamic scroll plate are arranged inside the shell, and the flash cavity is arranged on at least one of the shell and the static scroll plate.
10: The compressor according to claim 9, wherein the shell comprises a first cover and a second cover that are detachably connected, the first cover is located on a side of the static scroll plate where the first spiral scroll is not arranged, and the flash cavity is arranged on the first cover.
11: The compressor according to claim 9, wherein the shell comprises a first cover, a second cover and a sealing cover plate that are detachably connected, the first cover is located on a side of the static scroll plate where the first spiral scroll is not arranged, and the sealing cover plate is arranged on a side of the first cover away from the second cover; a part of the flash cavity is arranged on the first cover, and the other part of the flash cavity is arranged on the sealing cover plate; or, the flash cavity is arranged on the first cover and has an opening, and the sealing cover plate closes the opening of the flash cavity.
12: The compressor according to claim 8, wherein a gas-liquid separation structure inclined with respect to the flow direction of the second fluid is arranged in the flash cavity to separate the liquid entrained in the second fluid.
13: The compressor according to claim 12, wherein the gas-liquid separation structure comprises baffle, and the extending direction of the baffle is at an obtuse or right angle to the flow direction of the second fluid.
14: The compressor according to claim 13, wherein the gas-liquid separation structure comprises at least two baffles, and the two baffles are arranged in a splayed shape.
15: The compressor according to claim 12, wherein the gas-liquid separation structure comprises two groups of baffles staggered to form a split-flow passage.
16: The compressor according to claim 9, wherein the communicating passage is arranged in the first end plate of the static scroll plate, and the flash cavity is communicated with the compression cavity by the communicating passage.
17-18. (canceled)
19: The compressor according to claim 8, wherein the compression cavity is provided with an axial through hole communicating with the flash cavity to form the enthalpy increasing gas supply port.
20: The compressor according to claim 19, wherein a first opening of the flash cavity being the flash cavity inlet is arranged at the top end of the flash cavity to introduce a fluid to be flashed, a second opening of the flash cavity being the flash cavity liquid outlet is arranged at the bottom end of the flash cavity to discharge the liquid that is not flashed, and a third opening of the flash cavity being the flash cavity gas outlet is arranged at the top end of the flash cavity to discharge the flashed second fluid; and the third opening of the flash cavity communicates with the compression cavity.
21: An air conditioning system, comprising a compressor according to claim 1, a condenser and an evaporator, the flash cavity inlet communicating to the outlet of the condenser, and the flash cavity liquid outlet communicating to the inlet of the evaporator.
22: The air conditioning system according to claim 21, further comprising a fluid supply component in communication with the flash cavity, wherein the flash cavity is configured to flash a fluid supplied by the fluid supply component to produce a second fluid.
23: A vehicle, comprising an air conditioning system according to claim 21.
24: The vehicle according to claim 23, wherein the vehicle is a new energy vehicle.
25. (canceled)
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] In order to describe the technical solutions in the embodiments of the present disclosure or in the prior art more clearly, the accompanying drawings required for describing the embodiments or the prior art are briefly introduced below. Apparently, the accompanying drawings in the following description show only some embodiments of the present disclosure, and a person of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
[0037]
[0038]
[0039]
[0040]
[0041]
[0042]
[0043]
[0044]
[0045]
[0046]
[0047]
[0048]
[0049]
[0050]
[0051]
[0052]
[0053]
[0054] Reference signs in the prior art of
[0055] 01, compressor; 02, condenser; 03, evaporator; 04, system pipeline; 05, flasher; Ps, suction side refrigerant; Pd, exhaust side refrigerant; a, flasher gas outlet; b, enthalpy increasing gas supply port; Pm, flash intermediate pressure.
[0056] Reference signs in
[0057] 11, compressor; 12, condenser; 13, evaporator; 14, system pipeline; 16, drive motor; 17, compression cavity; 18, flash cavity; 19, communicating passage; P1, condenser outlet high-pressure refrigerant; P2, flash cavity cooled refrigerant.
[0058] Reference signs in
[0059] 1, first cover; 2, second cover; 3, static scroll plate; 4, dynamic scroll plate; 5, upper bracket; 6, drive motor; 7, drive controller; 8, auxiliary bearing; 9, crankshaft 10, main bearing; 11, tail bearing; 12, fixing assembly bolt; 13, sealing cover plate; 14, 0 ring; 15, sealing thread plug; 16, fixing bolt; 17, condenser access pipe; 18, refrigerant liquid (condenser effluent); 19, refrigerant liquid (flash cavity effluent); 20, refrigerant gas flowing into the compression cavity; 21, scroll compressor; 22, condenser; 23, evaporator; 31, first end plate; 32, first spiral scroll; 33, communicating passage; 41, second end plate; 42, second spiral scroll; 100, inflow port; 101, third opening; 102, gas-liquid separation structure; 103, first opening; 104, second opening; 105, extending passage; 200, compression cavity; 211, gas-liquid mixed refrigerant; 222, liquid refrigerant; 300, flash cavity; 301, axial passage; 302, radial passage; 303, through hole.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0060] In order to meet the requirement for ultra-low temperature rapid heating of an air conditioning system for an electric vehicle, the present disclosure proposes an enthalpy increasing air conditioning system that is more suitable for an electric vehicle, where the integrated design of a vehicle-mounted electric compressor and an intermediate cooling flash device simplifies the vehicle-mounted enthalpy increasing air conditioning system and improves the reliability of the system.
[0061] A clear and complete description will be made to the technical solutions in the embodiments of the present disclosure below in combination with the accompanying drawings in the embodiments of the present disclosure. Apparently, the embodiments described are only part of the embodiments of the present disclosure, not all of them. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present disclosure without creative efforts shall fall within the protection scope of the present disclosure.
[0062] The air conditioning system provided by the embodiment shown in
[0063] the compressor 11 further includes a flash cavity 18 capable of flashing a liquid refrigerant, and a communicating passage 19 that communicates a flash cavity gas outlet of the flash cavity 18 and an enthalpy increasing gas supply port of the compression cavity 17;
[0064] a flash cavity inlet of the flash cavity 18 communicates with an outlet of the condenser 12, and a flash cavity liquid outlet of the flash cavity 18 communicates with an inlet of the evaporator 13, referring to
[0065] Working principle: Low-pressure refrigerant gas evaporated from the evaporator 13 is continuously sucked into the compressor 11 for compression. The low-pressure refrigerant gas Ps is compressed into high-temperature and high-pressure refrigerant gas Pd and discharged from the compressor 11 into the condenser 12. The high-temperature and high-pressure refrigerant gas is isobarically cooled in the condenser 12 and then enters the flash cavity 18 of the compressor 11. The liquid refrigerant is flashed within the flash cavity 18. The flashed refrigerant gas directly enters the compression cavity 17 through the communicating passage 19 to achieve an effect of enthalpy increase by cooling on the compression cavity 17. The refrigerant liquid that has not been flashed enters the evaporator 13 for evaporative heat exchange, and the low-pressure refrigerant gas after the evaporative heat exchange is still sucked into the compression cavity 17 of the compressor 11 for compression. Thus, the refrigerant is circulated in the air conditioning system, and the mechanical energy is continuously used for doing work and converted into heat energy.
[0066] Based on the above technical solution, the air conditioning system according to the embodiment of the present disclosure has the advantages that the integrated design of the flasher device and the compressor 11 does not need an additional flasher structure in the system, reduces the space and simplifies the air conditioning system; at the same time, the flashed gas can quickly enter the compression cavity 17, thereby reducing the pressure loss and heat transfer temperature rise in the intermediate pipeline, improving the gas supply enthalpy increasing efficiency, and further improving the low-temperature heating performance of the compressor; and the flash structure arranged on the body of the compressor 11 and the compressor 11 are fixedly connected to the vehicle together, thereby achieving better vibration resistance performance than the conventional air conditioning system with a flasher structure, and improving the reliability of the entire vehicle-mounted enthalpy increasing system. This design is particularly suitable for vehicle-mounted enthalpy increasing air conditioning systems.
[0067] Preferably, the flash cavity 18 is adjacent to the compression cavity 17, and the two cavities are separated by a common side wall. In this way, the structure of the air conditioning system is further simplified, and the distance between the two cavities is shortened, so that the communicating passage 19 is as short as possible, the pressure loss and heat transfer temperature rise in the intermediate pipeline are reduced, the gas supply enthalpy increasing efficiency is improved, and the low-temperature heating performance of the compressor is further improved.
[0068] In a specific embodiment provided by this solution, the communicating passage 19 is arranged on the common side wall.
[0069] In order to further optimize the above technical solution, the common side wall is provided with a through hole as the communicating passage 19, and the communicating passage 19 directly communicates with the flash cavity gas outlet and the enthalpy increasing gas supply port of the compression cavity 17, so that the intermediate cooling gas flashed in the flash cavity 18 can directly enter the compression cavity 17, and the enthalpy increasing cooling effect is better.
[0070] Preferably, the outer wall of the body of the compressor 11 forms part of the wall of the flash cavity 18. The connection of pipes in the flash cavity 18 is facilitated while the outer wall of the body is fully utilized to simplify the structure. As shown in
[0071] In order to further optimize the above technical solution, the compressor 11 has an aluminum alloy body. The characteristic of machinability of the aluminum alloy body of the compressor is fully utilized, and the aluminum alloy open structure is more machinable than the conventional steel plate cylinder full-closed structure. The compressor of the aluminum alloy body structure facilitates the integrated design of the external flasher structure on the compressor, and can fully exert the advantage of configuration of the integrated structure.
[0072] In a specific embodiment provided by this solution, the compressor 11 is an electric compressor including a drive motor 16 that drives a pump body for compression, the compression cavity 17 is located in the middle, and the flash cavity 18 and the drive motor 16 are respectively located on two sides thereof, so that the structure is compact.
[0073] The enthalpy increasing air conditioning system for an electric vehicle according to the present disclosure mainly includes four major components: a compressor 11, a condenser 12, an evaporator 13, and a system pipeline 14. The compressor 11 integrates suction, compression, exhaust and intermediate flash, so that the entire enthalpy increasing system has a compact structure and high reliability. The integrated compressor 11 of the present disclosure includes: a drive motor 16 for driving a pump body for compression, a compression cavity 17 for compressing a refrigerant, a flash cavity 18 capable of flashing a liquid refrigerant, and a communicating passage 19 for communicating the flash cavity and the compression cavity.
[0074] The enthalpy increasing air conditioning system in the prior art as shown in
[0075] Compared with the air conditioning system of the prior art, the air conditioning system according to the embodiment of the present disclosure has the following characteristics:
[0076] 1. Lightweight of Air Conditioning System
[0077] The vehicle-mounted air conditioning system is different from a household or commercial air conditioning system, its internal installation space is limited and the system is required to be as light as possible, this requirement is particularly strict for an electric vehicle, and the battery needs to provide power for both the drive motor and the vehicle-mounted air conditioning system. Therefore, the electric vehicle requires a lighter body configuration to improve the endurance. In order to reduce the weight, the compressor for the electric vehicle is of an aluminum alloy open structure, which is more machinable than the conventional steel plate cylinder full-closed structure. The compressor of the aluminum alloy body structure facilitates the integrated design of the external flasher structure on the compressor, and can fully exert the advantage of configuration of the integrated structure. Compared with the existing system, the vehicle-mounted air conditioning system shown in
[0078] 2. Short Gas Supply Enthalpy Increasing Passage Provides More Stable Gas Supply Effect, and More Comfortable Indoor Temperature.
[0079] When the gas supply enthalpy increasing pipeline that communicates the flasher gas outlet a and the compressor enthalpy increasing gas supply port b as shown in
[0080] 3. Good Vibration Resistance of the Enthalpy Increasing System with the Integrated Structure Design
[0081] Compared with the household or commercial air conditioning system, the vehicle-mounted air conditioning system vibrates violently, so the requirement on the vibration resistance of the vehicle-mounted air conditioning system is high. In the integrated structure design of the flasher structure and the compressor body adopted by the present disclosure, as shown in
[0082]
[0083] An embodiment of the present disclosure also provides a vehicle, including an air conditioning system. As a core improvement, the air conditioning system is the above-described air conditioning system. The vehicle is particularly a new energy vehicle, especially an electric vehicle.
[0084] The design is more suitable for an electric vehicle-mounted enthalpy increasing air conditioning system, and the integrated design of the vehicle-mounted electric compressor and the intermediate cooling flash device simplifies the vehicle-mounted enthalpy increasing air conditioning system, improves the reliability of the system, and meets the requirement for ultra-low temperature rapid heating of the air conditioning system for the electric vehicle.
[0085] In summary, the embodiment of the present disclosure provides an air conditioning system, including an electric compressor, an evaporator, a condenser, a flasher, and various pipelines connecting the entire system, wherein the flasher structure is integrated with the electric compressor, and the actual main components only include the compressor, the evaporator, the condenser and the various pipelines connecting the entire system. The electric compressor constituting the system includes not only a drive motor and a compression cavity, but also a flash cavity having a flash function. The integrated compressor structure simplifies the entire enthalpy increasing system, saves the space for an additional flasher, and is more suitable for a vehicle-mounted air conditioning system with a limited space.
[0086] An embodiment of the present disclosure also provides a vehicle, particularly an electric vehicle, using the above-described air conditioning system.
[0087] The technical solutions of some other embodiments provided by the present disclosure are described in detail below with reference to
[0088] Referring to
[0089] The inflow port 100 serves as a suction port, and the discharge port serves as an exhaust port. The conventional suction, compression and exhaust functions of the scroll compressor are realized by the inflow port 100, the discharge port and the compression cavity 200.
[0090] The scroll compressor is provided with two cavities: the compression cavity 200 and the flash cavity 300. The compression cavity 200 is located on a main circulation loop of the air conditioning system, and the flash cavity 300 is used for enthalpy increase by gas replenishment on the compression cavity 200. By In a possible way implementation, the liquid entering the flash cavity 300 is from a condenser 22 of the air conditioning system. By In another possible way implementation, a liquid supply component is separately provided for the flash cavity 300. In this embodiment, the previous way former implementation is described in detail as an example.
[0091] The communication positions of the flash cavity 300 and the compression cavity 200 are preferably as follows: the flash cavity 300 communicates with a mobile cavity formed after the scroll compressor sucks gas. That is, the second fluid delivered from the flash cavity 300 to the compression cavity 200 does not participate in the suction process of the scroll compressor, does not serve as part of the sucked gas (i.e., the first fluid), but directly enters the compression cavity 200 and is compressed.
[0092] The size of the flash cavity 300 is related to the displacement of the compressor.
[0093] According to the above technical solution, the integrated design of the flash cavity 300 of the flasher and the scroll compressor reduces the space occupied by an additional flasher in the air conditioning system, and simplifies the air conditioning system; at the same time, the flashed gas directly enters the compression cavity 200, thereby reducing the pressure loss and heat transfer temperature rise in the intermediate pipeline, improving the gas supply enthalpy increasing efficiency, and further improving the low-temperature heating performance of the compressor. Meanwhile, the flash cavity arranged on the compressor body is fixedly connected to the vehicle together with the compressor, so that better vibration resistance performance is achieved in comparison with the conventional air conditioning system with a flasher, and the reliability of the entire vehicle-mounted enthalpy increasing system is improved.
[0094] The flash cavity 300 can be formed by casting or machining, so that various gas-liquid separation structures are arranged inside the flash cavity 300 more conveniently, the phenomenon that the enthalpy increasing gas entrains liquid is effectively reduced, and the reliability of the compressor is improved. The flash cavity arranged on the body can be used for flashing to produce enthalpy increasing gas, and can also be configured on the conventional enthalpy increasing system for gas-liquid separation of the enthalpy increasing gas, thereby expanding the application range of the compressor.
[0095] Referring to
[0096] In this embodiment, the flash cavity 300 is arranged on the shell as an example, specifically, referring to
[0097] In order to ensure that the second fluid entering the compression cavity 200 does not entrain liquid or entrains as little liquid as possible, optionally, referring to
[0098] After the second fluid entraining the liquid flows through the gas-liquid separation structure 102, the liquid is attached to the gas-liquid separation structure 102 and separated. The separated pure second fluid is delivered to the compression cavity 200 of the scroll compressor for enthalpy increase by gas replenishment.
[0099] Based on the above description, the flash cavity 300 can be completely formed inside the first cover 1, and no other opening is formed except the fluid inlet and outlet.
[0100] Alternatively, an open structure is formed on the first cover 1, and the opening is closed by a sealing cover plate 13 and fixing bolts 16, as shown in
[0101] Alternatively, a part of the flash cavity 300 is formed on the first cover 1, and the other part is formed on the sealing cover plate 13. The first cover 1 and the sealing cover plate 13 jointly form the entire flash cavity 300, as shown in
[0102] The structure and position of the gas-liquid separation structure 102 are described below.
[0103] In
[0104] Referring to
[0105] Referring to
[0106] Referring to
[0107] The communication relationship between the flash cavity 300 and the compression cavity 200 is described below.
[0108] Referring to
[0109] Referring to
[0110] The fluid to be flashed is liquid, the first opening 103 is arranged at the top end of the flash cavity 300, and in the process that the fluid to be flashed flows from the top of the flash cavity 300 to the bottom of the flash cavity 300, in addition to flashing, certain gas-liquid separation can be realized due to different gravities of gas and liquid. The remaining liquid after flashing gathers at the bottom of the flash cavity 300 and then is discharged via the second opening 104 at the bottom of the flash cavity 300. The flashed second fluid is gas, and the gas gathers at the upper part of the flash cavity 300 and is then discharged into the compression cavity 200 via the third opening 101 at the top of the flash cavity 300.
[0111] Specifically, referring to
[0112] Referring to
[0113] Referring to
[0114] An example is described below with reference to the accompanying drawings.
[0115] The scroll compressor provided by the embodiment of the present disclosure has the same suction-compression-exhaust process as the conventional scroll compressor. The dynamic scroll plate 4 is supported by an upper bracket 5, the crankshaft 9 drives the dynamic scroll plate 4 to rotate under the drive of the drive motor 6, the compression cavity 200 varying periodically is formed between the dynamic scroll plate 4 and the static scroll plate 3, and the refrigerant gas is subjected to the process of suction, compression and exhaust in the compression cavity 200. The drive controller 7 controls the rotational speed of the drive motor 6. An auxiliary bearing 8, a main bearing 10 and a tail bearing 11 jointly support the crankshaft 9. The first cover 1 is in connection with the second cover 2 by fixing assembly bolts 12. In
[0116] In the present embodiment, the scroll compressor is arranged in the air conditioning system as an example. As shown in
[0117] The liquid refrigerant coming out of the condenser 22 is flashed in the flash cavity 300, the liquid refrigerant that has not been flashed continues to flow to the evaporator 23 through the second opening 104, the flashed and cooled refrigerant gas enters the compression cavity 200 through the third opening 101, and the liquid refrigerant is subjected to the process of flashing, cooling and enthalpy increasing in the flash cavity 300.
[0118] The static scroll plate 3 has a communicating passage 33 hermetically connected to the third opening 101 of the flash cavity 300, the communicating passage 33 is formed in the first end plate 31 of the static scroll plate 3, one end of the communicating passage 33 is connected to the third opening 101, and the other end is connected to the through hole 303 at the specified position of the compression cavity 200 to introduce the refrigerant in the flash cavity 300 into the compression cavity 200 within a certain specified range of the compressor crankshaft angle.
[0119] Referring to
[0120] Referring to
[0121] Referring to
[0122] In
[0123] The flashing, cooling and enthalpy increasing process according to the embodiment of the present disclosure is achieved only by the flash cavity 300 and the communicating passage 33, so that the intermediate pipeline and structural arrangement are omitted. As shown in
[0124] In
[0125] As shown in
[0126] As shown in
[0127] As shown in
[0128] Another embodiment of the present disclosure provides an air conditioning system, including the scroll compressor 21 provided by any technical solution of the present disclosure.
[0129] A fluid supply component may be separately provided to supply fluid to the flash cavity 300. That is, the air conditioning system further includes a fluid supply component that communicates with the flash cavity 300 of the scroll compressor 21, and the flash cavity 300 is configured to flash the fluid supplied by the fluid supply component to form the second fluid.
[0130] Alternatively, the liquid in the air conditioning system is supplied to the flash cavity 300. Specifically, the first opening 103 of the flash cavity 300 communicates with the outlet of the condenser 22, and a condenser access pipe 17 communicates the condenser 22 to the first opening 103. The second opening 104 of the flash cavity 300 communicates with the inlet of the evaporator 23, and the third opening 101 of the flash cavity 300 communicates with the compression cavity 200 of the scroll compressor.
[0131] A further embodiment of the present disclosure provides a new energy vehicle, including the air conditioning system provided by any technical solution of the present disclosure.
[0132] The embodiments in this specification are all described in a progressive manner. The description of each of the embodiments focuses on differences from other embodiments, and reference may be made to each other for the same or similar parts among respective embodiments.
[0133] The above descriptions of the disclosed embodiments enable those skilled in the art to implement or use the present disclosure. Various modifications to these embodiments are obvious to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present disclosure. Therefore, the present disclosure is not to be limited to these embodiments described herein, but conforms to the widest scope consistent with the principle and novelty disclosed herein.