The present invention pertains to a means for preventing an incorrect filling of a tank of, e.g., motor vehicles by means of a gas hose nozzle provided, at a filler neck of the tank or at an insert for the filler neck or the filling opening of the tank and/or at the discharge pipe of the gas hose nozzle, with a permanent magnet array.
In incorrect filling systems for, e.g., motor vehicle tanks, such as urea tanks, it is known to arrange a ring-shaped permanent magnet in the filler neck and a single magnet in the discharge pipe or in the sensor line of the gas hose nozzle. This builds up a magnetic field during the inserting of the discharge pipe of the gas hose nozzle into the filler neck of the tank with the ring-shaped permanent magnet in the filler neck. The discharge pipe is thereby axially entrained and in this way releases the feed through the gas hose nozzle into the tank.
A similar system is known from DE 203 19 414 U1 as well, which discloses a system of protection against incorrect fueling. In this case, a plurality of magnetic relays are provided which are arranged at various points and form a type of coding, which open or close switching circuits upon approach of a gas hose nozzle with corresponding coding, so that an alarm is sounded in case of unsuitable coding of the gas hose nozzle. The magnets can be arranged randomly in a sector-shaped pattern with different alignment in this case.
GB 2 447 292 A discloses a system, in which a magnet is moved against a spring force and thereby moves a valve element into an opening position.
WO 2011/048016 A1 discloses various possibilities of providing magnetic elements as circular ring sections or of arranging magnetic elements in a ring-shaped pattern. In this case, the magnet is arranged exposed in a groove on the inner circumference of the neck, whereby the interruptions in case of a C-shaped magnet or an array of a plurality of magnetic segments are used to enlarge the free flow cross section.
The permanent magnets of high density that are used and are made of material combinations with rare earths, such as samarium, used are very expensive and become more expensive with increasing shortage of raw material.
Therefore, an object of the present invention is to create a device of the type mentioned in the introduction, which uses less magnetic or magnetizable material and provides identical functional quality.
According to the invention, a device is provided for preventing an incorrect filling of a tank of motor vehicles by means of a gas hose nozzle, the device being provided at one of a filler neck of the tank or at an insert for the filler neck or the filling opening of the tank and/or at the discharge pipe of the gas hose nozzle. The device comprises a permanent magnet array comprising a partial array in the form of a single magnet in the discharge pipe of the gas hose nozzle and another permanent magnet partial array comprising a plurality of permanent magnetic elements arranged in a ring-shape and spaced apart in the filler neck or in the insert or about the discharge pipe of the gas hose nozzle. A closed or open body is also provided. The permanent magnetic elements, arranged in the ring-shape, are held in the closed or open body, wherein the body has a closed or open ring-shaped design and north and south poles of the permanent magnetic elements are aligned in a radial direction or in a direction of a longitudinal axis of the filler neck
By means of the measures according to the present invention, a reduction of the starting material weight necessary for the permanent magnets is possible, such that such permanent magnet arrays can be manufactured in a cost-effective manner. In the individual exemplary embodiments, this is achieved in such a way that either the ring-shaped magnetic array is formed by means of single magnetic elements arranged spaced apart in the form of a ring, in that only a single magnet is provided in each case, which is always in radial alignment outside the discharge pipe of the gas hose nozzle with the single magnets arranged within the discharge pipe. The distance between the individual magnetic elements selected in the first-mentioned exemplary embodiment essentially depends on the corresponding size and arrangement as well as the magnetic quality of the assigned single magnets and/or on the magnetization intensity of the single magnets of the ring array. Thus, high-performance magnets made of neodymium are advantageously used.
The permanent magnetic elements arranged in the filler neck or in the insert in the body may advantageously have a plate-shaped or cube-shaped design lying in the circumferential direction or a rod-shaped design lying in the axial or radial direction.
The permanent magnetic elements form an angle at a circumference of less than 330° or less than 300° or less than 270°.
The body may advantageously be made of plastic and the permanent magnetic elements are held in the body made of plastic.
Further details of the present invention appear from the following description, in which the present invention is described in detail and explained based on the exemplary embodiments shown in the drawings. The various features of novelty which characterize the invention are pointed out with particularity in the claims annexed to and forming a part of this disclosure. For a better understanding of the invention, its operating advantages and specific objects attained by its uses, reference is made to the accompanying drawings and descriptive matter in which preferred embodiments of the invention are illustrated.
In the drawings:
Referring to the drawings in particular, device 10, 110, 210 or 310, which are shown in the drawing according to a plurality of exemplary embodiments, are used for preventing an incorrect filling of a tank, not shown, of, for example, motor vehicles by means of a gas hose nozzle 215 or 315 shown in
The magnetic field alignment consisting of the partial arrays 12, 112, 212, and 312 can take place radially or axially in the plastic neck.
The neck 20 is connected with a tank made of plastic in a manner not shown. It is obvious that the array of single small magnetic plates 24 may also be arranged in an insert made of plastic, which insert is intended for being inserted into an opening of a neckless tank.
The second partial array, which is arranged in the discharge pipe of a gas hose nozzle in a manner not shown, consists of a single permanent magnet or is in the form of a bar magnet, as it is usually inserted, for example, in the sensor line within the discharge pipe. This permanent magnet is held in an axially movable manner within the gas hose nozzle-discharge pipe, such that it is entrained upon immersion of the discharge pipe in the neck 20 due to the magnetic action of the stationary single small magnetic plates 24 and releases the inflow of the liquid in question at the end of its axial movement by means of, e.g., a switching contact.
The second exemplary embodiment according to
According to an exemplary embodiment not shown, axial holes are provided in the plastic ring 123 for accommodating axially aligned single magnetic rods 124, whereby the single magnetic rods 124 are provided radially on the inside at the plastic ring 123.
The second permanent magnet partial array is provided, as described above regarding the exemplary embodiment of
In the device 210 and 310 shown in
According to
In the annulus 231 between the sleeve 229 and the outer circumference of the discharge pipe 216 is arranged a ring element 232, which is spring-loaded by a compression spring 233, which is supported at one end at the ring element 232 and at the other end on the conical lateral surface 228. The ring element 232 is held in a stationary manner on the inner surface of the sleeve 229, but is axially displaceable opposite the outer circumference of the discharge pipe 216.
The ring element 232 has a single small permanent magnetic plate 224 of the first partial array 212 on a peripheral area, whereby a radial or axial north-south alignment can occur and the north pole of the single small magnetic plate 224 is facing the south pole of the small magnetic plate 227 of the second partial array 213 arranged within the sensor line 217. In order to hold the two single magnets 224, 227 within the sensor line 217, on the one hand, and in the annulus 231, on the other hand, in radial alignment, the sleeve 229 is held in a nonrotatable manner at the discharge pipe 16 or at the pipe 218.
With the insertion of the discharge pipe 216 of the gas hose nozzle 215 into the axial opening of the neck 220 or of a tank insert in the direction of arrow Z, the sleeve 229 with its front surface 230 is supported on the front surface 236 of the neck. With this, as appears from the illustrated differences of
The above exemplary embodiments use high-performance magnets preferably made of neodymium.
In
This exemplary embodiment is especially suitable if the gas hose nozzle or the fuel nozzle cannot be inserted in any random position or angle of rotation into the neck 222. This means namely that permanent magnetic elements 24 are not needed over the entire circumference of the neck.
In general, it can be said that the alignment of the magnets 24 in regard to the north and south poles can take place axially and radially.
While specific embodiments of the invention have been shown and described in detail to illustrate the application of the principles of the invention, it will be understood that the invention may be embodied otherwise without departing from such principles.
Number | Date | Country | Kind |
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20 2011 109 525.1 | Dec 2011 | DE | national |
20 2012 002 220.2 | Mar 2012 | DE | national |
20 2012 004 118.5 | Apr 2012 | DE | national |
This application is a United States National Phase Application of International Application PCT/EP2012/073423 and claims the benefit of priority under 35 U.S.C. §119 of German Utility Model Applications DE 20 2011 109 525.1 filed Dec. 21, 2011, DE 20 2012 002 220.2 filed Mar. 2, 2012 and DE 20 2012 004 118.5 filed Apr. 20, 2012, the entire contents of which are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2012/073423 | 11/23/2012 | WO | 00 | 6/19/2014 |