Series battery charger with the function of separate detection
Claim Score by NHIP
Abstract
A series battery charger with the function of separate detection, and more particularly a series circuit for detecting the battery charging process and for conducting a series combined discharging process on the same battery charger. The present invention provides a circuit structure capable of selectively switching to an “separate detection charging and series combined discharging mode” and a “synchronous switching control charging and discharging mode” by a synchronous changeover switch module in conjunction with charging circuits. In this way, the stored electric energy can be released for use by the series-connected separate detection charging circuits. Moreover, the charger can deliver 5V power via the standard USB interface to the 3C electronic products for the charging purpose. Meanwhile, the problems of conventional AA or AAA battery chargers and lithium batteries designed as a portable power are overcome, thereby enhancing the effect and safety of the charger.

Term
Projected expiry 28 February 2033.
- Priority
- Filed
- Published
- Today
- Projected expiry
10 claims: 1 independent, 9 dependent
- 1Broadest claimClaim Score 7, narrow(NHIP)A series battery charger with the function of separate detection, particularly a circuit for detecting the series battery charging process and for conducting a series combined synchronous discharging process, comprising:a casing, for containing a charging component, and having a charging block disposed on a surface of the casing, a plurality of charging compartments formed in the charging block for placing a plurality of AA or AAA batteries respectively, and an end of the charging compartment being a positive terminal, and the other end of the charging compartment being a negative terminal, thereby creating a charging circuit, and the casing having a plug connectible to an external power source;an input power source provided for converting an AC or DC power to a DC power and supplying a reference voltage source to a control IC (integrated circuit), a current control unit and a voltage control unit being interposed between the input terminal of the control IC and the input power source, thereby creating a charging circuit for charging the batteries in the charging block;the batteries within the charging block connected in series, each of the charging circuits being connected in parallel with a switch element, an anti-adverse-current element being interposed between the switch element and the positive terminal of the battery, wherein the control IC separately applies a terminal voltage to the positive terminals of the batteries of the charging circuits for the purpose of detection such that the switch elements of the charging circuits are switched ON when the batteries are fully charged, whereby the charging current Ic can be used for a further (or downward) charging process;a synchronous changeover switch module provided for switching the charging circuits in the series charging mode or the discharging mode, the synchronous changeover switch module having a number (n−1) of switching units (SW 1 ˜SWn−1) corresponding to (n) charging circuits in the charging block such that a switching unit is respectively interposed between two series-connected charging circuits, and wherein the last switching unit (SWn) of the synchronous changeover switch module is an independent charging/discharging control unit, and wherein each of the switching units (SW 1 ˜SW 4 ) has three contacts (a, b, c), and wherein the contact (a) of the switching units (SW 1 ˜SWn−1) is connected to the switch element of the corresponding charging circuits and to the front end of the anti-adverse-current element of the next charging circuits, and wherein the contact (b) is respectively connected to the positive terminal of the battery of the next charging circuit, and wherein the contact (c) is electrically connected to the negative terminal of the battery of the corresponding charging circuit, and wherein the contact a of the switching unit (SWn) serving as the charging/discharging control unit is a charging control terminal while the contact (b) thereof is a discharging control terminal, and the contact (c) thereof is a power control terminal (CONTROL H/L) for connection to the input power source or for grounding, and wherein the contact (c) is electrically connected to one of the contacts (a, b) when the synchronous changeover switch module is switched to one of the charging and discharging modes;a charging control circuit (A), composed of a contact a and a contact c of the charging/discharging control unit, and electrically coupled to the input power source, for controlling the ON/OFF of the input power source or outputting a charging power to the charging block;a discharging control switch (E), comprising an input terminal, an output terminal and a control terminal, and the input terminal being coupled to a positive of the first charging circuit/compartment in the terminal the charging block, and the output terminal being coupled to a voltage regulator circuit, and the control terminal being electrically coupled to a contact b of the charging/discharging control unit, for controlling the ON/OFF of the input terminal and the output terminal, such that the series-connected and combined discharging current of each battery in the charging block is outputted to the voltage regulator circuit;the voltage regulator circuit, for boosting or stepping down the input power to a predetermined DC voltage;and at least one USB output port, coupled to an output terminal of the voltage regulator circuit;whereby, when the synchronous changeover switch module switches to a charging mode, each contact (c) and each contact (a) of all n sets of switching units (SW 1 ˜SWn) are turned ON synchronously, such that each battery on the charging circuit is in an series-connected separate detection charging mode, and the discharging control switch E is turned OFF synchronously, and the charging control circuit (A) is controlled to turn (ON) to charge each battery by the charging current, and when the synchronous changeover switch module switches to a discharging mode, each contact (c) and each contact (b) of all sets of switching units (SW 1 ˜SWn) are turned ON synchronously, such that each batter on the charging circuit is in a series-connected combined synchronous discharging mode, and the charging control circuit (A) is turned OFF and the discharging control switch (E) is turned ON synchronously, such that each battery is series-connected to output the discharging current, so as to form a synchronous changeover switch module capable of integrating the independent separate charging or the series-connected and combined discharging between the charging and discharging circuits and synchronously controlling the ON/OFF of the charging current and discharging current.
99 paragraphs in 4 sections, as filed
BACKGROUND OF THE INVENTION
0001(a) Field of the Invention
0002The present invention relates to a series battery charger, and more particularly to a charger designed for charging, discharging and supplying electric power to an AA or AAA rechargeable battery, and a synchronous changeover switch module is provided to integrate a circuit structure with “a separate detection charging circuit and a series combined discharging circuit”.
0003(b) Description of the Related Art
0004As portable 3C electronic products become increasingly more popular, the demand for batteries becomes increasingly higher as well. A disposable battery (or a primary battery) is discarded after use, not only increasing the cost, but also causing environmental pollutions. Therefore, a rechargeable battery (or a secondary battery) has a higher consumption than that of the primary battery since the rechargeable battery can save costs and reduce contaminations of waste batteries.
0005At present, the rechargeable battery includes lithium-ion (Li-ion) battery, nickel metal hydride (Ni-MH) battery, nickel cadmium (Ni—Cd) battery and the rechargeable alkaline battery, and these batteries are also known as secondary batteries. Recently, a lithium battery with an organic electrolytic unit is used extensively in portable electronic devices due to its features of high-capacity density, low temperature, and stable storage.
0006However, the lithium battery still has the following drawbacks in its use:
00071. The lithium battery usually comes with a different specification for each of the electronic products. Even for the electronic products of the same brand, such as the Nokia mobile phones, there are tens of models of the lithium batteries, and thus causing tremendous inconvenience and trouble to users.
00082. The lithium battery contains an electrolytic unit, and there is a safety concern such as possible explosion occurred when a current is passed.
00093. Most of the present portable powers use a built-in lithium battery as an energy storage unit, but it generally does not come with a standard size for general electronic consumer products. As a result, the fully charged battery cannot be used alone when it is removed. Even though it can be removed, there are so many specifications of the lithium batteries, and such application is impractical.
0010Compared with the lithium battery, although the secondary battery such as the nickel metal hydride (Ni-MH), nickel cadmium (Ni—Cd) or alkaline rechargeable secondary battery has an energy storage density less than that of the lithium battery, yet its widely used AA or AAA battery sets an industrial specification, which is the main reason of its popularity up to now. However, its use still has the following insufficiencies:
00111. As shown in <figref idref="DRAWINGS">FIG. 1</figref>, which illustrates a charging circuit of a conventional parallel charger, the batteries B<b>1</b>˜B<b>4</b> connected in parallel are charged by the charging circuit. The advantage lies in that each of the batteries obtains a roughly the same charging voltage. The user can be free of the problem with batteries that are overcharged or undercharged. However, the disadvantage of the parallel charging mode is that the batteries can't be rapidly charged. Each of the batteries has only 1.2˜1.5V. When they are used/discharged for the 3C electronic products, they have to be connected in series for obtaining the DC voltage of (1.2V˜1.5V)×4=4.8V˜6V. It is complicated to discharge the parallel-connected batteries in a series way. Moreover, the problems such as power consumption, voltage difference and overheat have to be overcome.
00122. As shown in <figref idref="DRAWINGS">FIG. 2</figref>, which illustrates a charging circuit of a conventional series charger, the batteries B<b>1</b>˜B<b>4</b> connected in series are charged by the same charging circuit. The advantage is that the structure is simple and the batteries can be rapidly charged. However, this application may have drawbacks such as overheat, leak and undercharge.
00133. In order to improve the above-mentioned charging circuit, the applicant of the invention disclosed a solution of U.S. Pat. No. 6,784,638 “Series Charger with Separate Detection of Batteries” with which a plurality of batteries connected in series can be charged. In addition, a control IC and a separate detection circuit are employed to conduct the detection control of each battery. In this way, the problems of the series charger and the parallel charger may be eliminated. By use of this series charger with separate detection of batteries, the batteries each can be charged and detected if they are fully charged. However, it is not possible as well to discharge the batteries in a series mode for the 3C electronic products. This requires further improvements.
SUMMARY OF THE INVENTION
0014Therefore, it is a primary object of the present invention to provide a series battery charger with the function of separate detection, and more particularly a series circuit for detecting the battery charging process and for conducting a series combined discharging process on the same battery charger. The present invention provides a circuit structure capable of selectively switching to a “separate detection charging and series combined discharging mode” and a “synchronous switching control charging and discharging mode” by a synchronous changeover switch module in conjunction with charging circuits. In this way, the stored electric energy can be released for use by the series-connected separate detection charging circuits. Moreover, the charger can deliver 5V power via the standard USB interface to the 3C electronic products for the charging purpose. Meanwhile, the problems of conventional AA or AAA battery chargers and lithium batteries designed as a portable power are overcome, thereby enhancing the effect and safety of the charger.
0015Another object of the present invention is to provide a series battery charger with the function of separate detection by which the output discharging current is automatically blocked in charging the batteries within the charging block when the charging/discharging circuits are changed. In this way, the charging process will not be interfered by the output circuit. Moreover, the charging circuit is automatically disconnected in the discharging mode such that the discharging process will not be interfered. Thus, the charging/discharging quality is ensured.
0016A further object of the present invention is to provide an series battery charger with the function of separate detection, serving as a charger when a battery is charged in an independent separate charging mode and removed from the charger for the use by an electronic product, or serving as a discharger when a synchronous changeover switch module is switched to a series-connected and combined discharging mode, and a stabilized DC power is outputted for charging a portable electronic product, or serving as an adaptor by supplying a DC charging power when there is no battery placed in the charger or the power of an electronic device is low. In addition, the battery charger becomes a portable power when it is carried out, such that when the power of an electronic device is low, the charger can serve as a backup secondary battery. Even one alkaline primary battery can be placed in the battery charger for the discharging, and thus the battery charger also serves as an emergency power supply.
0017In order to achieve the above-mentioned objects, the invention includes:
0018a casing, for containing a charging component, and having a charging block disposed on a surface of the casing, a plurality of charging compartments formed in the charging block for placing a plurality of AA or AAA batteries respectively, and an end of the charging compartment being a positive terminal, and the other end of the charging compartment being a negative terminal, thereby creating a charging circuit, and the casing having a plug connectible to an external power source;
0019an input power source provided for converting an AC or DC power to a DC power and supplying a reference voltage source to a control IC (integrated circuit), a current control unit and a voltage control unit being interposed between the input terminal of the control IC and the input power source, thereby creating a charging circuit for charging the batteries in the charging block;
0020the batteries within the charging block connected in series, each of the charging circuits being connected in parallel with a switch element, an anti-adverse-current element being interposed between the switch element and the positive terminal of the battery, wherein the control IC separately applies a terminal voltage to the positive terminals of the batteries of the charging circuits for the purpose of detection such that the switch elements of the charging circuits are switched ON when the batteries are fully charged, whereby the charging current Ic can be used for a further (or downward) charging process;
0021a synchronous changeover switch module provided for switching the charging circuits in the series charging mode or the discharging mode, the synchronous changeover switch module having a number (n−1) of switching units (SW<b>1</b>˜SWn−1) corresponding to (n) charging circuits in the charging block such that a switching unit is respectively interposed between two series-connected charging circuits, and wherein the last switching unit (SWn) of the synchronous changeover switch module is an independent charging/discharging control unit, and wherein each of the switching units (SW<b>1</b>˜SW<b>4</b>) has three contacts (a, b, c), and wherein the contact (a) of the switching units (SW<b>1</b>˜SWn−1) is connected to the switch element of the corresponding charging circuits and to the front end of the anti-adverse-current element of the next charging circuits, and wherein the contact (b) is respectively connected to the positive terminal of the battery of the next charging circuit, and wherein the contact (c) is electrically connected to the negative terminal of the battery of the corresponding charging circuit, and wherein the contact a of the switching unit (SWn) serving as the charging/discharging control unit is a charging control terminal while the contact (b) thereof is a discharging control terminal, and the contact (c) thereof is a power control terminal (CONTROL H/L) for connection to the input power source or for grounding, and wherein the contact (c) is electrically connected to one of the contacts (a, b) when the synchronous changeover switch module is switched to one of the charging and discharging modes;
0022a charging control circuit (A), composed of a contact a and a contact c of the charging/discharging control unit, and electrically coupled to the input power source, for controlling the ON/OFF of the input power source or outputting a charging power to the charging block;
0023a discharging control switch (E), comprising an input terminal, an output terminal and a control terminal, and the input terminal being coupled to a positive of the first charging circuit/compartment in the terminal the charging block, and the output terminal being coupled to a voltage regulator circuit, and the control terminal being electrically coupled to a contact b of the charging/discharging control unit, for controlling the ON/OFF of the input terminal and the output terminal, such that the series-connected and combined discharging current of each battery in the charging block is outputted to the voltage regulator circuit;
0024the voltage regulator circuit, for boosting or stepping down the input power to a predetermined DC voltage; and
0025at least one USB output port, coupled to an output terminal of the voltage regulator circuit;
0026whereby, when the synchronous changeover switch module switches to a charging mode, each contact (c) and each contact (a) of all n sets of switching units (SW<b>1</b>˜SWn) are turned ON synchronously, such that each battery on the charging circuit is in an series-connected separate detection charging mode, and the discharging control switch E is turned OFF synchronously, and the charging control circuit (A) is controlled to turn (ON) to charge each battery by the charging current, and when the synchronous changeover switch module switches to a discharging mode, each contact (c) and each contact (b) of all sets of switching units (SW<b>1</b>˜SWn) are turned ON synchronously, such that each batter on the charging circuit is in a series-connected combined synchronous discharging mode, and the charging control circuit (A) is turned OFF and the discharging control switch (E) is turned ON synchronously, such that each battery is series-connected to output the discharging current, so as to form a synchronous changeover switch module capable of integrating the independent separate charging or the series-connected and combined discharging between the charging and discharging circuits and synchronously controlling the ON/OFF of the charging current and discharging current.
0027According to the above-mentioned technical features, the synchronous changeover switch module is constructed as a mechanic type switch or an electronic type switch, and wherein the mechanic type switch can be a slide switch, a press-button switch or a differential switch, and wherein the electronic type switch can be MOSFET or logic circuit while the control IC <b>22</b> is used to control the ON/OFF state of the discharge control switch (E), and wherein the discharge control switch (E) is switched OFF to stop the discharging process when the discharge termination voltage of the batteries is detected/discovered by the control IC.
0028According to the above-mentioned technical features, each switching unit of the mechanic type switch includes at least three pins, and wherein the synchronous changeover switch module includes a switchable isolation operation interface <b>31</b> on the main body thereof, and wherein the isolation operation interface <b>31</b> is exposed on the surface of the casing, and wherein, when the isolation operation interface <b>31</b> of the mechanical switch conducts the switching process, a number (n) of the independent conductive terminals <b>32</b> at the bottom thereof is synchronously shifted, and wherein one end of the conductive terminals is constantly and electrically connected to the corresponding contact (c) while the other end thereof is electrically connected to one of the contacts (a, b).
0029According to the above-mentioned technical features, the operation modes of the charger include:
0030a) under the condition of having an external power source: <ul id="ul0001" list-style="none"><li id="ul0001-0001" num="0000"><ul id="ul0002" list-style="none"><li id="ul0002-0001" num="0031">i) when the synchronous changeover switch module switches to the charging mode, the plurality of rechargeable batteries in the charging block forms series-connected separate detection charging circuits, and the charging/discharging control unit synchronously controls the charging control circuit (A) to turn ON and the discharging control switch (E) to turn OFF, so as to constitute a battery charger;</li><li id="ul0002-0002" num="0032">ii) when the synchronous changeover switch module switches to the discharging mode, each battery of the charging block forms a series-connected combined synchronous discharging circuit, and the charging/discharging control unit synchronously controls the charging control circuit (A) to turn OFF and the discharging control switch (E) to turn ON, such that the series-connected discharging current is outputted through the voltage regulator circuit for stabilizing the voltage, and then the USB output port supplies an electric power, so as to form a discharger;</li></ul></li></ul>
0033According to the above-mentioned technical features, the input power source further is further externally coupled to an auxiliary power supply, and the auxiliary power supply is coupled to the voltage regulator circuit for stabilizing the input power source and then supplying the power to the USB output port, such that the charger can charge the batteries concurrently, independently and separately and can output a USB power at the same time, so as to form a dual function device with the functions of a charger and an adaptor, and capable of charging a battery and supplying an electric power to an electronic product concurrently.
0034According to the above-mentioned technical features, the input power source is further externally coupled to an auxiliary power supply, and the auxiliary power supply is coupled to the voltage regulator circuit for stabilizing the input power source and then supplying the power to the USB output port, such that if no battery is placed into the charger for charging, a USB power can be outputted, so as to form an adaptor device for supplying an electric power to an electronic product directly.
0035b) under the condition of having no external power source: <ul id="ul0003" list-style="none"><li id="ul0003-0001" num="0000"><ul id="ul0004" list-style="none"><li id="ul0004-0001" num="0036">i) when the synchronous changeover switch module switches to the charging mode, each charging circuit has no charging current, and the charger is in a non-using status; and</li><li id="ul0004-0002" num="0037">ii) when the manual switch switches to the discharging mode, a charged backup secondary battery or a primary battery installed in the charging block forms a series-connected and combined discharging circuit, and the charging/discharging control unit synchronously controls the discharging control switch (E) to tur4n ON, such that the series-connected and combined discharging current is stabilized by the voltage regulator circuit, and then the USB output port supplies an electric power to a portable electronic product, so as to form a portable power or an emergency power supply.</li></ul></li></ul>
0038According to the forgoing techniques, the present invention is provided and integrated with the switching modes of the synchronous changeover switch module for constituting a circuit structure featuring an separate detection charging and series combined discharging mode” and a “synchronous switching control charging and discharging mode” without increasing the volume of the charger so as to overcome the problems of conventional chargers for nickel metal hydride batteries and nickel cadmium batteries and the problems of lithium batteries designed as a portable power, and to enhance the effect and safety of the charger.
BRIEF DESCRIPTION OF THE FIGURES
0039<figref idref="DRAWINGS">FIG. 1</figref> is a charging circuit of a conventional parallel charger;
0040<figref idref="DRAWINGS">FIG. 2</figref> is a charging circuit of a conventional series charger;
0041<figref idref="DRAWINGS">FIG. 3</figref> is a perspective view of the present invention;
0042<figref idref="DRAWINGS">FIG. 4</figref> is a schematic circuit diagram of a preferred embodiment of the present invention;
0043<figref idref="DRAWINGS">FIG. 5A</figref> is a schematic circuit diagram I the present invention in a separate detection mode;
0044<figref idref="DRAWINGS">FIG. 5B</figref> is a schematic circuit diagram II the present invention in a separate detection mode;
0045<figref idref="DRAWINGS">FIG. 5C</figref> is a schematic circuit diagram III the present invention in a separate detection mode;
0046<figref idref="DRAWINGS">FIG. 5D</figref> is a schematic circuit diagram IV the present invention in a separate detection mode;
0047<figref idref="DRAWINGS">FIG. 6A</figref> is a schematic circuit diagram showing four series-connected discharging circuits in accordance with the present invention;
0048<figref idref="DRAWINGS">FIG. 6B</figref> is a schematic circuit diagram showing the termination of the discharging process in accordance with the present invention;
0049<figref idref="DRAWINGS">FIG. 7A</figref> is a schematic circuit diagram of two series-connected charging circuits;
0050<figref idref="DRAWINGS">FIG. 7B</figref> is a schematic circuit diagram of two series-connected circuits in the discharging mode;
0051<figref idref="DRAWINGS">FIG. 8A</figref> is a schematic circuit diagram of a charging control of the present invention;
0052<figref idref="DRAWINGS">FIG. 8B</figref> is a schematic circuit diagram of a discharging control of the present invention;
0053<figref idref="DRAWINGS">FIGS. 9A and 9B</figref> are schematic circuit diagrams showing a charging status and a discharging status of a synchronous changeover switch module in accordance with an embodiment of the present invention respectively;
0054<figref idref="DRAWINGS">FIGS. 9C and 9D</figref> are schematic circuit diagrams showing a charging status and a discharging status of a synchronous changeover switch module in accordance with another embodiment the present invention respectively;
0055<figref idref="DRAWINGS">FIG. 10</figref> is a flow chart of an operating procedure of the present invention;
0056<figref idref="DRAWINGS">FIG. 11</figref> is a schematic view of an application of the present invention, showing a charger connected to an external power source;
0057<figref idref="DRAWINGS">FIG. 12</figref> is a schematic view of an application as a charger in accordance with the present invention;
0058<figref idref="DRAWINGS">FIG. 13</figref> is a schematic view of an application as a discharger in accordance with the present invention the present invention;
0059<figref idref="DRAWINGS">FIG. 14</figref> is a schematic view of an application as an adaptor in accordance with the present invention the present invention;
0060<figref idref="DRAWINGS">FIG. 15</figref> is a schematic view of an application as an adaptor and a charger concurrently in accordance with the present invention the present invention; and
0061<figref idref="DRAWINGS">FIG. 16</figref> is a schematic view of an application as a portable power in accordance with the present invention.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
0062With reference to <figref idref="DRAWINGS">FIG. 3</figref> for a perspective view of a battery charger <b>10</b> of the present invention, the charger <b>10</b> comprises: a casing <b>11</b>, for containing and covering charging components (such as a switching power supply and a charging circuit), and a charging block <b>12</b> disposed on a surface of the casing <b>11</b> and having a plurality of charging compartments provided for placing a plurality of AA or AAA batteries B<b>1</b>˜B<b>4</b> therein. In this preferred embodiment, there are four charging compartments C<b>1</b>, C<b>2</b>, C<b>3</b>, C<b>4</b>, but the invention is not limited to such quantity only. In a small charger, there are two charging compartments. Four charging compartments are used as an example for the description of a preferred embodiment and the illustration of its related drawings as follows. The casing <b>11</b> further comprises a plug <b>13</b> connectible to an external power source, wherein the plug <b>13</b> of this preferred embodiment is foldable and disposed at the bottom of the casing <b>11</b>. Of course, an external power cable <b>131</b> or a replaceable plug <b>13</b> can be used for connecting the external power source instead.
0063The charging block <b>12</b> as shown in <figref idref="DRAWINGS">FIG. 3</figref> may further have an external cover. In addition, the casing <b>10</b> includes a plurality of display units <b>221</b> which may be LEDs for displaying a charging status of each charging compartment C<b>1</b>˜C<b>4</b>. Each charging compartment has a positive terminal <b>12</b><i>a </i>and a corresponding negative terminal <b>12</b><i>b. </i>
0064With reference to <figref idref="DRAWINGS">FIG. 4</figref> for a schematic circuit diagram of a preferred embodiment of the present invention, most of the components in this circuit structure are contained in the casing <b>11</b>, and only a small number of components are exposed from a surface of the casing <b>11</b>, and the circuit structure comprises the following elements:
0065An input power source <b>20</b> is provided for converting an AC or DC power to a DC power and supplying a reference voltage source <b>21</b> to a control IC (integrated circuit) <b>22</b> for charging the batteries in the charging block <b>12</b>. The control IC <b>22</b> is a controller MCU of a microcomputer, and each component of the charging circuit <b>14</b> is operated by executing a predetermined sequence of procedures.
0066A current control unit <b>23</b> and a voltage control unit <b>24</b> are interposed between the input terminal of the control IC <b>22</b> and the input power source <b>20</b>, and a switch <b>29</b> is installed between them. The charging circuit <b>14</b> composed of the foregoing components is a prior art, and thus will not be described here.
0067A current detection component <b>28</b> is coupled to a negative terminal of the charging block <b>12</b>, and the current detection component <b>27</b> can be a resistor R and coupled to the current and voltage control units <b>23</b>, <b>24</b> for detecting current by the charging of the charging block <b>12</b> and using it as a voltage feedback current control to make adjustments.
0068As shown in <figref idref="DRAWINGS">FIG. 3</figref>, the charging compartments C<b>1</b>˜C<b>4</b> of the charging block <b>12</b> are connected in parallel. As shown in <figref idref="DRAWINGS">FIG. 4</figref>, the charging compartments B<b>1</b>˜B<b>4</b> of the charging block <b>12</b> are connected in series. The positive and negative terminals of each charging compartment create a charging circuit. There are four charging circuits <b>121</b>˜<b>124</b> provided in this embodiment. The charging circuits <b>121</b>˜<b>124</b> each are connected in parallel with a switch element <b>25</b> such as MOSFET, but should not be limited thereto. In other words, four MOSFETs Q<b>1</b>˜Q<b>4</b> are provided in this embodiment. An anti-adverse-current element <b>26</b> is interposed between the switch element <b>25</b> and the positive terminal of the battery. The anti-adverse-current element <b>26</b> can be diode or MOSFET. According to the embodiment, four diodes D<b>1</b>˜D<b>4</b> serve as the anti-adverse-current element <b>26</b>.
0069The control IC <b>22</b> separately applies a terminal voltage to the positive terminals of the batteries of the charging circuits <b>121</b>˜<b>124</b> for the purpose of detection. As shown in <figref idref="DRAWINGS">FIG. 4</figref>, the point to detect the terminal voltage is marked with <b>27</b>. The detection points <b>27</b> are electrically connected to the control IC <b>22</b> such that the switch elements <b>25</b> connected in parallel with the charging circuits <b>121</b>˜<b>124</b> are switched in the ON-position when the batteries B<b>1</b>˜B<b>4</b> are fully charged. In this way, the charging current Ic can be used for a further (or downward) charging process. As a result, each batteries B<b>1</b>˜B<b>4</b> in series can be separately detected by the invention if they are fully charged.
0070The series charging circuit in accordance with the invention differs from the prior art in that the batteries each can be separately detected if they are fully charged when they are charged in a series-connected state and that they are changed into the discharge mode when they are fully charged. In order to achieve these effects, a circuit arrangement specially designed is required. According to the invention, a synchronous changeover switch module <b>30</b> is employed to achieve the expected effect of series combination discharge. In other words, the negative terminal of the battery B<b>1</b> of the first charging circuit <b>121</b> in accordance with the invention is not directly connected to the positive terminal of the battery B<b>2</b> of the second charging circuit <b>122</b>. This also applies to the third and fourth charging circuits <b>123</b>, <b>124</b>. According to the invention, a synchronous changeover switch module <b>30</b> has to be interposed between the charging circuits <b>121</b>˜<b>124</b> for conducting different switching functions.
0071The synchronous changeover switch module <b>30</b> in accordance with the invention is constructed as a mechanic type switch or an electronic type switch. The mechanic type switch can be a slide switch, a press-button switch or a differential switch. The electronic type switch can be MOSFET or logic circuit while the control IC <b>22</b> is used to control the ON/OFF state of the discharge control switch E. No matter if the mechanic type switch or the electronic type switch is employed as the synchronous changeover switch module <b>30</b>, the contacts a, b, c of the switching units SW<b>1</b>˜SW<b>4</b> of the synchronous changeover switch module <b>30</b> have the same connection way and the same synchronous switching control way. That is, the last switching unit SW<b>4</b> is used as a charging/discharging control unit <b>40</b>. As shown in <figref idref="DRAWINGS">FIGS. 9A</figref> und <b>9</b>B, a mechanical type slide switch is used to be the synchronous changeover switch module <b>30</b>. The slide switch belongs to the prior art so that he switching principle won't be described in details hereinafter. According to the invention, a two-stage multi-pin slide switch is designed for the above-mentioned purpose. In the embodiment of the invention, the synchronous changeover switch module <b>30</b> internally includes 12 contacts from which 12 pins <b>33</b> are extended. Three contacts constitute a unit, thereby creating four units of switching units SW<b>1</b>˜SW<b>4</b>. Four conductive terminals <b>32</b> are movable with the isolation operation interface <b>31</b> such that the contact c is synchronously connected to all of the contacts a or b. Since the switching process is synchronously done without any time delay, the discharging and charging efficiency can be enhanced.
0072<figref idref="DRAWINGS">FIGS. 9A</figref> und <b>9</b>B illustrate that the synchronous changeover switch module <b>30</b> has four switching units SW<b>1</b>˜SWn, n=4. The number n of the switching units SW<b>1</b>˜SW<b>4</b> depends on the charging circuits <b>121</b>˜<b>124</b>. For example, there are n switching units SW<b>1</b>˜SW<b>4</b> correspondingly when n charging circuits <b>121</b>˜<b>124</b> are provided. Moreover, the n-<sup>th </sup>switching unit SWn is the charging/discharging control unit <b>40</b>. As a result, more than four charging circuits can be provided in the invention. That is, there can be eight charging circuits. As shown in <figref idref="DRAWINGS">FIGS. 7A and 7B</figref> as well as in <figref idref="DRAWINGS">FIGS. 9C and 9D</figref>, there can be only two charging circuits <b>121</b>˜<b>122</b> to each of which two series batteries B<b>1</b>, B<b>2</b>; B<b>3</b>, B<b>4</b> are coupled. Currently, there is a commercially available battery set having two batteries wrapped together by film. The required charging voltage for such a set of two batteries is the same or very close to each other since they have the same brand and are used for the same period of time. Thus, they can be arranged at the same charging circuit. In this case, the synchronous changeover switch module <b>30</b> has two switching units SW<b>1</b>˜SWn, n=2. The n-th (second) switching unit SW<b>2</b> is the charging/discharging control unit <b>40</b>. The principle and the connection of contacts for the embodiment with two switching units SW<b>1</b>˜SW<b>2</b> are exactly the same as the aforementioned embodiment with four switching units SW<b>1</b>˜SW<b>4</b> so that no further descriptions in details are given hereinafter.
0073How the synchronous changeover switch module <b>30</b> controls the connection and the disconnection of the charging circuits will be described hereinafter by means of the switching process of a mechanical type slide switch. The synchronous changeover switch module <b>30</b> includes a switchable isolation operation interface <b>31</b> on the main body thereof. The isolation operation interface <b>31</b> is exposed on the surface of the casing <b>11</b> (see <figref idref="DRAWINGS">FIG. 3</figref>). As shown in <figref idref="DRAWINGS">FIG. 5A</figref>, the synchronous changeover switch module <b>30</b> is internally provided with a number (n−1) of switching units SW<b>1</b>˜SWn−1 corresponding to the charging circuits <b>121</b>˜<b>12</b><i>n </i>(n=4) such that a switching unit is respectively interposed between two adjacent charging circuits, for example between the first and second charging circuits <b>121</b>˜<b>122</b> while the last switching unit SWn of the synchronous changeover switch module <b>30</b> is an independent charging/discharging control unit <b>40</b>. Moreover, each of the switching units SW<b>1</b>˜SWn has three contacts a, b, c. The contact a of the switching units SW<b>1</b>˜SWn−1 is electrically connected to the switch elements Q<b>1</b>˜Q<b>3</b> of the charging circuits <b>121</b>˜<b>123</b> and the front end of the anti-adverse-current element D<b>2</b>˜D<b>4</b> of the next charging circuits. The contact b of the switching units SW<b>1</b>˜SWn−1 is connected to the positive terminal of the battery of the next charging circuit. For example, the switching unit SW<b>1</b> is connected to the positive terminal of the battery B<b>2</b>, and the switching unit SW<b>3</b> is connected to the positive terminal of the battery
0074B<b>4</b>. In addition, the contact c of the switching units SW<b>1</b>˜SWn−1 is electrically connected to the negative terminal of the battery of the corresponding charging circuit <b>121</b>˜<b>123</b>. The negative terminal of the last charging circuit <b>124</b> is grounded. The contact a of the switching unit SWn serving as the charging/discharging control unit <b>40</b> is a charging control terminal while the contact b thereof is a discharging control terminal. The contact c thereof is a power control terminal (CONTROL H/L) for connection to the input power source <b>20</b> or for grounding, thereby creating a control circuit. As shown in <figref idref="DRAWINGS">FIGS. 9A and 9B</figref>, when the isolation operation interface <b>31</b> of the synchronous changeover switch module <b>30</b> conducts the switching process, a number (n) of the independent conductive terminals <b>32</b> at the bottom thereof is synchronously shifted. One end of the conductive terminals <b>32</b> is constantly and electrically connected to the corresponding contact c while the other end thereof is electrically connected to one of the contacts a, b. In this embodiment, n is 4. That is, four charging circuits and four switching units are provided, but the number thereof should not be limited thereto.
0075A charging control circuit A is comprised of a contact a and a contact c of the charging/discharging control unit <b>40</b> and electrically coupled to the input power source <b>20</b> for controlling the ON/OFF of the input power source <b>20</b> or outputting a charging power to the charging block <b>12</b>.
0076A discharging control switch E comprises an input terminal d, an output terminal e and a control terminal f, wherein the input terminal d is coupled to a positive terminal of the first charging compartment <b>121</b> in the charging block <b>12</b>. That is, it is connected to the positive terminal <b>12</b><i>a </i>of the first charging compartment C<b>1</b>. The output terminal e is coupled to a voltage regulator circuit <b>50</b>, and the control terminal f is electrically coupled to the contact b of the charging/discharging control unit <b>40</b> for controlling the ON/OFF of the input terminal d and the output terminal e, such that the series-connected and combined discharging current Id of each battery B<b>1</b>˜Bn in the charging block <b>12</b> is outputted to the voltage regulator circuit <b>50</b>. The discharging control switch E is a mechanical switch or an electronic switch linked to the contact b of the charging/discharging control unit <b>40</b>, and the discharging control switch E is coupled to the voltage regulator circuit <b>50</b> externally or built in the voltage regulator circuit <b>50</b>.
0077The voltage regulator circuit <b>50</b> is used for boosting or stepping down an input power to a predetermined DC voltage.
0078At least one USB output port <b>60</b> is coupled to an output terminal of the voltage regulator circuit <b>50</b>, and a socket of the USB output port <b>60</b> is exposed from the casing <b>11</b>.
0079When the synchronous changeover switch module <b>30</b> is switched to a charging mode, all n sets of switching units SW<sub>1</sub>˜SW<sub>n </sub>synchronously turn each of the contacts c and each of the contacts a ON, such that the battery B<b>1</b>˜Bn on each the charging circuit <b>121</b>˜<b>124</b> is in an independent separate charging mode, and synchronously control the discharging control switch E to OFF and the charging control circuit A to ON, such that each battery is charged by the charging current Ic. When the synchronous changeover switch module <b>30</b> is switched to a discharging mode, all n sets of switching units SW<sub>1</sub>˜SW<sub>n </sub>synchronously turn each of the contacts c and each of the discharging contacts b ON, such that the battery B<b>1</b>˜Bn on each charging circuit is in a series-connected and combined discharging mode, and synchronously turn the charging control circuit A OFF and turn the discharging control switch E ON, such that each series-connected battery outputs a discharging current Id, so as to form a single an independent separate charging or a series-connected and combined discharging between charging and discharging circuits by the synchronous changeover switch module <b>30</b> and synchronously control the ON/OFF of the charging current Ic and the discharging current Id.
0080In this preferred embodiment, the switching unit SW<sub>n</sub>, n=4 at the bottom is used as the charging/discharging control unit <b>40</b>. In this switching unit SW<sub>n</sub>, the contact b is coupled to the discharging control switch E, and each contact b of the remaining switching units SW<sub>1</sub>˜SW<sub>3</sub>, is electrically coupled to a positive terminal of the batteries B<b>2</b>˜B<b>4</b> of the next charging circuit <b>122</b>˜<b>124</b>. In this way, when the synchronous changeover switch module <b>30</b>, as shown in <figref idref="DRAWINGS">FIGS. 8A and 9A</figref>, is switched downward by the insulated operating interface <b>31</b>, the conductive terminal <b>32</b> at the contact c is forced to shift downward synchronously. Now, the charging circuits <b>121</b>˜<b>124</b> create a charging circuit in series.
0081<figref idref="DRAWINGS">FIGS. 5A˜5D</figref> illustrate the series charging arrangement in accordance with the invention. <figref idref="DRAWINGS">FIG. 5A</figref> shows the circuit to charge four batteries B<b>1</b>˜B<b>4</b> in the charging block <b>12</b> by the charging current Ic. Q<b>1</b>˜Q<b>4</b> of the switch element <b>25</b> are all switched in the OFF state. Therefore, the flow direction of the charging current Ic is shown in the drawing. The charging current Ic flows through each of the series batteries B<b>1</b>˜B<b>4</b>. When the battery B<b>1</b> is fully charged, the control IC <b>22</b> detects the charging voltage at the detection point <b>27</b> as LOW such that the first switch element Q<b>1</b> is switched ON. At this time, the charging current Ic is shown in <figref idref="DRAWINGS">FIG. 5B</figref>. The battery B<b>1</b> won't be charged by the charging current Ic again. The charging current Ic flows downward for a further charging process. When the battery B<b>2</b> is fully charged, the switch element Q<b>2</b> of the charging circuits <b>122</b> is switched ON (see <figref idref="DRAWINGS">FIG. 5C</figref>), and so on. When all of the batteries B<b>1</b>˜B<b>4</b> are fully charged (see <figref idref="DRAWINGS">FIG. 5D</figref>), all of the switch elements Q<b>1</b>˜Q<b>4</b> are switched ON. Meanwhile, the charging current Ic can be adjusted by the current detection component <b>28</b> for slightly charging all of the batteries. The batteries B<b>1</b>˜B<b>4</b> of the invention are connected in series for charging. At the same time, each of the batteries B<b>1</b>˜B<b>4</b> has a separate detection circuit. Only the separate detection way for the charged batteries can make sure if each of the batteries is really charged in a full capacity. Meanwhile, an excessive charging or a non-full charging can be prevented. Moreover, the series charging with separate detection ensures a better charging efficiency. Therefore, the invention is a continuation of the feature of the previous invention. That is, the charging circuits <b>121</b>˜<b>124</b> are instantly and synchronously combined in a discharging circuit by the synchronous changeover switch module <b>30</b> when the batteries B<b>1</b>˜B<b>4</b> in the charging block <b>12</b> are fully charged. In this way, the stored electric energy can be effectively released for use.
0082In discharging the fully charged batteries B<b>1</b>˜B<b>4</b> in the charging circuits <b>121</b>˜<b>124</b> (see <figref idref="DRAWINGS">FIGS. 6A and 9B</figref>), the synchronous changeover switch module <b>30</b> can be switched upward. Meanwhile, the exposed isolation operation interface <b>31</b> shown in <figref idref="DRAWINGS">FIG. 3</figref> has to be moved in the other side. At this point, the conductive terminal <b>32</b> at the contact c is synchronously moved upward to be electrically connected to the contact b of the switching units SW<b>1</b>˜SW<b>4</b>. Now, the batteries B<b>1</b>˜B<b>4</b> in the charging block <b>12</b> are connected in series and combined in a discharging circuit. Meanwhile, the discharge control switch E is switched ON for output of the discharging current Id. In order to prevent an excessive discharge of the batteries B<b>1</b>˜B<b>4</b> which cause the reduction of the battery life, the discharge termination voltage of the batteries B<b>1</b>˜B<b>4</b> can be detected by the control IC <b>22</b> just before the discharging process is ended. In this way, the discharge control switch E can be switched OFF to stop the discharging process. The electrical energy stored in the form of the direct current (DC) in the batteries B<b>1</b>˜B<b>4</b> can be delivered to the control IC <b>22</b> (see <figref idref="DRAWINGS">FIGS. 6A and 6B</figref>) when the discharging process is conducted in the absence of the input power source <b>20</b>. The control IC <b>22</b> can be activated by low voltage for checking the discharge termination voltage. Therefore, the discharging state or the warning state can be shown by the display unit <b>221</b>, too. As a result, the discharge termination voltage can also be detected even in the absence of the input power source <b>20</b> when the charger <b>10</b> in accordance with the invention is in the discharging state. Thus, the discharging process can be terminated for ensuring the service life of the batteries.
0083The input terminal of the voltage regulator circuit <b>50</b> is coupled to the output terminal <b>42</b> of the discharging control switch E for regulating the voltage of the discharging current Id. In this preferred embodiment, the voltage regulator circuit <b>50</b> is a synchronous buck/boost DC/DC converter, and the buck/boost IC technology of this sort has been used extensively, and can provide a stable and accurate voltage output, and its internal circuit is a prior art and thus will not be described in details here.
0084Since four pieces of nickel metal hydride/cadmium secondary batteries B<b>1</b>˜B<b>4</b> connected in series can only provide a voltage of 1.2V×4=4.8V which is still below the standard USB power output of DC 5.0V, therefore it is necessary to step up the voltage. Since the voltage of the alkaline primary battery is 1.5V, and four of them provide a total voltage of 6V, therefore the discharging current is different from the secondary battery and requires stepping down the voltage from 6V to 5V. On the other hand, the present invention adopts the foregoing voltage regulator circuit <b>50</b> that can discharge, step up, step down or regulate the voltage the voltage for different batteries, so as to assure that the electric power supply from the USB output port <b>60</b> has a stable and accurate voltage.
0085With the foregoing technical measures and controls as shown in <figref idref="DRAWINGS">FIGS. 8A and 8B</figref>, the n<sup>th </sup>set of switching unit SW<sub>n </sub>of the synchronous changeover switch module <b>30</b> is used as the charging/discharging control unit <b>40</b>, and its contact a is provided for turning on the charging control circuit A, and the contact b is provided for turning on the discharging control switch E, which form a control with two opposite functions. In other words, when the synchronous changeover switch module <b>30</b> is switched to the charging mode, the contact c and the contact a of each switching unit SW<sub>1</sub>˜SW<sub>n </sub>are ON, such that each battery in the charging block <b>12</b> is an independent separate charging circuit, and the charging control circuit A is ON to allow the charging current Ic to enter into the charging block <b>12</b>, while the discharging control switch E is turned OFF automatically to situate at a charging status as shown in <figref idref="DRAWINGS">FIG. 8A</figref>. On the other hand, when the synchronous changeover switch module <b>30</b> is switched to the discharging mode as shown in <figref idref="DRAWINGS">FIG. 8B</figref>, the contact c and the contact b of each switching unit SW<sub>1</sub>˜SW<sub>n </sub>are ON, and each battery in the charging block <b>12</b> is a series-connected and combined discharging circuit, and the charging control circuit A is turned OFF, and the discharging control switch E is turned ON to output the discharging current Id. In the present invention, a charging/discharging circuit and a switch is provided for a synchronous switching control, such that when the charging block <b>12</b> charges the battery, the output of discharging current Id is turned off automatically, so as to avoid interference to the output circuit or prevent affecting the charging process. During the discharging process, the charging circuit is disconnected automatically to avoid interference to the discharging process. In a preferred embodiment, the charging control circuit A and the discharging control switch E are coupled to the contact a and the contact b of the charging/discharging control unit <b>40</b> respectively for the control, wherein the contacts a, c of the charging/discharging control unit <b>40</b> are the contacts a, c of the charging control circuit A in this preferred embodiment, and the contact b is electrically coupled to the discharging control switch E. With the electric connection, if the contacts a, c are ON, the charging control circuit A will be ON. If the contacts b, c are ON, a signal will be transmitted to the discharging control switch E to turn the charging control circuit A ON. As a result, the charging/discharging control unit <b>40</b> is used as a press button on the control IC <b>22</b> for controlling the charging/discharging function. As to the charging control circuit A and the discharging control switch <b>40</b>B, they are not limited to those illustrated in the figures only, but any method capable of switching the contacts a, b of the charging/discharging control unit <b>40</b> ON/OFF synchronously can be adopted. Since the contacts a, b will not be turned ON at the same time, but they are in opposite control state, therefore one of the contact is ON, while the other one is OFF. The present invention applies this technical measure to achieve the switching purpose conveniently, so that the present invention can integrate several functions into the same charger without increasing the overall volume or the complicity of the structure.
0086The present invention skillfully uses the synchronous changeover switch module <b>30</b> to achieve the aforementioned features of “independent separate charging and series-connected and combined discharging” and “a one-time control for switching to a charging mode and a discharging mode synchronously”.
0087Therefore, a preferred embodiment of the present invention may have n sets of charging circuits in the charging block, wherein n is equal to 2, 4 or 8, and n−1 sets of switching units SW<sub>1</sub>˜SW<sub>n-1 </sub>corresponding to the manual switch <b>30</b> include 1 set, 3 sets or 7 sets, and the last n<sup>th </sup>set of independent switching unit SW<sub>n </sub>may be added to the 1 set, 3 sets or 7 sets to serve as the charging/discharging control unit <b>40</b>.
0088In <figref idref="DRAWINGS">FIG. 4</figref>, the present invention can connect an auxiliary power supply <b>70</b> to the voltage regulator circuit <b>50</b> by the input power source <b>20</b> and output a standard USB power from the USB output port <b>60</b> after the voltage is stabilized.
0089With <figref idref="DRAWINGS">FIG. 10</figref> for a flow chart of an operating procedure for controlling the control IC <b>22</b> in accordance with a preferred embodiment of the present invention, Step S<b>1</b> determines whether or not there is an input power source <b>20</b>, and Step S<b>2</b> determines whether or not the manual switch <b>30</b> is switched to a charging mode or a discharging mode, if there is an input power source <b>20</b>, and Step S<b>3</b> sets the battery in the charging block <b>12</b> to an independent separate charging circuit mode if Step <b>2</b> determines that the manual switch is in a charging mode. Now, the charging/discharging control unit <b>40</b> synchronously turn the discharging control switch E OFF and the charging control circuit A ON to set a charging mode, and then Step S<b>4</b> determines whether or not there is a rechargeable battery in the charging block <b>12</b>.
0090Step <b>5</b> turns on an independent separate charging circuit if Step <b>4</b> determines that there is a rechargeable battery, and step S<b>6</b> determines whether or not the charging is completed, and will continue charging when not completed, or else enter into Step S<b>7</b> to stop charging the battery. Of course, a slight charging may be performed after the charging process ends, and the details will not be described here.
0091In the foregoing Step S<b>2</b>, if it is determined that the manual switch <b>30</b> is switched to the discharging mode, Step <b>8</b> will take place. Now, the charging/discharging control unit <b>40</b> synchronously turns the charging control circuit A OFF, the input power source <b>20</b> OFF, and the discharging control switch E ON to set it at a discharging mode. Step S<b>9</b> determines whether or not there is a battery, and Step <b>10</b> takes place to start the series-connected and combined discharging circuit if there is a battery in the charging block <b>12</b>, such that each battery is series-connected and discharged. For a secondary battery of a lower voltage (4.8V), Step S<b>11</b> will regulate the voltage by a voltage regulator circuit <b>50</b>. For a primary battery with a higher voltage (6V), Step S<b>11</b> will step down the voltage. The step-up and step-down of the voltage in Step S<b>11</b> is performed by the voltage regulator circuit <b>50</b>, and Step S<b>12</b> output a stable electric power with a standard USB voltage of DC 5.0V to an external electronic product.
0092In the foregoing Step S<b>1</b>, if it is determined that there is no input power source <b>20</b>, the procedure will enter into S<b>14</b> to determine whether or not the manual switch <b>30</b> is switched to a discharging mode or a charging mode, and if it is determined that the manual switch <b>30</b> is switched to the charging mode, then the procedure ends. If it is determined that the manual switch <b>30</b> is switched to the discharging mode, then Step S<b>15</b> takes place. Now, the circuit in charging block <b>12</b> is a series-connected discharging circuit, and an emergency backup battery can be placed into the charging block <b>12</b>. Step S<b>16</b> determines whether or not there is a battery in the charging block <b>12</b>, and step S<b>17</b> takes place if there is a battery in the charging block <b>12</b>, and then the Steps S<b>17</b>˜S<b>18</b> are the same as the Steps S<b>10</b>˜S<b>11</b>, and finally Step S<b>12</b> outputs an electric power of standard voltage from the USB output port <b>60</b>.
0093In the foregoing Step S<b>1</b>, if it is determined that there is an input power source <b>20</b>, another procedure takes place at the same time of S<b>2</b>, wherein the input power source <b>20</b> is inputted directly to the auxiliary power supply <b>70</b> of Step S<b>13</b>, and the auxiliary power supply <b>70</b> stabilize the voltage in Step S<b>11</b> and enters into Step S<b>12</b> to output an electric power of a standard voltage from the USB output port <b>60</b>. When the auxiliary power supply <b>70</b> supplies electric power, the discharging mode of Step S<b>8</b> is disabled.
0094According to the aforementioned control procedure, the charger <b>10</b> of the present invention can be used with the following modes:
0095(a) Under the condition of having an external power source:
0096i) When the synchronous changeover switch module <b>30</b> is switched to a charging mode, each charging circuit <b>121</b>˜<b>124</b> for a plurality of rechargeable batteries B in the charging block <b>12</b> is an independent/separate detection charging circuit in series, and the charging/discharging control unit <b>40</b> synchronously turns the charging control circuit A ON and the discharging control switch E OFF, so as to form a battery charger <b>10</b>A. In the applications as shown in <figref idref="DRAWINGS">FIGS. 11 and 12</figref>, when the present invention is used as a charger, one or two batteries can be charged.
0097ii) When the synchronous changeover switch module <b>30</b> is switched to a discharging mode, each battery B<b>1</b>˜B<b>4</b> of the charging block <b>12</b> is a series-connected and combined discharging circuit, and the charging/discharging control unit <b>40</b> synchronously controls the charging control circuit A to OFF and the discharging control switch E to ON, such that the series-connected discharging current Id is regulated by the voltage regulator circuit <b>50</b> to supply the required electric power from the USB output port <b>60</b>, so as to form a discharger <b>10</b>B, and this application is shown in <figref idref="DRAWINGS">FIG. 13</figref>.
0098iii) If the battery in the charging block <b>12</b> is low or there is no battery in the charging block <b>12</b> as shown in <figref idref="DRAWINGS">FIG. 14</figref>, the auxiliary power supply <b>70</b> can directly supply a current Ip through the voltage regulator circuit <b>50</b>, and then to the USB output port <b>60</b>, such that the charger <b>10</b> becomes an adaptor <b>10</b>C under the condition of having an output power source <b>20</b>. In <figref idref="DRAWINGS">FIG. 15</figref>, when the charger <b>10</b> charges each battery B in the charging block <b>12</b>, an electric power is supplied to the USB output port <b>60</b> at the same time, such that the charger becomes an adaptor/charger <b>10</b>D without affecting the power supply of the electronic product during the charging process.
0099(b) Under the condition of having an external power source:
0100i) When the synchronous changeover switch module <b>30</b> is switched to the charging mode, there is no charging current for each charging circuit <b>26</b>. Now, the charger <b>10</b> is not in use.
0101ii) When the synchronous changeover switch module <b>30</b> is switched to the discharging mode, a charged backup secondary battery or primary battery B<b>1</b>˜B<b>4</b> in the charging block <b>12</b> is a series-connected and combined discharging circuit, and the charging/discharging control unit <b>40</b> synchronously controls the discharging control switch E to ON, such that the voltage of the series-connected discharging current Id can be regulated by the voltage regulator circuit <b>50</b>, and the required electric power supplied from the USB output port <b>60</b> can be outputted to a portable electronic product <b>90</b> through a transmission cable <b>61</b>, so as to form a portable power or an emergency power supply <b>10</b>E, and this application is shown in <figref idref="DRAWINGS">FIG. 16</figref>.
0102In summation, the present invention uses a manual switch to integrate the features of an “independent separate charging circuit” and a “series-connected and combined discharging circuit” to synchronously control the ON/OFF of the charging and discharging circuits in the same charging block. The invention not only provides a convenient operation, but also overcomes the shortcomings of the conventional charger and achieves the effects of enhancing the charging and discharging performance, and integrating several functions into the same charger to improve its practicability.
0103Many changes and modifications in the above-described embodiments of the invention can, of course, be carried out without departing from the scope thereof. Accordingly, to promote the progress in science and the useful arts, the invention is disclosed and is intended to be limited only by the scope of the appended claims
Contents4
22 sheets
Sheet 1 Sheet 2 Sheet 3 Sheet 4 Sheet 5 Sheet 6 Sheet 7 Sheet 8 Sheet 9 Sheet 10 Sheet 11 Sheet 12 Sheet 13 Sheet 14 Sheet 15 Sheet 16 Sheet 17 Sheet 18 Sheet 19 Sheet 20 Sheet 21 Sheet 22
Every citation, both ways
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| WO2015003338A1 | Cited by | World Intellectual Property Organization (WIPO) | International search |
| US2013007336A1 | Cited by | United States of America | Pre-grant |
| US11532840B2 | Cited by | United States of America | Search report |
| US2018342719A1 | Cited by | United States of America | Search report |
| US2018069428A1 | Cited by | United States of America | Search report |
| US9213066B2 | Cited by | United States of America | Applicant |
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4 members in 3 offices
Priority claims5
| Document | Office | Kind | Date |
|---|---|---|---|
| 100111916 | Taiwan Province of China | A | |
| 100111916 | Taiwan Province of China | A | |
| 100111916 | Taiwan Province of China | – | |
| 100111916 | – | – | – |
| TW20110111916 | – | – | – |
Members4
| Document | Office | Kind | |
|---|---|---|---|
| US2012249071A1 | United States of America | A1 | |
| TW201242212A | Taiwan Province of China | A | |
| CN102738845A | China | A | |
| US8860371B2 | United States of America | B2 |
40 transactions on the USPTO file
Allowed after 1 non-final rejection.
- Non-final rejections
- 1
- Final rejections
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- RCEs
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| Dispatch to FDCD1935 | D1935 | |
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| Electronic ReviewELC_RVW | ELC_RVW | |
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| Mail Notice of AllowanceAllowedMN/=. | MN/=. | |
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| Case Docketed to Examiner in GAUDOCK | DOCK | |
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| Examiner's Amendment CommunicationEX.A | EX.A | |
| Date Forwarded to ExaminerFWDX | FWDX | |
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| Request for Extension of Time - GrantedXT/G | XT/G | |
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| Email NotificationEML_NTF | EML_NTF | |
| Mail Non-Final RejectionNon-final rejectionMCTNF | MCTNF | |
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| Case Docketed to Examiner in GAUDOCK | DOCK | |
| Case Docketed to Examiner in GAUDOCK | DOCK | |
| Email NotificationEML_NTR | EML_NTR | |
| PG-Pub Issue NotificationPG-ISSUE | PG-ISSUE | |
| Case Docketed to Examiner in GAUDOCK | DOCK | |
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| Sent to Classification ContractorPGPC | PGPC | |
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5 legal events, as the office reported them to INPADOC
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| Lapsed due to failure to pay maintenance feeLapsedFP | FP | |
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Numbers
- Publication
- 20120249071
- Publication, DOCDB
- 2012249071
- Publication, EPODOC
- US2012249071
- Application
- 13164902
- Application, DOCDB
- 201113164902
- Application, EPODOC
- US201113164902
Titles
- English
- SERIES BATTERY CHARGER WITH THE FUNCTION OF SEPARATE DETECTION
Classification
- CPC, 5
- H02J7/0024
- H02J2207/40
- H02J7/342
- Y02T10/70
- H02J7/00
- IPC, 1
- H02J7 00
- USPC, 1
- 320110000