MIXING DEVICE AND METHOD OF MAKING AND USING THE SAME
20180209382 ยท 2018-07-26
Inventors
- Mihai MICLEA-BLEIZIFFER (Worms, DE)
- Sascha Karstadt (Undenheim, DE)
- Urs HANIG (Stuttgart, DE)
- Christopher Thomas (Commerce, MI, US)
Cpc classification
B01F25/3143
PERFORMING OPERATIONS; TRANSPORTING
F02M26/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B29/0406
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/4331
PERFORMING OPERATIONS; TRANSPORTING
F02M26/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01F25/3141
PERFORMING OPERATIONS; TRANSPORTING
F02M26/05
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02M26/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M26/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A number of variations may include a product including a mixing device comprising a housing including a first fluid intake port, a fluid output port, a fluid flow conduit transversely connecting the first fluid intake port to the fluid output port, a second fluid intake port radially distal from the fluid flow conduit, and an at least partially annular second fluid flow compartment radially connecting the second fluid intake port to the fluid flow conduit, wherein the second fluid flow compartment is oriented to at least partially surround a portion of the fluid flow conduit and wherein the second fluid flow compartment is constructed and arranged to facilitate the mixing of incoming first fluid flow and incoming second fluid flow to create a fluid mixture that flows through the fluid flow conduit.
Claims
1. A product comprising: a mixing device comprising a housing including a first fluid intake port, a fluid output port, a fluid flow conduit transversely connecting the first fluid intake port to the fluid output port, a second fluid intake port radially distal from the fluid flow conduit, and an at least partially annular second fluid flow compartment radially connecting the second fluid intake port to the fluid flow conduit, wherein the second fluid flow compartment is oriented to at least partially surround a portion of the fluid flow conduit and wherein the second fluid flow compartment is constructed and arranged to facilitate the mixing of incoming first fluid flow and incoming second fluid flow to create a fluid mixture that flows through the fluid flow conduit.
2. A product as set forth in claim 1 wherein the second fluid flow compartment comprises a nozzle portion which provides controlled flow of the second fluid into the fluid flow conduit.
3. A product as set forth in claim 1 wherein the second fluid flow compartment further comprises a tongue portion comprising a region of decreased volume relative to a non-tongue portion of the second fluid flow compartment.
4. A product as set forth in claim 1 wherein the first fluid comprises air and/or the second fluid comprises exhaust gas.
5. A product as set forth in claim 1 wherein the mixing device is integrated into a compressor of a vehicle exhaust gas recirculation system.
6. The product as set forth in claim 1 wherein the mixing device further comprises a bend in the fluid flow conduit.
7. The product as set forth in claim 2 wherein the ratio of nozzle area in relation to second fluid intake port area is 75%+/25%.
8. The product as set forth in claim 2 wherein the nozzle width varies along the second fluid flow compartment.
9. The product as set forth in claim 2 wherein the nozzle comprises at least one vane to orient flow direction of the second fluid.
10. An EGR system comprising: a compressor and a mixing device comprising a housing including an air intake port, a mixed air/exhaust output port, a fluid flow conduit transversely connecting the air intake port to the mixed air/exhaust output port, an exhaust gas intake port radially distal from the fluid flow conduit, and an at least partially annular exhaust gas flow compartment radially connecting the exhaust gas intake port to the fluid flow conduit, wherein the exhaust gas flow compartment is oriented to at least partially surround a portion of the fluid flow conduit and wherein the exhaust gas flow compartment is constructed and arranged to facilitate incoming exhaust gas flow and incoming air flow to create a substantially uniform exhaust gas and air mixture that flows through the mixed air/exhaust output port and into the compressor and to facilitate condensation of liquid from the exhaust gas and air mixture as said mixture flows through the fluid flow conduit.
11. A system as set forth in claim 10 wherein the exhaust gas flow compartment comprises a nozzle portion which provides controlled flow of the exhaust gas into the fluid flow conduit.
12. A system as set forth in claim 10 wherein the exhaust flow compartment further comprises a tongue portion comprising a region of decreased volume relative to a non-tongue portion of the exhaust flow compartment.
13. A system as set forth in claim 10 wherein the mixing device is integrated into the compressor.
14. The system as set forth in claim 10 wherein the mixing device further comprises a bend in the fluid flow conduit.
15. The system as set forth in claim 11 wherein the ratio of nozzle area in relation to second fluid intake port area is 75%+/25%.
16. The system as set forth in claim 11 wherein the nozzle width varies along the second fluid flow compartment.
17. The system as set forth in claim 11 wherein the nozzle comprises at least one vane to orient flow direction of the exhaust gas.
18. A method comprising: providing a compressor comprising a turbine and a mixing device comprising a housing including an air intake port, a mixed air/exhaust output port, a fluid flow conduit transversely connecting the air intake port to the mixed air/exhaust output port, an exhaust gas intake port radially distal from the fluid flow conduit, and an at least partially annular exhaust gas flow compartment radially connecting the exhaust gas intake port to the fluid flow conduit, wherein the exhaust gas flow compartment is oriented to at least partially surround a portion of the fluid flow conduit; and flowing air and exhaust gas through the mixing device to facilitate a substantially uniform mixture of incoming exhaust gas flow and incoming air flow that flows through the mixed air/exhaust output port and into the compressor turbine and to facilitate condensation of liquid from the exhaust gas and air mixture as said mixtures flows through the fluid flow conduit.
19. A method as set forth in claim 18 wherein the exhaust gas flow compartment comprises a nozzle portion which provides controlled flow of the exhaust gas into the fluid flow conduit.
20. A method as set forth in claim 18 wherein the mixing device is integrated into the compressor.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Select examples of variations within the scope of the invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
DETAILED DESCRIPTION OF ILLUSTRATIVE VARIATIONS
[0015] The following description of the variations is merely illustrative in nature and is in no way intended to limit the scope of the invention, its application, or uses.
[0016]
[0017]
[0018]
[0019] In a number of variations, the EGR system 30 or mixing device 12 may help maximize engine system 8 efficiency by helping to optimize the mixture of exhaust gas and air to minimize condensation on the compressor 24 by moving the mixing of gas and air upstream of the compressor 24. In a number of variations, the mixing device 12 may provide a contact surface between the second fluid 204 and the first fluid 202 that is reduced causing condensation of humidity to be reduced. In a number of variations, the mixing device 12 may help facilitate condensation of liquid from the exhaust gas and air mixture as said mixture flows through the fluid flow conduit 118, which may help prevent condensation from being formed on or in the compressor 24. In a number of variations, the EGR system 30 or mixing device 12 may help maximize engine system 8 durability (for non-limiting example, compressor 24 durability) by more evenly distributing exhaust gas flow at a compressor inlet. In a number of variations, the EGR system 30 or mixing device 12 be controlled by the ECU 150 such that the flow capacity of the exhaust gas recirculated into the air intake side 15 be optimized to help maximize engine system 8 efficiency by limiting backpressure and energy/pressure losses, and help optimize the natural driving P of exhaust gas from the exhaust side 17 to the air intake side 15 to help maximize engine system 8 efficiency. In a number of variations, the EGR system 30 or mixing device 12 may be controlled by the ECU 150 such that the flow capacity of the exhaust gas recirculated into the air intake side 15 may be optimized to help minimize engine pumping work done on the exhaust gas to help maximize engine system 8 efficiency. In a number of variations, use of the EGR system 30 or mixing device 12 in a vehicle may provide reduced brake specific fuel consumption (BSFC).
[0020] In a number of variations, the second fluid flow compartment 170 may include a nozzle 172. In a number of variations, the nozzle 172 may control flow of the second fluid 204 into the fluid flow conduit 118. In a number of variations, as shown in
[0021] In a number of variations, as shown in
[0022] In a number of variations, as shown in
[0023] In a number of variations, as shown in
[0024] In a number of variations, the ECU 150 may receive and process input from any component within the engine system 8 or EGR system 30 through at least one sensor device 900 in light of stored instructions and/or data, determine a condition through at least one calculation, and transmit output signals to various actuators, including, but not limited to, the mixing device 12, the LP-EGR valve 48, inlet swirl throttle 90, the HP-EGR valve 42, the HP-EGR throttle 50, or the engine 14 itself. In a number of variations, the data acquisition module ECU 150 may include, for example, an electrical circuit, an electronic circuit or chip, and/or a computer. In an illustrative computer variation, ECU 150 generally may include one or more processors, or memory storage units that may be coupled to the processor(s), and one or more interfaces electrically coupling the processor(s) to one or more other devices, including at least one of the mixing device 12, the LP-EGR valve 48, inlet swirl throttle 90, the HP-EGR valve 42, the HP-EGR throttle 50, or the engine 14 itself, or to a different component of a vehicle. The processor(s) and other powered system devices or to the at least one sensor device 900 may be supplied with electricity by a power supply, for example, a battery, other fuel cells, a vehicle engine 14, other vehicle power component, or the like. The processor(s) may execute instructions or calculations that provide at least some of the functionality for the sensor device 900 and method 800. As used herein, the term instructions may include, for example, control logic, computer software and/or firmware, programmable instructions, or other suitable instructions. The processor may include, for example, one or more microprocessors, microcontrollers, application specific integrated circuits, programmable logic devices, field programmable gate arrays, and/or any other suitable type of electronic processing device(s).
[0025] Also, in a number of variations, the ECU 150 may be configured to provide storage for data received by the at least one sensor device 900 monitoring the mixing device 12, the LP-EGR valve 48, inlet swirl throttle 90, the HP-EGR valve 42, the HP-EGR throttle 50, or the engine 14 itself, or to a different component of a vehicle, or the like, for processor-executable instructions or calculations. The data, calculations, and/or instructions may be stored, for example, as look-up tables, formulas, algorithms, maps, models, and/or any other suitable format. The memory may include, for example, RAM, ROM, EPROM, and/or any other suitable type of storage article and/or device.
[0026] Further, in a number of variations, the interfaces may include, for example, analog/digital or digital/analog converters, signal conditioners, amplifiers, filters, other electronic devices or software modules, and/or any other suitable interfaces. The interfaces may conform to, for example, RS-232, parallel, small computer system interface, universal serial bus, CAN, MOST, LIN, FlexRay, and/or any other suitable protocol(s). The interfaces may include circuits, software, firmware, or any other device to assist or enable the ECU 150 in communicating with the sensors 900 or devices of the engine system 8 or EGR system 30.
[0027] In a number of variations, the methods or parts thereof may be implemented in a computer program product including instructions or calculations carried on a computer readable medium for use by one or more processors to implement one or more of the method steps or instructions. The computer program product may include one or more software programs comprised of program instructions in source code, object code, executable code or other formats; one or more firmware programs; or hardware description language (HDL) files; and any program related data. The data may include data structures, look-up tables, or data in any other suitable format. The program instructions may include program modules, routines, programs, objects, components, and/or the like. The computer program may be executed on one processor or on multiple processors in communication with one another.
[0028] In a number of variations, the program(s) can be embodied on computer readable media, which can include one or more storage devices, articles of manufacture, or the like. Illustrative computer readable media include computer system memory, e.g. RAM (random access memory), ROM (read only memory); semiconductor memory, e.g. EPROM (erasable, programmable ROM), EEPROM (electrically erasable, programmable ROM), flash memory; magnetic or optical disks or tapes; and/or the like. The computer readable medium also may include computer to computer connections, for example, when data may be transferred or provided over a network or another communications connection (either wired, wireless, or a combination thereof). Any combination(s) of the above examples is also included within the scope of the computer-readable media. It is therefore to be understood that the method may be at least partially performed by any electronic articles and/or devices capable of executing instructions corresponding to one or more steps of the disclosed methods.
[0029] In a number of variations, a method 800 is shown. In a number of variations, the method 800 may include a step 802 of providing a compressor 24 comprising a turbine and a mixing device 12 comprising a housing 112 including an air intake port 114, a mixed air/exhaust output port 116, a fluid flow conduit 118 transversely connecting the air intake port 114 to the mixed air/exhaust output port 116, an exhaust gas intake port 120 radially distal from the fluid flow conduit 118, and an at least partially annular exhaust gas flow compartment 170 radially connecting the exhaust gas intake port 120 to the fluid flow conduit 118, wherein the exhaust gas flow compartment 120 may be oriented to at least partially surround a portion of the fluid flow conduit 118. In a number of variations, the method 800 may include a step 802 of flowing air 202 and exhaust gas 204 through the mixing device 12 to facilitate a substantially uniform mixture of incoming exhaust gas 204 flow and incoming air flow 202 that flows through the mixed air/exhaust output port 116 and into the compressor 24 turbine and to facilitate condensation of liquid from the exhaust gas and air mixture as said mixture flows through the fluid flow conduit 118.
[0030] The following description of variants is only illustrative of components, elements, acts, product and methods considered to be within the scope of the invention and are not in any way intended to limit such scope by what is specifically disclosed or not expressly set forth. The components, elements, acts, product and methods as described herein may be combined and rearranged other than as expressly described herein and still are considered to be within the scope of the invention.
[0031] Variation 1 may include a product that may include a mixing device comprising a housing including a first fluid intake port, a fluid output port, a fluid flow conduit transversely connecting the first fluid intake port to the fluid output port, a second fluid intake port radially distal from the fluid flow conduit, and an at least partially annular second fluid flow compartment radially connecting the second fluid intake port to the fluid flow conduit, wherein the second fluid flow compartment is oriented to at least partially surround a portion of the fluid flow conduit and wherein the second fluid flow compartment is constructed and arranged to facilitate the mixing of incoming first fluid flow and incoming second fluid flow to create a fluid mixture that flows through the fluid flow conduit.
[0032] Variation 2 may include a product as set forth in Variation 1 wherein the second fluid flow compartment comprises a nozzle portion which provides controlled flow of the second fluid into the fluid flow conduit.
[0033] Variation 3 may include a product as set forth in any of Variations 1-2 wherein the second fluid flow compartment further comprises a tongue portion comprising a region of decreased volume relative to a non-tongue portion of the second fluid flow compartment.
[0034] Variation 4 may include a product as set forth in any of Variations 1-3 wherein the first fluid comprises air and/or the second fluid comprises exhaust gas.
[0035] Variation 5 may include a product as set forth in any of Variations 1-4 wherein the mixing device is integrated into a compressor of a vehicle exhaust gas recirculation system.
[0036] Variation 6 may include a product as set forth in any of Variations 1-5 wherein the mixing device further comprises a bend in the fluid flow conduit.
[0037] Variation 7 may include a product as set forth in any of Variations 2-6 wherein the ratio of nozzle area in relation to second fluid intake port area is 75%+/25%.
[0038] Variation 8 may include a product as set forth in any of Variations 2-7 wherein the nozzle width varies along the second fluid flow compartment.
[0039] Variation 9 may include a product as set forth in any of Variations 9-8 wherein the nozzle comprises at least one vane to orient flow direction of the second fluid.
[0040] Variation 10 may include a EGR system that may include a compressor and a mixing device comprising a housing including an air intake port, a mixed air/exhaust output port, a fluid flow conduit transversely connecting the air intake port to the mixed air/exhaust output port, an exhaust gas intake port radially distal from the fluid flow conduit, and an at least partially annular exhaust gas flow compartment radially connecting the exhaust gas intake port to the fluid flow conduit, wherein the exhaust gas flow compartment is oriented to at least partially surround a portion of the fluid flow conduit and wherein the exhaust gas flow compartment is constructed and arranged to facilitate incoming exhaust gas flow and incoming air flow to create a substantially uniform exhaust gas and air mixture that flows through the mixed air/exhaust output port and into the compressor and to facilitate condensation of liquid from the exhaust gas and air mixture as said mixture flows through the fluid flow conduit.
[0041] Variation 11 may include a EGR system as set forth in Variation 10 wherein the exhaust gas flow compartment comprises a nozzle portion which provides controlled flow of the exhaust gas into the fluid flow conduit.
[0042] Variation 12 may include a EGR system as set forth in any of Variations 10-11 wherein the exhaust flow compartment further comprises a tongue portion comprising a region of decreased volume relative to a non-tongue portion of the exhaust flow compartment.
[0043] Variation 13 may include a EGR system as set forth in any of Variations 10-12 wherein the mixing device is integrated into the compressor.
[0044] Variation 14 may include a method that may include EGR system as set forth in any of Variations 10-13 wherein the mixing device further comprises a bend in the fluid flow conduit.
[0045] Variation 15 may include a EGR system as set forth in any of Variations 11-14 wherein the ratio of nozzle area in relation to second fluid intake port area is 75%+/25%.
[0046] Variation 16 may include a EGR system as set forth in any of Variations 11-15 wherein the nozzle width varies along the second fluid flow compartment.
[0047] Variation 17 may include a EGR system as set forth in any of Variations 11-16 wherein the nozzle comprises at least one vane to orient flow direction of the exhaust gas.
[0048] Variation 18 may include a method that may include providing a compressor comprising a turbine and a mixing device comprising a housing including an air intake port, a mixed air/exhaust output port, a fluid flow conduit transversely connecting the air intake port to the mixed air/exhaust output port, an exhaust gas intake port radially distal from the fluid flow conduit, and an at least partially annular exhaust gas flow compartment radially connecting the exhaust gas intake port to the fluid flow conduit, wherein the exhaust gas flow compartment is oriented to at least partially surround a portion of the fluid flow conduit; and flowing air and exhaust gas through the mixing device to facilitate a substantially uniform mixture of incoming exhaust gas flow and incoming air flow that flows through the mixed air/exhaust output port and into the compressor turbine and to facilitate condensation of liquid from the exhaust gas and air mixture as said mixture flows through the fluid flow conduit.
[0049] Variation 19 may include a method as set forth in Variation 18 wherein the exhaust gas flow compartment comprises a nozzle portion which provides controlled flow of the exhaust gas into the fluid flow conduit.
[0050] Variation 20 may include a method as set forth in any of Variations 18-19 wherein the mixing device is integrated into the compressor.
[0051] The above description of select variations within the scope of the invention is merely illustrative in nature and, thus, variations or variants thereof are not to be regarded as a departure from the spirit and scope of the invention.