DEVICE FOR REDUCING FUEL CONSUMPTION OF AN ENGINE
20210172405 · 2021-06-10
Inventors
Cpc classification
F02M2027/047
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23K2300/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02M27/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F23K5/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B51/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The device for reducing the fuel consumption of a heat engine, in particular of a motor vehicle, includes a substantially tubular induction member mounted around a pipe which carries the fuel, in order to create an electromagnetic field therein from an AC current received from an electric power source. The induction member includes a sleeve arranged to hold a winding of wire connected to an electric power source. The sleeve is housed in a tubular shell ensuring that the device complies with electromagnetic compatibility standards.
Claims
1. A device for reducing fuel consumption of a heat engine, comprising: an induction member with a substantially tubular shape intended to be mounted around a pipe in which the fuel circulates, in order to create an electromagnetic field therein from an alternating current received from an electricity source, wherein said induction member comprises a sleeve around which at least one wire coil is arranged connected to said electricity source by a connector, said sleeve being housed in a tubular shell designed to be capable of guaranteeing compliance with the standards on electromagnetic compatibility by said device.
2. The device according to claim 1, wherein said sleeve is provided with a helical furrow forming a number n of turns, and extending along at least its outer face.
3. The device according to claim 1, wherein said shell is comprised of aluminum or incorporates a metal ring.
4. The device according to claim 3, wherein said metal ring is housed between an inner enclosure and an outer enclosure of said shell.
5. The device according to claim 4, wherein said outer enclosure is made from a rigid plastic material while said inner enclosure is comprised of a flexible plastic material.
6. The device according to claim 1, wherein said sleeve and said shell comprise at least one longitudinal slit delimiting at least two longitudinal edges and are configured so as to be able to adopt an open position in which their two longitudinal edges are separated and a closed position in which their two longitudinal edges are close together.
7. The device according to claim 6, wherein said sleeve and said shell comprise a longitudinal slot extending across from said longitudinal slit and defining a bending line allowing them to move between the closed and open positions.
8. The device according to claim 6, wherein said shell is comprised of two half-shells connected to one another by at least one hinge.
9. The device according to claim 6, wherein at least two longitudinal edges of said shell and/or said sleeve comprise complementary nesting means.
10. The device according to claim 6, wherein said shell comprises means for locking in the closed position.
11. The device according to claim 10, wherein said locking means comprises a first tubular sheath with axis parallel to an axis of the shell extending in the extension of the central zone of a first longitudinal edge, a second and a third tubular sheath with axes parallel to the axis of the shell extending in the extension of the second longitudinal edge on either side of a central zone with length at least equivalent to the central zone of the first longitudinal edge, and an axis engaged through the first, second and third sheaths and aligned in the closed position of said shell.
12. The device according to claim 10, wherein the locking means comprises at least one resilient ring being housed in at least one annular groove extending on the outer face of the shell formed from the two half-shells.
13. The device according to claim 6, wherein said sleeve is comprised of two half-shells, each half-shell having a semi-cylindrical central portion bordered by two collars.
14. The device according to claim 13, wherein said collars each have complementary nesting means of a collar of a first half-shell with a collar of a second half-shell.
15. The device according to claim 13, wherein each of the collars is provided with a groove with axis parallel to the axis of the half-shell and aligned with that of the groove of the other collar.
16. The device according to claim 2, wherein the number n of turns formed by the helical furrow is between 1 and 100.
17. The device according to claim 1, wherein said sleeve is comprised of polypropylene.
18. The device according to claim 1, wherein the electricity source is designed to be capable of delivering an alternating current having a frequency of between 501 kHz and 4 MHz.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0033] The understanding of this description will be facilitated in reference to the attached drawings.
[0034]
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[0039]
[0040]
DETAILED DESCRIPTION OF THE INVENTION
[0041] In the embodiment variant illustrated in
[0042] According to the invention, in the embodiment variant illustrated in
[0043] The sleeve 3 is provided with a longitudinal slit 8 and a longitudinal slot extending across from said slit 8 and defining a bending line 9. Owing to such a structure, the sleeve 3 can adopt an open position (
[0044] Furthermore, the sleeve 3 can be provided to be completely smooth. However, in the illustrated example, it is advantageously provided with a helical furrow 6, hollowed out along its outer face 32, and forming fifteen turns regularly spaced apart, in each of which a loop of the wire coil 4 can be housed. In this regard, it is specified that a different number of turns can be considered, preferably chosen on a case-by-case basis based on the type of vehicle to be equipped.
[0045] Preferably, such a helical furrow 6 is configured such that when the wire coil 4 is positioned around the sleeve 3, its various component loops are in contact with one another, while closely gripping the pipe 5 without risk of untimely moving, which would be detrimental to the effectiveness of the device according to the invention during its implementation. Thus, the helical furrow 6 defines a guide making it possible to facilitate the positioning of the wire coil 4 around the sleeve 3 by an operator, and therefore to ensure a suitable performance of this operation. Its presence also makes it possible to guarantee a maintenance in position of the wire coil 4 around the sleeve 3 during the implementation of the device according to the invention.
[0046] It should also be noted that in the illustrated embodiment variant, the tubular shell 7 also has a longitudinal slit 10 delimiting two longitudinal edges 11, 12 as well as a longitudinal slot extending across from said slit 10 and defining a bending line 13, such that it can adopt an open position (
[0047] Furthermore, the shell 7 comprises an inner enclosure 70 made from a flexible plastic material such as a polyurethane foam, an outer enclosure 71 made from a rigid plastic material, as well as an aluminum ring 72 extending between said inner 70 and outer 71 enclosures.
[0048] It should be noted that the inner enclosure 70 of the shell 7 can include, on its face oriented toward the sleeve 3, a helical furrow configured so as to be able to marry the loops of the wire coil 4 arranged on said sleeve 3. The presence of such a helical furrow makes it possible to improve the nesting of the set of component elements of the induction member 1.
[0049] In the illustrated embodiment variant, the sleeve 3 and the shell 7 are defined by monobloc parts each provided with a slit 8, 10 defining two edges 30, 31, 11, 12 able to be separated from and brought closer to one another during the installation of the induction member 1 on a pipe 5.
[0050] However, the invention also provides the possibility of making each of these two elements in the form of two independent parts, capable of being positioned against one another around a pipe 5, then assembled to make up the sleeve and the shell of the induction member.
[0051] An induction member 100 including an example sleeve 300 and shell 700 satisfying such a structure is illustrated in
[0052] More specifically, the sleeve 300 is formed here by two identical half-shells 301, 302 each having a semi-cylindrical central portion 303 bordered by two collars 304, 305. The latter each advantageously include a groove 306, with axis parallel to the axis Y of the half-shells 301, 302 and aligned with that of the groove 306 of the other collar 304, 305. Indeed, each groove 306 makes it possible to house and therefore guide the end strands of a wire coil 4 arranged around the sleeve 300, which makes it possible to avoid any untimely deterioration thereof. Furthermore, the sleeve 300 is advantageously provided with signaling means indicating to an operator the direction in which the wire coil must be placed in light of the direction in which the fuel circulates between the tank and the engine. These signaling means are defined here by two arrows 29, 33 respectively embodying the circulation direction of the fuel and the winding direction of the wire around the sleeve 300.
[0053] Furthermore, the tubular shell 700 included by the induction member 100 is formed by two half-shells 701, 702. Each of them has a longitudinal edge 110 and a longitudinal edge 120 that are intended to cooperate respectively with the longitudinal edge 120 and the longitudinal edge 110 of the other half-shell using two hinges 703. As illustrated in
[0054] It should be noted that such a hinge 703 also allows the axis 20, housed in the sheaths 13, 16, 17, to act as means for locking in the closed position of the shell 700, while preventing any untimely opening. Furthermore, to open a shell 700, it suffices to remove one of the two axes 20 from one of the two hinges 703 of the sheaths 13, 16, 17, then to separate the corresponding longitudinal edges 110, 120, by pivoting of the two half-shells 701, 703 around the axis 20 having remained housed in the sheaths 13, 16, 17 of the other hinge 703.
[0055] In order to illustrate different features of the present invention, a sleeve 21 according to an additional embodiment variant has been shown in
[0056] It differs from the sleeve 300 visible in
[0057] The installation, on a fuel pipe 5 of an engine compartment of a vehicle, of a device according to the invention including an induction module 1 having the structure illustrated in
[0061] Several tests were done in order to verify the effectiveness of the device according to the invention regarding the decreased fuel consumption of a motor vehicle.
[0062] Thus, a first test was done by installing a device according to the invention on a fuel pipe of the engine compartment of a car equipped with a heat engine of the mechanical management on diesel type. The obtained results made it possible to note that the average fuel consumption of this vehicle went from 9.7 l/100 km to 6.1 l/100 km, which corresponds to a fuel savings of about 37.11%.
[0063] A second test was done by installing a device according to the invention on a fuel pipe of the engine compartment of a van equipped with a heat engine of the electronic management on diesel type. The obtained results made it possible to note that the average fuel consumption of this vehicle went from 13.5 l/100 km to 9.3 l/100 km, which corresponds to a fuel savings of about 31.11%.
[0064] A third test was done by installing a device according to the invention on a fuel pipe of the engine compartment of a tractor equipped with an engine of the electronic management type supplied with cold-resistant diesel (“GNR −25° C.”). The obtained results made it possible to note that the average fuel consumption of this vehicle went from 45.65 l/Hour to 39.25 l/Hour, which corresponds to a fuel savings of about 14%.
[0065] As a result, the preceding shows that the present invention makes it possible to achieve the aims set out in the preamble, by proposing a device for reducing the fuel consumption of a heat engine that has a simple, easy to install, reliable and effective structure with many types of engines, fuels and vehicles. This device also has the advantage of being nonintrusive for the engine. As a result, it does not require any modification or replacement of the mechanical members of the original engine installed by the builder, or any procedure or modification of the electronic parameters of this engine. Furthermore, certain embodiment variants advantageously have a structure such that the device according to the invention is removable, has an accessory nature, and if applicable allows disassembly from one vehicle for installation on another.