This application claims the benefit of priority under 35 U.S.C. § 119 of German Patent Application DE 10 2013 221 744.7 filed Oct. 25, 2013, the entire contents of which are incorporated herein by reference.
The present invention pertains to a pump, which can be used in an especially advantageous manner to deliver liquid fuel in fuel-operated vehicle heaters from a fuel reservoir in the direction of a combustion chamber.
Such pumps are built, in general, with a pump chamber, in which liquid fuel is taken up and then ejected intermittently during the delivery operation. To generate the necessary vacuum to take up liquid fuel, as well as to eject fuel from the pump chamber, a piston may be moved to and fro, so that a defined volume of liquid is delivered during each stroke of the piston and the liquid to be delivered can thus be released in a correspondingly accurately metered quantity.
An object of the present invention is to provide a pump, especially for delivering liquid fuel for a vehicle heater, in which the delivery of even small volumes of liquid is possible with high metering precision with a simple structural design and high reliability of operation.
This object is accomplished according to the present invention by a pump, especially for delivering liquid fuel for a vehicle heater, comprising a pump body providing a pump chamber. The pump body is made, at least in some areas, with a magnetic shape memory material. The pump further comprises a field-generating arrangement for generating a magnetic field, wherein the magnetic shape memory material of the pump body can be brought from an initial state into a deformed state by generating a magnetic field by the field-generating arrangement. A pump chamber volume in the deformed state differs from the pump chamber volume in the initial state.
The present invention uses the effect that by generating a magnetic field, the magnetic shape memory material of the pump body changes its shape and, along with it, the volume of the pump chamber. The pump chamber volume can thus be increased and reduced in case of a corresponding intermittent generation of a magnetic field in order to take up liquid to be delivered in a suction cycle or uptake cycle in the pump chamber, on the one hand, and to release this liquid from the pump chamber in the direction of the system to be fed during an ejection cycle, on the other. No component comparable to a pump piston or the like, which would have to be moved to and fro in a pump chamber and would have to be sealed in a fluid-tight manner in order to prevent leakage flows, is necessary. Since the change in the shape of the magnetic shape memory material that can be achieved by generating a magnetic field is reproducible with very high precision, the quantity of the liquid delivered by such a pump can be correspondingly metered with high precision.
The pump chamber volume is advantageously smaller in the deformed state than in the initial state. For example, the pump body may have an essentially tubular design, i.e., it may have an essentially cylindrical design. The pump body may have an essentially round inner cross-sectional geometry in the initial state. A round inner cross-sectional geometry means that the pump chamber volume has its maximum in this state and a reduction of the pump chamber volume is generated, for example, when a flattened, elliptical cross-sectional geometry is generated.
To make it possible to preset a defined direction of flow of the liquid to be delivered during a change in the pump chamber volume, it is proposed that an inlet valve leading to the pump chamber and an outlet valve leading out of the pump chamber be provided. Provisions may be made in an advantageous embodiment, which does not require any additional measures for actuation for the inlet valve or/and the outlet valve to comprise a nonreturn valve.
To support or achieve a reverse deformation of the pump body into its initial state that is present when no magnetic field is present, it is proposed, further, that a resetting arrangement for resetting the pump body into its initial state be associated with the pump body. This resetting arrangement may become active, for example, when the generation of a magnetic field by the field-generating arrangement is stopped and there is consequently no field any more that would act on or deform the pump body in the direction of the deformed state thereof. For example, the resetting arrangement may comprise a prestressing arrangement for prestressing the pump body preferably by means of a prestressing spring into its initial state.
To obtain information on the change in the volume of the pump chamber in connection with the deformation of the pump body in case of the design according to the present invention, it is proposed that a deformation detection arrangement be provided for generating information representing the deformation of the pump body. It is proposed in an especially advantageous embodiment, which utilizes the effect that in a magnetic shape memory material, the electric resistance of this material changes as a function of the state of deformation, it is proposed that the deformation detection arrangement generate information representing the deformation on the basis of an electric resistance of the pump body.
The pump body may be advantageously made with an NiMnGa alloy material.
The present invention will be described in detail below with reference to the attached figures. 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.
Referring to the drawings in particular, a pump, which can be used, for example, to deliver liquid fuel in a vehicle heater, is generally designated by 10 in
An inlet valve 18 is inserted into the pump body 12 at an end area 16 of the pump body 12 shown in the left-hand part of
A magnetic field-generating arrangement generally designated by 44 is provided such that it surrounds the pump body 12 or is arranged in the area around same. This arrangement may comprise one or more electrically excitable coils 46, which can be electrically excited to generate a magnetic field M shown in
The pump body 12, which is tubular and advantageously has a cylindrical design, is made, at least in some areas, preferably entirely of magnetic shape memory material. For example, an NiMnGa alloy may be used for this. Such magnetic shape memory material can be brought from an initial state into a deformed state by generating a magnetic field. If the magnetic field M is generated, as this is shown, for example, by the comparison of
The transition from the state with round inner cross-sectional geometry to a state with elliptical inner cross-sectional geometry leads to a change in the volume of the pump chamber 14. If the pump chamber 14 was filled with liquid in the initial state shown in
To return the pump body 12 into an initial state, a magnetic field M′ with a different orientation, for example, at right angles to the magnetic field M in
As an alternative or in addition, the reverse deformation of the pump body 12 into its initial state shown in
With the design of a metering pump according to the present invention, which uses the deformation of magnetic shape memory material brought about by the application of a magnetic field to generate a change in the volume of a pump chamber, it becomes possible to exactly determine the quantity of liquid to be delivered. It would be possible to proceed for this such that a defined, preset magnetic field or a defined, preset mechanical load is used for each work cycle for deformation from the initial state and for deformation into the initial state, so that exactly the same quantity of liquid is taken up in the pump chamber 14 and also ejected from same during each work cycle. To change the extent of deformation of the pump body 12, it would also be possible, in principle, to vary the intensity of the magnetic field M and, of course, also the intensity of a magnetic field that brings about a reverse deformation or of a mechanical load that brings about a reverse deformation, so that different liquid volumes can also be delivered, in principle, during the work cycles to be performed one after another.
A deformation detection arrangement 54 schematically indicated in
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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10 2013 221 744 | Oct 2013 | DE | national |
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