This application claims priority to Korean Patent Application No. 2010-0005309 filed on Jan. 20, 2010, the contents of which are herein incorporated by reference in their entirety.
1. Technical Field
Embodiments of the present invention relate to an electric power generation system for an electric vehicle, which is capable of independent power generation.
2. Discussion of the Related Art
Electric vehicles which use electrical energy as a driving source are environment-friendly, but may not be suited for long-distance driving due to a lack of recharging stations, a limited capacity of a battery, etc.
Accordingly, the electric vehicles have been used for limited purposes.
Therefore, there is a need for a power generation control system for an electric vehicle, which is capable of independent power generation.
Embodiments of the present invention provide a power generation control system for an electric vehicle, which may perform a manual winding operation of a spring by using an external force and an automatic winding operation of the spring by using a controller, a detection sensor, and a spring winding motor, and may prevent an over charging operation of a battery.
According to an embodiment of the present invention, there is provided a power generation control system for an electric vehicle, comprising a spring power generation unit which converts an elastic recovery force of a spring into rotational motion, accelerates the rotational motion, and transfers the accelerated rotational motion to a vehicle generator to generate electric power, a battery which stores the electric power generated by the vehicle generator, an overcharge detection unit which detects an excess charge of the battery that is greater than a predetermined amount, a detection sensor which detects a loose tension of the spring that is less than a predetermined amount, a spring winding motor which provides a driving force to a main driving shaft cooperating with the spring, a braking unit which restricts movement of the main driving shaft, and a control unit, wherein the control unit provides power to the spring winding motor for a predetermined time period when the detection sensor detects the loose tension of the spring to perform a winding operation of the spring; wherein, when the overcharge detection unit detects the excess charge of the battery, the control unit enables a winding operation of the spring and operates the braking unit to stop a power generation operation of the spring power generation unit; and wherein, when the battery is released from the excess charge, the control unit ceases the operation of the braking unit.
According to an embodiment, the spring power generation unit includes, between the main driving shaft and the vehicle generator, a first revolution accelerating unit which receives a main driving force from the main driving shaft and outputs a first driving force and a first accelerated revolution speed, a second revolution accelerating unit which receives the first driving force from the first revolution accelerating unit and outputs a second driving force and a second accelerated revolution speed, and a third revolution accelerating unit which receives the second driving force from the second revolution accelerating unit and outputs a third driving force and a third accelerated revolution speed to the vehicle generator to operate the vehicle generator.
According to an embodiment, the power generation control system further comprises a revolution decelerating unit which is disposed between the main driving shaft and the spring winding motor, receives a spring driving force from the spring winding motor, and outputs a driving force to the main driving shaft to rotate the main driving shaft in an opposite direction from an original direction of rotation of the main driving shaft.
According to an embodiment, the power generation control system further comprises a manual handle which is connected with the main driving shaft to apply an external force to the main driving shaft, wherein when the external force is applied to the main driving shaft, the main driving shaft rotates in an opposite direction from an original direction of rotation of the main driving shaft.
According to an embodiment, the power generation control system further comprises a fourth revolution accelerating unit which is disposed between the main driving shaft and the manual handle to output a force which accelerates a rotation velocity of the main driving shaft.
According to an embodiment, the revolution decelerating unit comprises a first driving module that includes a first driving shaft and a solar gear, wherein an end of the first driving shaft is integrally connected to a center of the solar gear, a second driving module that includes a second driving shaft and a pinion, wherein an end of the second driving shaft is integrally connected to a center of the pinion, a gear sequence which is identical in number to the solar gear and the pinion and is engaged with the solar gear and the pinion, wherein the gear sequence includes first and second gears and a support shaft that passes through central portions of the first and second gears, and a support unit through which the first and second driving shafts rotatably pass, wherein the support shaft is rotatably supported by the support unit, wherein a through hole is formed to pass through the first driving shaft, the solar gear, the pinion, and the second driving shaft, wherein the main driving shaft passes through the through hole.
According to an embodiment, a latch groove is provided at an outer circumferential portion of the main driving shaft and includes a sliding portion and an engaging portion, and wherein the revolution decelerating unit includes a latch module at an outer circumferential portion of the second driving shaft, wherein the latch module includes
a support frame that rotates together with the second driving shaft, a latch unit that is provided on an upper side of the support frame, and a latch casing that includes a spring therein to elastically and downwardly support the latch unit, wherein a lower portion of the latch unit has a shape corresponding to a shape of the latch groove, and wherein a latch move hole is formed at the second driving shaft, wherein the latch unit passes through the latch move hole to be guided to the latch groove.
According to an embodiment, a one-way bearing is disposed on an outer circumferential portion of the first driving shaft of the revolution decelerating unit and rotates in a direction of the main driving shaft but not in an opposite direction, and wherein a first pulley is disposed on an outer circumferential portion of the one-way bearing and rotates together with the one-way bearing, and the first pulley is connected with a second pulley disposed on a driving shaft of the spring winding motor.
According to an embodiment, each of the first revolution accelerating unit, the second revolution accelerating unit, and the third revolution accelerating unit comprises a first driving module that includes a first driving shaft and a solar gear, wherein an end of the first driving shaft is integrally connected to a center of the solar gear, a second driving module that includes a second driving shaft and a pinion, wherein an end of the second driving shaft is integrally connected to a center of the pinion, at least one gear sequence, wherein the number of gear sequences is as the same as the number of solar gears and pinions and wherein each gear sequence is engaged with the solar gear and the pinion, and includes first and second gears and a support shaft that passes through central portions of the first and second gears, and a support unit through which the first and second driving shafts rotatably pass, wherein the support shaft is rotatably supported by the support unit, wherein a through hole is formed to pass through the first driving shaft, the solar gear, the pinion, and the second driving shaft, wherein a shaft passes through the through hole.
According to an embodiment, a one-way bearing is disposed on an outer circumferential portion of the main driving shaft between the main driving shaft and a pulley and rotates in a direction of the main driving shaft but not in an opposite direction, and the pulley is disposed on an outer circumferential portion of the one-way bearing to rotate along with the one-way bearing.
According to an embodiment, the detection sensor includes contact points which are spaced by a predetermined distance apart from an outermost side of a plate spring belonging to the spring and the outermost side, wherein the contact points are pressed to contact each other by the outermost side of the plate spring when the tension of the spring is less than the predetermined amount.
According to an embodiment, the main driving shaft is equipped with a braking disk, wherein the braking unit exerts pressure on the braking disk.
The embodiments of the present invention are better understood with reference to the accompanying drawings which are provided to illustrate, but not limit the present invention, wherein;
Exemplary embodiments of the present invention will be described with reference to the accompanying drawings, wherein the same reference numerals may be used to denote the same or substantially the same elements throughout the drawings and the specification.
As shown in
In an electric construction, the spring power generation unit 1000 is electrically connected with a vehicle generator 600, and the battery 700 is connected with the spring winding motor 900, the overcharge detection unit 2000, the detection sensor 800, and the braking unit 3000, respectively, which are electrically connected with the control unit 4000. The battery 700 is also electrically connected with a driving motor 5000.
In a mechanical construction, the driving motor 5000 is connected with a transmission 5200, and the transmission 5200 is connected with a driving wheel 5100.
The spring power generation unit 1000 will be described in more detail with reference to
As shown in
The revolution decelerating unit 100 is connected with the spring winding motor 900. The third revolution accelerating unit 400 is connected with the vehicle generator 600. The vehicle generator 600 is electrically connected with the battery 700. The detection sensor 800 is positioned adjacent to the spring 1. When detecting an over-loosened state of the spring 1, the detection sensor 800 transmits a certain signal to the control unit 4000.
As shown in
The main driving shaft S1 is equipped with a braking disk 3100, and the braking unit 3000 is implemented as a conventional disk braking unit which exerts pressure on the braking disk 3100. With reference to
As shown in
The number of the gear sequence(s) 60 is the same as the number of the solar gear(s) 12 and the number of the pinion(s) 22.
The gear sequence 60 is engaged with the solar gear 12 and the pinion 22. The gear sequence 60 includes a support shaft 61, and gears 62 and 63 that are axially connected to the support shaft 61 at their centers, as shown in
The first through fourth revolution accelerating units 200, 300, 400, and 500 have the same structure as that of the revolution decelerating unit 100. However, in the case of the revolution decelerating unit 100, a driving force is applied to the first driving shaft 11 and a decelerated revolution speed is outputted via the second driving force shaft 21, and in the case of the first through fourth revolution accelerating units 200, 300, 400, and 500, a driving force is applied to the second driving shaft 21 and an accelerated revolution speed is outputted via the first driving shaft 11. According to embodiments, the revolution decelerating unit 100 and the first through fourth revolution accelerating units 200, 300, 400, and 500 may function as a revolution decelerating unit, such as the revolution decelerating unit 100, which decelerates a revolution speed or a revolution accelerating unit, such as the first through fourth revolution accelerating units 200, 300, 400, and 500, which accelerates a revolution speed depending on where the driving force is inputted from and is outputted to.
The first and second driving shafts 11 and 21 pass through the support unit 70.
The support shaft 61 is rotatably supported by the support unit 70, as shown in
The revolution decelerating unit 100 is further provided with a latch module 90 at an outer circumferential portion of the second driving force shaft 21. A pair of latch grooves 83 that face each other are provided at an outer circumferential portion of the main driving force shaft S1. Each of the latch grooves 83 includes a sliding portion 81 and an engaging portion 82.
The latch module 90 is axially provided at an outer circumferential portion of the second driving shaft 21. The latch module 90 includes a support frame 91 which rotates together with the second driving shaft 21, a latch unit 92 that is provided on an upper side of the support frame 91, and a latch casing 94 that has a spring 93 therein to elastically support the latch unit 92 in the latch casing 94 in a downward direction. A lower portion of the latch unit 92 has a shape corresponding to that of the latch groove 83, as shown in
A latch move hole 7 is formed at the second driving shaft 21 of the revolution decelerating unit 100. The latch unit 92 passes through the latch move hole 7 to be guided into the latch groove 83 as shown in
As shown in
As shown in
Two one-way bearings 3a and 3b are provided on an outer circumferential portion of the first driving shaft 11 of the revolution decelerating unit 100, which rotate in a direction opposite to a driving direction of the spring winding motor 900 while not rotating in its opposite direction. Two pulleys P12 and P14 are provided on the one-way bearings 3a and 3b, respectively, and rotate together with the one-way bearings 3a and 2b, respectively.
The pulley P14 is connected via a driving force transfer belt V12 with a pulley P13 provided on a driving shaft of the spring winding motor 900, and the pulley P12 is connected via the driving force transfer belt V11 with a pulley P11 of the fourth revolution accelerating unit 500.
A pulley P1 is provided on an outer circumferential portion of the main driving shaft S1 to allow the main driving shaft S1 to transfer a driving force of a counterclockwise direction (in a leftward direction in
The first through fourth driving accelerating units 200, 300, 400, and 500 will be described in greater detail with reference to
According to an embodiment, the first through fourth revolution accelerating units 200, 300, 400, and 500 may have the same construction as the revolution decelerating unit 100 with respect to the first and second driving modules 10 and 20, the gear sequence 60, and the support unit.
Referring to
Referring to
Referring to
Referring to
The operations of a power generation control system for an electric vehicle according to an embodiment of the present invention will be described with reference to
Referring to
The one-way bearing 3b connected with the spring winding motor 900 is not applied with a belt tensional force since the spring winding motor 900 is not driven. The one-way bearing 3b connected with the spring winding motor 900 does not exert pressurize on an outer circumferential portion of the first driving shaft 11 of the revolution decelerating unit 100, so the elements 3b and 11 idle—for example, the first driving shaft 11 of the revolution decelerating unit 100 rotates in the right direction, and the one-way bearing 3b remains stationary.
One-way bearing 3c disposed on an outer circumferential portion of the main driving shaft S1 rolls along with the main driving shaft S1, so, as shown in
When the winding operation of the spring 1 is almost finished and the user stops applying the external force to the manual handle 2, the spring power generation unit 1000 starts generating power.
With reference to
The driving force of the main driving shaft S1 sequentially accelerates the first through third revolution accelerating units 200, 300, and 400, and the accelerated revolution speed is supplied to the vehicle generator 600 via the third revolution accelerating unit 400, so that the vehicle generator 600 generates power. The thusly generated power is stored in the battery 700.
When the power generation gets started, the control unit 4000 performs a control operation as shown in
Referring to
When it is determined that the spring 1 is over loosened in step S100, the control unit 4000 supplies electric energy stored in the battery 700 to the spring winding motor 900 for a certain time period, so that the spring winding motor 900 operates for a certain time period (S200). When it is not determined that the spring 1 is over loosened in step S100 or step S200 is finished, it is determined whether a s signal from the overcharge detection unit 2000, for example, an overcharge signal of the battery is received or not (S300).
When it is determined in step S300 that the overcharge signal of the battery is received, the control unit 4000 operates the braking unit 3000 (S400). The braking unit 3000 formed of a disk brake exerts pressure on the braking disk 3100 provided on the main driving shaft S1, so that the main driving shaft S1 no longer rotates. When it is determined in step S300 that the overcharge signal of the battery is not received, the operation of the braking unit 3000 is released (S500), and the routine returns to step S100.
As the power generation operation continues by the spring power generation unit 1000, the elastic recovery force of the spring 1 is exhausted, so that the control unit 4000 controls the automatic winding operation of the spring 1 via the detection sensor 800 and the spring winding motor 900. For example, in response to exhaustion of the elastic recovery force of the spring 1 through the detection sensor 800, the control unit 4000 allows the spring winding motor 900 to perform the automatic winding operation of the spring 1. As the above operation continues, when the battery 700 is over charged, the control unit 4000 operates the braking unit 3000 to stop the operation of the spring power generation unit 1000.
By the above operation, power for use in the vehicle can be generated, the life span of the battery can be extended, and mechanical fatigue and abrasion can be significantly reduced.
The automatic winding operation of the spring 1 will now be described. As the above power generation operation is performed for a certain time, the spring 1 is gradually unwound, and as a consequence, the outermost portion 1a of the plate spring exerts pressure on the contact points of the detection sensor 800, and the contact points 810 are brought in contact with each other as shown in
The one-way bearing 3a connected with the fourth revolution accelerating unit 500 and the one-way bearing 3c disposed on the main driving shaft S1 remain idle on the first driving shaft 11 of the driving decelerating unit 100 and the main driving shaft S1, respectively. The first driving shaft 11 of the revolution decelerating unit 100 rotates in the right direction, but the one-way bearing 3a remains stationary. The main driving shaft S1 rotates in the right direction, but the one-way bearing 3c disposed on the outer diameter of the main driving shaft S1 rolls with the main driving shaft S1, so that the rotational force from the main driving shaft S1 is not transferred to the first revolution accelerating unit 200.
Although the exemplary embodiments of the present invention have been described, it is understood that the present invention should not be limited to these exemplary embodiments but various changes and modifications can be made by one ordinary skilled in the art within the spirit and scope of the present invention as hereinafter claimed.
Number | Date | Country | Kind |
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10-2010-0005309 | Jan 2010 | KR | national |