ENERGY SYSTEM
An energy system operable to generate mechanical energy. The energy system comprises a cluster of elongated energy cells. The energy cells are arranged parallel to each other in their longitudinal direction in a cylinder block means. Each energy cell is operable to generate mechanical energy when a phase change material (PCM) changes from solid phase to liquid phase, wherein the phase change material expands when changing from solid phase to liquid phase. The energy system also comprises a cylinder head means and a cylinder bottom means, both connected to the cylinder block means.
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The present invention relates to an energy system operable to generate mechanical energy.
BACKGROUND OF THE INVENTIONThe patent document DE 3638739 A1 relates to a thermal adjusting drive comprising a pressure chamber with an adjusting piston and containing a medium expanding when heated, together with a heat source. Foam-forming liquid is contained in the chamber, pressure being generated by a gas soluble in it.
Silicone oil mixed with a wetting agent can be used as the liquid, and pressure can be generated by a flourided hydrocarbon, while the heat source can be electric.
The patent document DE 102005039270 A1 relates to a device to transform heat energy into mechanical energy. Expanded through applied heat, expanding bodies are interconnected as desired in a cascade or in parallel. Lengthening produced through heat and shortening produced by cooling is made useable at the end of the expanding bodies in the form of energy. Linked to the expanding bodies output, a cylinder piston system reduces overall strokes. A mixing/heat exchanger device optimizes the use of heat.
The patent document DE 3526289 A1 relates to mechanical power production, e. g. to drive a pump by alternately heating and cooling e.g. oil in pressure vessel containing thin tube bundle heated and cooled to drive piston.
The patent document U.S. Pat. No. 4,079,596 relates to heat engines and heat pumps. FIGS. 6-a and 6-b respectively illustrates a longitudinal cross-section and a transverse cross-section of a stationary type new heat engine. It comprises a multivoid metal block and heaters with manifold means at each end. The multivoid contains a first set of conduits and a second set of conduits. The first set of conduits is used to contain an S/L type working medium and a heating medium, intermediate heat exchange mediums and a cooling medium are to pass through the second set of conduits to cause the working medium to undergo the four steps, viz. A-B, B-C, C-D and D-A, described.
A main disadvantage with the above described solutions is that the power density (output power per system weight and/or volume) and the manufacturing cost are not optimized.
SUMMARY OF THE INVENTIONThe above mentioned problems are solved by an energy system operable to generate mechanical energy according to claim 1. The energy system comprises a cluster of elongated energy cells. The energy cells are arranged parallel to each other in their longitudinal direction in a cylinder block means in such a way as to optimize the volume of the cylinder block. Each energy cell is operable to generate mechanical energy when a phase change material (PCM) changes from solid phase to liquid phase. The energy cell comprises a housing means holding the phase change material (PCM), an insulating means arranged between the housing means, and the phase change material (PCM), and a heat exchanging means encompassed by the phase change material (PCM), and comprising heat transfer media. The heat exchanging means has an inner surface provided with a number of inner flanges, and an outer surface provided with a number of outer flanges. The inner flanges are encompassed by the heat transfer media. The outer flanges are encompassed by the phase change material (PCM). The energy cell also comprises a movable means arranged in connection to, and being affected by the phase change material (PCM). The energy system also comprises a cylinder head means, and a cylinder bottom means. The cylinder head means is connected to the cylinder block means, and comprises space means arranged in connection to the movable means for each energy cell, and comprising a working fluid contained in connection to, and being affected by the movable means. The cylinder bottom means is connected to the cylinder block means opposite to the cylinder head means, and comprising means operable to transport the heat transfer media.
A main advantage with the energy system according to the present invention is that both the power density and the manufacturing cost are improved. Furthermore, even the efficiency is improved.
A further advantage in this context is achieved if the means each is a first tubular means for each energy cell, and if the cylinder head means also comprises a second tubular means for each energy cell, wherein each first and second tubular means are arranged in relation to the energy cell in such a way that the heat transfer media flows through the first tubular means, the heat exchanging means, and the second tubular means, or vice versa.
According to another embodiment, it is an advantage if the means each is a tubular means divided with a partitioning means into a first means, and a second means for each energy cell, wherein the first and second means are arranged in connection with the cylinder bottom means in such a way that the heat transfer media flows through the first means, forth and back through the heat exchanging means, and the second means.
Furthermore, it is an advantage in this context if the second tubular means is comprised in and/or connected to a second grommet means each connected to a second pipe means outside the cylinder head means, and if the cylinder head means also comprises a first grommet means for each energy cell and connected to the space means, wherein each first grommet means is connected to a first pipe means outside the cylinder head means.
According to another embodiment, it is an advantage if the second tubular means is comprised in and/or connected to a second duct means in turn connected to a first connector means outside the cylinder head means, and if the cylinder head means also comprises a first duct means connected to the space means, and to a common duct means in turn connected to a second connector means outside the cylinder head means.
A further advantage in this context is achieved if the energy system also comprises valve means located outside the cylinder head means both for the heat transfer media, and the working fluid.
According to another embodiment, it is an advantage if the cylinder head means also comprises a first container means for hot heat transfer media, and a second container means for cold heat transfer media, wherein each second tubular means is connected to a valve means integrated in the cylinder head means, wherein each second tubular means after the valve means is connected to a first duct means connected to the first container means and to a second duct means connected to the second container means, wherein the first container means is connected to a first connector means, and the second container means is connected, via a first duct means , to a second connector means, wherein each valve means is located in connection to an energy cell, and if the cylinder head means also comprises a second duct means connected to the space means, and to a common duct means in turn connected to a third connector means, wherein the first to third connector means are located outside the cylinder head means.
Furthermore, it is an advantage in this context if the cylinder bottom means comprises a grommet means for each first tubular means.
According to another embodiment, it is an advantage if the cylinder head means also comprises a first pipe means for each energy cell connected to the space means, and if the energy system also comprises a second pipe means connected to each first pipe means and located outside the cylinder head means.
According to a further embodiment, it is an advantage if the cylinder head means also comprises a first duct means connected to the space means, and to a common duct means in turn connected to a first connector means outside the cylinder head means.
A further advantage in this context is achieved if each first and second tubular means is comprised in and/or connected to a first and second grommet means connected to a first and second pipe means located outside the cylinder bottom means.
According to another embodiment, it is an advantage if each first and second tubular means is comprised in and/or connected to a first and second duct means, wherein each first duct means is connected to a first common duct means in turn connected to a first connector means located outside the cylinder bottom means, and wherein each second duct means is connected to a second common duct means in turn connected to a second connector means located outside the cylinder bottom means.
Furthermore, it is an advantage in this context if the energy system also comprises valve means located outside the cylinder bottom means for the heat transfer media.
According to another embodiment, it is an advantage if the cylinder bottom means also comprises a first container means, and a second container means, wherein each first and second means is connected to a valve means integrated in the cylinder bottom means, wherein each first means after the valve means is connected to a first duct means connected to the first container means, and each second means after the valve means is connected to a second duct means connected to the second container means, wherein the first container means is connected to a first connector means, and the second container means is connected, via a first duct means to a second connector means, wherein the valve means is located in connection to the energy cell, and being operable to switch between hot and cold heat transfer media.
It will be noted that the term “comprises/comprising” as used in this description is intended to denote the presence of a given characteristic, step or component, without excluding the presence of one or more other characteristic features, integers, steps, components or groups thereof.
Embodiments of the invention will now be described with a reference to the accompanying drawings, in which:
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Furthermore, the energy cell 10 also comprises a first, insulating bushing means 301, and a second, insulating bushing means 302.
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The energy cell 10 also comprises a working fluid 28 which is contained in connection to, and being affected by the second part 262 of the piston means 26. Furthermore, the working fluid 28 can flow out, or in through a connector means 32.
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Furthermore, the energy system 100 also comprises a second pipe means 150 connected to each first pipe means 148, and being located outside the cylinder head means 104.
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Also in this embodiment, the cylinder head means 104 comprises space means 108 containing the working fluid 28. The cylinder head means 104 comprises a first duct means 152 connected to the space means 108, and to a common duct means 154 in turn connected to a first connector means 156 located outside the cylinder head means 104.
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In the embodiments disclosed in
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It is pointed out that the working fluid 28 could e.g. be water or hydraulic oil.
The placing of the valve means close to the energy cells 10 leads to fast switching and low energy losses by less inactive heat transfer media.
The energy system 100 according to the present invention function in the following way, divided in a heating phase, and a cooling phase.
During the heating phase, heat transfer media with a high temperature flows via the inlet pipe through the heat exchanging means 16. The phase change material (PCM) changes phase from solid to liquid and expands under high pressure. The expanding phase change material (PCM) pushes the membrane or piston means 26 upwards and working fluid 28 (e.g. water or hydraulic oil) flows through the ducts in the cylinder head means 104 to the connector means. A hydraulic device such as a piston or motor is connected to the connector means. If needed a pressure reduction device can be attached between the energy system 100 and the hydraulic device.
During the cooling phase, heat transfer media with low temperature flows via the inlet pipe through the heat exchanging means 16. The phase change material (PCM) changes phase from liquid to solid and contracts under low pressure. The hydraulic pressure and the contracting phase change material (PCM) drags the membrane or piston means 26 downwards and working fluid 28 flows back through the ducts in the cylinder head means 104 to the connector means.
It is pointed out that in all the different embodiments disclosed and described in this application, the movable means 26 can on the one hand be a piston means 26 and on the other hand be a membrane means 26.
The invention is not limited to the embodiments described in the foregoing. It will be obvious that many different modifications are possible within the scope of the following Claims.
Claims
1. An energy system operable to generate mechanical energy, said energy system comprising a cluster of elongated energy cells,
- wherein said energy cells are arranged parallel to each other in their longitudinal direction in a cylinder block in such a way as to optimize the volume of said cylinder block,
- wherein each energy cell is operable to generate mechanical energy when a phase change material (PCM) changes from solid phase to liquid phase,
- said energy cell comprises a housing holding said phase change material (PCM), an insulating means arranged between said housing, and said phase change material (PCM), and a heat exchanger encompassed by said phase change material (PCM), and comprising a heat transfer media,
- wherein said heat exchanger has an inner surface provided with a number of inner flanges, and an outer surface provided with a number of outer flanges, said inner flanges are encompassed by said heat transfer media, and said outer flanges are encompassed by said phase change material (PCM), and
- wherein said energy cell also comprises a movable member arranged in connection to, and being affected by said phase change material (PCM),
- wherein said energy system also comprises a cylinder head and a cylinder bottom, wherein said cylinder head is connected to said cylinder block, and comprises a space arranged in connection to said movable member for each energy cell, and comprising a working fluid contained in connection to, and being affected by said movable member,
- wherein the phase change material expands when changing from solid phase to liquid phase and pushes the movable member to cause a reduction of the space comprising the working fluid, and
- wherein said cylinder bottom is connected to said cylinder block opposite to said cylinder head, and comprising tubular members operable to transport said heat transfer media.
2. The energy system according to claim 1, wherein said tubular members each is a first tubular member for each energy cell, and wherein said cylinder head also comprises a second tubular member for each energy cell, wherein each first and second tubular member is arranged in relation to said energy cell in such a way that said heat transfer media flows through said first tubular member to said heat exchanger, and back through said second tubular member, or vice versa.
3. The energy system according to claim 1, wherein said tubular members each is divided with a partitioning into a first tubular member, and a second tubular member for each energy cell, wherein said first and second tubular members are arranged in connection with said cylinder bottom in such a way that said heat transfer media flows through said first tubular member, forth and back through said heat exchanger, and said second tubular member.
4. The energy system according to claim 2, wherein said second tubular member is comprised in and/or connected to a second grommet each connected to a second pipe outside said cylinder head, and wherein said cylinder head also comprises a first grommet for each energy cell and connected to said space, wherein each first grommet is connected to a first pipe outside said cylinder head.
5. The energy system according to claim 2, wherein said second tubular member is comprised in and/or connected to a second duct each connected to a common duct in turn connected to a first connector outside said cylinder head, and wherein said cylinder head also comprises a first duct connected to said space, and to a common duct in turn connected to a second connector outside said cylinder head.
6. The energy system according to claim 4, wherein said energy system also comprises valves located outside said cylinder head both for said heat transfer media, and said working fluid.
7. The energy system according to claim 2, wherein said cylinder head also comprises a first container for hot transfer media, and a second container for cold heat transfer media, wherein each said second tubular member is connected to a valve integrated in said cylinder head, wherein each said second tubular member after said valve is connected to a first duct connected to said first container and to a second duct connected to said second container, wherein said first container is connected to a first connector, and said second container is connected, via a first duct, to a second connector, wherein each valve is located in connection to an energy cell, and operable to switch between hot and cold heat transfer media, and wherein said cylinder head also comprises a second duct connected to said space, and to a common duct in turn connected to a third connector, wherein said first to third connector are located outside said cylinder head.
8. The energy system according to claim 2, wherein said cylinder bottom comprises a grommet for each said first tubular member.
9. The energy system according to claim 3, wherein said cylinder head also comprises a first pipe for each energy cell connected to said space, and wherein said energy system also comprises a second pipe connected to each first pipe and located outside said cylinder head.
10. The energy system according to claim 3, wherein said cylinder head also comprises a first duct connected to said space, and to a common duct in turn connected to a first connector outside said cylinder head.
11. The energy system according to claim 3, wherein each said first and second tubular member is comprised in and/or connected to a first and second grommet connected to a first and second pipe located outside said cylinder bottom.
12. The energy system according to claim 3, wherein each said first and second tubular member is comprised in and/or connected to a first and second duct, wherein each said first duct is connected to a first common duct in turn connected to a first connector located outside said cylinder bottom, and wherein each said second duct is connected to a second common duct in turn connected to a second connector located outside said cylinder bottom.
13. The energy system according to claim 11, wherein said energy system also comprises valves located outside said cylinder bottom for said heat transfer media.
14. The energy system according to claim 3,
- wherein said cylinder bottom also comprises a first container, and a second container,
- wherein each said first and second tubular member is connected to a valve integrated in said cylinder bottom,
- wherein each said first tubular member after said valve is connected to a first duct connected to said first container, and each said second tubular member after said valve is connected to a second duct connected to said second container,
- wherein said first container is connected to a first connector, and said second container is connected, via a first duct, to a second connector, and
- wherein said valve is located in connection to said energy cell, and operable to switch between hot and cold heat transfer media.
15. A method for generating mechanical energy using an energy system comprising a cluster of elongated energy cells, further the method comprising the steps of:
- arranging said energy cells parallel to each other in their longitudinal direction in a cylinder block in such a way as to optimize the volume of said cylinder block, wherein each energy cell is operable to generate mechanical energy when a phase change material (PCM) changes from solid phase to liquid phase, each energy cell comprising a housing holding said phase change material (PCM);
- arranging an insulating means between said housing and said phase change material (PCM);
- providing a heat exchanger encompassed by said phase change material (PCM), and comprising a heat transfer media, wherein said heat exchanger has an inner surface provided with a number of inner flanges, and an outer surface provided with a number of outer flanges, said inner flanges are encompassed by said heat transfer media, and said outer flanges are encompassed by said phase change material (PCM);
- arranging a movable member in connection to, and being affected by said phase change material (PCM) in said energy cells;
- connecting a cylinder head to said cylinder block, wherein the cylinder head comprises a space arranged in connection to said movable member for each energy cell, which space comprises a working fluid contained in connection to, and being affected by said movable member,
- connecting a cylinder bottom to said cylinder block opposite to said cylinder head, wherein the cylinder bottom comprises tubular members operable to transport said heat transfer media; and
- heating the phase change material by passing heat transfer media with a high temperature through the heat exchanger to cause a change from solid phase to liquid phase, wherein the phase change material expands and pushes the movable member to cause a reduction of the space comprising the working fluid.
Type: Application
Filed: Oct 17, 2013
Publication Date: Feb 13, 2014
Applicant: EXENCOTECH AB (Sollentuna)
Inventor: Bengt ÖSTLUND (Sollentuna)
Application Number: 14/056,174
International Classification: F03G 7/00 (20060101);