ENERGY HANDLING SYSTEM
20250180308 ยท 2025-06-05
Inventors
Cpc classification
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2250/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D7/106
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F13/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F27/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An energy handling system is for converting, storing or transmitting energy, and includes a heat exchange unit for exchanging heat between a first substance and a second substance. The heat exchange unit has a first inner compartment and a second outer compartment positioned adjacent to each other and being separated by a heat exchange surface. The system has a balloon mounted in the first inner compartment to form in the first inner compartment a hermetically sealed volume between the outer surface of the balloon and the heat exchange surface. The hermetically sealed volume is filled with the first substance, and the balloon is configured to be filled with a balloon fluid, while the second outer compartment is filled with the second substance. The area of the heat exchange surface in contact with the first and second substances remains substantially the same during the heat exchange process.
Claims
1.-20. (canceled)
21. An energy handling system for converting, storing or transmitting energy, the energy handling system comprising: a heat exchange unit for exchanging heat between a first substance and a second substance, the heat exchange unit comprising a first inner compartment and a second outer compartment, the first inner compartment and the second outer compartment being positioned adjacent each other and being separated by a heat exchange surface, a balloon being mounted in the first inner compartment so as to form in the first inner compartment a hermetically sealed volume between the outer surface of the balloon and the heat exchange surface, the hermetically sealed volume being filled with the first substance, the balloon being configured for being filled with a balloon fluid, the second outer compartment being filled with the second substance, wherein the area of the heat exchange surface that is in contact with the first substance and a second substance remains substantially the same during the heat exchange process.
22. The energy handling system according to claim 21, wherein the system furthermore comprises a controller programmed for controlling one of the volumes of the balloon fluid in the balloon or the second substance in the second outer compartment, thereby inducing a heat exchange at the heat exchange surface.
23. The energy handling system according to claim 22, wherein the controller is programmed for controlling the heat exchange process to occur under substantially isentropic, isobaric, isothermic and/or polytropic conditions, during at least 50% of the heat exchange process.
24. The energy handling system according to claim 21, wherein the controller is programmed for controlling the heat exchange process to occur under substantially the same temperature.
25. The energy handling system according to claim 21, wherein the balloon is fixed at two positions in the first inner compartment to form the hermetically sealed volume but to further not touch the walls of the first inner compartment during the heat exchange process.
26. The energy handling system according to claim 25, wherein the balloon is fixed in a pre-tensioned manner.
27. The energy handling system according to claim 21, wherein the heat exchange process is controlled for occurring at a pressure in the range 200 to 700 bar.
28. The energy handling system according to claim 21, wherein the heat exchange process is controlled for occurring with a maximum volume exchange of the balloon in the range 1.5 to 2.5 times.
29. The energy handling system according to claim 21, wherein the second outer compartment is isolated from the outer world by an isolation tube.
30. The energy handling system according to claim 21, wherein the heat exchange surface is made of a pressure resistant material.
31. The energy handling system according to claim 21, wherein the balloon fluid is oil and wherein the first substance is a liquid.
32. The energy handling system according to claim 21, wherein the first substance is a supercritical gas.
33. The energy handling system according to claim 21, the heat exchange unit being a first heat exchange unit, the balloon being a first balloon and the balloon fluid being a first balloon fluid, the energy handling system further comprising at least a first auxiliary balloon fluid reservoir, and at least a first hydraulic pumping/motor unit for selectively controlling flow of the first balloon fluid to and/or from the first auxiliary balloon fluid reservoir from and/or to the first balloon; the controller being configured for controlling the thermodynamic process in the at least first heat exchange unit by controlling at least the first hydraulic pumping/motor unit so as to induce different cycles of expansion and/or compression in the at least first heat exchange unit, the system thus providing subsequent cycles of expansion and/or compression, so as to control energy handling, such as converting, storing or transmitting energy.
34. The energy handling system according to claim 33, wherein the energy handling system furthermore comprises: at least a second heat exchange unit comprising a second vessel with a second balloon suspended therein, the second balloon defining a first sub-volume therein and a compartment in the second vessel outside the second balloon, a second auxiliary balloon fluid reservoir, and a second hydraulic pumping/motor unit for selectively controlling flow of the second auxiliary balloon fluid to and from the second auxiliary fluid balloon reservoir, and wherein the first heat exchange unit and the at least a second heat exchange unit are configured so that the first heat exchange unit is fluidically connected to the second heat exchange unit and allows flow of a fluid therebetween under control of the first hydraulic pumping/motor unit and the second hydraulic pumping/motor unit.
35. The energy handling system according to claim 34, wherein the system is configured for inducing different thermodynamic conditions at the same time in the first heat exchange unit and the second heat exchange unit for the fluid providing the fluidic connection.
36. The energy handling system according to claim 21, the energy handling system comprising a further number of heat exchange units selectively linked to each other, configured and controlled to induce continuous operation of the energy handling system.
37. The energy handling system according to claim 21, wherein the energy handling system is configured as one of a compressor, or an expander, or a heat pump for domestic use and wherein the controller is configured for operating in a temperature range between 0 C. and 85 C., or a heat pump for industrial use wherein the controller is configured for operating in a temperature range between 40 C. and 200 C., or a heat engine, or system for separating fluid components out of a fluid, a liquification system, or an energy stock piling system.
38. A method of producing mechanical energy, the method comprising controlling at least a first hydraulic pumping/motor unit for operating a system according to claim 21 as a heat engine.
39. A method of producing heat, the method comprising controlling at least a first hydraulic pumping/motor unit for operating a system according to claim 21 as a heat pump.
40. The method according to claim 39, the method comprises distributing the produced heat to a plurality of different houses.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0120] In the different figures, the same reference signs refer to the same or analogous elements.
DESCRIPTION OF ILLUSTRATIVE EMBODIMENTS
[0121] The present invention will be described with respect to particular embodiments and with reference to certain drawings, but the invention is not limited thereto but only by the claims. The drawings described are only schematic and are non-limiting. In the drawings, the size of some of the elements may be exaggerated and not drawn on scale for illustrative purposes. The dimensions and the relative dimensions do not correspond to actual reductions to practice of the invention.
[0122] Furthermore, the terms first, second, third and the like in the description and in the claims, are used for distinguishing between similar elements and not necessarily for describing a sequence, either temporally, spatially, in ranking or in any other manner. It is to be understood that the terms so used are interchangeable under appropriate circumstances and that the embodiments of the invention described herein are capable of operation in other sequences than described or illustrated herein.
[0123] Moreover, the terms top, bottom, over, under and the like in the description and the claims are used for descriptive purposes and not necessarily for describing relative positions. It is to be understood that the terms so used are interchangeable under appropriate circumstances and that the embodiments of the invention described herein are capable of operation in other orientations than described or illustrated herein.
[0124] It is to be noticed that the term comprising, used in the claims, should not be interpreted as being restricted to the means listed thereafter; it does not exclude other elements or steps. It is thus to be interpreted as specifying the presence of the stated features, integers, steps or components as referred to, but does not preclude the presence or addition of one or more other features, integers, steps or components, or groups thereof. The term comprising therefore covers the situation where only the stated features are present and the situation where these features and one or more other features are present. The word comprising according to the invention therefore also includes as one embodiment that no further components are present. Thus, the scope of the expression a device comprising means A and B should not be interpreted as being limited to devices consisting only of components A and B. It means that with respect to the present invention, the only relevant components of the device are A and B.
[0125] Similarly, it is to be noticed that the term coupled, also used in the claims, should not be interpreted as being restricted to direct connections only. The terms coupled and connected, along with their derivatives, may be used. It should be understood that these terms are not intended as synonyms for each other. Thus, the scope of the expression a device A coupled to a device B should not be limited to devices or systems wherein an output of device A is directly connected to an input of device B. It means that there exists a path between an output of A and an input of B which may be a path including other devices or means. Coupled may mean that two or more elements are either in direct physical or electrical contact, or that two or more elements are not in direct contact with each other but yet still co-operate or interact with each other.
[0126] Reference throughout this specification to one embodiment or an embodiment means that a particular feature, structure or characteristic described in connection with the embodiment is included in at least one embodiment of the present invention. Thus, appearances of the phrases in one embodiment or in an embodiment in various places throughout this specification are not necessarily all referring to the same embodiment, but may. Furthermore, the particular features, structures or characteristics may be combined in any suitable manner, as would be apparent to one of ordinary skill in the art from this disclosure, in one or more embodiments.
[0127] Similarly it should be appreciated that in the description of exemplary embodiments of the invention, various features of the invention are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of one or more of the various inventive aspects. This method of disclosure, however, is not to be interpreted as reflecting an intention that the claimed invention requires more features than are expressly recited in each claim. Rather, as the following claims reflect, inventive aspects lie in less than all features of a single foregoing disclosed embodiment. Thus, the claims following the detailed description are hereby expressly incorporated into this detailed description, with each claim standing on its own as a separate embodiment of this invention.
[0128] Furthermore, while some embodiments described herein include some but not other features included in other embodiments, combinations of features of different embodiments are meant to be within the scope of the invention, and form different embodiments, as would be understood by those in the art. For example, in the following claims, any of the claimed embodiments can be used in any combination.
[0129] Furthermore, some of the embodiments are described herein as a method or combination of elements of a method that can be implemented by a processor of a computer system or by other means of carrying out the function. Thus, a processor with the necessary instructions for carrying out such a method or element of a method forms a means for carrying out the method or element of a method. Furthermore, an element described herein of an apparatus embodiment is an example of a means for carrying out the function performed by the element for the purpose of carrying out the invention.
[0130] In the description provided herein, numerous specific details are set forth. However, it is understood that embodiments of the invention may be practiced without these specific details. In other instances, well-known methods, structures and techniques have not been shown in detail in order not to obscure an understanding of this description.
[0131] The invention will now be described by a detailed description of several embodiments of the invention. It is clear that other embodiments of the invention can be configured according to the knowledge of persons skilled in the art without departing from the technical teaching of the invention, the invention being limited only by the terms of the appended claims.
[0132] In a first aspect, the present invention relates to an energy handling system. Such an energy handling system may be a system adapted for converting energy, storing energy, transmitting energy, . . . . The energy handling system according to embodiments of the present invention comprises at least one heat exchange unit for exchanging heat between a first substance and a second substance. It is to be noted that the energy handling system may comprise more than one heat exchange unit. The energy handling system may be based on performing expansion or compression of a fluid or may perform a plurality of such actions, resulting in the possibility for converting between different types of energy, such as for example thermal energy, electric energy, mechanical energy, etc. . . . According to embodiments of the present invention, the heat exchange unit comprises a first inner compartment and a second outer compartment. The first inner compartment and the second outer compartment are positioned adjacent each other and are being separated by a heat exchange surface. The heat exchange unit also comprises a balloon being mounted in the first inner compartment so as to form in the first inner compartment a hermetically sealed volume between the outer surface of the balloon and the heat exchange surface. The hermetically sealed volume is being filled with the first substance and the balloon is being configured for being filled with a balloon fluid. The second outer compartment is being filled with the second substance. According to embodiments of the present invention, the area of the heat exchange surface that is in contact with the first substance and the second substance remains substantially the same during the heat exchange process.
[0133] By way of illustration, embodiments not being limited thereto, an exemplary embodiment of the present invention will further be discussed with reference to
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[0136] The vessel may be substantially cylindrically shaped and the first inner compartment and the second outer compartment may be configured as substantially concentric compartments. The compartments may be substantially cylindrically shaped. Alternatively, the compartment also may have any other suitable shape, such as for example droplet shaped. The second outer compartment may be formed conformally with the first inner compartment. In some embodiments, the compartments also may have other shapes.
[0137] According to the exemplary embodiment shown in
[0138] The balloon 160 typically may be filled with a balloon fluid 180. The balloon fluid 180 may be oil, although embodiments are not limited thereto. The balloon fluid 180 may be pumped towards the balloon or away from the balloon 160 in the energy handling system. The balloon is configured such with respect to the inner compartment that it forms the hermetically sealed volume 170 that is filled with the first substance 110. In some embodiments, the balloon may be pre-shaped so that, when enlarging due to pumping with balloon fluid, it enlarges with a similar shape as the heat exchange surface. The balloon also may be pre-shaped so as to compensate for gravity forces working on the balloon and the balloon fluid. The heat exchange process may be controlled for occurring with a maximum volume exchange of the balloon 160 in the range 1.5 to 2.5 times, e.g. in the range 1.75 to 2.25 times.
[0139] The second outer compartment 140 is, in embodiments according to the present invention, being filled with the second substance 130. The second substance may be a liquid. The second substance 140 may be a cold liquid or may be a warm liquid. In some embodiments, the second substance may be a gas. The second outer compartment 140 may in some embodiments be isolated from the outer world by an isolation tube 190. The isolation tube may be an isolation tube providing an additional cavity around the second outer compartment, whereby the additional cavity may be under vacuum or for example filled with an isolation fluid.
[0140] According to embodiments of the present invention, the area of the heat exchange surface 150 that is in contact with the first substance 110 and a second substance 140 remains substantially the same during the energy exchange process. By providing substantially the same heat exchange surface area during the energy exchange process, the energy conversion system can be performed with a high efficiency, i.e. with high yield. Where reference is made to the surface area of the heat exchange surface being substantially the same during the energy exchange process, this means that at least during 90% (for example during 95% or during 98%) of the time of energy exchange in the system, the surface area of the heat exchange surface that is in contact with the first substance and the second substance varies less than 10% (for example varies less than 5%, for example less than 2%).
[0141] As indicated above, the energy handling system may be equipped with a controller and the heat exchange unit may be controlled to induce a heat exchange process at the heat exchange surface. The heat exchange process may be controlled to occur at a pressure in the range 200 to 700 bar, e.g. in the range 200 to 400 bar. Further as indicated above, the heat exchange process may be controlled to operate substantially isothermic process, a substantially isentropic process, a substantially isobaric process, a polytropic process or a combination thereof. By way of illustration, embodiments not being limited thereto, an example of such processes is shown in
[0142] In one aspect, the present invention relates to an energy handling system for converting, storing or transmitting energy comprising at least one hydraulic balloon-vessel interface (HBVI) unit as described in the first aspect, one example thereof shown in
[0143] According to embodiments of the present invention, the controller may be implemented as a microcontroller, such as for example a chip-controller, as a dedicated processor, in a general purpose processor driven via a particular computer program product, etc.
[0144] It is to be noted that, whereas systems with a single HBVI unit can be used, also systems with multiple HBVI units can be implemented. The latter may for example, when controlled appropriately, result in a substantially continuous operation of the system, for example continuous operation as a heat engine or as a heat pump. The latter will be illustrated further below in the present description.
[0145] By way of illustration, embodiments of the present invention not being limited thereto, a number of examples will further be described below.
[0146] A first example is illustrated in
[0147] A second example is shown in
[0148] In a further example as shown in
[0149] In a fourth example, a system 1 is shown based on eight HBVI units, illustrated in
[0150] Although not shown, the pump/motor systems again are under control of a controller allowing to induce expansion or compression in the HBVI units, thus allowing to control the energy exchange process. Again such processes may be controlled to occur substantially isothermic, substantially isentropic, substantially isobaric, polytropic or as a combination thereof. Again, since HBVI units are coupled, also processing under Kilianic conditions can be envisaged. Also, in these embodiments, optional features such as valves, a leakage tank, etc. can be added as would be understood by the skilled person. It is to be noted that the embodiment of a system wherein eight HBVI units are combined, a substantially continuous process of energy handling can be obtained through inducing subsequent cycles in the different HBVI units and combining these.
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[0152] The above examples schematically illustrate the use of one or more HBVI units. It is to be understood that the number of HBVI units can be further increased, as required for the application in energy handling.
[0153] Further by way of illustration,
[0154] Further by way of illustration,
[0155] Also by way of illustration,
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[0159] Further by way of illustration,
[0160] Whereas some applications are illustrated above, it will be clear that these are only a number of applications and that other applications for energy handling also can be envisaged.
[0161] In one aspect, the present invention also relates to a method of handling energy, the method comprising inducing an energy exchange process using an energy handling system as described in the first aspect. According to embodiments of the present invention, the energy exchange process may be performed in a substantially isothermic process, a substantially isentropic process, a substantially isobaric process, a polytropic process or a combination thereof. The process advantageously can be performed in such a manner that the heat exchange surface between the first and second substance in contact with these substances remains substantially equal during substantially the full energy exchange process.
[0162] It is to be understood that although preferred embodiments, specific constructions and configurations, as well as materials, have been discussed herein for devices according to the present invention, various changes or modifications in form and detail may be made without departing from the scope of this invention. Steps may be added or deleted to methods described within the scope of the present invention.