TWM484854U - Damped charging device - Google Patents

Damped charging device Download PDF

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Publication number
TWM484854U
TWM484854U TW103208420U TW103208420U TWM484854U TW M484854 U TWM484854 U TW M484854U TW 103208420 U TW103208420 U TW 103208420U TW 103208420 U TW103208420 U TW 103208420U TW M484854 U TWM484854 U TW M484854U
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Taiwan
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damper
core
electric energy
charging device
damping
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TW103208420U
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Chinese (zh)
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Fu-Zi Xu
Jie-Sheng Tu
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Fu-Zi Xu
Jie-Sheng Tu
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Priority to TW103208420U priority Critical patent/TWM484854U/en
Publication of TWM484854U publication Critical patent/TWM484854U/en

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Description

阻尼充電裝置Damping charging device

本創作有關於一種阻尼充電裝置,其能夠將無頻率響應的直流連續電力轉換成有頻率響應的電能後充入電池內,以加速充電速度,且在充電過程中,不會有電能的消耗。The present invention relates to a damping charging device capable of converting a DC-free continuous power having no frequency response into a frequency-responsive electric energy and charging the battery to accelerate the charging speed, and during the charging process, there is no consumption of electric energy.

圖一所示為習用的充電裝置11,其一端能夠與電能產生裝置10,另一端能夠與電容電池12連接。憑藉該充電裝置1能夠電能產生裝置10所輸出的電能充入該電容電池12內。該電容電池12才能釋出電力供負載13作功。該電能產生裝置10可以是再生能產生裝置,也可以電源供應裝置。1 shows a conventional charging device 11 which can be connected to the power generating device 10 at one end and to the capacitor battery 12 at the other end. With the charging device 1, the electric energy output from the electric energy generating device 10 can be charged into the capacitor battery 12. The capacitor battery 12 can release power for the load 13 to work. The electric energy generating device 10 may be a regenerative energy generating device or a power supply device.

所述習用的充電裝置11包含有一變壓器14、一控制電路15、一整流二極體16。該變壓器14能夠將電能產生裝置10所輸出的電力作升高電壓或降低電壓。該控制電路15主要在控制所傳輸的電力為定電流、定電壓。該整流二極體16能夠將所傳輸的電力整流成沒有頻率響應的直流型態。The conventional charging device 11 includes a transformer 14, a control circuit 15, and a rectifying diode 16. The transformer 14 is capable of raising or lowering the voltage output from the electric energy generating device 10. The control circuit 15 mainly controls the transmitted power to be a constant current and a constant voltage. The rectifying diode 16 is capable of rectifying the transmitted power into a DC type having no frequency response.

圖一中的變壓器14是將電能產生裝置所輸出的電能做調壓輸出,可被視做為一電源供應器,其內阻為r。該電容電池12相對於該變壓器14可被視做為一負載,其在充電過程中會產生阻抗R。在充電的過程中,是將電力以電壓的型態充入該電容電池內,以提升該電容電池12的電位位準。因此在充電的過程會令電容電池12發熱。該變壓器14輸出連續電力對 該電容電池12充電作功,勢必面臨最大功率移轉(MPTT)。該電容電池12的阻抗R與該變壓器14電源輸送路徑的內阻抗r相同時,電功率為最大輸出,即Poutmax=1/2 Pin。因此,有一半以上的電能被消耗再電路中,陷入充電效率太低的窘境。The transformer 14 in Fig. 1 is a voltage regulating output of the electric energy outputted by the electric energy generating device, and can be regarded as a power supply, and the internal resistance is r. The capacitor cell 12 can be considered as a load relative to the transformer 14 which produces an impedance R during charging. During the charging process, the power is charged into the capacitor battery in a voltage state to increase the potential level of the capacitor battery 12. Therefore, the charging battery 12 generates heat during the charging process. The transformer 14 outputs a continuous power pair The capacitor battery 12 is charged for work and is bound to face maximum power transfer (MPTT). When the impedance R of the capacitor battery 12 is the same as the internal impedance r of the power transmission path of the transformer 14, the electric power is the maximum output, that is, Poutmax = 1/2 Pin. Therefore, more than half of the power is consumed in the circuit, and it falls into a dilemma where the charging efficiency is too low.

圖一所示為習知充電裝置11在對該電容電池12充電時,因電容性的反法拉力(反抗電容兩端電壓變化的靜電力),故需長時間充電。又,當該變壓器14係輸出較大電流的電力時,會令該電容電池12燒毀,無法完成充電工作。FIG. 1 shows a conventional charging device 11 that charges a capacitor for a long time due to a capacitive anti-law force (reacting an electrostatic force that changes across the voltage across the capacitor). Further, when the transformer 14 outputs electric power of a large current, the capacitor battery 12 is burnt and the charging operation cannot be completed.

本創作主要在提供一種能夠快速充電且不會有最大功率移轉問題的阻尼充電裝置。This creation primarily provides a damped charging device that can be quickly charged without the problem of maximum power transfer.

為了達到以上的目的,本創作必須揚棄傳統以提升電容電池電位位準的方式,而採用將電力轉換成有頻率響應的電能後再充入電容電池內。In order to achieve the above objectives, the creation must abandon the traditional way of increasing the potential level of the capacitor battery, and convert the power into a frequency-responsive electrical energy and then charge it into the capacitor battery.

本創作所揭示的阻尼充電裝置,其包含:一電源輸出裝置、一控制電路、一阻尼電感、及一高頻振盪開關。該電源輸出裝置能夠與電能產生裝置連接。要由該充電裝置充電的電容電池,其正極端與該阻尼電感連接,負極端與該高頻振盪開關連接。The damping charging device disclosed in the present invention comprises: a power output device, a control circuit, a damping inductor, and a high frequency oscillation switch. The power output device is connectable to the power generating device. A capacitor battery to be charged by the charging device has a positive terminal connected to the damper inductor and a negative terminal connected to the high frequency oscillating switch.

所述電源輸出裝置能夠對電能產生裝置所輸出的電能做升壓或降壓的作用後輸出電源。所述控制電路能夠對該電源輸出裝置所輸出的電源調控在定電流與定電壓的狀態下。所述阻尼電感,其包含設置有一矽鋼片鐵芯、一非晶矽質鐵芯、及一線圈。該矽鋼片鐵芯的電感值會隨頻 率的增加而增加;該非晶矽質鐵芯的電感值會隨頻率的增加而降低。憑藉該高頻振盪開關的作動,使該阻尼電感作高頻率的儲電、放電作用,以抵銷因電容性的反法拉力。則該阻尼電感能夠釋放出具有頻率響應的電能來對該電容電池充電。The power output device can output a power source by boosting or stepping down the power output by the power generating device. The control circuit is capable of regulating the power outputted by the power output device in a state of constant current and constant voltage. The damping inductor comprises a silicon steel core, an amorphous core, and a coil. The inductance value of the silicon steel core will follow the frequency The rate increases with an increase; the inductance value of the amorphous enamel core decreases as the frequency increases. By virtue of the operation of the high-frequency oscillation switch, the damping inductor acts as a high-frequency storage and discharge to offset the capacitive anti-fader force. The damper inductor is capable of discharging electrical energy having a frequency response to charge the capacitor battery.

所述該電源輸出裝置可以是一變壓器,也可以是一個電源供應器。The power output device may be a transformer or a power supply.

所述高頻振盪開關可以是具有快速閘門特性的快速二極體。The high frequency oscillation switch may be a fast diode having a fast gate characteristic.

所述該電能產生裝置可以是再生能產生裝置,也可以是家用電源。The electric energy generating device may be a regenerative energy generating device or a household power source.

1‧‧‧阻尼充電裝置1‧‧‧Dampening charging device

2‧‧‧阻尼充電裝置2‧‧‧Dampening charging device

10‧‧‧電能產生裝置10‧‧‧Electrical energy generator

11‧‧‧充電裝置11‧‧‧Charging device

12‧‧‧電容電池12‧‧‧Capacitive battery

13‧‧‧負載13‧‧‧ load

14‧‧‧變壓器14‧‧‧Transformers

15‧‧‧控制電路15‧‧‧Control circuit

16‧‧‧整流二極體16‧‧‧Rectifying diode

17‧‧‧二次電池17‧‧‧Secondary battery

20‧‧‧電源輸出裝置20‧‧‧Power output device

21‧‧‧變壓器21‧‧‧Transformers

30‧‧‧控制電路30‧‧‧Control circuit

40‧‧‧阻尼電感40‧‧‧Damping inductance

41‧‧‧矽鋼片鐵芯41‧‧‧矽Steel core

42‧‧‧非矽晶質鐵芯42‧‧‧Non-crystalline core

43‧‧‧線圈43‧‧‧ coil

50‧‧‧高頻震盪開關50‧‧‧High frequency oscillation switch

51‧‧‧快速二極體51‧‧‧ fast diode

60‧‧‧超級電容60‧‧‧ super capacitor

圖一為第一習用充電裝置的充電電路結構圖。FIG. 1 is a structural diagram of a charging circuit of a first conventional charging device.

圖二為本創作第一實施例進行充電的電路方塊圖。Figure 2 is a block diagram of a circuit for charging in the first embodiment of the present invention.

圖三為本創作第一實施例進行充電的電路圖。FIG. 3 is a circuit diagram of charging according to the first embodiment of the present invention.

圖四為圖三所示電路圖中的高頻振盪開關由一快速二極體取代的電路圖。Figure 4 is a circuit diagram of the high frequency oscillation switch in the circuit diagram shown in Figure 3 replaced by a fast diode.

圖五為阻尼電感結構的第一實施例。Figure 5 is a first embodiment of a damper inductor structure.

圖六為阻尼電感結構的第二實施例。Figure 6 is a second embodiment of a damper inductor structure.

圖七為本創作充電裝置第二實施例的充電電路方塊圖。Figure 7 is a block diagram of a charging circuit of a second embodiment of the authoring charging device.

圖八為本創作充電裝置第二實施例的充電電路圖。FIG. 8 is a charging circuit diagram of a second embodiment of the authoring charging device.

請參閱圖二、圖三。本創作所揭示的阻尼充電裝置1,其包含:一電源輸出裝置20、一控制電路30、一阻尼電感40、及一高頻振盪開 關50。該電源輸出裝置20能夠與一電能產生裝置10連接,其主要將電能產生裝置10所輸出的電能做升壓或降壓的作用後輸出電源。要由該阻尼充電裝置1充電的電容電池12,其正極端與該阻尼電感40連接,負極端與該高頻振盪50開關連接。該電能產生裝置10可以是再生能產生裝置,也可以是家用電源。Please refer to Figure 2 and Figure 3. The damping charging device 1 disclosed in the present invention comprises: a power output device 20, a control circuit 30, a damping inductor 40, and a high frequency oscillation Off 50. The power output device 20 can be connected to an electric energy generating device 10, which mainly boosts or depressurizes the electric energy output from the electric energy generating device 10 and outputs the power. The capacitor battery 12 to be charged by the damper charging device 1 has its positive terminal connected to the damper inductor 40 and the negative terminal connected to the high frequency oscillating 50 switch. The electric energy generating device 10 may be a regenerative energy generating device or a household power source.

該控制電路30與該電源輸出裝置之間為電氣連接,其主要在對該電源輸出裝置所輸出的電源調控在定電流與定電壓的狀態下,穩定地傳輸電流。該控制電路30為一習知的技術。The control circuit 30 is electrically connected to the power output device, and the current is stably transmitted under a state in which the power output from the power output device is regulated at a constant current and a constant voltage. The control circuit 30 is a conventional technique.

該阻尼電感與該控制電路之間為電氣連接。見圖五、圖六。該阻尼電感40包含設置有一矽鋼片鐵芯41、一非晶矽質鐵芯42、及一線圈43。該矽鋼片鐵芯41與該非晶矽質鐵芯42係貼靠在一起,該線圈43同時纏繞該該矽鋼片鐵芯41與該非晶矽質鐵芯42。該矽鋼片鐵芯41的電感值會隨頻率的增加而增加。該非晶矽質鐵芯42的電感值會隨頻率的增加而降低。則電流在經過該阻尼電感40時,其電感會產生自體振盪作用,以抵銷因電容性負載的反法拉力(電容電池的容量越大,反法拉力越大)。而不會使該阻尼電感40溫度升高,自然不會造成能量的消耗。圖五中,該矽鋼片鐵芯41與該非晶矽質鐵芯42皆為棒狀。圖六中,該矽鋼片鐵芯41與該非晶矽質鐵芯42皆為環狀。The damping inductance is electrically connected to the control circuit. See Figure 5 and Figure 6. The damper inductor 40 includes a silicon steel core 41, an amorphous enamel core 42, and a coil 43. The silicon steel core 41 and the amorphous core 42 are placed against each other, and the coil 43 is simultaneously wound around the silicon steel core 41 and the amorphous core 42. The inductance value of the silicon steel core 41 increases as the frequency increases. The inductance value of the amorphous enamel core 42 decreases as the frequency increases. When the current passes through the damper inductor 40, its inductance will generate self-oscillation to offset the anti-law force of the capacitive load (the larger the capacity of the capacitor battery, the greater the anti-fader force). Without increasing the temperature of the damping inductor 40, naturally no energy consumption is caused. In Fig. 5, the silicon steel core 41 and the amorphous core 42 are rod-shaped. In FIG. 6, the silicon steel core 41 and the amorphous core 42 are both annular.

憑藉該高頻振盪開關50的作動,使該阻尼電感40作高頻率的儲電、放電的連續動作。當該高頻振盪開關50為ON的狀態下時,該阻尼電感40會儲存電能。當該高頻振盪開關50為OFF的狀態下時,該阻尼電感40會將所儲存電能釋放出來對該電容電池12充電。該阻尼電感40所釋放出的 是具有頻率響應的電能。因此,本創作的阻尼充電裝置1是將具有頻率響應的電能充入該電容電池12內,與圖一所示習知將無頻率響應的連續電力充入該電容電池12內以提高該電容電池12電位的方式不同。By the operation of the high-frequency oscillation switch 50, the damper inductor 40 is continuously operated for high-frequency storage and discharge. When the high frequency oscillation switch 50 is in the ON state, the damping inductance 40 stores electric energy. When the high frequency oscillation switch 50 is in the OFF state, the damping inductor 40 releases the stored electrical energy to charge the capacitor battery 12. Released by the damping inductor 40 It is electrical energy with a frequency response. Therefore, the damped charging device 1 of the present invention charges the electric energy having the frequency response into the capacitor battery 12, and the conventionally-discharged continuous power without frequency response is charged into the capacitor battery 12 to improve the capacitor battery. The 12 potentials are different.

本創作的阻尼充電裝置1是將具有頻率響應的電能充入該電容電池12內,自然容易對該電容電池12充電,能夠加速充電速度。由於反法拉力消除,因此,可以將充電頻率提升到極限,且不會使該電容電池12發生溫度升高的問題。The damper charging device 1 of the present invention charges electric energy having a frequency response into the capacitor battery 12, and naturally, the capacitor battery 12 is easily charged, and the charging speed can be accelerated. Since the anti-fader force is eliminated, the charging frequency can be raised to the limit without causing a problem of temperature rise of the capacitor battery 12.

前述電源輸出裝置20可以是一個變壓器21,其能夠將電能產生裝置10所輸出的電能做升壓或降壓的作用後輸出電源。該電源輸出裝置可以是一個電源供應器,以直接輸出電源。見圖四,所述該高頻振盪開關50可以是一個具有快速閘門特性的快速二極體51,例如:蕭基二極體,其可達到頻率的極限。The power output device 20 may be a transformer 21 that can boost or depress the power output from the power generating device 10 and output the power. The power output device can be a power supply to directly output power. Referring to FIG. 4, the high frequency oscillation switch 50 can be a fast diode 51 having a fast gate characteristic, such as a Schottky diode, which can reach the limit of frequency.

圖二~圖四所示的阻尼充電裝置1主要是對電容電池充電12。該電容電池12本身具有電容特性,能產生緩衝的阻尼效應。若將該阻尼充電裝置1主要是對二次電池充電,會因電能的頻率過高而燒毀該二次電池。圖七、圖八所示為本創作的另一實施例。該阻尼充電裝置2除了包含:一電源輸出裝置20、一控制電路30、一阻尼電感40、一高頻振盪開關50以外,更包含設置有一大容量的超級電容60。該超級電容60與該阻尼電感40之間為串聯連接,而與該阻尼電感40構成一阻尼器。憑藉該超級電容60的阻尼效應,對該二次電池充電17。The damper charging device 1 shown in FIG. 2 to FIG. 4 mainly charges the capacitor battery 12 . The capacitor battery 12 itself has a capacitive characteristic and can generate a damping effect of the buffer. If the damper charging device 1 mainly charges the secondary battery, the secondary battery is burnt due to the excessive frequency of the electric energy. FIG. 7 and FIG. 8 show another embodiment of the present creation. The damper charging device 2 includes a power output device 20, a control circuit 30, a damper inductor 40, and a high frequency oscillating switch 50, and further includes a super capacitor 60 provided with a large capacity. The super capacitor 60 is connected in series with the damping inductor 40, and forms a damper with the damping inductor 40. The secondary battery is charged 17 by the damping effect of the super capacitor 60.

該阻尼電感40的儲電、放電過程中,其電感會產生自體振盪作用,而不會使電感溫度升高,自然不會造成能量的消耗。本創作充電型 態,是將該阻尼電感40釋放出有頻率響應的電能(電子流)充入該電容電池12內,故不會有最大功率移轉(MPTT,即Poutmax=1/2 Pin)的問題。除去電流在電路中傳輸的些微消耗以外,本創作的阻尼充電裝置1可將全部電能充入該電容電池12內。本創作的充電方式是將有頻率響應的電能(電子流)充入該電容電池內,與圖一中以提升電容電池12的電位位準不同,故可快速地對該電容電池12充電,也不會有升溫的情形。During the storage and discharge of the damper inductor 40, the inductance will generate self-oscillation, without increasing the temperature of the inductor, and naturally no energy consumption will be caused. This creation charging type The state in which the damper inductor 40 releases the frequency-reactive electric energy (electron flow) is charged into the capacitor battery 12, so there is no problem of maximum power shift (MPTT, ie, Poutmax=1/2 Pin). In addition to the slight consumption of current transfer in the circuit, the damped charging device 1 of the present invention can charge all of the electrical energy into the capacitive battery 12. The charging method of the present invention is to charge the frequency-responsive electric energy (electron flow) into the capacitor battery, which is different from the potential level of the boost capacitor battery 12 in FIG. 1, so that the capacitor battery 12 can be quickly charged. There will be no warming.

以上所述係利用較佳實施例詳細說明本創作,而非限制本創作之範圍。大凡熟知此類技藝人士皆能明瞭,適當而作些微的改變及調整,仍將不失本創作之要義所在,亦不脫離本創作之精神和範圍。The above description is by way of a detailed description of the present invention, and is not intended to limit the scope of the present invention. Anyone who is familiar with such a skilled person can understand, and appropriate changes and adjustments will not lose the essence of this creation, and will not deviate from the spirit and scope of this creation.

1‧‧‧充電裝置1‧‧‧Charging device

10‧‧‧電能產生裝置10‧‧‧Electrical energy generator

12‧‧‧電容電池12‧‧‧Capacitive battery

20‧‧‧電源輸出裝置20‧‧‧Power output device

21‧‧‧變壓器21‧‧‧Transformers

30‧‧‧控制電路30‧‧‧Control circuit

40‧‧‧阻尼電感40‧‧‧Damping inductance

50‧‧‧高頻震盪開關50‧‧‧High frequency oscillation switch

51‧‧‧快速二極體51‧‧‧ fast diode

Claims (12)

一種阻尼充電裝置,尤指一種對電容電池充電的阻尼充電裝置;該阻尼充電裝置包含:一電源輸出裝置,其能夠與一電能產生裝置連接,並能夠對該電能產生裝置所輸出的電能做升壓或降壓的作用後輸出電源;一控制電路,其與該電源輸出裝置之間為電氣連接,並能夠對該電源輸出裝置所輸出的電源調控在定電流與定電壓的狀態下;一阻尼電感,其與該控制電路之間為電氣連接;該阻尼電感包含設置有一矽鋼片鐵芯、一非晶矽質鐵芯、及一線圈;該矽鋼片鐵芯與該非晶矽質鐵芯係貼靠在一起,該線圈同時纏繞該矽鋼片鐵芯與該非晶矽質鐵芯;該矽鋼片鐵芯的電感值會隨頻率的增加而增加;該非晶矽質鐵芯的電感值會隨頻率的增加而降低;以及,一高頻振盪開關;上述中,該電容電池的正極端與該阻尼電感連接,負極端與該高頻振盪開關連接;憑藉該高頻振盪開關的作動,使該阻尼電感作高頻率的儲電、放電作用;則該阻尼電感能夠釋放出具有頻率響應的電能,對該電容電池充電。A damping charging device, especially a damping charging device for charging a capacitor battery; the damping charging device comprises: a power output device capable of connecting with an electric energy generating device and capable of raising the electric energy outputted by the electric energy generating device a power supply after the action of voltage or voltage reduction; a control circuit electrically connected to the power output device, and capable of regulating the power output of the power output device under a constant current and a constant voltage; An inductance is electrically connected to the control circuit; the damping inductor comprises a core of a silicon steel sheet, an amorphous core, and a coil; the core of the silicon steel sheet is attached to the amorphous core Abutting together, the coil simultaneously wraps the core of the silicon steel sheet and the amorphous core; the inductance value of the core of the silicon steel sheet increases with frequency; the inductance value of the amorphous core is related to frequency Adding and lowering; and, a high frequency oscillation switch; in the above, the positive end of the capacitor battery is connected to the damping inductor, and the negative end is connected to the high frequency oscillation switch; High frequency oscillation of the actuating switch, so that the damping power storage inductor for high frequency discharge effect; the damping inductor capable of releasing electrical energy having a frequency response, to charge the capacitor battery. 如申請專利範圍第1項所述之阻尼充電裝置,其中,該電源輸出裝置為一能夠對該電能產生裝置所輸出的電能做升壓或降壓的作用的變壓器。The damper charging device according to claim 1, wherein the power output device is a transformer capable of boosting or stepping down the electric energy output from the electric energy generating device. 如申請專利範圍第1項所述之阻尼充電裝置,其中,該電源輸出裝置為一能夠將AC轉DC的電源供應器。The damper charging device of claim 1, wherein the power output device is a power supply capable of converting AC to DC. 如申請專利範圍第2項所述之阻尼充電裝置,其中,該電能產生裝置為再生能產生裝置、家用電源等其中之一。The damper charging device according to claim 2, wherein the electric energy generating device is one of a regenerative energy generating device, a household power source, and the like. 如申請專利範圍第1項所述之阻尼充電裝置,其中,該高頻振盪開關為具有快速閘門特性的快速二極體。The damper charging device of claim 1, wherein the high frequency oscillating switch is a fast diode having a fast gate characteristic. 如申請專利範圍第5項所述之阻尼充電裝置,其中,該快速二極體為一蕭基二極體。The damper charging device of claim 5, wherein the fast diode is a Schottky diode. 一種阻尼充電裝置,尤指一種對二次電池充電的阻尼充電裝置;該阻尼充電裝置包含:一電源輸出裝置,其能夠與一電能產生裝置連接,並能夠對該電能產生裝置所輸出的電能做升壓或降壓的作用後輸出電源;一控制電路,其與該電源輸出裝置之間為電氣連接,並能夠對該電源輸出裝置所輸出的電源調控在定電流與定電壓的狀態下;一阻尼電感,其與該控制電路之間為電氣連接;該阻尼電感包含設置有一矽鋼片鐵芯、一非晶矽質鐵芯、及一線圈;該矽鋼片鐵芯與該非晶矽質鐵芯係貼靠在一起,該線圈同時纏繞該矽鋼片鐵芯與該非晶矽質鐵芯;該矽鋼片鐵芯的電感值會隨頻率的增加而增加;該非晶矽質鐵芯的電感值會隨頻率的增加而降低;一超級電容,其與該阻尼電感之間為串聯連接;該超級電容與該阻尼電感構成一阻尼器;以及,一高頻振盪開關;上述中,該二次電池的正極端與該超級電容連接,負極端與該高頻振盪開關連接;憑藉該高頻振盪開關的作動,使該阻尼電感作高頻率的儲電、放電作用;該阻尼電感能夠釋放出具有頻率響應的電能,以及憑藉該超級電容的阻尼效應,對該二次電池充電。A damping charging device, in particular a damping charging device for charging a secondary battery; the damping charging device comprises: a power output device capable of connecting with an electric energy generating device and capable of performing electric energy output by the electric energy generating device a power supply after boosting or stepping down; a control circuit electrically connected to the power output device, and capable of regulating the power output of the power output device in a state of constant current and constant voltage; a damper inductor electrically connected to the control circuit; the damper inductor includes a silicon steel core, an amorphous enamel core, and a coil; the silicon steel core and the amorphous enamel core Abutting together, the coil simultaneously wraps the core of the silicon steel sheet and the amorphous core; the inductance value of the core of the silicon steel sheet increases with frequency; the inductance value of the amorphous core is related to frequency a supercapacitor, which is connected in series with the damper inductor; the supercapacitor and the damper inductor form a damper; and, a high frequency oscillating switch In the above, the positive terminal of the secondary battery is connected to the super capacitor, and the negative terminal is connected to the high frequency oscillation switch; by the operation of the high frequency oscillation switch, the damping inductor is used for high frequency storage and discharge; The damper inductor is capable of discharging electric energy having a frequency response, and charging the secondary battery by the damping effect of the super capacitor. 如申請專利範圍第7項所述之阻尼充電裝置,其中,該電源輸出裝置為一 能夠對該電能產生裝置所輸出的電能做升壓或降壓的作用的變壓器。The damper charging device of claim 7, wherein the power output device is A transformer capable of boosting or stepping down the electric energy output from the electric energy generating device. 如申請專利範圍第7項所述之阻尼充電裝置,其中,該電源輸出裝置為一能夠將AC轉DC的電源供應器。The damper charging device of claim 7, wherein the power output device is a power supply capable of converting AC to DC. 如申請專利範圍第7項所述之阻尼充電裝置,其中,該電能產生裝置為再生能產生裝置、家用電源等其中之一。The damper charging device according to claim 7, wherein the electric energy generating device is one of a regenerative energy generating device, a household power source, and the like. 如申請專利範圍第7項所述之阻尼充電裝置,其中,該高頻振盪開關為具有快速閘門特性的快速二極體。The damper charging device of claim 7, wherein the high frequency oscillating switch is a fast diode having a fast gate characteristic. 如申請專利範圍第11項所述之阻尼充電裝置,其中,該快速二極體為一蕭基二極體。The damper charging device of claim 11, wherein the fast diode is a Schottky diode.
TW103208420U 2014-05-14 2014-05-14 Damped charging device TWM484854U (en)

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Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3076475A1 (en) 2015-03-30 2016-10-05 Fu-Tzu Hsu Acid/alkaline hybrid resonance battery device with damping function
CN106160239A (en) * 2015-03-31 2016-11-23 徐夫子 The electric storage device of tool damping function
EP3176866A1 (en) 2015-12-01 2017-06-07 Fu-Tzu Hsu Resonating lithium battery device with damping function

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP3076475A1 (en) 2015-03-30 2016-10-05 Fu-Tzu Hsu Acid/alkaline hybrid resonance battery device with damping function
CN106160239A (en) * 2015-03-31 2016-11-23 徐夫子 The electric storage device of tool damping function
CN106160239B (en) * 2015-03-31 2018-11-02 徐夫子 Has the electric storage device of damping function
EP3176866A1 (en) 2015-12-01 2017-06-07 Fu-Tzu Hsu Resonating lithium battery device with damping function

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