Four-process cycle for a Vuilleumier heat pump
10030893 ยท 2018-07-24
Assignee
Inventors
Cpc classification
F02G2250/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B30/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G2280/60
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G1/0445
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B30/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G2280/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G1/0435
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G2243/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F25B9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B30/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B9/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02G1/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A four-process cycle is disclosed for a Vuilleumier heat pump that has mechatronically-controlled displacers. Vuilleumier heat pumps that use a crank to drive the displacers have been previously developed. However, mechatronic controls provides a greater degree of freedom to control the displacers. The four-process cycle provides a higher coefficient of performance than prior cycles in the crank-driven Vuilleumier heat pump and those previously disclosed for a mechatronically-driven Vuilleumier heat pump.
Claims
1. A method to operate a heat pump, the heat pump having a hot displacer adapted to reciprocate within a hot cylinder and a cold displacer adapted to reciprocate within a cold cylinder wherein the hot displacer has a remote position and a central position within the hot cylinder and the cold displacer has a central position and a remote position within the cold cylinder, the method comprising: actuating the hot displacer to move from its central position to its remote position; actuating the cold displacer to move from its central position to its remote position; actuating the hot displacer to move from its remote position to its central position; and actuating the cold displacer to move from its remote position to its central position wherein: the actuations occur in the given order movement of the hot displacer from its central position to its remote position comprises a first period; movement of the cold displacer from its central position to its remote position takes a second period; the hot displacer remains stationary in its remote position for greater than the second period before starting to move to its central position; the actuating the hot displacer to move from its central position to its remote position comprises process one; the actuating the cold displacer to move from its central position to its remote position comprises process two; the actuating the hot displacer to move from its remote position to its central position comprises process three; the actuating the cold displacer to move from its remote position to its central position comprises process four; and a cycle comprises: process one followed by process two followed by process three followed by process four.
2. The method of claim 1, further comprising: initiating process two before process one is complete; and initiating process four before process three is complete.
3. The method of claim 1, further comprising: initiating process one before process four is complete; and initiating process three before process two is complete.
4. A heat pump, comprising: a hot displacer disposed in a hot displacer cylinder; a cold displacer disposed in a cold displacer cylinder; a hot displacer actuator which when actuated causes the hot displacer to reciprocate between remote and central positions within the hot displacer cylinder; and a cold displacer actuator which when actuated causes the cold displacer to reciprocate between remote and central positions within the cold displacer cylinder; an electronic control unit (ECU) coupled to the hot displacer actuator and the cold displacer actuator, wherein: the ECU commands the hot displacer and cold displacers to move through a series of arrangements: a first arrangement in which the hot displacer is at its central position within the hot displacer cylinder and the cold displacer is proximate its central position with the cold displacer cylinder; a second arrangement in which the hot displacer is at its remote position within the hot displacer cylinder and the cold displacer is proximate its central position with the cold displacer cylinder; a third arrangement in which the hot displacer within the hot displacer cylinder is at its remote position and the cold displacer is proximate its remote position within the cold displacer cylinder; and a fourth arrangement in which the hot displacer is at its central position within the hot displacer cylinder and the cold displacer is proximate its remote position within the cold displacer cylinder; wherein; the ECU commands the hot displacer to remain stationary in its remote position for a period significantly longer than it takes for the cold displacer to move from the second arrangement to the third arrangement before commanding the hot displacer to attain the fourth arrangement; and the ECU commands the hot displacer to remain stationary in its central position for a period longer than it takes for the cold displacer to move from the fourth arrangement to the first arrangement before commanding the hot displacer to attain the second arrangement.
5. The heat pump of claim 4 wherein: a cycle comprises moving from the first arrangement to the second arrangement to the third arrangement to the fourth arrangement to the first arrangement.
6. The heat pump of claim 5, wherein: the ECU commands the cold displacer to remain stationary in its central position for a period significantly longer than it takes for the hot displacer to move from the first arrangement to the second arrangement; and the ECU commands the cold displacer to remain stationary in its remote position for a period significantly longer than it takes for the hot displacer to move from the third arrangement to the fourth arrangement.
7. The heat pump of claim 5 wherein: a first process comprises moving from the first arrangement to the second arrangement; a second process comprises moving from the second arrangement to the third arrangement; a third process comprises moving from the third arrangement to the fourth arrangement; a fourth process comprises moving from the fourth arrangement to the first arrangement; and both displacers remain stationary for a first period of time between the first and second processes; both displacers remain stationary for a second period of time between the second and third processes; both displacers remain stationary for a third period of time between the third and fourth processes; and both displacers remain stationary for a fourth period of time between the fourth and first processes.
8. The heat pump of claim 4 wherein a central axis of the cold displacer cylinder is collinear with a central axis of the hot displacer cylinder.
9. The heat pump of claim 4 wherein a diameter of the hot displacer cylinder is greater than a diameter of the cold displacer cylinder.
10. The heat pump of claim 4 wherein a distance that the hot displacer moves from its remote position to its central position is greater than a distance that the cold displacer moves from it remote position to its central position.
11. The heat pump of claim 4 wherein a time that it takes for the hot displacer to move between its central and remote positions is different than a time that it takes for the cold displacer to move between its central and remote positions.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION
(12) As those of ordinary skill in the art will understand, various features of the embodiments illustrated and described with reference to any one of the Figures may be combined with features illustrated in one or more other Figures to produce alternative embodiments that are not explicitly illustrated or described. The combinations of features illustrated provide representative embodiments for typical applications. However, various combinations and modifications of the features consistent with the teachings of the present disclosure may be desired for particular applications or implementations. Those of ordinary skill in the art may recognize similar applications or implementations whether or not explicitly described or illustrated.
(13) Before describing cycles that are facilitated by a mechatronically-actuated Vuilleumier heat pump, a non-limiting example of such a heat pump 50 is shown in
(14) Ferromagnetic blocks 102, 112, 106, and 116 are coupled to: a standoff associated with a first cap 122 of hot displacer 62, a second cap 132 of hot displacer 62, a standoff associated with first cap 126 of cold displacer 66, and second cap 136 of cold displacer 66, respectively. Openings are provided in second cap 132 of hot displacer 62, and first and second caps 126 and 136 of cold displacer 66 to accommodate post 88 extending upwardly through cold displacer 66 and into hot displacer 62.
(15) An annular chamber is formed between a portion of the inner surface of housing 52 and the outer surface of cylinder 54. A hot recuperator 152, a warm heat exchanger 154, a cold recuperator 156, and a cold heat exchanger 158 are disposed within the annular chamber. Openings through cylinder 54 allow fluid to pass between the interior of cylinder 54 to the annular chamber. Openings 166 allow for flow between a cold chamber 76 and cold heat exchanger 158 in the annular chamber. Openings 164 allow flow between a warm chamber and the annular chamber. Heat pump 50 also has a hot heat exchanger 165 that is provided near a hot end of housing 52. Openings 162 through cap 82 lead to heat exchanger 165 which has passages 163 which lead to the annular chamber. Hot heat exchanger 165 may be associated with a burner arrangement or other energy source. A fluid that is to be heated flows to warm heat exchanger 154 into opening 174 and out opening 172, cross flow. Fluid that is to be cooled flows to cold heat exchanger 158 in at opening 176 and exits at opening 178. The flow through the heat exchangers may be reversed, parallel flow.
(16) The end positions of the displacers in a three-process cycle in the Vuilleumier heat pump are illustrated in
(17) In the cycle illustrated in
(18) A four-process cycle for use in a Vuilleumier heat pump is shown in
(19) As discussed above, in the three-process cycle in
(20) The displacer movement end positions illustrated in
(21) The displacer movement end positions illustrated in
(22) An alternative to the cycle in
(23) The rate at the displacers move is determined by the spring constants and other properties of the system. As the illustrations in
(24) The discussion of cycles in regards to
(25) A Vuilleumier heat pump in which the diameters of the cylinders are different is shown in
(26) While the best mode has been described in detail with respect to particular embodiments, those familiar with the art will recognize various alternative designs and embodiments within the scope of the following claims. While various embodiments may have been described as providing advantages or being preferred over other embodiments with respect to one or more desired characteristics, as one skilled in the art is aware, one or more characteristics may be compromised to achieve desired system attributes, which depend on the specific application and implementation. These attributes include, but are not limited to: cost, strength, durability, life cycle cost, marketability, appearance, packaging, size, serviceability, weight, manufacturability, ease of assembly, etc. The embodiments described herein that are characterized as less desirable than other embodiments or prior art implementations with respect to one or more characteristics are not outside the scope of the disclosure and may be desirable for particular applications.