Heat transfer device, system and method to boost fuel economy in diesel powered vehicles
11306637 · 2022-04-19
Inventors
Cpc classification
F01N3/0234
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2610/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/2066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02A50/20
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F01N3/2006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N3/0821
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01N2240/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M31/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F01N13/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M31/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat exchanging device uses a shell and tube structure whereby a portion of a diesel fuel line with or without a portion of a diesel exhaust fluid line, is placed in heat-exchanging relationship with a portion of the shell. Hot fluid flowing through the shell in a vortex-like fashion heats the diesel fuel line and the diesel exhaust fluid line to improve diesel fuel mileage and diesel exhaust efficiency.
Claims
1. A system, comprising: a diesel engine; a diesel exhaust fluid (DEF) reservoir; a diesel fuel reservoir; and a heat transfer device, the heat transfer device further comprising: a shell, wherein the shell further comprises: an inflow port; a void; and an outflow port such that hot fluid can pass into the shell via the inflow port, through the shell in a vortex-type flow, and out of the shell via the outflow port; a first diesel fuel line portion disposed between the diesel fuel reservoir and the shell such that the diesel fuel line is in a heat-exchanging relationship with the shell; a second diesel fuel line portion disposed within the shell, wherein the second diesel fuel line portion is constructed from a heat conductive material such that hot fluid flowing within the shelf transfers heat to the second diesel line portion; a third diesel fuel line portion disposed between the shell and fuel injection ports of the diesel engine; a first DEF line portion disposed between the DEF reservoir and the shell; a second DEF line portion disposed within the shell, wherein the second DEF line portion is constructed of a heat conductive material such that hot fluid flowing within the shell transfers heat to the second DEF line portion; and a third DEF line portion disposed between the shell and an exhaust subassembly of the diesel engine.
2. The system of claim 1, wherein the exhaust subassembly comprises: a diesel particulate filter (DPF); a selective catalytic reduction (SCR) catalyst; a downstream portion of an exhaust pipe extending from the DPF, wherein a portion of the third DEF line intersects the downstream portion of the exhaust pipe; and an upstream portion of an exhaust pipe extending from the SCR, wherein a portion of the third DEF line intersects the upstream portion of the exhaust pipe.
3. The system of claim 1, wherein the shell further comprises a cylindrical portion having dome-like ends.
4. The system of claim 3, wherein the shell further comprises a unitary structure.
5. The system of claim 4, wherein the shell is comprised of a heat-conductive metal material.
6. A system, comprising: a diesel engine; a diesel fuel reservoir; a diesel exhaust fluid (DEF) reservoir, and a heat transfer system disposed in a heat-exchanging relationship with the diesel fuel reservoir, wherein the heat transfer system further comprises: a shell, wherein the shell further comprises: an inflow port; a continuous and closed wall; a void created by the continuous and closed wall; and an outflow port such that hot fluid can pass into, through and out of the shell; a diesel fuel line extending between the diesel fuel reservoir and fuel injection ports of the diesel engine, wherein the diesel fuel line further comprises a portion that passes through the shell and heats the diesel fuel therein; and a DEF line extending between the DEF reservoir and an exhaust subassembly, wherein: the DEF line comprising a portion that passes through the shell and heats the DEF therein; and the exhaust subassembly further comprises: a diesel particulate filter (DPF); a selective catalytic reduction (SCR) catalyst; and an exhaust pipe portion extending between the DPF and the SCR; wherein the shape of the shell creates a vortex flow-like passage of fluid through the shell and around the portion of the diesel fuel line that passes through the shell and around the portion of the DEF line that passes through the shell.
7. The system of claim 6, wherein the shell further comprises a cylindrical portion having dome-like ends.
8. The system of claim 6, wherein the shell is comprised of a heat-conductive metal material.
9. The system of claim 6, wherein the shell further comprises a unitary structure consisting of a fluid inflow port, a fluid outflow port, the portion of the diesel fuel line that passes through the shell and the portion of the diesel exhaust fluid line that passes through the shell.
10. The system of claim 9 wherein: the portion of the DEF line that passes through the shell and adds heat to the DEF further comprises: an outflow port; and an additional portion of the DEF line that extends to a point of intersection with a portion of an exhaust pipe portion extending between the DPF and the SCR, wherein: the outlet of the additional portion of the DEF line and the heated DEF taps into the exhaust pipe portion such that exhaust gases are injected into the heated DEF passing from the DPF and upstream of the SCR; the exhaust gases comprise nitrogen monoxide and nitrogen dioxide; and the exhaust gases are converted to nitrogen and water as they pass through the SCR and exit the system.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DETAILED DESCRIPTION OF THE INVENTION
(3) Referring now to the drawing in detail, wherein like numbered elements correspond to like elements throughout,
(4) As shown, the heat transfer device 20 comprises a shell 22 having a continuous outer and closed surface or wall. See, also,
(5) As alluded to above, and also shown in
(6) As shown, the diesel fuel reservoir 30 comprises a fuel intake or fill port 32 and a fuel outflow line 34. The diesel fuel 31 is contained within the reservoir 30 and all such lines associated with it. Diesel fuel flowing through the outflow line 34 is directed to flow toward the heat transfer device 20. Upon reaching the inflow port 35 of the heat transfer device 20, diesel fuel continues to flow through the inflow port 35 and into a portion or segment of the line 36 that is disposed within the heat transfer device 20. Lastly, fuel exits the outflow port 37 and flows into the last portion of the fuel line 38 which is a line leading to the fuel injection ports of the engine's cylinders (not shown). It is to be understood that the ports 35, 37, 45, 47 of the shell 22 are configured to be rigid elements that protrude from the shell 22 sufficiently that a high-pressure fitting (not shown) can be used to attach the lines 34, 38, 44, 48 to them, respectively.
(7) As is also shown, the DEF reservoir 40 comprises a DEF fluid intake port 42 and a DEF fluid outflow line 44. The DEF fluid 41 is disposed therein. DEF fluid 41 flowing through the outflow line 44 is directed to flow toward the heat transfer device 20. Upon reaching inflow port 45 of the heat transfer device 20, DEF fluid 41 continues to flow through the segment or portion of the line 46 that is disposed within the heat transfer device 20. Similarly, DEF fluid 41 flows out of the heat transfer device 20 via the outflow port 47 and into the line 48, which will be discussed in further detail later in this detailed description.
(8) As shown, the heater core 50 comprises an inlet port 52 and an outlet port 54. The fluid (not shown) that flows out of the heat transfer device 20 flows into the inlet port 52 and out of the outlet port 54.
(9) As shown, the diesel engine 10 comprises an exhaust port 16 leading to the exhaust portion of the system 100. That exhaust port 16 leads to a first portion 18 of an exhaust pipe. At the distal end of that pipe 18 is an inflow port 65 of the diesel particulate filter 60. The exhaust that is upstream of the DPF 60 comprises undesirable exhaust, including comprises nitrogen monoxide and nitrogen dioxide. That exhaust is scrubbed by the DEF 60 and then flows from the outflow port 67 of the DEF 60. Downstream of the DPF 60 is a second portion 68 of the exhaust pipe. Downstream relative to the DPF 60 is an inflow port 75 of the SCR 70. The SCR 70 comprises an upstream portion 78 of the exhaust pipe. At the intersection of the exhaust pipe portions 68, 78 (which are essentially continuous), the outlet of the DEF line 48 “taps” into the exhaust pipe to inject DEF 41 into the exhaust. The DEF 41 comprises deionized water and a pure form of urea that is mixed in with the exhaust leading to an inflow port 75 of the SCR 70. The exhaust gas and the heated DEF 41 from the heat transfer device 20 then enter the SCR catalytic converter 70 where the urea from the DEF and the exhaust gas react with a number of metallic compounds to convert the nitrogen monoxide and nitrogen dioxide into nitrogen and water.
(10) In application, the diesel fuel reservoir 30 is filled with diesel fuel 31 via its fuel intake port 32. The fuel 31 then flows out of the reservoir 30 via the fuel outflow line 34. The diesel fuel 31 flowing through the fuel outflow line 34 is directed to flow toward the heat transfer device 20. Upon reaching the heat transfer device 20, diesel fuel 31 continues to flow through a portion of the line 36 that is disposed within the heat transfer device 20. During its passage through that portion of the line 36, a significant amount of heat is transferred or imparted to the diesel fuel 31. Continuing its flow, the heated diesel fuel 31 flows into the last portion of the fuel line 38 which is a line leading to the fuel injection ports of the cylinders (not shown). Further to the system and method disclosed herein, the DEF reservoir 40 comprises a DEF fluid intake port 42 and a DEF fluid outflow line 44. As with the diesel fuel, the DEF fluid 41 similarly flows from the reservoir 40 via the outflow line 44 and is also directed to flow toward the heat transfer device 20. Upon reaching the heat transfer device 20, DEF fluid 41 continues to flow through a portion of the line 46 that is disposed within the heat transfer device 20. During its passage through that portion of the line 46, a significant amount of heat is transferred or imparted to the DEF fluid 41. Continuing its flow, the heated DEF fluid 41 flows out of the heat transfer device 20 via line 48 and towards the exhaust portion of the system which includes the DPF 60 and the SCR 70.
(11) Emissions from the diesel engine 10 flow out of it via the exhaust port 16 leading to the exhaust portion of the system 100 and the exhaust is converted to nitrogen and water, as described above. The exhaust passes through the DPF 60, is treated by the heated DEF 41 passing through the line 48, then through the SCR 70 and to the remaining portions of the exhaust subassembly, namely the exhaust pipe 72, muffler 74 and out the tail pipe 76 of that subassembly and into the environment.