HYDROELECTRIC DEVICE AND HYDROELECTRIC SYSTEM COMPRISING SAME
20190072066 ยท 2019-03-07
Assignee
Inventors
Cpc classification
F03B17/063
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02E10/30
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
F05B2240/57
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B11/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B11/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2220/706
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F05B2240/40
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03B17/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03B11/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A hydroelectric device to be placed on/in the flowing water includes a housing having a plurality of wings attached to rotate the housing by the flow of flowing water, a generator module received in the housing and having a rotating shaft that rotates by the rotation of the housing so as to convert the rotational energy of the rotating shaft into electrical energy, and flotation devices coupled to the housing so as to allow the hydroelectric generator to float in the flowing water.
Claims
1. A hydroelectric generator comprising: a housing having a plurality of wings affixed thereto to enable the housing to rotate in flowing water in which the housing is to be placed; a generator module disposed in the housing, the generator including a rotating shaft rotatable by the rotation of the housing so as to convert a rotational energy of the rotating shaft to electrical energy; and first and second flotation devices coupled to the housing to allow the hydroelectric generator to float in the flowing water.
2. The hydroelectric generator according to claim 1, further comprising first and second caps installed to first and second ends of the generator module, respectively, to prevent the flowing water from entering the generator module.
3. The hydroelectric generator according to claim 2, wherein the generator module further comprises: an inner housing disposed in the housing; a stator installed within the inner housing and having coils; and a rotor including a permanent magnet and rotating along with the rotating shaft relative to the stator.
4. The hydroelectric generator according to claim 3, further comprising: a fixed pillar affixed to a bed of the flowing water; a connecting device having first and second ends, the first end of the connecting device connected to the fixed pillar; and a holding device connected to the second end of the connecting device, the holding device configured to hold the inner housing of the generator module so that the inner housing is prevented from rotating in association with the housing.
5. The hydroelectric generator according to claim 4, wherein the connecting device is configured to pull the holding device in a direction opposite to a flowing direction of the flowing water.
6. The hydroelectric generator according to claim 3, further comprising: a weighting device that is heavier than the flowing water; a connecting device having first and second ends, the first end of the connecting device connected to the weighting device; and a holding device connected to the second end of the connecting device, the holding device configured to hold the inner housing of the generator module so that the inner housing is prevented from rotating in association with the housing.
7. The hydroelectric generator according to claim 2, wherein the housing is an impeller housing that has a cylindrical shell to which the plurality of wings are integrally affixed on the outer surface of the shell.
8. The hydroelectric generator according to claim 3, further comprising a step-up gear device configured to increase a rotation speed of the rotating shaft, wherein the step-up gear device comprises: a first gear having an outer circumference coupled to the housing so as to rotate along with the housing, and an inner circumference having gear teeth; a second gear configured to engage with the first gear; and a third gear configured to engage with the second gear and rotate along with the rotating shaft.
9. The hydroelectric generator according to claim 8, wherein the diameter of the first gear is larger than the diameter of each of the second gear and the third gear.
10. The hydroelectric generator according to claim 8, wherein the rotating shaft of the second gear is affixed to the inner housing.
11. The hydroelectric generator according to claim 3, further comprising an inner cap located between the inner housing and the first cap and configured to close off one end of the inner housing.
12. The hydroelectric generator according to claim 3, further comprising: a first bearing disposed between the housing and the inner housing and allowing the housing to rotate about the inner housing.
13. The hydroelectric generator according to claim 11, further comprising: a second bearing disposed between the housing and the inner cap and allowing the housing to rotate about the inner cap.
14. The hydroelectric generator according to claim 11, further comprising: a third bearing disposed between the inner cap and the rotating shaft, and a fourth bearing disposed between the inner housing and the rotating shaft.
15. The hydroelectric generator according to claim 2, further comprising: a first sealing device disposed between the cap and the housing.
16. The hydroelectric generator according to claim 3 further comprising: a second sealing device disposed between the rotating shaft and the inner housing of the generator module.
17. The hydroelectric generator according to claim 11, further comprising: a third sealing device disposed between the inner cap and the inner housing.
18. The hydroelectric generator according to claim 2, further comprising an electrical energy storage device buried in a bed of the flowing water, wherein the electrical energy storage device is electrically connected to the generator module so that the electrical energy generated by the generator module is stored in the electrical energy storage device.
19. A hydroelectric system for harvesting electrical energy from flowing water, comprising: a plurality of fixed pillars affixed to a bed of the flowing water; a plurality of hydroelectric devices connected to each of the fixed pillars; and a transmission device for transmitting an electrical energy generated by the hydroelectric devices to a selected location, wherein each of the hydroelectric devices comprises: a housing having a plurality of wings affixed thereto to enable the housing to rotate in flowing water in which the housing is to be placed; a generator module disposed in the housing, the generator including a rotating shaft rotatable by the rotation of the housing so as to convert a rotational energy of the rotating shaft to electrical energy; and first and second flotation devices coupled to each of the hydroelectric devices to allow the housing and the generator module to float in the flowing water.
20. The hydroelectric system according to claim 19, wherein each of the hydroelectric devices further comprises first and second caps installed to first and second ends of the generator module, respectively, to prevent the flowing water from entering the generator module.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029]
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION OF THE INVENTION
[0039] The embodiments set forth in the present disclosure are examples provided for the purpose of explaining the technical concepts of the present disclosure. The scope of the claims that follows from the present disclosure is not limited by the particular embodiments set forth below or by the details of such embodiments.
[0040] All of the technical and scientific terms used in the present disclosure are to have the meanings or definitions that are known to a person having ordinary skill in the technical field that pertains to the present disclosure, unless the terms are otherwise specifically defined. The terms used in the present disclosure have been used for the purpose of explaining or illustrating the present disclosure, and have not been selected for the purpose of limiting the scope of the claims of the present invention.
[0041] The terms include/including, have/having, with, and other similar terms must be understood to be open-ended terms that include the possibility of having other elements, unless otherwise defined by the phrase or sentence that includes the terms in question.
[0042] Any singular forms/terms set forth in the present disclosure can include the plural forms/terms thereof unless stated otherwise, and this applies to singular forms/terms used in the enclosed claims as well.
[0043] The terms such as first and second and similar as used in the present disclosure are included for the purpose of simply differentiating multiple elements from one another, and do not intended to limit the order or importance of any of the relevant elements.
[0044] For the present disclosure, when it is written that one element is connected/coupled to another element, this is to be understood to mean that either the one element can be directly connected or coupled to the other element, or it can mean that the two elements are connected or coupled to each other through yet another different element.
[0045] Exemplary embodiments of the present invention are described below with references to the accompanying drawing figures. In the drawing figures, identical or equivalent elements are given with identical reference numbers. In addition, for the explanation of the embodiments set forth below, repeat descriptions of identical or equivalent elements can be omitted. However, when the description of a particular element is omitted in connection with certain embodiments, this does not mean that the element is not to be included in those embodiments, but to be referred to the description of such identical or equivalent elements.
[0046]
[0047] Hydroelectric generator (1) can include a fixed pillar (10), connecting device (20), holding device (30), and hydroelectric device (100). The location of the fixed pillar (10) can be fixed by fixing or embedding the bottom end of the fixed pillar (10) into the bed (B) of the flowing body of water (W). For the connecting device (20), one end can be connected to the fixed pillar (10) and the other end can be connected to the holding device (30). The holding device (30) can hold the non-rotating portion of the hydroelectric device (100) so that the rotating portion of the hydroelectric device (100) can rotate relative to the non-rotating portion, and a more detailed explanation is provided below.
[0048] The flowing body of water (W) can include all forms of moving water in various locations such as oceans, rivers, lakes, and streams. For example, flowing water such as flowing rivers, ocean tides, and ocean waves can be used. Furthermore, the flow of the flowing water can occur naturally or can occur through artificial means. As another example, in a case where the fixed pillar (10) moves by being attached to a boat, the hydroelectric device (100) can be located on the flow of water that results from the movement of the boat. As such, the hydroelectric generator (1) of the invention is not required to be installed on a large structure such as a dam, and the hydroelectric generator (1) can generate electrical energy in an environmentally friendly way.
[0049] According to one embodiment, the connecting device (20) can be configured so as to pull the holding device (30) in the opposite direction (T1) to the flow of the flowing water (W1). In cases where the water does not flow, the connecting device (20) does not pull the holding device (30), so this may result in a situation where the hydroelectric device (100) is located near the fixed pillar (10). In contrast, in cases where the water is flowing in the direction of the flow (W1), the hydroelectric device (100) moves to a distance from the fixed pillar (10), and the connecting device (20) pulls the holding device (30) in the opposite direction (T1) to the direction of the flow (W1), and thus, the flow of the flowing water can make the housing (110) rotate. As a result, this process can convert the rotational energy of the housing (110) into electrical energy.
[0050]
[0051] According to this embodiment, the housing (110) can be an impeller housing that has a plurality of fins/wings (112) fixed on the outer surface of a cylindrical shell (111). A generator module (120) depicted in
[0052] The hydroelectric device (100) preferably includes one or more caps (130) that can prevent the flowing water from entering the inside of the hydroelectric device (100), thereby preventing water from coming into contact with the generator module (120), and that can also act as a non-rotating element with respect to the housing (110). Furthermore, a flotation device (140) is connected to each of the caps (130), allowing the hydroelectric device (100) to float on or in the flowing water. The flotation device (140) can provide buoyancy for the housing of the hydroelectric device (100) so that the hydroelectric device (100) is not completely submerged underwater. For example, as depicted in
[0053] The cap (130) can include a connecting bar (146) that extends in the axial direction (R). The cross-section of the connecting bar (146) can be in a polygonal shape. Furthermore, the holding device (30) can have first holes (31, 33) that have a shape that corresponds to the cross-section of the above connecting bar (146), and second hole (32) that is to be coupled to the other end of the connecting device (20) as shown in
[0054]
[0055] With reference to
[0056] According to one embodiment, the hydroelectric device (100) can include a generator module (120) that is received inside the housing (110). The generator module (120) can include an inner housing (121) that is received inside the housing, a stator (122) that has coils (1221) and is installed inside the inner housing (121), and a rotor (123) that includes permanent magnets and rotates along with the rotating shaft (124) inside of the stator (122). The rotating shaft (124) can be positioned to be parallel/coincident to the axial direction, and can go through the center of the generator module (120). Furthermore, the rotating shaft (124) can include a first part (1241) and a second part (1242) that has a diameter smaller than the first part (1241), and the first part (1241) can go through the rotor (123).
[0057] The stator (122) can include the main body (1221), a coil unit (1222) that is wound around the main body (1221), and a coupling unit (1223) that is disposed at the end of the coil unit (1222). The rotor (123) is positioned at the center of the main body (1221) so that the rotor (123) can rotate inside of the main body (1221). The coil unit (1222) can be wound around the outer circumference of the main body (1221). The coupling unit (1223) extends out from the coil unit (1222) and can go through the hole (1711) formed in the inner cap (170) and then go through the hole (1311) in the first cap (131).
[0058] The inner housing (121) can be separated from the housing (110) with a certain gap, and the housing (110) can rotate around the inner housing (121). Furthermore, the inner housing (121) can include a first part (1211) and a second part (1212) that has a smaller diameter than the first part. The length of the first part (1211) can correspond to the length of the stator (122).
[0059] According to one embodiment, the hydroelectric device (100) can include an inner cap (170) that is located between the inner housing (121) and the first cap (131). The inner cap (170) closes off the end of the first part (1211) of the inner housing (121). The inner cap (170) can include a first part (171) and a second part (172) that has a larger diameter than the first part (171). As depicted in
[0060] According to one embodiment, a step-up gear device (150) can be included that is configured to increase the rotations of the rotating shaft (124). The step-up gear device (150) can include a first gear (151) having its outer circumference (1511) coupled to the shell (111) of the housing (110) so as to rotate together with the housing (110) and including gear teeth at the inner circumference thereof, a second gear (152) that engages with the first gear (151), and a third gear (153) that engages with the second gear (152) and rotates along with the rotating shaft (124). For example, the first gear (151) can take the form of a ring gear, and the second and third gears (152, 153) can take the form of pinion gears. The end of the second part (1242) of the rotating shaft (124) can be inserted into the third gear (153).
[0061] According to one embodiment, the diameter of the first gear (151) can be configured to be larger than the diameters of both the second and third gears (152, 153). For example, when the ratio of the first gear (151) to the second and third gears (152, 153) is 3:1, the third gear (153) can rotate three times for every one time the first gear (151) rotates. Furthermore, as the difference in diameter between the first gear (151) and the second and third gears (152, 153) grows larger, the ratio can grow larger. As another example, when the diameter of the second gear (152) is larger than the diameter of the third gear (153), the ratio can grow further.
[0062] The rotating shaft (154) that rotates along with the second gear (152) can be located on the inner housing (121). As depicted in
[0063] Referring to
[0064] According to one embodiment, the first bearing (161) is interposed between the shell (111) of the housing (110) and the inner housing (121). Furthermore, the second bearing (162) is interposed between the shell (111) of the housing (110) and the inner cap (170). The combination of the first bearing (161) and the second bearing (162) can allow for the housing (110) to rotate around the inner housing (121) and the inner cap (170). The outer circumference of the first bearing (161) is press fit against the inner circumference of the shell (111) in a location near the second cap (132), and the inner circumference of the first bearing (161) is press fit against the outer circumference of the second part (1212) of the inner housing (121). In addition, the outer circumference of the second bearing (162) is press fit against the inner circumference of the shell (111) in a location near the first cap (131), and the inner circumference of the second bearing (162) is press fit against the outer circumference of the first part (1212) of the inner cap (170).
[0065] The first and second bearings (161, 162) can both have an identical configuration. Furthermore, the areas formed by the inner circumferences of the first and second bearings (161, 162) can be identical. As such, the diameter of the first part (171) of the inner cap (170) can be identical to the diameter of the second part (1212) of the inner housing (121). In such a configuration, the drag produced by the first and second bearings (161, 162) can be identical, and the torque applied to the inner cap (170) and the inner housing (121) can also be identical.
[0066] According to one embodiment, the third bearing (125) can be interposed between the inner cap (170) and the rotating shaft (124). In addition, the fourth bearing (126) can be interposed between the rotating shaft (124) and the inner housing (121). As depicted in
[0067] The third and fourth bearings (125, 126) can both have an identical configuration. Furthermore, the areas formed by the inner circumferences of the third and fourth bearings (125, 126) can be identical. For example, a bearing end (1243) can be formed on the end of the first part (1241) of the rotating shaft (124) and the diameter of the bearing end (1243) can be identical to the diameter of the second part (1242) of the rotating shaft (124). In such a configuration, the drag produced by the third and fourth bearings (125, 126) can be identical, and the torque applied to both ends of the rotating shaft (124) can also be identical.
[0068] The description of the sealing structure to prevent the entry of water into the hydroelectric device (100) is as follows. The first sealing device (181, 182), second sealing device (127), and third sealing device (128) can be in the form of rings, can be made of flexible materials, and as an example, can include rubber materials.
[0069] The first sealing device (181, 182) can include a pair of first sealing devices (181) and (182). The first sealing device (181) can be interposed between the first cap (131) and the shell (111) of the housing (110), and the first sealing device (182) can be interposed between the second cap (132) and the shell (111) of the housing (110). For one example, both the first and second caps (131, 132) can each have a groove (1312, 1322) formed on them, and the first sealing device (181) can be seated in the groove (1312) of the first cap (131) and the first sealing device (182) can be seated in groove (1322) of the second cap (132). As the first sealing device (181) and the first sealing device (182) can prevent water from entering into the space between the shell (111) and the first and second caps (131, 132), they can protect the generator module (120) located inside from the moisture.
[0070] According to one embodiment, the second sealing device (127) can be interposed between the inner housing (121) and the rotating shaft (124). As depicted in
[0071] According to one embodiment, the third sealing device (128) can be interposed between the inner cap (170) and the inner housing (121). As depicted in
[0072]
[0073] As depicted in
[0074] Referring to
[0075]
[0076] According to one preferred embodiment, a hydroelectric generator (2) can include a weighting device (40) that is substantially heavier than the flowing water, a connecting device (20) that is connected with one end to the weighting device (40) and with the other end to the hydroelectric device (100) via the holding device (30), where the holding device (30) holds the inner housing (121) so as to prevent the rotation of the inner housing (121) relative to the rotation of the housing (110). For the hydroelectric generator (2), the function of the fixed pillar (10) as depicted in
[0077] The weighting device (40) can be buried in the bed (B) of the flowing water. As such, in case where the flowing water flows in the direction of W2, the holding device (30) can be pulled in the direction of T2. As depicted in
[0078]
[0079] According to one preferred embodiment, the hydroelectric generator (3) can include an electrical energy storage device (ESS). The electrical energy storage device (ESS) can store the electrical energy generated by the hydroelectric device (100) as it is electrically connected to the hydroelectric device (100). As illustrated in
[0080] The electrical energy storage device (ESS) can be buried in the bed of the flowing water. As such, in cases where the flowing water flows in the direction of W3, the holding device (30) can be pulled in the direction of T3. As depicted in
[0081]
[0082] The hydroelectric system (4) can be composed with a plurality of hydroelectric devices (100) so as to effectively harvest energy from the flowing water (W). The hydroelectric system (4) can include a plurality of fixed pillars (10) that are fixed to the bed of the flowing water, a plurality of hydroelectric devices (100) that are connected to the plurality of fixed pillars (10), and a transmission device (50) that transmits the electrical energy generated by the plurality of hydroelectric devices (100) to a desired location. A plurality of connecting devices (20) are connected to the fixed pillars (10), and a holding device (30) is connected to each of the connecting devices (20) so as to hold its corresponding one of the hydroelectric devices (100) in the same or similar manner as described above.
[0083] The transmission device (50) collects the electrical energy generated by the hydroelectric devices (100) and can transmit it to land or other locations. In such a case, as large scale installations such as dams are not required, the generation of electrical energy can be improved through the easily installation of hydroelectric devices (100), and this can solve the locational limitations of the conventional hydroelectric apparatuses.
[0084] While the technical concept behind the present disclosure has been explained through the foregoing embodiments and the examples and with reference to the attached drawing figures, it must be understood that a diverse set of substitutions, transformations, and modifications can be made while and to the extent that does not exceed the technical scope and concept behind the present disclosure as understood by a person having ordinary knowledge of the technical field that pertains to the present disclosure. Such substitutions, transformations, and modifications must be understood to be within the scope of the attached claims.
[0085] Legend of References:
[0086] 1, 2, 3: Hydroelectric generator
[0087] 4: Hydroelectric system
[0088] 100: Hydroelectric device
[0089] 110: Housing
[0090] 120: Generator module
[0091] 130: Cap
[0092] 140: Flotation device
[0093] 150: Step-up gear device