1. Field of the Invention
The invention relates to a refrigerator, especially to a magnetic refrigerator which adapting magneto-caloric material.
2. Description of the Related Art
As mentioned to nowadays' technology development, well-known magnetic refrigerators are roughly divided into two fields, reciprocating and rotating models. The reciprocating magnetic refrigerator, for example, disclosed by U.S. Pat. No. 5,934,078 patent has regenerator beds disposed at the center shaft, and adapts a driving machine to drive the shaft to do reciprocated motion in an axis horizontally or vertically, and force the regenerator beds into or out off a magnetic field so as to magnetize or demagnetize magneto-caloric material (MCM) periodically. Finally, there are a hot heat exchanger and a cold heat exchanger both connected to the regenerator beds to carry out hot water or cold water which flows through the regenerator beds.
The rotating magnetic refrigerator, for example, disclosed by Japanese patent publication number 2008-51409 has refrigerator beds in a round body made by yoke, wherein a permanent magnet shaft is driven by an outer driving apparatus so as to pass by different refrigerator beds in a circle motion loop so as to magnetize or demagnetize MCM wrapped in the refrigerator beds periodically.
However, reciprocating magnetic refrigerator has some drawbacks such as large volume, high noise and low reliability. On the other hand, rotating magnetic refrigerator (referred to Japan patent number 2008-51409) has some drawbacks such as large torque, high loading and difficulty in setting torque eliminating devices. It is necessary to improve the reciprocating and rotating magnetic refrigerators.
In view of the foregoing, the invention is to provide a magnetic refrigerator which overcomes both reciprocating and rotating magnetic refrigerators' drawbacks.
To achieve the above, the magnetic refrigerator of the invention comprising a body which is substantially a cylinder in exterior but flat at both sides, so that the magnetic refrigerator has a smaller volume and a more compact structure. Besides, there are four working pieces disposed at four corners inside the body, wherein the working pieces contain magneto-caloric material (MCM), such as MnFePAs, MnFePGe, MnFePSi, LaFeSi, LaFeCoSi, Gd or Gd-based alloy, etc., and the shape of MCM can be particle, mass, pillar, porous, or periodic structure. Besides, both sides of the working piece are disposed interfaces of fluid tubes or heat pipes, and therefore the working pieces are connected to each other through the fluid tubes or heat pipes, wherein the heat pipe is filled with heat conducting fluid which flows in or out of the working piece to exchange heat with MCM contained in the working piece. The heat conducting fluid is pressured by a pump or hydraulic cylinder to flow through a fluid distributor and then flow through the working piece and the heat dissipating unit, wherein the fluid distributor is driven by a shaft which will be later described to control flowing direction of the heat conducting fluid, and so that the pressured fluid will turn a specific direction with the working pieces synchronously.
In addition, the invention also discloses a driving device disposed at one side of the magnetic refrigerator, wherein the driving device may comprising or not comprising a decelerating device to drive the shaft moving back and forth between pairs of working pieces. There is a magnetic structure disposed on the shaft so as to oscillate with the shaft when the shaft is driven by the driving device. Furthermore, in order to eliminate loading of the driving device, this invention provides a torque eliminating device disposed at both sides of the surface of the body to eliminate reverse torque when the driving device reverses the shaft. The torque eliminating device controls route of the shaft and provides sufficient buffer, especially timing of brake, for the shaft while the shaft is driven moving back and forth by the driving device hence the magnetic refrigerator has the best working efficiency.
In an embodiment of the invention, for getting stronger magnetic field, the magnetic structure is changed into U-Shape, wherein three permanent magnets with different magnetic pole directions are combined to form the U-shaped magnetic structure, and the mouth of the U-shaped magnetic structure comprising soft magnetic ferrite faces the working piece to enhance magnetic field toward the working pieces so as to enhance efficiency of freezing. Besides, there can be attached a plurality of auxiliary soft iron around the U-shaped magnetic unit to further enhance total magnetic field, and so as to unify magnetic lines surround the working pieces.
As mentioned above, the present invention discloses a magnetic refrigerator having smaller volume but higher efficiency, and the refrigerator overcomes above-mentioned drawbacks of whether reciprocating or rotating magnetic refrigerators.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
The invention will become more fully understood from the detailed description given herein below illustration only, and thus is not limitative of the present invention, and wherein:
The present invention will be apparent from the following detailed description, which proceeds with reference to the accompanying drawings, wherein the same references relate to the same elements.
This invention is related to a magnetic refrigerator which has smaller volume, less power consumption and more freezing capability. Please refer to
Please further refer to
The torque eliminating device 40 is disposed corresponding to the shaft 20 to eliminate the reverse torque appropriately when the shaft 20 is driven reverse by the driving device 30, and so as to eliminate power consumption of the driving device 30 while the magnetic refrigerator 1 is operating.
The magnetic structure 50 is disposed accordingly to the shaft 20, in an embodiment of the invention wherein the magnetic structure 50 is adapted to be oscillated with the shaft 20 when the shaft 20 is driven by the driving device 30, and the magnetic structure 50 can generate magnetic flux.
The working pieces 60, or so called refrigerating beds, which contain MCM inside are disposed corresponding to the oscillation track of the magnetic structure 50, in an embodiment of the invention, wherein the working pieces 60 are disposed on a second side wall 113 and a third side wall 115 of the body 10 so as to create a relative motion with the working pieces 60 when the magnetic structure 50 is oscillated.
Furthermore, this kind of disposition keeps a proper distance D between the working pieces 60 and the magnetic structure 50 so as to make the working pieces 60 receiving magnetic flux generated by the magnetic structure 50 properly. The heat dissipating unit 70 is adapted to be connected to the working pieces 60 with a plurality of heat pipes 71 thereof, wherein the heat pipes 71 are filled with heat conducting fluid 73 (as shown in
To achieve higher efficiency, the above-mentioned body 10 is made of magnetic conductive materials, hence providing a better route for magnetic force line to enhance working efficiency of the magnetic refrigerator 1 of the invention. Furthermore, please refer to
Besides, the above-mentioned second side wall 113 and third side wall 115 of the body 10 are adapted to be in a shape of arc, and inner sides of the second side wall 113 and the third side wall 115 of the body are adapted to be disposed few concaves 13 to contain the working pieces 60. In detail, the disposition of the second side wall 113, the third side wall 115, and the concaves 13 thereof is corresponding to the shape of the magnetic structure 50 (as shown in
The above-mentioned MCM have been disclosed in many patents, journals, papers, . . . etc., and the fact that MCM is not primary part to be improved in this invention, such that what kind of MCM to be adapted is not an important concern in this invention. Besides, this invention does not limit the shape of MCM after it is produced, that is the shape of MCM can be geometric particle with proper grain size, irregular mass, pillar, mesh, or sheet, ant it depends on actually necessary.
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Furthermore, it is possible for different MCM to be adapted to different chambers 63 as shown in
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The auxiliary soft iron masses 532 are disposed to where between the shaft 20 and the magnetic units 533, that is to attach to and wrap the magnetic units 533. The above-mentioned two embodiments are solutions for enhancing magnetic flux or improving density of route of magnetic force to enhancing cooling efficiency (or so called working efficiency), and it seems no need to describe further variations or applications of the magnetic structure which can be easily though for a laborer in the art.
Please refer to
The deceleration can make the shaft 20 stop or even turn reversely if necessary, and similarly, while the shaft 20 is driven by the driving device 30 turning along a newly circular direction, the decelerating device 31 can be controlled by the driving device 30 once again to stop or even turn reversely if necessary. Hence the decelerating device 31 can repeatedly controlled by the driving device 30 to drive the shaft 20 to start turning, to stop, and then to turn reversely.
Please further refer to
The above-mentioned torque eliminating device 40 coordinates with the decelerating device 31 of the driving device 30 to transfer movement inertia generated by the shaft 20 when the shaft 20 is driven moving back an forth into potential energy and then storages the potential energy. Once the shaft 20 is driven moving reversely, the torque eliminating device 40 provides pre-stored potential energy and transfers the potential energy into reverse movement initial, and effectively reduce a part of reverse torque which the driving device 30 will provide, thus total consumption of the magnetic refrigerator 1 of the invention will be reduced, too.
In the same logic, any kind of device or component which can adjust movement, potential energy and/or spring energy is adapted to eliminate the reverse torque of the shaft as the eliminating device 40 as mentioned, for example, spring, spring sheet, rubber washer, rubber ball, magnetic module, electromagnetic buffer, hydraulic buffer, gas buffer and the combination thereof will be suitable substitutes.
The above-mentioned heat dissipating unit 70 is connected to the working pieces 60 through a plurality of heat pipes 71, wherein a heat conducting fluid 73 (as shown in
Besides, for the purpose to against fluid corrosion, the surfaces of the MCM can be suffered a surface anti-corrosion treatment, or the heat conducting fluid 73 can be adopted anti-corrosion agents. Furthermore, for the purpose to prevent fluid solidifying or sticky during lower temperature, the heat conducting fluid 73 can be adopted anti-freeze agents.
Please refer to
The heat dissipating unit 70 can further comprising a fluid conducting device 75, please refer to
The fluid distributor 753 of the fluid conducting device 75 is, for example, connected to the pump or a hydraulic cylinder 751 to properly control flowing direction of the heat conducting fluid 73 according to timing when the working pieces 60 rise or down in temperature, such that enhancing working efficiency and therefore enhancing cooling efficiency.
The fluid distributor 753 is, for example, driven by the shaft 20 synchronously so as to easily control the flowing direction of the heat conducting fluid 73 by mechanical or physical manners. Besides, the fluid distributor 753 may be further connected to a controlling unit 755 to control the flowing direction more precisely, and this embodiment or improvement is easily considered by labor in the art, thus the specification has no description on this.
To sum up, the magnetic refrigerator of the invention has at least advantages:
(1) Shape of the body is properly cut at both side walls of the body, and the body of the invention has a smaller overall volume than a body of prior art.
(2) The magnetic structure is oscillated less in vibrating range or so called amplitude to enhancing working efficiency and cooling efficiency.
(3) The torque eliminating device reduces an overall power consumption of the magnetic refrigerator to save more energy.
(4) The magnetic structure is improved to enlarge magnetic flux flowing through thereof so as to enhancing cooling efficiency.
Although the invention has been described with reference to specific embodiments, this description is not meant to be construed in a limiting sense. Various modifications of the disclosed embodiments, as well as alternative embodiments, will be apparent to persons skilled in the art. It is, therefore, contemplated that the appended claims will cover all modifications that fall within the true scope of the invention.
This application claims the benefit of U.S. Provisional Application No. 61,243,384, filed Sep. 17, 2009.
Number | Date | Country | |
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61243384 | Sep 2009 | US |