WO2010074616A1 - An energy cell - Google Patents

An energy cell Download PDF

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Publication number
WO2010074616A1
WO2010074616A1 PCT/SE2008/051549 SE2008051549W WO2010074616A1 WO 2010074616 A1 WO2010074616 A1 WO 2010074616A1 SE 2008051549 W SE2008051549 W SE 2008051549W WO 2010074616 A1 WO2010074616 A1 WO 2010074616A1
Authority
WO
WIPO (PCT)
Prior art keywords
energy
heat transfer
pipe
transfer media
energy cell
Prior art date
Application number
PCT/SE2008/051549
Other languages
French (fr)
Inventor
Håkan INGVAST
Original Assignee
Exencotech Ab
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Exencotech Ab filed Critical Exencotech Ab
Priority to US13/141,441 priority Critical patent/US8919117B2/en
Priority to CN200880132468.9A priority patent/CN102265031B/en
Priority to EP08879227.0A priority patent/EP2379884A4/en
Priority to BRPI0823052A priority patent/BRPI0823052B1/en
Priority to PCT/SE2008/051549 priority patent/WO2010074616A1/en
Priority to JP2011542045A priority patent/JP5335101B2/en
Publication of WO2010074616A1 publication Critical patent/WO2010074616A1/en
Priority to ZA2011/04004A priority patent/ZA201104004B/en

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F03MACHINES OR ENGINES FOR LIQUIDS; WIND, SPRING, OR WEIGHT MOTORS; PRODUCING MECHANICAL POWER OR A REACTIVE PROPULSIVE THRUST, NOT OTHERWISE PROVIDED FOR
    • F03GSPRING, WEIGHT, INERTIA OR LIKE MOTORS; MECHANICAL-POWER PRODUCING DEVICES OR MECHANISMS, NOT OTHERWISE PROVIDED FOR OR USING ENERGY SOURCES NOT OTHERWISE PROVIDED FOR
    • F03G7/00Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for
    • F03G7/06Mechanical-power-producing mechanisms, not otherwise provided for or using energy sources not otherwise provided for using expansion or contraction of bodies due to heating, cooling, moistening, drying or the like

Definitions

  • the present invention relates to an energy cell operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to liquid phase.
  • PCM phase change material
  • each cycle comprises a high temperature melting step conducted under a first pressure, and a low temperature solidification step conducted under a second pressure
  • each cycle comprises a high temperature solidification step conducted under a first pressure and a low temperature melting step conducted under a second pressure.
  • a nonaqueous medium Is used, the first pressure and the second pressure are a relatively high pressure and a relatively low pressure, respectively.
  • an aqueous medium is used the two pressures are a relatsveily low pressure and a relatively high pressure, respectively.
  • the operation of a heat pump is the reverse operation of a heat engine.
  • the patent document US 5, 263, 323 A relates to a thermal actuator, also known as a heat capacitance motor, which derives its energy from She physical expansion of paraffin wax as it changes from solid to liquid when heated within an enclosure such as a cylinder. This energy is converted into mechanical force which causes translation of a piston slsdably mounted within the cylinder, thus creating hydrostatic pressure which is converted to work.
  • the thermal actuator may be utilized in various drug delivery systems in which the hydrostatic pressure created by the actuator is used to expel the contents of a syringe.
  • the patent document GB 1 , 341 , 183 A relates to a device for converting thermal energy to mechanicai energy, wherein heat is applied to liquid In one or more annular chambers which is/are in communication with, but thermally Insulated from, a further an nuisancear chamber so as to cause a volume expansion thereof, and hence a movement of an actuating rod attached thereto.
  • the device comprises annular chambers 9, 10, 2, chamber 2 being seated by spring bellows 8. Heating elements 11 , 12 vaporize the liquid in chambers 9, 10, thereby causing contraction of the beliows 6 and hence movement of a rod 7, Use of only one of the elements 11 , 12 moves the rod 7 by a half-stroke.
  • the patent document US 4, 283, 915 A relates to a hydraulic fluid generator.
  • Two sources of water with a temperature differentia! of say 20° F flow alternatively through heat exchanger tubes to expand and contract a working liquid that has a high coefficient of thermal expansion, the whole working cycle being carried out below the boiling point of the working liquid.
  • check valves preventing reverse flow, the expansion and contraction of the working liquid provides a high pressure hydraulic output which may be used to drive a hydraulic motor.
  • four banks of heat exchangers may be operated sequentially with hydraulic accumulator means smoothing out the flow pulsations.
  • Each bank has a four-stage operating cycle and electrical circuitry controls the four banks simultaneously to cause the four different stages to occur in certain of the four different banks in staggered relation for producing a substantially constant overall hydraulic output.
  • the patent document US 5, 375, 983 A relates to a system for utilizing the expansion of water as the water is transformed from a liquid state to a solid state includes a rigid outer container and a flexible inner bladder received centrally within the outer container. Hydraulic fluid is received within the bladder, and water is disposed between the bladder and outer container. The hydraulic fluid is pressurized as the water is lowered in temperature to a freezing temperature, The pressurized fluid may be stored for selective release from the bladder to produce work utilizing the energy of the pressure within the hydraulic fluid.
  • the patent document WO 89/12748 A1 relates to a process and apparatus for conversion of low value thermal energy into mechanical energy by thermal expansion of an inert liquid expansion medium, which in a relatively low temperature range of not higher than 80° C has a relatively high expansion coefficient, which medium is contained in pressure tubes included in a regeneration cylinder, which pressure tubes are stepwise heated or cooled by a thermal medium circulating in the cylinder without parts of the thermal medium with different temperatures being intermingled.
  • the expansion medium are paraffin ' s.
  • the above mentioned problems are solved by an energy celi operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to liquid phase according to Claim 1.
  • the energy cell comprises a housing means holding the phase change materia! (PCM). Furthermore, the energy cell also comprises an insulating means arranged between the housing means and the phase change material (PCM), The energy cell also comprises a heat exchanging means encompassed by the phase change material (PCM) and comprising a number of pipe means, and a number of disc means, each provided with a number of aperture means and each encompassing a part of the pipe means. Between two consecutive disc means there is a distance.
  • the energy cell also comprises a centrally located, flexibie bladder means which at its end parts are fixed to the energy cell and are open, and between the end parts being flexible.
  • Each of the pipe means comprises a heat transfer media.
  • the phase change material (PCM) encompass the pipe means, the disc means and being able to pass through the aperture means.
  • the bladder means comprises a hydraulic fluid being able to flow in and out through the open end parts of the bladder means, and being affected by lhe phase change
  • a main advantage with the energy cell according to the present invention is that it is optimized for high thermal efficiency and structural strength. Furthermore, with this energy cell it is possible to minimize both thermal and mechanical tosses. Furthermore, the energy ceil according to the present invention is optimized regarding power density, manufacturing costs.
  • the housing means comprises a cylinder block means, a cylinder head means, and a cylinder bottom means, wherein the cylinder head means comprises a first grommet means for each pipe means, and wherein the cylinder bottom means comprises a first grornmet means for each pipe means.
  • the energy cell also comprises an inlet interface means connected to the cylinder head means, and operabie to feed the heat transfer media to the pipe means, and an outlet interface means connected to the cylinder bottom means, and operable to discharge the heat transfer media from the pipe means.
  • the inlet interface means comprises a container means in connection to the cyiinder head means, and a first connector means for In flow of hot heat transfer media, and a vaive means for switching on or off of in flow of hot heat transfer media, and a second connector means for in flow of cold heat transfer media, and a vaive means for switching on or off of cold heat transfer media
  • the outlet interface means comprises a container means in connection to the cylinder bottom means, and a first connector means for out flow of hot heat transfer media, and a vaive means for switching on or off of out flow of hot heat transfer media, and a second connector means for out flow of cold heat transfer media, and a vaive means for switching on or off of out flow of cold heat transfer media.
  • the inlet interface means comprises a container means in connection to the cylinder head means, and a connector means for in flow of hot or coid heat transfer media, and a valve means for switching between in flow of hot or cold heat transfer media
  • the outlet interface means comprises a container means in connection to the cylinder bottom means, and a connector means for out flow of hot or coid heat transfer media, and a valve means for switching between out flow of hot or cold heat transfer media.
  • the energy cell aiso comprises a first pipe means and a second pipe means, connected to an end part each of the bladder means.
  • the energy cell also comprises a centrally located pipe means provided with apertures, wherein a middle part of the pipe means is arranged in the bladder means.
  • the cylinder head means aiso comprises a second grommet means for the pipe means
  • the cylinder bottom means also comprises a second grommet means for the pipe means
  • the centrally located pipe means is fixed in both the cylinder head means and the cylinder bottom means and pass through both the second grommet means.
  • a further advantage in this context is achieved if the first grommet means, and the second grommet means are insulated.
  • each energy ceil comprises a connecting means operable to connect energy ceils in series via their centrally located pipe means, or via their first and second pipe means. This means that several energy cells can be connected to each other, which implies that it is possible to design both small and large systems.
  • the energy cell also comprises a movable means in connection to, and being affected by the phase change material (PCM) in order to generate mechanical energy.
  • PCM phase change material
  • Fig. 1 is a sectional view of a first embodiment of an energy cell operable to generate a pressurized fluid according to the present invention
  • Fig. 2 is a sectional view of the energy cell disclosed in Fig. 1 , taken along the section B-B in Fig. 1 ;
  • Fig. 3 is a sectional view of detail C disclosed in Fig. 1 , here disclosed in a
  • Fig. 4 is a sectional view of a pipe means comprised In the heat exchanging means of the energy cell according to the present invention
  • Fig. 5 is a side view of a disc means comprised in the heat exchanging means of the energy cell according to the present invention
  • Fig. 8 is a sectional view of a first embodiment of the inlet interface means and the outlet interface means, which are parts of the energy ceil disclosed in Fig.
  • Fig. 7 is a sectional view of a second embodiment of the inlet interface means and the outlet interface means, which are parts of the energy cell disclosed in Fig. 1 ;
  • Fig, 8 is a schematically view of a part of another embodiment of an energy cell according io the present invention.
  • Fig. 9 is a sectional view of detail D disciosed in Fig. 1 , here disciosed in a larger scale.
  • FIG. 1 there is disclosed a sectional view of a first embodiment of an energy ceil 10 operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to iiquid phase.
  • the energy cell 10 comprises a housing means 12 holding the phase change material (PCM).
  • the energy cell 10 also comprises an insulating means 14 (see fig. 3) arranged between the housing means 12 and the phase change materia! (PCM).
  • the energy ceil 10 also comprises a heat exchanging means 16 encompassed by the phase change material (PCM).
  • the heat exchanging means 18 comprises a number of pipe means 400, wherein heat transfer media flows through the pipe means 400.
  • the heat exchanging means 16 also comprises a number of disc means 402, 404 (not disclosed in fig. 1 , but disclosed in fig. 5).
  • the disc means 402, 404 each is provided with a number of aperture means 500 s so that the phase change materia! (PCM) can pass through the aperture means 500. Furthermore, the disc means 402, 404 each encompasses a part of the pipe means 400, As also is apparent in fig, 1 , the energy eel! 10 also comprises a centrally located, bladder means 410 which Is flexible, The bladder means 410 is fixed to the energy cell 10, at the end parts of the bladder means 410. Furthermore, the bladder means 410 is open at its end parts and connect to a first pipe means 4061 and a second pipe means 4062. The bladder means 410 comprises a hydraulic fluid being able to flow in and out through the open end parts of the bladder means 410, and being affected by the phase change material (PCM).
  • PCM phase change material
  • the housing means 12 comprises a cylinder block means 421 , a cylinder head means 414, and a cylinder bottom means 418.
  • the cylinder head means 414 comprises a first grommet means 418 for each pipe means 400
  • the cylinder bottom means 416 comprises a first grommet means 422 for each pipe means 400.
  • the cylinder head means 414 also comprises a second grommet means 420 for the first pipe means 4081.
  • the cylinder bottom means 416 also comprises a second grommet means 424 for the second pipe means 4062.
  • the energy ceil 10 also comprises an inlet interface means 426 connected to the cylinder head means 414.
  • the inlet interface means 426 is operable to feed the heat transfer media to the pipe means 400.
  • the energy ceil 10 also comprises an outlet interface means 428 connected to the cylinder bottom means 416.
  • the outlet interface means 428 Is operable to discharge the heat transfer media from the pipe means 400.
  • the inlet interface means 426 comprises a container means 430 in connection to the cylinder head means 414. Furthermore, the inlet interface means 426 also comprises a first connector means 432 for in flow of hot heat transfer media, and a second connector means 434 for in flow of cold heat transfer media, As also is apparent in fig. 1 , the outlet interface means 428 comprises a container means 438 in connection to the cylinder bottom means 416. Furthermore, the outlet interface means 428 also comprises a first connector means 438 for out flow of hot heat transfer media, and a second connector means 440 for out flow of coid heat transfer media.
  • fig. 2 there is disclosed a sectional view of the energy ceil 10 disclosed in fig. 1 , taken along the section B-B in fig. 1.
  • the distribution of pipe means 400 ⁇ and centrally located in fig. 2 is the bladder means 410.
  • fig. 3 there is disclosed a sectional view of the circle C disclosed in fig, 1 , here disclosed in a larger scale.
  • a part of the housing means 12 provided with its insulating means 14 are disclosed in this figure.
  • the heat exchanging means 16 is disclosed in the form of one pipe means 400 provided with a number of disc means 402, 404.
  • fig. 4 there is disclosed a sectional view of a pipe means 400 comprised in the heat exchanging means 16 of the energy cell 10 according to the present invention.
  • each pipe means 400 is provided with a number of inner flanges 450.
  • fig. 5 there is disclosed a side view of a disc means 402, 404 comprised in the heat exchanging means 16 of the energy ceil 10 according to the present invention.
  • each disc means 402, 404 is provided with a number of aperture means 500, The phase change material (PCM) can pass through these aperture means 500.
  • PCM phase change material
  • the inlet interface means 426 comprises a container means 430, a first connector means 432, and a second connector means 434.
  • the energy ceil 10 also comprises a valve means 452 connected to the first connector means 432 and operabie to switch on or off in flow of hot heat transfer media.
  • the energy ceil 10 also comprises a vaive means 454 connected to the second connector means 434 and operable to switch on or off in flow of cold heat transfer media.
  • the outlet interface means 428 comprises a container means 438, a first connector means 438, and a second connector means 440.
  • the energy DCi 10 also comprises a valve means 456 connected to the first connector means 438 and operable to switch on or off of out flow of hot heat transfer media.
  • the energy ceil 10 aiso comprises a valve means 458 connected to the second connector means 440 and operabie to switch on or off of out flow of cold heat transfer media.
  • the valve means 452 and 454 are working synchronized, i. e., the valve means 452 is on and the valve means 454 is off, or vice versa.
  • the inlet interface means 428 comprises a container means 430, and a connector means 442 for In flow of hot or cold heat transfer media.
  • the energy cell 10 also comprises a vaive means 444 connected to the connector means 442 and operable to switch between in flow of hot or cold heat transfer media.
  • the outlet interface means 428 comprises a container means 436 and a connector means 448 for out flow of hot or cold heat transfer media
  • the energy cell 10 also comprises a valve means 448 connected to the connector means 446 and operable to switch between out flow of hot or cold heat transfer media.
  • the energy cell 10 aiso comprises a centrally iocaf ⁇ d pipe means 406 provided with apertures 408.
  • the middle part of the pipe means 406 Is arranged inside the bladder means 410. which only is schematicaliy disclosed in this figure.
  • the centrally located pipe means 406 is fixed in both the cylinder head means 414 and the cylinder bottom means 416 and pass through both the second gromrnet means 420, 424 (See fig.1 ).
  • the pipe means 408 comprises a hydraulic fluid, which can flow in and out through the apertures 408, and consequently more or less fill the bladder means 410. This embodiment with the pipe means 406 will reduce the bulging and stress of the cylinder head means 414 and cylinder bottom means 418 when the pressure in the energy cell 10 rises.
  • FIG. 9 there is disclosed a sectional view of circle D disclosed In fig. 1 , here disclosed in a larger scale.
  • the first pipe means 4081 is disclosed.
  • the upper part of the bladder means 410 is also disclosed.
  • An upper collar of the bladder means 410 is fixed between the two parts 4141 , 4142 of the cylinder head means 414,
  • the bladder means 410 is open against the first pipe means 4061. It is pointed out that the same appiies for the cylinder bottom means 418, the second pipe means 4062 and the bladder means 410, although it is not disclosed in this figure.
  • the first grommet means 418, 422, and the second grommet means 420, 424 are
  • the inner walls of the inlet interface means 426, and the inner walls of the outlet interface means 42 ⁇ are insulated.
  • the heat transfer media is wafer, oil, or other suitable media in liquid or gas phases.
  • each energy cell 10 also comprises a connecting means (not disclosed) operable to connect energy ceils 10 in series via their centrally located pipe means 406, or via their first and second pipe means 4061 , 4062.
  • the energy cell 10 It also comprises a movable means (not disclosed) arranged in connection to, and being affected by the phase change material (PCM) in order to generate mechanical energy.
  • PCM phase change material
  • phase change material (PCM) Is in solid phase during the compression.
  • PCM phase change materia!
  • a high temperatured heat transfer media (e. g. water) flows e. g. through the first connector means 432 via the inlet interface means 428 to the heat exchanging means 16.
  • the heat energy is transferred from the heat transfer media to the phase change materia! (PCM) via the pipe means 400 and the disc means 402, 404 in the heat exchanging means 18,
  • PCM phase change materia!
  • the moving bladder means 410 makes the hydraulic fluid contained in the bladder means 410 to flow out via the first pipe means 4081 , or via the pipe means 408 under a high pressure.
  • the hydraulic pressure is reieased from high to low pressure making the phase change materia! (PCM) spring back which lead to that the hydraulic fluid contained in the bladder means 410 flow out via the first pipe means 4081 , or via the pipe means 408 under a variable (high to tow) pressure.
  • PCM phase change materia!
  • a low temperatured heat transfer media (e. g. water) flows e. g. through the second connector means 434 via the iniet interface means 428 to the heat exchanging means 16.
  • the heat energy is transferred from the phase change material (PCM) to the heat transfer media via the pipe means 400 and the disc means 402, 404 in the heat exchanging means 16,
  • phase change materia! goes solid and contracts and drags the bladder means 410 outwards,
  • the bladder means 410 is also forced out by a light pressure in the hydraulic fluid (approximately 10 bar).

Abstract

The present invention relates to an energy cell (10) operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to liquid phase. The energy cell (10) comprises a housing means (12) holding the phase change material (PCM), and an insulating means (14) arranged between the housing means (12), and the phase change material (PCM). The energy cell (10) also comprises a heat exchanging means (16) encompassed by the phase change material (PCM) and comprising a number of pipe means (400), and a number of disc means (402, 404), each provided with a number of aperture means (500) and each encompassing a part of the pipe The energy cell (10) also comprises a centrally located, bladder means (410) which at its end parts are fixed to the energy eel! (10) and are open, and between the end parts being flexible. Each pipe means (400) comprises a heat transfer media. The phase change material (PCM) encompasses the pipe means (400) and the disc means (402, 404) and being able to pass through the aperture means (500). The bladder means (410) comprises a hydraulic fluid being able to flow in and out through the open end parts of the bladder means (410)3 and being affected by the phase change material (PCM).

Description

The present invention relates to an energy cell operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to liquid phase.
The patent document US 4, 079, 596 A relates to a heal engine, or a heat pump, in which the working medium used is subjected alternatively to solidification and melting operations. A working medium so used is referred to as an S/L type working medium, in the heat engine, an S/L type working medium is subject to cyclic operations, each cycle comprises a high temperature melting step conducted under a first pressure, and a low temperature solidification step conducted under a second pressure, In the heat pump, each cycle comprises a high temperature solidification step conducted under a first pressure and a low temperature melting step conducted under a second pressure. When a nonaqueous medium Is used, the first pressure and the second pressure are a relatively high pressure and a relatively low pressure, respectively. When an aqueous medium is used the two pressures are a relatsveily low pressure and a relatively high pressure, respectively. It is noted that the operation of a heat pump is the reverse operation of a heat engine.
The patent document US 5, 263, 323 A relates to a thermal actuator, also known as a heat capacitance motor, which derives its energy from She physical expansion of paraffin wax as it changes from solid to liquid when heated within an enclosure such as a cylinder. This energy is converted into mechanical force which causes translation of a piston slsdably mounted within the cylinder, thus creating hydrostatic pressure which is converted to work. The thermal actuator may be utilized in various drug delivery systems in which the hydrostatic pressure created by the actuator is used to expel the contents of a syringe.
The patent document GB 1 , 341 , 183 A relates to a device for converting thermal energy to mechanicai energy, wherein heat is applied to liquid In one or more annular chambers which is/are in communication with, but thermally Insulated from, a further annuiar chamber so as to cause a volume expansion thereof, and hence a movement of an actuating rod attached thereto. The device comprises annular chambers 9, 10, 2, chamber 2 being seated by spring bellows 8. Heating elements 11 , 12 vaporize the liquid in chambers 9, 10, thereby causing contraction of the beliows 6 and hence movement of a rod 7, Use of only one of the elements 11 , 12 moves the rod 7 by a half-stroke.
The patent document US 4, 283, 915 A relates to a hydraulic fluid generator. Two sources of water with a temperature differentia! of say 20° F flow alternatively through heat exchanger tubes to expand and contract a working liquid that has a high coefficient of thermal expansion, the whole working cycle being carried out below the boiling point of the working liquid. With check valves preventing reverse flow, the expansion and contraction of the working liquid provides a high pressure hydraulic output which may be used to drive a hydraulic motor. To provide substantially steady output flow, four banks of heat exchangers may be operated sequentially with hydraulic accumulator means smoothing out the flow pulsations. Each bank has a four-stage operating cycle and electrical circuitry controls the four banks simultaneously to cause the four different stages to occur in certain of the four different banks in staggered relation for producing a substantially constant overall hydraulic output.
The patent document US 5, 375, 983 A relates to a system for utilizing the expansion of water as the water is transformed from a liquid state to a solid state includes a rigid outer container and a flexible inner bladder received centrally within the outer container. Hydraulic fluid is received within the bladder, and water is disposed between the bladder and outer container. The hydraulic fluid is pressurized as the water is lowered in temperature to a freezing temperature, The pressurized fluid may be stored for selective release from the bladder to produce work utilizing the energy of the pressure within the hydraulic fluid.
The patent document WO 89/12748 A1 relates to a process and apparatus for conversion of low value thermal energy into mechanical energy by thermal expansion of an inert liquid expansion medium, which in a relatively low temperature range of not higher than 80° C has a relatively high expansion coefficient, which medium is contained in pressure tubes included in a regeneration cylinder, which pressure tubes are stepwise heated or cooled by a thermal medium circulating in the cylinder without parts of the thermal medium with different temperatures being intermingled. Examples of the expansion medium are paraffin's.
The above presented documents disclose different solutions within this technical area without presenting an optimal solution regarding thermal efficiency and structural strength. Furthermore, the solutions presented in these documents are not optima! regarding power density, manufacturing efficiency and manufacturing costs.
The above mentioned problems are solved by an energy celi operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to liquid phase according to Claim 1. The energy cell comprises a housing means holding the phase change materia! (PCM). Furthermore, the energy cell also comprises an insulating means arranged between the housing means and the phase change material (PCM), The energy cell also comprises a heat exchanging means encompassed by the phase change material (PCM) and comprising a number of pipe means, and a number of disc means, each provided with a number of aperture means and each encompassing a part of the pipe means. Between two consecutive disc means there is a distance. Furthermore, the energy cell also comprises a centrally located, flexibie bladder means which at its end parts are fixed to the energy cell and are open, and between the end parts being flexible. Each of the pipe means comprises a heat transfer media. The phase change material (PCM) encompass the pipe means, the disc means and being able to pass through the aperture means. The bladder means comprises a hydraulic fluid being able to flow in and out through the open end parts of the bladder means, and being affected by lhe phase change
A main advantage with the energy cell according to the present invention is that it is optimized for high thermal efficiency and structural strength. Furthermore, with this energy cell it is possible to minimize both thermal and mechanical tosses. Furthermore, the energy ceil according to the present invention is optimized regarding power density, manufacturing costs. A further advantage in this context is achieved if the housing means comprises a cylinder block means, a cylinder head means, and a cylinder bottom means, wherein the cylinder head means comprises a first grommet means for each pipe means, and wherein the cylinder bottom means comprises a first grornmet means for each pipe means.
Furthermore, It is an advantage in this context if the energy cell also comprises an inlet interface means connected to the cylinder head means, and operabie to feed the heat transfer media to the pipe means, and an outlet interface means connected to the cylinder bottom means, and operable to discharge the heat transfer media from the pipe means.
A further advantage in this context is achieved if the inlet interface means comprises a container means in connection to the cyiinder head means, and a first connector means for In flow of hot heat transfer media, and a vaive means for switching on or off of in flow of hot heat transfer media, and a second connector means for in flow of cold heat transfer media, and a vaive means for switching on or off of cold heat transfer media, and if the outlet interface means comprises a container means in connection to the cylinder bottom means, and a first connector means for out flow of hot heat transfer media, and a vaive means for switching on or off of out flow of hot heat transfer media, and a second connector means for out flow of cold heat transfer media, and a vaive means for switching on or off of out flow of cold heat transfer media.
According to another embodiment, it is an advantage if the inlet interface means comprises a container means in connection to the cylinder head means, and a connector means for in flow of hot or coid heat transfer media, and a valve means for switching between in flow of hot or cold heat transfer media, and if the outlet interface means comprises a container means in connection to the cylinder bottom means, and a connector means for out flow of hot or coid heat transfer media, and a valve means for switching between out flow of hot or cold heat transfer media. Furthermore, it is an advantage In this context if the pipe means are provided with a number of Inner flanges.
A further advantage in this context is achieved if the energy cell aiso comprises a first pipe means and a second pipe means, connected to an end part each of the bladder means. According to another embodiment, it is an advantage if the energy cell also comprises a centrally located pipe means provided with apertures, wherein a middle part of the pipe means is arranged in the bladder means.
Furthermore, it is an advantage in this context if the cylinder head means aiso comprises a second grommet means for the pipe means, and if the cylinder bottom means also comprises a second grommet means for the pipe means, and if the centrally located pipe means is fixed in both the cylinder head means and the cylinder bottom means and pass through both the second grommet means.
A further advantage in this context is achieved if the first grommet means, and the second grommet means are insulated.
Furthermore, it is an advantage in this context if the inner walls of the inlet interface means and the inner walis of the outlet interface means are insulated,
A further advantage in this context is achieved if the heat transfer media is water, oil, or other suitable media in liquid or gas phases. Furthermore, it is an advantage in this context if each energy ceil comprises a connecting means operable to connect energy ceils in series via their centrally located pipe means, or via their first and second pipe means. This means that several energy cells can be connected to each other, which implies that it is possible to design both small and large systems. A further advantage in this context is achieved if the energy cell also comprises a movable means in connection to, and being affected by the phase change material (PCM) in order to generate mechanical energy. 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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Fig. 1 is a sectional view of a first embodiment of an energy cell operable to generate a pressurized fluid according to the present invention;
Fig. 2 is a sectional view of the energy cell disclosed in Fig. 1 , taken along the section B-B in Fig. 1 ; Fig. 3 is a sectional view of detail C disclosed in Fig. 1 , here disclosed in a
Fig. 4 is a sectional view of a pipe means comprised In the heat exchanging means of the energy cell according to the present invention; Fig. 5 is a side view of a disc means comprised in the heat exchanging means of the energy cell according to the present invention;
Fig. 8 is a sectional view of a first embodiment of the inlet interface means and the outlet interface means, which are parts of the energy ceil disclosed in Fig.
1 ; Fig. 7 is a sectional view of a second embodiment of the inlet interface means and the outlet interface means, which are parts of the energy cell disclosed in Fig. 1 ;
Fig, 8 is a schematically view of a part of another embodiment of an energy cell according io the present invention; and Fig. 9 is a sectional view of detail D disciosed in Fig. 1 , here disciosed in a larger scale.
In fig. 1 there is disclosed a sectional view of a first embodiment of an energy ceil 10 operable to generate a pressurized fluid for use as an energy source when a phase change material (PCM) changes from solid phase to iiquid phase. The energy cell 10 comprises a housing means 12 holding the phase change material (PCM). The energy cell 10 also comprises an insulating means 14 (see fig. 3) arranged between the housing means 12 and the phase change materia! (PCM). Furthermore, the energy ceil 10 also comprises a heat exchanging means 16 encompassed by the phase change material (PCM). The heat exchanging means 18 comprises a number of pipe means 400, wherein heat transfer media flows through the pipe means 400. Fυrthermore! the heat exchanging means 16 also comprises a number of disc means 402, 404 (not disclosed in fig. 1 , but disclosed in fig. 5).
In fig. 5 there is apparent that the disc means 402, 404 each is provided with a number of aperture means 500s so that the phase change materia! (PCM) can pass through the aperture means 500. Furthermore, the disc means 402, 404 each encompasses a part of the pipe means 400, As also is apparent in fig, 1 , the energy eel! 10 also comprises a centrally located, bladder means 410 which Is flexible, The bladder means 410 is fixed to the energy cell 10, at the end parts of the bladder means 410. Furthermore, the bladder means 410 is open at its end parts and connect to a first pipe means 4061 and a second pipe means 4062. The bladder means 410 comprises a hydraulic fluid being able to flow in and out through the open end parts of the bladder means 410, and being affected by the phase change material (PCM).
As also is apparent in fig. 1 , the housing means 12 comprises a cylinder block means 421 , a cylinder head means 414, and a cylinder bottom means 418. The cylinder head means 414 comprises a first grommet means 418 for each pipe means 400, and the cylinder bottom means 416 comprises a first grommet means 422 for each pipe means 400. Furthermore, as also is apparent in fig. 1 , the cylinder head means 414 also comprises a second grommet means 420 for the first pipe means 4081. The cylinder bottom means 416 also comprises a second grommet means 424 for the second pipe means 4062.
The energy ceil 10 also comprises an inlet interface means 426 connected to the cylinder head means 414. The inlet interface means 426 is operable to feed the heat transfer media to the pipe means 400. Furthermore, the energy ceil 10 also comprises an outlet interface means 428 connected to the cylinder bottom means 416. The outlet interface means 428 Is operable to discharge the heat transfer media from the pipe means 400.
Also disclosed in fig. 1 is the fact that the inlet interface means 426 comprises a container means 430 in connection to the cylinder head means 414. Furthermore, the inlet interface means 426 also comprises a first connector means 432 for in flow of hot heat transfer media, and a second connector means 434 for in flow of cold heat transfer media, As also is apparent in fig. 1 , the outlet interface means 428 comprises a container means 438 in connection to the cylinder bottom means 416. Furthermore, the outlet interface means 428 also comprises a first connector means 438 for out flow of hot heat transfer media, and a second connector means 440 for out flow of coid heat transfer media.
In fig. 2 there is disclosed a sectional view of the energy ceil 10 disclosed in fig. 1 , taken along the section B-B in fig. 1. Here is disclosed the distribution of pipe means 400\ and centrally located in fig. 2 is the bladder means 410. In fig. 3 there is disclosed a sectional view of the circle C disclosed in fig, 1 , here disclosed in a larger scale. A part of the housing means 12 provided with its insulating means 14 are disclosed in this figure. Furthermore, the heat exchanging means 16 is disclosed in the form of one pipe means 400 provided with a number of disc means 402, 404.
In fig. 4 there is disclosed a sectional view of a pipe means 400 comprised in the heat exchanging means 16 of the energy cell 10 according to the present invention. As is apparent in this figure, each pipe means 400 is provided with a number of inner flanges 450. in fig. 5 there is disclosed a side view of a disc means 402, 404 comprised in the heat exchanging means 16 of the energy ceil 10 according to the present invention. As Is apparent in this figure, each disc means 402, 404 is provided with a number of aperture means 500, The phase change material (PCM) can pass through these aperture means 500. Also disclosed in this figure, in section A-A, is an aperture arranged for the pipe means 400 (not disclosed).
In fig. 6 there is disclosed a sectional view of a first embodiment of the inlet interface means 426 and the outlet interface means 428, which are parts of the energy celi 10 disclosed in fig. 1. This first embodiment is also partiy disclosed in fig. 1. As is apparent in this figure, the inlet interface means 426 comprises a container means 430, a first connector means 432, and a second connector means 434. Furthermore, the energy ceil 10 also comprises a valve means 452 connected to the first connector means 432 and operabie to switch on or off in flow of hot heat transfer media. The energy ceil 10 also comprises a vaive means 454 connected to the second connector means 434 and operable to switch on or off in flow of cold heat transfer media. As is apparent in the lower part of this figure, the outlet interface means 428 comprises a container means 438, a first connector means 438, and a second connector means 440. The energy ceii 10 also comprises a valve means 456 connected to the first connector means 438 and operable to switch on or off of out flow of hot heat transfer media. Furthermore, the energy ceil 10 aiso comprises a valve means 458 connected to the second connector means 440 and operabie to switch on or off of out flow of cold heat transfer media. An advantage with this solution is that the valve means are situated close to the energy cell, implying that the thermal tosses will decrease which will lead to an increased efficiency. A minor disadvantage with this solution is the number of valve means required. ϋt is also pointed out that the valve means 452 and 454 are working synchronized, i. e., the valve means 452 is on and the valve means 454 is off, or vice versa. The same applies for the valve means 456 and 458. In fig. 7 there is disclosed a sectional view of a second embodiment of the inlet interface means 426 and the outlet interface means 428, which are parts of an energy cell 10 according to the present invention. As is apparent in this figure, the inlet interface means 428 comprises a container means 430, and a connector means 442 for In flow of hot or cold heat transfer media. The energy cell 10 also comprises a vaive means 444 connected to the connector means 442 and operable to switch between in flow of hot or cold heat transfer media. As is apparent in the lower part of this figure, the outlet interface means 428 comprises a container means 436 and a connector means 448 for out flow of hot or cold heat transfer media, Furthermore, the energy cell 10 also comprises a valve means 448 connected to the connector means 446 and operable to switch between out flow of hot or cold heat transfer media. An advantage with this solution, in comparison to the solution disclosed in fig. 6, is thai there Is required a less number of valve means. A disadvantage with this solution is that the thermal losses are increased in comparison to the solution disclosed in fig. 6. In fig. 8 there is disclosed a schematically view of a part of a second embodiment of an energy cell 10 according to the present invention. In this embodiment the energy cell 10 aiso comprises a centrally iocafβd pipe means 406 provided with apertures 408. The middle part of the pipe means 406 Is arranged inside the bladder means 410. which only is schematicaliy disclosed in this figure. Although not disclosed in this figure, the centrally located pipe means 406 is fixed in both the cylinder head means 414 and the cylinder bottom means 416 and pass through both the second gromrnet means 420, 424 (See fig.1 ). The pipe means 408 comprises a hydraulic fluid, which can flow in and out through the apertures 408, and consequently more or less fill the bladder means 410. This embodiment with the pipe means 406 will reduce the bulging and stress of the cylinder head means 414 and cylinder bottom means 418 when the pressure in the energy cell 10 rises.
In fig, 9 there is disclosed a sectional view of circle D disclosed In fig. 1 , here disclosed in a larger scale. In this figure the first pipe means 4081 is disclosed. Also disclosed is the upper part of the bladder means 410, and how it is fixed to the energy cell 10. As is apparent in this figure, the cylinder head means 414 is divided into two different parts 4141 and 4142. An upper collar of the bladder means 410 is fixed between the two parts 4141 , 4142 of the cylinder head means 414, As also is apparent in this figure is that the bladder means 410 is open against the first pipe means 4061. It is pointed out that the same appiies for the cylinder bottom means 418, the second pipe means 4062 and the bladder means 410, although it is not disclosed in this figure.
According to a preferred embodiment of the energy cell 10, the first grommet means 418, 422, and the second grommet means 420, 424 are
Furthermore, according to another embodiment of the energy cell 10, the inner walls of the inlet interface means 426, and the inner walls of the outlet interface means 42Θ are insulated. According to a preferred embodiment of the energy cell 10, the heat transfer media is wafer, oil, or other suitable media in liquid or gas phases.
Furthermore, according to another embodiment, each energy cell 10 also comprises a connecting means (not disclosed) operable to connect energy ceils 10 in series via their centrally located pipe means 406, or via their first and second pipe means 4061 , 4062.
According to a preferred embodiment of the energy cell 10, It also comprises a movable means (not disclosed) arranged in connection to, and being affected by the phase change material (PCM) in order to generate mechanical energy. Now follow a functional description of the process cycle for the energy cell
10 according to the present Invention, divided into four phases as in a PV-diagram, pressure-volume-diagram.
1. The pressure in the energy cell 10 Is raised to working pressure by putting the hydraulic fluid under pressure via the first pipe means 4061 , or via the centrally located pipe means 406, Normally, the phase change material (PCM) Is in solid phase during the compression. To decrease the stress on the pipe means 400 and the disc means 402, 404 of the heat exchanging means 16 and improve the lifetime of the energy cell 10, the compression could also be done at the start of the work-phase described below. By doing this the phase change materia! (PCM) will start to melt near the pipe means 400 and the disc means 402, 404, which lead to a lowered friction and a better stress situation.
Work-phase: 2. A high temperatured heat transfer media (e. g. water) flows e. g. through the first connector means 432 via the inlet interface means 428 to the heat exchanging means 16.
3. The heat energy is transferred from the heat transfer media to the phase change materia! (PCM) via the pipe means 400 and the disc means 402, 404 in the heat exchanging means 18,
4. The phase change materia! (PCM) goes fluid and expands under high pressure and pushes the bladder means 410 inwards (makes the bladder means 410 cave in).
5. The moving bladder means 410 makes the hydraulic fluid contained in the bladder means 410 to flow out via the first pipe means 4081 , or via the pipe means 408 under a high pressure.
Decompression-phase:
8. The hydraulic pressure is reieased from high to low pressure making the phase change materia! (PCM) spring back which lead to that the hydraulic fluid contained in the bladder means 410 flow out via the first pipe means 4081 , or via the pipe means 408 under a variable (high to tow) pressure.
Cooling-phase:
7. A low temperatured heat transfer media (e. g. water) flows e. g. through the second connector means 434 via the iniet interface means 428 to the heat exchanging means 16.
8. The heat energy is transferred from the phase change material (PCM) to the heat transfer media via the pipe means 400 and the disc means 402, 404 in the heat exchanging means 16,
9. The phase change materia! (PCM) goes solid and contracts and drags the bladder means 410 outwards, The bladder means 410 is also forced out by a light pressure in the hydraulic fluid (approximately 10 bar).
The process cycle is compieted and the energy cell 10 is ready for a new The invention is not limited to the described in the foregoing, obvious that many different are possible within the scope of /inq Claims.

Claims

1. An energy ceϋi (10) operable to generate a pressurized fluid for use as an energy source when a phase change materia! (PCM) changes from solid phase to liquid phase, said energy eel! (10) comprises a housing means (12) holding said phase change materia! (PCM), characterized in that said energy cell (10) also comprises an insuiating means (14) arranged between said housing means (12), and said phase change materia! (PCM)1 and a heat exchanging means (18) encompassed by said phase change material (PCM) and comprising a number of pipe means (400), and a number of disc means (402, 404), each provided with a number of aperture means (500) and each encompassing a part of said pipe means (400), wherein there Is a distance between two consecutive disc means (402, 404), and in that said energy celϋ (10) also comprises a centrally located, flexible bladder means (410) which at its end parts are fixed to said energy cell (10) and are open, and between said end parts being flexible, wherein each of said pipe means (400) comprises a heat transfer media, and in that said phase change materia! (PCM) encompass said pipe means (400) and said disc means (402, 404) and being able to pass through said aperture means (500), wherein said bladder means (410) comprises a hydraulic fluid being able to flow in and out through said open end parts of said bladder means (410), and being affected by said phase change material (PCM).
2. An energy cell (10) according to Claim 1 , characterized in that said housing means (12) comprises a cylinder block means (421 ), a cylinder head means (414), and a cylinder bottom means (418), wherein said cylinder head means (414) comprises a first grommet means (418) for each pipe means (400), and wherein said cylinder bottom means (418) comprises a first grommet means
3. An energy cell (10) according to Claim 2, characterized in thai said energy cell (10) also comprises an inlet interface means (426) connected to said cylinder head means (414), and operable to feed said heat transfer media to said pipe means (400), and an outlet interface means (428) connected to said cylinder bottom means (416), and operable to discharge said heat transfer media from
4. An energy cell (10) according to Claim 3, characterized in that said inlet interface means (426) comprises a container means (430) in connection to said cylinder head means (414), and a first connector means (432) for in flow of hot heat transfer media, and a valve means (452) for switching on or off of in flow of hot heat transfer media, and a second connector means (434) for in flow of cold heat transfer media, and a valve means (454) for switching on or off of in flow of cold heat transfer media, and in that said outlet interface means (428) comprises a container means (436) in connection to said cylinder bottom means (418), and a first connector means (438) for out flow of hot heat transfer media, and a valve means (456) for switching on or off of out flow of hot heat transfer media, and a second connector means (440) for out flow of cold heat transfer media, and a valve means (458) for switching on or off of out flow of cold heat transfer media.
5. An energy cell (10) according Io Claim 3, characterized in that said inlet interface means (428) comprises a container means (430) in connection to said cylinder head means (414), and a connector means (442) for in flow of hot or cold heat transfer media, and a valve means (444) for switching between in flow of hot or cold heat transfer media, and in that said outlet interface means (428) comprises a container means (438) in connection to said cylinder bottom means (416), and a connector means (448) for out flow of hot or cold heat transfer media, and a valve means (448) for switching between out flow of hot or cold heat transfer media.
8. An energy cell (10) according to any one of Claims 1-5, eharacteraed in that said pipe means (400) are provided with a number of inner flanges (450).
7, An energy cell (10) according to any one of Claims 1-8, characterized in that said energy ceil (10) ateo comprises a first pipe means (4061) and a second pipe means (4062), connected to an end part each of said bladder means (410).
8. An energy cell (10) according to any one of Claims 1-6, characterized in that said energy cell (10) also comprises a centrally located pipe means (406) provided with apertures (408), wherein a middle part of said pipe means (408) is arranged inside said bladder means (410),
9. An energy ceil (10) according to Claim 8, when dependent on Claim 2, characteri∞cf in that said cylinder head means (414) also comprises a second grommet means (420) for said pipe means (406), and in that said cylinder bottom means (416) also comprises a second grommet means (424) for said pipe means (406), and in that said centrally located pipe means (408) is fixed in both said cylinder head means (414) and said cylinder bottom means (416) and pass through both said second grommet means (420, 424).
10. An energy ceil (10) according to Claim 9, characterized in that said first grommet means (418, 422), and said second grommet means (420, 424) are
11. An energy cell (10) according to any one of Claims 3-10, characterized in that the inner walls of said inlet interface means (428) and the inner walls of said outlet interface means (428) are insulated.
12, An energy cell (10) according to any one of Claims 1-11 , characterized in that said heat transfer media is water, oii, or other suitable media in liquid or gas
13. An that each energy cell (10) also comprises a connecting means operable to connect energy cefe (10) in series via their centrally located pipe means (406), or via their first and second pipe means (4061 , 4062).
14. An energy cell (10) according to any one of Claims 1-13, characterised! in that said energy cell (10) also comprises a movable means arranged in connection to, and being affected by said phase change material (PCM) in order to generate mechanical energy.
PCT/SE2008/051549 2008-12-22 2008-12-22 An energy cell WO2010074616A1 (en)

Priority Applications (7)

Application Number Priority Date Filing Date Title
US13/141,441 US8919117B2 (en) 2008-12-22 2008-12-22 Energy cell operable to generate a pressurized fluid via bladder means and a phase change material
CN200880132468.9A CN102265031B (en) 2008-12-22 2008-12-22 An energy cell
EP08879227.0A EP2379884A4 (en) 2008-12-22 2008-12-22 An energy cell
BRPI0823052A BRPI0823052B1 (en) 2008-12-22 2008-12-22 energy cell
PCT/SE2008/051549 WO2010074616A1 (en) 2008-12-22 2008-12-22 An energy cell
JP2011542045A JP5335101B2 (en) 2008-12-22 2008-12-22 Energy cell
ZA2011/04004A ZA201104004B (en) 2008-12-22 2011-05-31 An energy cell

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PCT/SE2008/051549 WO2010074616A1 (en) 2008-12-22 2008-12-22 An energy cell

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EP (1) EP2379884A4 (en)
JP (1) JP5335101B2 (en)
CN (1) CN102265031B (en)
BR (1) BRPI0823052B1 (en)
WO (1) WO2010074616A1 (en)
ZA (1) ZA201104004B (en)

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CN102265031B (en) 2014-12-24
BRPI0823052A2 (en) 2015-06-16
CN102265031A (en) 2011-11-30
ZA201104004B (en) 2012-02-29
US8919117B2 (en) 2014-12-30
JP5335101B2 (en) 2013-11-06
BRPI0823052B1 (en) 2020-04-28
US20110252783A1 (en) 2011-10-20
EP2379884A1 (en) 2011-10-26
EP2379884A4 (en) 2015-09-30
JP2012513556A (en) 2012-06-14

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