Portable self-power-generating apparatus
11967886 ยท 2024-04-23
Assignee
Inventors
Cpc classification
F03G5/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H19/043
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H55/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H19/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H33/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G5/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F03G5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F03G5/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Proposed is a portable self-power-generating apparatus which has small size and is capable of charging a battery by realizing self-power generation with high efficiency in emergencies in which normal electricity supply is not available, such as a military operation, a refugee village, a disaster caused by earthquake or the like, an emergency situation on ships, or an outdoor activity, and which can be used in combination with various smart modules.
Claims
1. A portable self-power-generating apparatus for performing self-power generation by a user, the apparatus comprising: a main body; a rack gear member that linearly reciprocates inside the main body by the user; a plurality of pinion gear members provided inside the main body, coupled to the rack gear member, and configured to perform a forward rotation or a reverse rotation according to a linear reciprocating motion of the rack gear member; a rotation member provided in each of the plurality of pinion gear members and configured to rotate according to the forward rotation or the reverse rotation of each of the plurality of pinion gear members; and a power generation member configured to generate power according to the rotation of the rotation member, wherein a first opening and a second opening through which the rack gear member enters or exits are provided at upper portions of the main body, and wherein each of the plurality of pinion gear members sequentially performs the forward rotation or the reverse rotation according to the linear reciprocating motion of the rack gear member.
2. The portable self-power-generating apparatus of claim 1, wherein the rack gear member includes: a rack gear part provided inside the main body and configured to rotate each of the plurality of pinion gear members in the forward rotation or the reverse rotation; and a handle part provided outside the main body and allowing the user to linearly reciprocate the rack gear part.
3. The portable self-power-generating apparatus of claim 2, further comprising a locking part provided in the rack gear member to prevent the rack gear member from being separated from the main body.
4. The portable self-power-generating apparatus of claim 2, wherein the rack gear part and the handle part are coupled by a hinge.
5. The portable self-power-generating apparatus of claim 4, wherein the rack gear part includes a first rack gear part and a second rack gear part, and the first rack gear part and the second rack gear part are connected by a second hinge.
6. The portable self-power-generating apparatus of claim 2, wherein the plurality of pinion gear members are provided in a row.
7. The portable self-power-generating apparatus of claim 2, wherein the plurality of pinion gear members are provided in a plurality of rows.
8. The portable self-power-generating apparatus of claim 7, wherein the rack gear part is provided as a pair of rack gear parts in an up-down direction or a left-right direction of the rack gear member, and the plurality of pinion gear members are coupled to each of the pair of rack gear parts.
9. The portable self-power-generating apparatus of claim 2, wherein the rack gear member includes: a first rack gear member provided corresponding to the plurality of pinion gear members provided in a first row; and a second rack gear member provided corresponding to the plurality of pinion gear members provided in a second row.
10. The portable self-power-generating apparatus of claim 1, wherein a support part for supporting the main body when the user performs self-power generation is provided at a lower portion of the main body.
11. The portable self-power-generating apparatus of claim 1, wherein the rotation member includes a first rotation member and a second rotation member fitted to left and right sides or upper and lower sides of each of the plurality of pinion gear members, wherein the first rotation member rotates in a counterclockwise direction, and the second rotation member rotates in a clockwise direction.
12. The portable self-power-generating apparatus of claim 11, wherein the first rotation member includes: a first lock plate mounted on one side of each of the plurality of pinion gear members; a first flywheel having a first clutch gear formed therein and configured to rotate the power generation member in one direction according to the reverse rotation of each of the plurality of pinion gear members; and a first lock member mounted on the first lock plate and configured to rotate the first flywheel, and the second rotation member includes: a second lock plate mounted on the other side of each of the plurality of pinion gear members; a second flywheel having a second clutch gear formed therein and configured to rotate the power generation member in one direction according to the forward rotation of each of the plurality of pinion gear members; and a second lock member mounted on the second lock plate and configured to rotate the second flywheel.
13. The portable self-power-generating apparatus of claim 12, wherein the power generation member includes a gear part coupled to the first flywheel and the second flywheel to rotate in one direction.
14. A portable self-power-generating apparatus for performing self-power generation by a user, the apparatus comprising: a main body; a rack gear member that linearly reciprocates inside the main body by the user; a plurality of pinion gear members provided inside the main body, coupled to the rack gear member, and configured to perform a forward rotation or a reverse rotation according to a linear reciprocating motion of the rack gear member; a rotation member provided in each of the plurality of pinion gear members and configured to rotate according to the forward rotation or the reverse rotation of each of the plurality of pinion gear members; a power generation member configured to generate power according to the rotation of the rotation member; and a rotation unit, wherein the rack gear member includes a rack gear part provided in the main body and configured to rotate each of the plurality of pinion gear members in the forward or reverse rotation, each of the plurality of pinion gear members sequentially performs the forward rotation or the reverse rotation according to the linear reciprocating motion of the rack gear member, the rack gear part maintains a state of being wound around the rotation unit, and gear grooves engaged with gear teeth of the plurality of pinion gear members are provided in the rack gear part.
15. The portable self-power-generating apparatus of claim 14, wherein the rotation unit includes: a reel rotatably mounted in the main body, configured to maintain the rack gear part in a wound state, and configured to rotate according to pulling and winding of the rack gear part; a spiral spring made of spring steel and configured to maintain the rack gear part in a state of being wound around the reel; and a spring cover part fitted to the reel and having the spiral spring embedded therein.
16. The portable self-power-generating apparatus of claim 1, wherein the power generation member includes: a stator provided on an inner circumferential surface of each of the plurality of pinion gear members; and a rotor inserted into each of the plurality of pinion gear members, provided to be spaced apart from the stator, and configured to rotate only in one direction according to the forward rotation or the reverse rotation of each of the plurality of pinion gear members.
Description
DESCRIPTION OF DRAWINGS
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MODES OF THE INVENTION
(23) The above and other purposes and new features of the present invention will become more apparent from the description of the present specification and the accompanying drawings.
(24) In the description of the configuration and operation of a portable self-power-generating apparatus according to the present invention, a first rotation member and a second rotation member provided on left and right sides or upper and lower sides of a pinion gear member may be described as a pair of rotation members.
(25) Further, since the first rotation member and the second rotation member operate independently of each other and the first rotation member and the second rotation member are manufactured using the same components, the first rotation member and the second rotation member are simply described as a rotation member. Further, in the description of components of each of the first rotation member and the second rotation member, the same reference numerals may be designated for description.
(26) Hereinafter, embodiments of a portable self-power-generating apparatus according to the present invention will be described with reference to the drawings.
First Embodiment
(27)
(28) As illustrated in
(29) As illustrated in
(30) Further, although
(31) As illustrated in
(32) Thus, as illustrated in
(33) The number of screw teeth formed in the rack gear part 210 is not limited, and the width of the screw teeth may be provided to be smaller than the width of screw teeth of a pinion gear, as illustrated in
(34) In
(35) Meanwhile, the rack gear member 200 and the pinion gear member may also be made of a metal or polycarbonate that is engineering plastic, which is the same material as the main body 100.
(36) Next, a structure of the rack gear member 200 will be described with reference to
(37)
(38) In the portable self-power-generating apparatus according to the present invention, in the rack gear part 210, as illustrated in
Second Embodiment
(39) Next, a portable self-power-generating apparatus according to a second embodiment of the present invention will be described with reference to
(40)
(41) As described above, in the portable self-power-generating apparatus according to the first embodiment of the present invention, a structure is illustrated in which by providing the first opening 110 in the main body 100, the rack gear member 200 is withdrawn and inserted only in a right direction as illustrated in
(42) That is, by providing the first opening 110 in the main body 100 and the second opening 130 at a position corresponding to the first opening 110, as illustrated in
(43) Thus, in the second embodiment illustrated in
Third Embodiment
(44) Next, a portable self-power-generating apparatus according to a third embodiment of the present invention will be described with reference to
(45)
(46) In the first and second embodiments described above, in the portable self-power-generating apparatus, as illustrated in
(47) Further, the structure of the first hinge 222 is not specified and is sufficient as long as the rack gear member 200 may be operated while maintaining a horizontal state in a state illustrated in
Fourth Embodiment
(48) Next, a portable self-power-generating apparatus according to a fourth embodiment of the present invention will be described with reference to
(49)
(50) In the main body 100 of the portable self-power-generating apparatus according to the fourth embodiment, as illustrated in
(51) That is, by providing a structure in which the rack gear part 210 includes a first rack gear part and a second rack gear part and the first rack gear part and the second rack gear part are connected to each other by the second hinge 225, the rack gear part 210 may be withdrawn and inserted in the left-right direction of the main body 100. Thus, in the fourth embodiment illustrated in
(52) Further, in the fourth embodiment, as illustrated in
(53) Further, like the first hinge 222, the structure of the second hinge 225 is not specified and is sufficient as long as the rack gear member 200 may be operated while maintaining a horizontal state in a state illustrated in
Fifth Embodiment
(54) Next, a portable self-power-generating apparatus according to a fifth embodiment of the present invention will be described with reference to
(55)
(56) As illustrated in
(57) Further, in the portable self-power-generating apparatus according to the fifth embodiment of the present invention, as illustrated in
(58) The rotation member 400 includes a first rotation member and a second rotation member fitted to the left and right sides or the upper and lower sides of the pinion gear member. The first rotation member may rotate in the counterclockwise direction, and the second rotation member may rotate in the clockwise direction.
(59) As illustrated in
(60) As illustrated in
(61) As illustrated in
(62) As illustrated in
(63) Further, a ring gear 434 is provided on an outer circumference of the space. As can be seen in
(64) Meanwhile, for convenience of description,
(65) The shaft 330 is made of, for example, stainless steel, and as illustrated in
(66) As described above, in the portable self-power-generating apparatus according to the present invention, as illustrated in
(67) As illustrated in
(68) Meanwhile, in the portable self-power-generating apparatus according to the present invention, in order to rotate the gear part 510 in one direction, an idle gear 600 is engaged between the first flywheel 430 and the gear part 510. That is, a rotational force of the first flywheel 430 is transmitted to the gear part 510 through the idle gear 600. The idle gear 600 is rotatably maintained by a shaft in the main body 100. As illustrated in
(69) Next, a coupling relationship between the rack gear member 200, the pinion gear member 300, and the rotation member 400 will be described.
(70) In the assembly of the portable self-power-generating apparatus according to the present invention, first, the pinion gear member 300 is inserted into the shaft 330, a flywheel support part is fitted to a flywheel part, the E rings 332 are fitted to the pair of annular grooves 331, and thus the pinion gear member is prevented from being dislocated during the rotation.
(71) Next, the first and second lock plates 410 and 410 are inserted into the shaft 300 through the insertion hole 412, and the plurality of holes 411 of the first and second lock plates 410 and 410 are fitted to the plurality of protrusions 320 provided on both sides of the pinion gear member 300.
(72) Next, the holes 423 of the first and second lock members 420 and 420 provided in a pair are fitted to the pair of protrusions 413 provided in the first and second lock plates 410 and 410.
(73) Subsequently, the holes 423 of the first flywheel 430 and the second flywheel 430 are inserted into the shaft 330, and the first and second lock members 420 and 420 are arranged to be located in the first clutch gear 431 and the second clutch gear 431.
(74) Thereafter, the gear part 510 is engaged with the idle gear 600 through the ring gear 434 of the first flywheel 430 and the ring gear of the second flywheel 430, the rack gear part 210 is located on the pinion gear member 300, and thus the self-power-generating apparatus is completed as illustrated in
(75) Next, the rotation of the pinion gear member 300, the rotation member 400, and the power generation member 500 according to the linear reciprocating motion of the rack gear member 200 described above will be described with reference to
(76) In the portable self-power-generating apparatus according to the present invention, as illustrated in
(77) For example, as illustrated in
(78) Thus, the first and second lock plates 410 and 410 and the first and second lock members 420 and 420 coupled to the pinion gear member 300 rotate in the clockwise direction.
(79) That is, when the first and second lock members 420 and 420 rotate in the clockwise direction, a claw part 421 of the first lock member 420 is released from each sawtooth of the first clutch gear 431. Thus, the first flywheel 430 does not rotate, and the second clutch gear 431 engaged with the claw part 421 of the second lock member 420 rotates in the clockwise direction. Thus, when the rack gear part 210 is withdrawn from the main body 100 as the user pulls the handle part 220, the second flywheel 430 according to the present invention rotates in one direction, for example, only the clockwise direction in a state illustrated in
(80) Further, as illustrated in
(81) That is, when the first and second lock members 420 and 420 rotate in the counterclockwise direction, a claw part 421 of the second lock member 420 is released from each sawtooth of the second clutch gear 431. Thus, the second flywheel 430 does not rotate, and the first clutch gear 431 engaged with the claw part 421 of the first lock member 420 rotates in the counterclockwise direction. Thus, when the rack gear part 210 is inserted into the main body 100 as the user pushes the handle part 220, the first flywheel 430 according to the present invention rotates in one direction, for example, only in the counterclockwise direction in a state illustrated in
(82) As described above, in the portable self-power-generating apparatus according to the fifth embodiment of the present invention, the first flywheel 430 rotates in the counterclockwise direction according to the reciprocating motion of the rack gear member 200, and even when the second flywheel 430 rotates in the clockwise direction, the gear part 510 provided in the power generation member 500 continuously rotates in one direction, that is, only the counterclockwise direction, and thus power generation can be continued.
Sixth Embodiment
(83) Next, the portable self-power-generating apparatus according to the sixth embodiment of the present invention will be described with reference to
(84)
(85) In the fifth embodiment, in a state in which the claw part 421 of the first lock member 420 is released from each sawtooth of the first clutch gear 431, the first flywheel 430 does not rotate, and the second clutch gear 431 of the second flywheel 430 with which the claw part 421 of the second lock member 420 is engaged rotates in the clockwise direction. However, in the sixth embodiment, in order to prevent the rotation of the first flywheel 430 by the idle gear 600 when the second flywheel 430 rotates, the ring gear 434 is provided only in a half of the first clutch gear 431 as compared to the fifth embodiment.
(86) Thus, for power generation, the gear part 510 rotates in the counterclockwise direction according to the clockwise rotation of the second flywheel 430, and the idle gear 600 rotates in the clockwise direction according to the rotation of the gear part 510. The rotational force of the idle gear 600 in the clockwise direction is transmitted to the first flywheel 430. However, the first flywheel 430 rotates in the counterclockwise direction. In this way, since the rotational force transmitted to the first flywheel 430 is transmitted to a portion where the ring gear 434 is not provided, the first flywheel 430 does not rotate.
(87) Further, by pushing the handle part 220, the rack gear part 210 is inserted into the main body 100, and accordingly, each pinion gear member of the plurality of pinion gear members 300 rotates in the counterclockwise direction. That is, when the first and second lock members 420 and 420 rotate in the counterclockwise direction, the claw part 421 of the second lock member 420 is released from each sawtooth of the second clutch gear 431, the second flywheel 430 does not rotate, the first clutch gear 431 with which the claw part 421 of the first lock member 420 is engaged rotates in the counterclockwise direction, and the rotational force of the ring gear 434 provided in the first flywheel 430 is transmitted to the idle gear 600. Thus, the idle gear 600 rotates in the clockwise direction, and the gear part 510 rotates in the counterclockwise direction.
Seventh Embodiment
(88) Next, a portable self-power-generating apparatus according to a seventh embodiment of the present invention will be described with reference to
(89)
(90) In the first to fourth embodiments, a structure is provided in which the plurality of pinion gear members 300 are provided in a row inside the main body 100, and the plurality of pinion gear members 300 rotate forward or in reverse. However, in the seventh embodiment, the plurality of pinion gear members 300 are provided in a plurality of rows.
(91) Further, as illustrated in
(92) Thus, when the rack gear part 210 is withdrawn from the main body 100, the plurality of pinion gear members 300 provided at the upper portion generate power while rotating in the counterclockwise direction, and the plurality of pinion gear members 300 provided at the lower portion generate power while rotating in the clockwise direction. When the rack gear part 210 is inserted into the main body 100, the plurality of pinion gear members 300 provided at the upper portion generate power while rotating in the clockwise direction, and the plurality of pinion gear members 300 provided at the lower portion generate power while rotating in the counterclockwise direction.
(93) In the seventh embodiment having the above-described structure, power generation efficiency can be increased as compared to the portable self-power-generating apparatus illustrated in the first to fourth embodiments.
(94) Further, although the above description illustrates a structure in which the pair of rack gear parts 210 are provided in the vertical direction and the plurality of pinion gear members 300 are coupled to each of the pair of rack gear parts, the present invention is not limited thereto, and a structure may be applied in which the pair of rack gear parts are provided in the left-right direction and the plurality of pinion gear members 300 are coupled to each of the pair of rack gear parts.
(95) Further, in the structure illustrated in
Eighth Embodiment
(96) Next, a portable self-power-generating apparatus according to an eighth embodiment of the present invention will be described with reference to
(97)
(98) In the first embodiment, the structure is provided in which the plurality of pinion gear members 300 are provided in a row inside the main body 100, and the plurality of pinion gear members 300 rotate forward or in reverse. However, in the eighth embodiment, the plurality of pinion gear members 300 are provided in a plurality of rows. Although
(99) Further, as illustrated in
Ninth Embodiment
(100) Next, a portable self-power-generating apparatus according to a ninth embodiment of the present invention will be described with reference to
(101)
(102) In the seventh and eighth embodiments, the structure is illustrated in which the plurality of pinion gear members 300 provided in two rows are operated by the one rack gear member 200. However, in the ninth embodiment, the pinion gear members 300 may be operated by two rack gear members as illustrated in
(103) That is, the rack gear member 200 may include a first rack gear member 250 provided corresponding to the plurality of pinion gear members provided in the first row and a second rack gear member 260 provided corresponding to the plurality of pinion gear members provided in the second row.
(104) As illustrated in
Tenth Embodiment
(105) Next, a portable self-power-generating apparatus according to a tenth embodiment of the present invention will be described with reference to
(106)
(107) In the tenth embodiment, as illustrated in
(108) As illustrated in
(109) The rack gear part 710 is made of a metal but is sufficient as long as the rack gear part 710 has a function capable of performing winding and unwinding on the reel 720 and is not limited to a specific material. One end of the rack gear part 710 may be fixed to the reel 310, the other end of the rack gear part 710 is fixed to a ring 750 as illustrated in
(110) As illustrated in
(111) As illustrated in
(112) The spiral spring 730 is made of a spring steel, for example, maintains the state of the spring wound 8 to 12 times, an outer one end of the spiral spring is inserted into an insertion hole 742 formed in the spring cover part 740, and an inner one end of the spiral spring 730 is inserted into a spring holder provided in the main body 100. The spiral spring 730 is maintained in a wound state, and in response to this, the rack gear part 710 also maintains a state of being wound around the reel 720. Thus, the pulling of the rack gear part 710 by the user is limited in response to a loosening condition of the spiral spring 730, and the rack gear part 710 is restored to be wound around the reel 720 by a restoration force of the spiral spring 730.
(113) The spring cover part 740 is formed in a hollow cylindrical shape to maintain the spiral spring 730 therein, a plurality of grooves 741 corresponding to the plurality of protrusions 722 for fitting with the plurality of protrusions 722 are formed outside the spring cover part 740, and the insertion hole 742 into which an outer one end 731 of the spiral spring 730 is inserted and a seating part 743 on which the outer one end inserted through the insertion hole 742 is seated are provided in a circumferential portion. Thus, the outer one end 731 of the spiral spring 730 is fitted to the receiving part 721 of the reel 720 while being seated on the seating part 743 through the insertion hole 742, and thus the outer one end 731 of the spiral spring 730 can be prevented from being separated from the spring cover part 740.
(114) Thus, in the tenth embodiment, in a state illustrated in
Eleventh Embodiment
(115) Next, a portable self-power-generating apparatus according to an eleventh embodiment of the present invention will be described.
(116) In the portable self-power-generating apparatus according to the fifth embodiment, the structure in which the motor 520 rotates by rotation of the gear part 510 has been described. However, in the eleventh embodiment, a stator and a rotor may be applied.
(117) That is, for example, the technology disclosed in Patent Document 2 as a rotation member may be applied to each pinion gear member 300 applied to the present invention. The stator is provided on the inner circumferential surface of the pinion gear member 300 according to the present invention, and the rotor is provided spaced apart from the stator by being inserted into the pinion gear member 300. Further, a first rotation unit configured to rotate the rotor in one direction using a rotational force of the pinion gear member 300 generated when the rack gear member 200 linearly moves in one direction and a second rotation unit configured to rotate the rotor in the one direction using a reverse rotational force of the pinion gear member 300 generated when the rack gear member linearly moves in the other direction are provided. Thus, a structure may be provided in which the plurality of pinion gear members 300 are operated simultaneously.
(118) An example of using the portable self-power-generating apparatus configured above will be described with reference to
(119)
(120) As illustrated in
(121) Electricity generated by the power generation member 500 is charged to a battery (not illustrated) provided in the main body. Further, the main body 100 may be equipped with a universal serial bus (USB) terminal connected to the battery, and power may be supplied to an electric device, for example, a smartphone, a laptop, a communication device for military or emergency use, and a lighting device or a heating device such as a hand heater and an electric burner, the electric device and the heating device being connected through the USB terminal.
(122) Hereinabove, the invention made by the present inventor has been described in detail according to the embodiments. However, the present invention is not limited to the embodiments, and it is obvious that the present invention may be changed in various manners without departing from the subject matter thereof.
(123) That is, in the ninth embodiment, as illustrated in
(124) Further, the structure of the handle 223 as illustrated in
(125) Further,
INDUSTRIAL APPLICABILITY
(126) By using the portable self-power--generating apparatus according to the present invention, the user may repeatedly perform an operation of pulling the rack gear member with one hand or both hands in emergencies in which the supply of electricity is not available normally, such as in a military operation, a refugee village, a disaster caused by earthquake or the like, emergency situations on ships, or an outdoor activity, and thus power can be generated continuously for a long time.