Energy storage structure
10359056 ยท 2019-07-23
Inventors
Cpc classification
F17C2223/0123
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B1/021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0115
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/061
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C6/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2201/019
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E60/16
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F17C2223/013
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F15B1/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02C6/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F9/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Provided is an energy storage structure, comprising a housing and a piston. An accommodating cavity and a piston cylinder part communicating with each other are arranged within the housing. The piston is slidably and sealingly arranged within the piston cylinder part for transferring impact energy. A self-pressure of an energy storage medium, arranged within the accommodating cavity and the piston cylinder part, acts on the piston, tending to push the piston to move. An energy storage structure provided by the present invention has a simple structure, is convenient for use, and can ensure that a thrust or impact force remains unchanged or slightly changes during operation, to achieve stable release of potential energy. Moreover, the adjustment of the thrust or impact force can be achieved by changing the temperature of the energy storage medium in the accommodating cavity, thereby achieving change in total impact energy of the energy storage structure.
Claims
1. An energy storage structure, comprising: a housing; an accommodating cavity and a piston cylinder part arranged within the housing, wherein the accommodating cavity and the piston cylinder part are configured to communicate with each other; a piston slidably arranged within the piston cylinder part, wherein the piston is configured to transmit impact energy; a sealing ring arranged between the piston cylinder part and the piston and configured to seal the piston cylinder part and the piston therebetween; and an energy storage medium arranged within the accommodating cavity, wherein a self-pressure of the energy storage medium is configured to act on the piston to push and move the piston, wherein the energy storage medium is always in a saturated vapor pressure state, a ratio between liquid and gas states of the energy storage medium is configured to change as the piston moves, and a thrust exerted by the piston dependent on the energy storage medium in the saturated vapor pressure state remains substantially constant, and the energy storage structure further comprises at least one heating element configured to heat the energy storage medium arranged within the accommodating cavity.
2. The energy storage structure according to claim 1, wherein: the energy storage medium in the accommodating cavity is a supercritical fluid; and a density of the energy storage medium is configured to change responsive to a change in an accommodating volume in the accommodating cavity.
3. The energy storage structure according to claim 1, further comprising: at least one temperature sensor arranged within the accommodating cavity; and at least one pressure sensor arranged within the accommodating cavity.
4. The energy storage structure according to claim 1, wherein the accommodating cavity includes an annular cavity enclosing the piston cylinder part.
5. The energy storage structure according to claim 1, further comprising: a piston rod including a plurality of teeth; and a return mechanism connected to the piston rod and configured to cause the piston to return to an initial position, wherein: the return mechanism includes a gear mechanism; the gear mechanism is configured to engage with the plurality of teeth of the piston rod; and the return mechanism is configured to drive the piston to return the piston to the initial position by the gear mechanism.
6. An energy storage structure, comprising: a housing and a piston, wherein an accommodating cavity and a piston cylinder part communicating with each other are arranged within the housing; the piston is slidably and sealingly arranged within the piston cylinder part for transmission of impact energy; an energy storage medium is arranged within the accommodating cavity; and a self-pressure of the energy storage medium is configured to act on the piston, to push and move the piston, wherein the energy storage structure further comprises at least one heating element configured to heat the energy storage medium arranged within the accommodating cavity.
7. The energy storage structure according to claim 6, wherein a value of a pressure in the accommodating cavity is equal to a saturated vapor pressure of the energy storage medium.
8. The energy storage structure according to claim 6, wherein: the energy storage medium in the accommodating cavity is a supercritical fluid; and a density of the energy storage medium is configured to change when an accommodating volume in the accommodating cavity is changed.
9. The energy storage structure according to claim 6, further comprising at least one temperature sensor arranged within the accommodating cavity.
10. The energy storage structure according to claim 6, further comprising at least one pressure sensor arranged within the accommodating cavity.
11. The energy storage structure according to claim 6, wherein the accommodating cavity includes an annular cavity enclosing the piston cylinder part.
12. The energy storage structure according to claim 6, further comprising a return mechanism connected to the piston and configured to make the piston return to an initial position.
13. The energy storage structure according to claim 6, wherein the energy storage medium is a hydrocarbon substance.
14. The energy storage structure according to claim 6, wherein the energy storage medium is a mixture of two or more hydrocarbon substances.
15. The energy storage structure according to claim 6, wherein the energy storage medium includes at least one of carbon dioxide, nitrogen gas, nitrous oxide, ethylene, propylene, trifluoromethane, ammonia gas, methane, or propane.
16. The energy storage structure according to claim 6, wherein the energy storage medium includes a mixture of at least two of carbon dioxide, nitrogen gas, nitrous oxide, ethylene, propylene, trifluoromethane, ammonia gas, methane, or propane.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) In order to explain the technical solutions of the specific embodiments of the present invention or of the prior art more clearly, the following drawings will be introduced briefly below. The drawings described below are merely illustrative of some embodiments of the present invention, and those skilled in the art can also obtain, from these drawings, other drawings without inventive efforts.
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(6) TABLE-US-00001 Reference numerals: 1-energy storage medium; 10-housing; 10a-accommodating cavity; 10b-piston cylinder part; 11-lower cover body; 12-cylinder body; 13-upper cover body; 14-cushion; 15-safety valve; 16-valve; 17-sealing ring; 20-piston; 21-piston rod; 30-heating element; 40-temperature and/or pressure sensor; 50-return mechanism.
DETAILED DESCRIPTION OF THE EMBODIMENTS
(7) The technical solutions of the present invention will be described below clearly and fully with reference to the figures. It is apparent that the embodiments to be described are some, but not all of the embodiments of the present invention. All the other embodiments obtained by those skilled in the art from the embodiments of the present invention without inventive efforts will fall within the scope of the present invention as claimed.
(8) In the description of the various embodiments of the present invention, it should be indicated that orientation or positional relations indicated by terms such as center, up, down, left, right, vertical, horizontal, inside, and outside are the orientation or positional relations shown based on the figures, only for facilitating description of the present invention and simplifying the description, rather than indicating or implying that the referred devices or elements must be in a particular orientation or constructed or operated in the particular orientation, and therefore they should not be construed as limiting the present invention. In addition, terms such as first, second, and third are used only for description, and should not be understood as indicating or implying to have importance in relativity.
(9) In the description of the various embodiments of the present invention, it should be indicated that unless otherwise expressly specified or defined, terms mount, couple, and connect, should be understood broadly, and for example, a connection may be a fixed connection, or a detachable connection, or an integrated connection; a connection may be a mechanical connection or an electric connection; a connection may be a direct connection, or an indirect connection via an intermediate medium, or may be an internal communication between two elements. The specific meanings of the above-mentioned terms as used herein could be understood by those skilled in the art according to specific situations.
(10) Embodiments of the present invention will be further explicated and explained hereinafter with reference to specific embodiments.
(11) As shown in
(12) Here, the energy storage medium 1 is preferably a hydrocarbon substance or a mixture thereof, such as propylene (C3H6), propane (C3H8), or the like. The value of a pressure in the accommodating cavity 10a is equal to a saturated vapor pressure of the energy storage medium 1.
(13) When the piston 20 moves in the accommodating cavity 10a, the energy storage medium 1 is inter-converted between a liquid state and a gas state. The gaseous energy medium 1 may always be in a saturated vapor pressure state, and a thrust exerted by the gaseous energy medium 1 on the piston 20 may always remain substantially constant.
(14) The energy storage medium 1 may be in a liquid state, in a mixed state of gas and liquid, or in a gas state at a saturated vapor pressure. The ratio between liquid and gas states of the energy storage medium 1 is changed as the piston 20 moves.
(15) A sealing ring 17 is arranged between the piston cylinder part 10b and the piston 20 for sealing therebetween.
(16) At least one heating element 30 for heating the energy storage medium 1 is arranged within the accommodating cavity 10a.
(17) The heating element 30 is used to heat the energy storage medium 1 in the accommodating cavity 10a, thereby changing the saturated vapor pressure of the energy storage medium 1 in the accommodating cavity by changing the temperature of the energy storage medium 1. The higher the temperature of the medium is, the larger the saturated vapor pressure of the energy storage medium 1 isthat is, the larger the thrust acting on the piston 20 is, and the larger the finally obtained impact energy is. Conversely, the lower the temperature of the medium is, the smaller the saturated vapor pressure of the energy storage medium 1 isthat is, the smaller the thrust acting on the piston 20 is, and the smaller the finally obtained impact energy is.
(18) At least one pressure sensor and/or temperature sensor 40 may be arranged within the accommodating cavity 10a. The heating element 30 may adjust the heat of the energy storage medium 1 in the accommodating cavity 10a responsive to at least one of the pressure sensor or temperature sensor 40.
(19) The housing 10 may be provided with a safety valve 15 on a side wall of the accommodating cavity 10a.
(20) The housing 10 may be provided, on a side wall of the accommodating cavity 10a, with a feeding hole from which the energy storage medium 1 is fed or discharged. The feeding hole may be provided with a valve 16.
(21) The accommodating cavity 10a and the piston cylinder part 10b may be formed integrally, or may also be formed separately and communicate through a pipeline.
(22) As shown in
(23) The accommodating cavity 10a, in which a liquid-state energy storage medium 1 may be stored, is arranged within the lower cover body 11.
(24) A cushion 14 for cushioning of the piston 20 is arranged within the upper cover body 13. The cushion 14 performs a function of cushioning and shock-absorbing when the piston 20 moves to the upper end.
(25) The housing 10 may be in various forms and can be arranged freely according to the space in practical applications.
(26) As shown in
(27) As shown in
(28) A piston rod 21 is arranged at one end of the piston 20. The piston rod 21 and the return mechanism 50 are connected by a gear mechanism. That is to say, the piston rod 21 is provided thereon with a straight tooth structure, and the return mechanism 50 is provided thereon with a gear engaging with the straight tooth structure. The return mechanism 50 drives the piston 20 to return to the initial position by the gear.
(29) An energy storage structure provided by embodiments of the present invention is convenient to use, and can ensure that a thrust or impact force remains unchanged or slightly changes during the operation, so as to achieve stable release of potential energy. Moreover, the adjustment of the thrust or impact force can be achieved by changing the temperature of the energy storage medium in the accommodating cavity, thereby achieving a change in total impact energy of the energy storage structure.
(30) In some embodiments, an energy storage structure is provided including a housing and an accommodating cavity and a piston cylinder part arranged within the housing, wherein the accommodating cavity and the piston cylinder part are configured to communicate with each other. The energy storage structure may include a piston slidably arranged within the piston cylinder part, wherein the piston is configured to transmit impact energy. The energy storage structure may include a sealing ring arranged between the piston cylinder part and the piston and configured to seal the piston cylinder part and the piston therebetween. The energy storage structure may include an energy storage medium arranged within the accommodating cavity, wherein a self-pressure of the energy storage medium is configured to act on the piston to push and move the piston.
(31) In some embodiments, the energy storage medium is always in a saturated vapor pressure state, a ratio between liquid and gas states of the energy storage medium is configured to change as the piston moves, and a thrust exerted by the piston dependent on the energy storage medium in the saturated vapor pressure state remains substantially constant.
(32) In some embodiments, the energy storage medium in the accommodating cavity is a supercritical fluid, and a density of the energy storage medium is configured to change responsive to a change in an accommodating volume in the accommodating cavity.
(33) The energy storage structure may include at least one heating element configured to heat the energy storage medium arranged within the accommodating cavity, at least one temperature sensor arranged within the accommodating cavity, and at least one pressure sensor arranged within the accommodating cavity.
(34) In some embodiments, the accommodating cavity includes an annular cavity enclosing the piston cylinder part.
(35) The energy storage structure may include a piston rod including a plurality of teeth, and a return mechanism connected to the piston rod and configured to cause the piston to return to an initial position.
(36) In some embodiments, the return mechanism includes a gear mechanism. In some embodiments, the gear mechanism is configured to engage with the plurality of teeth of the piston rod. In some embodiments the return mechanism is configured to drive the piston to return the piston to the initial position by the gear mechanism.
(37) According to an embodiment of the invention, an energy storage structure may include a housing and a piston, wherein an accommodating cavity and a piston cylinder part communicating with each other are arranged within the housing.
(38) In some embodiments, the piston is slidably and sealingly arranged within the piston cylinder part for transmission of impact energy.
(39) In some embodiments, an energy storage medium is arranged within the accommodating cavity.
(40) In some embodiments, a self-pressure of the energy storage medium is configured to act on the piston, to push and move the piston.
(41) In some embodiments, value of a pressure in the accommodating cavity is equal to a saturated vapor pressure of the energy storage medium.
(42) In some embodiments, the energy storage medium in the accommodating cavity is a supercritical fluid.
(43) In some embodiments, a density of the energy storage medium is configured to change when an accommodating volume in the accommodating cavity is changed.
(44) The energy storage structure may include at least one heating element configured to heat the energy storage medium arranged within the accommodating cavity. The energy storage structure may include at least one temperature sensor arranged within the accommodating cavity. The energy storage structure may include at least one pressure sensor arranged within the accommodating cavity.
(45) In some embodiments, the accommodating cavity includes an annular cavity enclosing the piston cylinder part.
(46) In some embodiments, the piston cylinder part is configured to communicate with the accommodating cavity through a pipeline.
(47) The energy storage structure may include a return mechanism connected to the piston and configured to make the piston return to an initial position.
(48) In some embodiments, the energy storage medium is a hydrocarbon substance.
(49) In some embodiments, the energy storage medium is a mixture of two or more hydrocarbon substances.
(50) In some embodiments, the energy storage medium includes at least one of carbon dioxide, nitrogen gas, nitrous oxide, ethylene, propylene, trifluoromethane, ammonia gas, methane, or propane.
(51) In some embodiments, the energy storage medium includes a mixture of at least two of carbon dioxide, nitrogen gas, nitrous oxide, ethylene, propylene, trifluoromethane, ammonia gas, methane, or propane.
(52) It should be indicated that the above embodiments are merely intended to explain technical solutions of the various embodiments of the present invention and are not intended to limit the present invention. Although embodiments of the present invention have been explained in detail with reference to the foregoing embodiments, it will be understood by those skilled in the art that the technical solutions described in the foregoing embodiments can still be modified, or some or all of the technical features thereof can be substituted by equivalent alternatives, and these modifications or substitutions do not make the principle of the corresponding technical solutions depart from the scope of the technical solutions of the embodiments of the present invention.