WO2020168473A1 - 双轴反向发电机 - Google Patents
双轴反向发电机 Download PDFInfo
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- WO2020168473A1 WO2020168473A1 PCT/CN2019/075509 CN2019075509W WO2020168473A1 WO 2020168473 A1 WO2020168473 A1 WO 2020168473A1 CN 2019075509 W CN2019075509 W CN 2019075509W WO 2020168473 A1 WO2020168473 A1 WO 2020168473A1
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K16/00—Machines with more than one rotor or stator
- H02K16/02—Machines with one stator and two or more rotors
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K7/00—Arrangements for handling mechanical energy structurally associated with dynamo-electric machines, e.g. structural association with mechanical driving motors or auxiliary dynamo-electric machines
- H02K7/10—Structural association with clutches, brakes, gears, pulleys or mechanical starters
- H02K7/116—Structural association with clutches, brakes, gears, pulleys or mechanical starters with gears
Definitions
- the invention relates to a two-shaft reverse generator.
- the generator is a device that uses electromagnetic induction to generate electricity.
- the known generator includes a body and a rotor. One of the magnet or the coil is provided with the other in the body, and the magnetic field around the coil can be changed by the rotation of the rotor to generate electricity. Therefore, when the number of coils does not change, the amount of magnetic field change is proportional to the amount of power generation.
- it is necessary to increase the rotation speed of the rotor, or increase the number of magnets, and increase the rotation speed of the rotor. Increasing the number of magnets will result in a substantial increase in the rotational energy input to the rotor, and therefore will not increase the power conversion efficiency of the generator, and there are shortcomings that need to be improved urgently.
- the main purpose of the present invention is to provide a dual-shaft reverse generator, including a first rotating component and a second rotating component.
- the first rotating component and the second rotating component rotate in opposite directions, and the first rotating component is provided with There are a plurality of first magnets, and the second rotating assembly is provided with a plurality of second magnets, so that the magnetic field induced by the coil is greatly changed, and the power generation is increased without increasing the energy consumption of rotation, so as to improve the efficiency of power conversion.
- the present invention provides a dual-shaft reverse generator, which includes a housing, a first rotating component, a second rotating component, and a steering gear set.
- the shell is provided with a plurality of induction coils.
- the first rotating assembly includes a first rotor and a plurality of first magnets.
- the first rotor is pivoted on the housing along an axial direction, and the plurality of first magnets are fixed on the first rotor.
- the second rotating assembly includes a second rotor and a plurality of second magnets.
- the second rotor is rotatably sleeved on the first rotor, and the plurality of second magnets are fixed on the second rotor.
- the steering gear set is assembled with the first rotor and the second rotor to make the first rotor and the second rotor rotate in opposite directions.
- the first rotor includes a first rotating shaft and a first connecting member, the first rotating shaft is pivoted to the housing, and the first connecting member is non-rotatably assembled.
- the plurality of first magnets are arranged on the first connecting member
- the second rotor includes a second rotating shaft and a second connecting member, the second rotating shaft is pivoted on the The housing is sleeved on the first rotating shaft, the second connecting member is non-rotatably assembled to the second rotating shaft, and the plurality of second magnets are arranged on the second connecting member.
- the first connecting member includes a first plate body and a plurality of first clamping members, and the plurality of first clamping members are protruded from the first plate body along the axial direction. And are arranged to form at least one ring portion arranged in a concentric circle, and each of the first magnets is arranged between any two adjacent first clamping members.
- the second connecting member includes a second disk body and a plurality of second clamping members, and the plurality of second clamping members are protruded from the second disk along the axial direction.
- the bodies are arranged in parallel to form at least one ring part arranged in concentric circles, and each of the second magnets is arranged between any two adjacent second clamping members.
- the radial dimension of the second disc body is smaller than the radial dimension of the first disc body, and the plurality of second clamping members are located between the plurality of first clamping members .
- a first protrusion is provided on both sides of the radially outward ends of the plurality of first clamping members and the plurality of second clamping members.
- a block portion and a second block portion, each of the first magnet limit stops is between any two adjacent first blocks, and each of the second magnet limit stops is between any two adjacent ones Between the second block.
- a plurality of induction coils are respectively located between any two adjacent ring portions.
- one end of the first shaft along the axial direction is provided with a non-circular convex portion, and the other end is provided with a non-circular concave portion corresponding to the shape of the convex portion.
- the two opposite inner walls are respectively provided with two gaskets.
- the first rotor is fixedly provided with a first gear
- the second rotor is fixedly provided with a second gear
- the first gear and the second gear are respectively connected to the steering gear The group meshes.
- the steering gear set includes a first transmission gear set and a second transmission gear set pivoted on the housing.
- the first transmission gear set and the second transmission gear set The rotation axis of the tooth group is parallel to the axial direction but does not overlap, the first transmission tooth group meshes between the first gear and the second transmission tooth group, and the second transmission tooth group is The second gears are meshed, the first transmission gear set includes two first transmission gears, the two first transmission gears rotate coaxially and are arranged at intervals along the axial direction, and one of the first transmission gears and The first gear meshes, the other first transmission gear meshes with the second transmission gear set, and a cover is provided on one side of the housing adjacent to the steering gear set and the first gear , The cover covers the steering gear set and the first gear.
- the advantage of the invention is that the magnetic field change induced by the coil is greatly increased, and the power generation is increased without increasing the energy consumption of rotation, so as to improve the efficiency of electric energy conversion.
- Figure 1 is a perspective view of a preferred embodiment of the present invention.
- Figure 2 is an exploded view of a preferred embodiment of the present invention.
- Figure 2A is a partial cross-sectional view of a preferred embodiment of the present invention.
- Figure 3 is a schematic diagram of a preferred embodiment of the present invention.
- Figure 4 is a side cross-sectional view of a preferred embodiment of the present invention.
- Fig. 6 is a partial enlarged view of Fig. 5.
- Figure 7 is a bottom view of a preferred embodiment of the present invention.
- Figure 8 is a phase combination diagram of a preferred embodiment of the present invention.
- 1 shell; 2: first rotating component; 3: second rotating component; 4: steering gear set; 5: ring; 11: induction coil; 12: cover; 13: pin; 21: No. A rotor; 22: the first magnet; 23: the first rotating shaft; 231: the convex part; 233: the gasket; 232: the concave part; 24: the first connecting member; 25: the first disc body; 26: the first clamping member; 261: the first block; 27: the first gear; 31: the second rotor; 32: the second magnet; 33: the second rotating shaft; 34: the second connecting member; 35: the second disc body; 36: the second card 361: second gear; 37: second gear; 41: first transmission gear set; 42: second transmission gear set; 411: first transmission gear.
- the two-shaft reverse generator of the present invention includes a housing 1, a first rotating component 2, a second rotating component 3, and a Steering gear set 4.
- the first rotating assembly 2 includes a first rotor 21 and a plurality of first magnets 22.
- the first rotor 21 is pivoted to the housing 1 along an axial direction, and the plurality of first magnets 22 are fixed to the first rotor twenty one.
- the second rotating assembly 3 includes a second rotor 31 and a plurality of second magnets 32.
- the second rotor 31 is rotatably sleeved on the first rotor 21, and the plurality of second magnets 32 are fixed on the first rotor 21.
- the steering gear set 4 is assembled with the first rotor 21 and the second rotor 31 to make the first rotor 21 and the second rotor 31 rotate in opposite directions.
- the variation of the magnetic field around the plurality of induction coils 11 can be greatly increased, so as to increase the electric power of the plurality of induction coils 11.
- the induced current generated by the magnetic induction needs to accelerate the rotation speed of the rotor compared with the known generator.
- the two-axis reverse generator of the present invention can increase the rotation speed of the first rotating component 2 and the second rotating component 3 without increasing the speed.
- the first rotor 21 includes a first rotating shaft 23 and a first connecting member 24, the first rotating shaft 23 is pivoted to the housing 1, and the first connecting member 24 is non-rotatably assembled to the The first rotating shaft 23 and the plurality of first magnets 22 are disposed on the first connecting member 24.
- the second rotor 31 includes a second rotating shaft 33 and a second connecting member 34.
- the second rotating shaft 33 is pivoted on the housing 1 and sleeved on the first rotating shaft 23, and the second connecting member 34 is not relatively rotatable. Assembled to the second rotating shaft 33, and the plurality of second magnets 32 are disposed on the second connecting member 34.
- the first connecting member 24 includes a first disk body 25 and a plurality of first clamping members 26, and the plurality of first clamping members 26 are protrudingly arranged on the first disk body 25 along the axial direction. At least one ring portion 5 arranged in a concentric circle is formed, and each of the first magnets 22 is arranged between any two adjacent first clamping members 26.
- the second connecting member 34 includes a second plate 35 and a plurality of second clamping members 36. The plurality of second clamping members 36 protrude from the second plate 35 along the axial direction and are arranged in at least one shape.
- each of the second magnets 32 is arranged between any two adjacent second clamping members 36.
- the plurality of induction coils 11 are respectively located between any two adjacent ring portions 5, so the plurality of induction coils and the plurality of ring portions 5 will not interfere with each other.
- a first stop portion 261 and a second stop portion 361 respectively protrude on both sides of the radially outward ends of the plurality of first clamping members 26 and the plurality of second clamping members 36
- Each of the first magnets 22 is restricted and stopped between any two adjacent first stop portions 261
- each of the second magnets 32 is restricted and stopped between any adjacent two second stop portions 361. Therefore, when the first connecting member 24 and the second connecting member 34 rotate to generate centrifugal force, each of the first magnets 22 and each of the second magnets 32 can be blocked by the two first stop parts 261 and the second second stop.
- the part 361 blocks the limit and does not escape.
- the first rotor 21 is fixedly provided with a first gear 27
- the second rotor 31 is fixedly provided with a second gear 37
- the first gear 27 and the second gear 37 respectively mesh with the steering gear set 4
- the steering gear set 4 includes a first transmission gear set 41 and a second transmission gear set 42 pivoted on the housing 1.
- the first transmission gear set 41 and the second transmission gear set 42 The rotating shaft is parallel to the axial direction but does not overlap.
- the first transmission tooth group 41 is meshed between the first gear 27 and the second transmission tooth group 42, and the second transmission tooth group 42 is in addition to the second gear 37 is engaged, the second transmission gear set 42 can drive the second gear 37 to rotate in a direction opposite to the first gear 27.
- the first transmission gear set 41 includes two first transmission gears 411, the two first transmission gears 411 rotate coaxially and are arranged at intervals along the axial direction, and one of the first transmission gears 411 is meshed with the first gear 27, and the other first transmission gear 411 is meshed with the second transmission gear group 42.
- the second transmission gear group is provided with two The second transmission gears arranged at intervals along the axial direction, and only one first transmission gear is provided, can also make the first gear and the second gear rotate in opposite directions.
- one end of the first rotating shaft 23 along the axial direction is provided with a non-circular convex portion 231, and the other end is provided with a non-circular concave portion 232 corresponding to the shape of the convex portion 231.
- the housing 1 of the two-axis reverse generator can be stacked with the housing 1 of another two-axis reverse generator (as shown in FIG. 8).
- the two housings 1 are provided with A plurality of pins 13 can be assembled and stacked with each other.
- One of the convex portions 231 of the first rotating shaft 23 is inserted into the other concave portion 232 of the first rotating shaft 23 in the same moving state.
- the concave portion 232 Two shims 233 (as shown in Figure 2 and Figure 2A) are respectively provided on the two opposite inner walls of the, which can protect the concave portion 232 and increase the assembly connection with the convex portion 231 to have a strong assemblability, so only It is necessary to have a power source to rotate the two first rotating shafts 23 at the same time to generate electricity. In addition, users can install different numbers of the two-axis reverse generators according to different usage conditions to increase the power generation.
- the shell of the dual-axis reverse generator can be stacked with the shell of another dual-axis reverse generator, so only one power source is needed to simultaneously rotate the two first rotating shafts to generate electricity. According to different usage conditions, different numbers of the two-axis reverse generators are installed to increase power generation.
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Abstract
一种双轴反向发电机,其包括一壳体(1)、一第一转动组件(2)、一第二转动组件(3)及一转向齿轮组(4)。该壳体(1)设有复数感应线圈(11)。该第一转动组件(2)包括一第一转子(21)及复数第一磁铁(22),该第一转子(21)沿一轴向枢设于该壳体(1),该等第一磁铁(22)固设于该第一转子(21)。该第二转动组件(3)包括一第二转子(31)及复数第二磁铁(32),该第二转子(31)可相对转动地套设于该第一转子(21),该等第二磁铁(32)固设于该第二转子(31)。该转向齿轮组(4)与该第一转子(21)及该第二转子(31)相组接,使该第一转子(21)与该第二转子(31)反向转动。
Description
本发明有关于一种双轴反向发电机。
按,电磁感应原理为,当线圈附近的磁场发生变化时,线圈即可产生感应电流,发电机即为利用电磁感应进行发电的一种装置,公知发电机包括一本体及一转子,转子设有磁铁或线圈其中一者,本体设有另一者,利用转子转动即可使线圈周围的磁场发生变化,即可进行发电。因此在线圈数量不变的情况下,磁场变化量与为发电量即成正比,为了使磁场变化量提高,即必须提高转子的转动速度,或是增加磁铁的数量,而增加转子的转动速度及增加磁铁的数量皆会导致输入转子的转动能量须大幅提升,因此并不会增加发电机的电能转换效率增加,存在亟待改善的缺弊。
因此,有必要提供一种新颖且具有进步性的双轴反向发电机,以解决上述的问题。
发明内容
本发明的主要目的在于提供一种双轴反向发电机,包括一第一转动组件及一第二转动组件,该第一转动组件与该第二转动组件反向转动,该第一转动组件设有复数第一磁铁,该第二转动组件设有复数第二磁铁,藉此使得线圈感应之磁场变化大幅提高,而增加发电量且无须提高转动耗能,以提高电能转换效率。
为达成上述目的,本发明提供一种双轴反向发电机,其包括一壳体、一第一转动组件、一第二转动组件及一转向齿轮组。该壳体设有复数个感应线圈。该第一转动组件包括一第一转子及复数个第一磁铁, 该第一转子沿一轴向枢设于该壳体,该复数个第一磁铁固设于该第一转子。该第二转动组件包括一第二转子及复数个第二磁铁,该第二转子可相对转动地套设于该第一转子,该复数个第二磁铁固设于该第二转子。该转向齿轮组与该第一转子及该第二转子相组接,使该第一转子与该第二转子反向转动。
作为上述技术方案的优选,较佳的,第一转子包括一第一转轴与一第一连接件,所述第一转轴枢设于所述壳体,所述第一连接件不可相对转动地组接于所述第一转轴,所述复数个第一磁铁设于所述第一连接件,所述第二转子包括一第二转轴与一第二连接件,所述第二转轴枢设于所述壳体并套于所述第一转轴,所述第二连接件不可相对转动地组接于所述第二转轴,所述复数个第二磁铁设于所述第二连接件。
作为上述技术方案的优选,较佳的,第一连接件包括一第一盘体及复数第一卡件,所述复数个第一卡件沿所述轴向凸设于所述第一盘体并排列成至少一呈同心圆配置的环部,各所述第一磁铁设于任相邻近之二所述第一卡件之间。
作为上述技术方案的优选,较佳的,第二连接件包括一第二盘体及复数个第二卡件,所述复数个第二卡件沿所述轴向凸设于所述第二盘体并排列成至少一呈同心圆配置的环部,各所述第二磁铁设于任相邻近之二所述第二卡件之间。
作为上述技术方案的优选,较佳的,第二盘体的径向尺寸小于所述第一盘体之径向尺寸,所述复数个第二卡件位于所述复数个第一卡件之间。
作为上述技术方案的优选,较佳的,沿所述轴向观之,所述复数个第一卡件与所述复数个第二卡件径向朝外的一端的两侧分别凸设有一第一挡部及一第二挡部,各所述第一磁铁限位挡止于任相邻近的二所述第一挡部之间,各所述第二磁铁限位挡止于任相邻近之二所述第二挡部之间。
作为上述技术方案的优选,较佳的,复数个感应线圈分别位于任相邻之二所述环部之间。
作为上述技术方案的优选,较佳的,第一转轴沿所述轴向的一端 设有一非圆形的凸部,另一端设有一对应所述凸部形状的非圆形的凹部,所述凹部的相对两内壁分别设有二垫片。
作为上述技术方案的优选,较佳的,第一转子固设有一第一齿轮,所述第二转子固设有一第二齿轮,所述第一齿轮与所述第二齿轮分别与所述转向齿轮组相啮合。
作为上述技术方案的优选,较佳的,转向齿轮组包括枢设于所述壳体的一第一传动齿组与一第二传动齿组,所述第一传动齿组、所述第二传动齿组的转动轴与所述轴向相平行但不重叠,所述第一传动齿组啮合于所述第一齿轮与所述第二传动齿组之间,所述第二传动齿组另与所述第二齿轮相啮合,所述第一传动齿组包括二第一传动齿轮,所述二第一传动齿轮同轴转动并沿所述轴向间隔排列,其中一所述第一传动齿轮与所述第一齿轮相啮合,另一所述第一传动齿轮与所述第二传动齿组相啮合,所述壳体邻近所述转向齿轮组及所述第一齿轮的一侧设有一盖件,所述盖件覆盖住所述转向齿轮组及所述第一齿轮。
本发明的优点是线圈感应之磁场变化大幅提高,而增加发电量且无须提高转动耗能,以提高电能转换效率。
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对实施例或现有技术描述中所需要使用的附图作一简单介绍,显而易见地,下面描述中的附图是本发明的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1为本发明一较佳实施例的立体图。
图2为本发明一较佳实施例的分解图。
图2A为本发明一较佳实施例的局部剖视图。
图3为本发明一较佳实施例的示意图。
图4为本发明一较佳实施例的侧面剖视图。
图5为本发明一较佳实施例的俯视剖面图。
图6为图5之局部放大图。
图7为本发明一较佳实施例的仰视图。
图8为本发明一较佳实施例的相组合图。
其中,1:壳体;2:第一转动组件;3:第二转动组件;4:转向齿轮组;5:环部;11:感应线圈;12:盖件;13:接脚;21:第一转子;22:第一磁铁;23:第一转轴;231:凸部;233:垫片;232:凹部;24:第一连接件;25:第一盘体;26:第一卡件;261:第一挡部;27:第一齿轮;31:第二转子;32:第二磁铁;33:第二转轴;34:第二连接件;35:第二盘体;36:第二卡件;361:第二挡部;37:第二齿轮;41:第一传动齿组;42:第二传动齿组;411:第一传动齿轮。
为使本发明实施例的目的、技术方案和优点更加清楚,下面将结合本发明实施例中的附图,对本发明实施例中的技术方案进行清楚、完整的描述,显然,所描述的实施例是本发明一部分实施例,而不是全部的实施例。基于本发明中的实施例,本领域普通技术人员在没有做出创造性劳动的前提下所获得的所有其他实施例,都属于本发明保护的范围。
以下将藉由较佳实施例说明本发明的结构特征及其预期达成的功效,惟非用以限制本发明所欲保护的范畴,合先敘明。
如图1至图8所示,其显示本发明的一较佳实施例,本发明之双轴反向发电机包括一壳体1、一第一转动组件2、一第二转动组件3及一转向齿轮组4。
该壳体1设有复数感应线圈11,各该感应线圈11为环状排列并呈同心圆间隔配置,于其它实施例中可其它形状及数量。
该第一转动组件2包括一第一转子21及复数第一磁铁22,该第一转子21沿一轴向枢设于该壳体1,该复数个第一磁铁22固设于该第一转子21。
该第二转动组件3包括一第二转子31及复数个第二磁铁32,该第二转子31可相对转动地套设于该第一转子21,该复数个第二磁铁32固设于该第二转子31。
该转向齿轮组4与该第一转子21及该第二转子31相组接,使该第一转子21与该第二转子31反向转动。
藉由该转向齿轮组4使该第一转动组件2与该第二转动组件3相互反向转动,可使得该复数个感应线圈11周围的磁场变化大幅提高,以提高该复数个感应线圈11电磁感应所产生的感应电流,因此相对于公知发电机须加快转子的转动速度,本发明的该双轴反向发电机可在无需提高该第一转动组件2及该第二转动组件3的转速,藉由该复数个第一磁铁22及该复数个第二磁铁32为反向转动,即可提高该复数个感应线圈11电磁感应的发电量,以提高电能转换效率。
具体而言,该第一转子21包括一第一转轴23与一第一连接件24,该第一转轴23枢设于该壳体1,该第一连接件24不可相对转动地组接于该第一转轴23,该复数个第一磁铁22设于该第一连接件24。该第二转子31包括一第二转轴33与一第二连接件34,该第二转轴33枢设于该壳体1并套于该第一转轴23,该第二连接件34不可相对转动地组接于该第二转轴33,该复数个第二磁铁32设于该第二连接件34。
于本实施例中该第一连接件24包括一第一盘体25及复数个第一卡件26,复数个第一卡件该26沿该轴向凸设于该第一盘体25并排列成至少一呈同心圆配置的环部5,各该第一磁铁22设于任相邻近之二该第一卡件26之间。且该第二连接件34包括一第二盘体35及复数个第二卡件36,该复数个第二卡件36沿该轴向凸设于该第二盘体35并排列成至少一呈同心圆配置的环部5,各该第二磁铁32设于任相邻近之二该第二卡件36之间。于本实施例中该复数个感应线圈11分别位于任相邻之二该环部5之间,因此该复数个感应线圈不会与该复数个环部5相互干涉。
进一步的说,该第二盘体35的径向尺寸小于该第一盘体25的径向尺寸,该复数个第二卡件36位于该复数个第一卡件26之间,可使构造较简单,且该复数个第一卡件26不会与该复数个第二卡件36相干涉,可顺利转动。
其中沿该轴向观之,该复数个第一卡件26与该复数个第二卡件 36径向朝外的一端的两侧分别凸设有一第一挡部261及一第二挡部361,各该第一磁铁22限位挡止于任相邻近之二该第一挡部261之间,各该第二磁铁32限位挡止于任相邻近之二该第二挡部361之间。因此,当该第一连接件24与该第二连接件34转动而产生离心力时,各该第一磁铁22及各该第二磁铁32可被该二第一挡部261及该二第二挡部361挡止限位而不会脱离。
详细的说,该第一转子21固设有一第一齿轮27,该第二转子31固设有一第二齿轮37,该第一齿轮27与该第二齿轮37分别与该转向齿轮组4相啮合,以相互带动转动。进一步的说,该转向齿轮组4包括枢设于该壳体1的一第一传动齿组41与一第二传动齿组42,该第一传动齿组41、该第二传动齿组42的转动轴与该轴向相平行但不重叠,该第一传动齿组41啮合于该第一齿轮27与该第二传动齿组42之间,该第二传动齿组42另与该第二齿轮37相啮合,该第二传动齿组42即可带动该第二齿轮37以反向于该第一齿轮27的方向转动。
要说明的是,于本实施例中该第一传动齿组41包括二第一传动齿轮411,该二第一传动齿轮411同轴转动并沿该轴向间隔排列,其中一该第一传动齿轮411与该第一齿轮27相啮合,另一该第一传动齿轮411与该第二传动齿组42相啮合,于其它实施例中亦可反向配置,如该第二传动齿组设有二沿该轴向间隔排列的第二传动齿轮,且仅设有一该第一传动齿轮,同样地可使该第一齿轮与该第二齿轮反向转动。
于本实施例中该壳体1邻近该转向齿轮组4及该第一齿轮27之一侧设有一盖件12,该盖件12覆盖住该转向齿轮组4及该第一齿轮27,该盖件12可保护该转向齿轮组4及该第一齿轮27,避免与外界物件碰触而损坏。
值得一提的是,于本实施例中该第一转轴23沿该轴向的一端设有一非圆形的凸部231,另一端设有一对应该凸部231形状的非圆形的凹部232,藉此,该双轴反向发电机的壳体1可供与另一该双轴反向发电机的壳体1相互堆叠(如图8所示),较佳地该二壳体1皆设 有复数个接脚13,可供相互组接堆叠,其中一该第一转轴23的凸部231插设于另一该第一转轴23的凹部232成同动状態,于本实施例中该凹部232的相对两内壁分别设有二垫片233(如图2及图2A所示),可保护该凹部232的结构可增加与该凸部231的组接关以具有较强组接性,因此仅需具有一动力源即可同时转动该二第一转轴23进行发电,另外使用者即可根据不同使用状况而装设不同数量的该复数个双轴反向发电机,以提高发电量。
综上,本发明双轴反向发电机可在无需提高该第一转动组件及该第二转动组件的转速,藉由该复数个第一磁铁及该复数个第二磁铁为反向转动,即可提高该复数个感应线圈电磁感应的发电量,以提高电能转换效率。
另外,该双轴反向发电机的壳体可供与另一该双轴反向发电机的壳体相互堆叠,因此仅需具有一动力源即可同时转动该二第一转轴进行发电,即可根据不同使用状况而装设不同数量的该复数个双轴反向发电机,以提高发电量。
最后应说明的是:以上各实施例仅用以说明本发明的技术方案,而非对其限制;尽管参照前述各实施例对本发明进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分或者全部技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本发明各实施例技术方案的范围。
Claims (10)
- 一种双轴反向发电机,其特征在于,包括:一壳体,设有复数个感应线圈;一第一转动组件,包括一第一转子及复数个第一磁铁,所述第一转子沿一轴向枢设于所述壳体,所述复数个第一磁铁固设于所述第一转子;一第二转动组件,包括一第二转子及复数个第二磁铁,所述第二转子可相对转动地套设于所述第一转子,所述复数个第二磁铁固设于所述第二转子;一转向齿轮组,与所述第一转子及所述第二转子相组接,使所述第一转子与所述第二转子反向转动。
- 根据权利要求1所述的双轴反向发电机,其特征在于,所述第一转子包括一第一转轴与一第一连接件,所述第一转轴枢设于所述壳体,所述第一连接件不可相对转动地组接于所述第一转轴,所述复数个第一磁铁设于所述第一连接件,所述第二转子包括一第二转轴与一第二连接件,所述第二转轴枢设于所述壳体并套于所述第一转轴,所述第二连接件不可相对转动地组接于所述第二转轴,所述复数个第二磁铁设于所述第二连接件。
- 根据权利要求2所述的双轴反向发电机,其特征在于,所述第一连接件包括一第一盘体及复数第一卡件,所述复数个第一卡件沿所述轴向凸设于所述第一盘体并排列成至少一呈同心圆配置的环部,各所述第一磁铁设于任相邻近之二所述第一卡件之间。
- 根据权利要求3所述的双轴反向发电机,其特征在于,所述第二连接件包括一第二盘体及复数个第二卡件,所述复数个第二卡件沿所述轴向凸设于所述第二盘体并排列成至少一呈同心圆配置的环部,各所述第二磁铁设于任相邻近之二所述第二卡件之间。
- 根据权利要求4所述的双轴反向发电机,其特征在于,所述第二盘体的径向尺寸小于所述第一盘体之径向尺寸,所述复数个第二卡件位于所述复数个第一卡件之间。
- 根据权利要求4所述的双轴反向发电机,其特征在于,沿所述 轴向观之,所述复数个第一卡件与所述复数个第二卡件径向朝外的一端的两侧分别凸设有一第一挡部及一第二挡部,各所述第一磁铁限位挡止于任相邻近的二所述第一挡部之间,各所述第二磁铁限位挡止于任相邻近之二所述第二挡部之间。
- 根据权利要求4所述的双轴反向发电机,其特征在于,所述复数个感应线圈分别位于任相邻之二所述环部之间。
- 根据权利要求2所述的双轴反向发电机,其特征在于,所述第一转轴沿所述轴向的一端设有一非圆形的凸部,另一端设有一对应所述凸部形状的非圆形的凹部,所述凹部的相对两内壁分别设有二垫片。
- 根据权利要求1至8其中任一所述的双轴反向发电机,其特征在于,所述第一转子固设有一第一齿轮,所述第二转子固设有一第二齿轮,所述第一齿轮与所述第二齿轮分别与所述转向齿轮组相啮合。
- 根据权利要求9所述的双轴反向发电机,其特征在于,所述转向齿轮组包括枢设于所述壳体的一第一传动齿组与一第二传动齿组,所述第一传动齿组、所述第二传动齿组的转动轴与所述轴向相平行但不重叠,所述第一传动齿组啮合于所述第一齿轮与所述第二传动齿组之间,所述第二传动齿组另与所述第二齿轮相啮合,所述第一传动齿组包括二第一传动齿轮,所述二第一传动齿轮同轴转动并沿所述轴向间隔排列,其中一所述第一传动齿轮与所述第一齿轮相啮合,另一所述第一传动齿轮与所述第二传动齿组相啮合,所述壳体邻近所述转向齿轮组及所述第一齿轮的一侧设有一盖件,所述盖件覆盖住所述转向齿轮组及所述第一齿轮。
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