CN103260303A - Portable lighting device, and method and controller for controlling power supply to load - Google Patents
Portable lighting device, and method and controller for controlling power supply to load Download PDFInfo
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- CN103260303A CN103260303A CN2013100350814A CN201310035081A CN103260303A CN 103260303 A CN103260303 A CN 103260303A CN 2013100350814 A CN2013100350814 A CN 2013100350814A CN 201310035081 A CN201310035081 A CN 201310035081A CN 103260303 A CN103260303 A CN 103260303A
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Abstract
The invention discloses a portable lighting device and a method and a controller for controlling power supply to a load. The portable lighting device comprises a power supply for supplying power and a controller for receiving voltage and adjusting load current based on a detection signal indicating voltage of the power supply. When a voltage detected by the detection signal is larger than a first voltage threshold, the controller regulates the load current to a first current, when the voltage detected by the detection signal is smaller than a second voltage threshold, the controller regulates the load current to a second current, when the voltage detected by the detection signal is between the first voltage threshold and the second voltage threshold, the controller regulates the load current changing with the voltage detected by the detection signal. The portable lighting device of the invention can improve flexibility of circuit design and application and can prolong the service life of the portable lighting device.
Description
Technical field
The present invention relates to a kind of lighting device, particularly relate to method and the controller of a kind of portable illumination device, control powering load.
Background technology
Figure 1 shows that the block diagram of a kind of power-supply system 100 of prior art.Power-supply system 100 comprises first power supply (for example, adapter 102) and second source (for example, battery 110).Power-supply system 100 also comprises DC-to-DC (direct-current to direct current, abbreviation DC-DC) transducer 104, charger 106, switch 103, switch 105 and load are (for example, light-emitting diode, Light Emitting Diode is called for short LED108).Adapter 102 is coupled in AC power (for example, the 220V line voltage), and the alternating voltage of AC power output is converted to direct voltage V
AD
In operation, when switch 103 connections and switch 105 disconnections, power-supply system 100 is operated in the battery charging process.Adapter 102 is with direct voltage V
ADTo battery 110 chargings, and simultaneously LED108 is powered.Charger 106 provides suitable rechargeable electrical energy to battery 110.DC-DC transducer 104 receives direct voltage V
AD, and provide electric energy after the adjustment to LED108.When switch 105 closures, and switch 103 is when disconnecting, and battery 110 is powered to LED108 via DC/DC transducer 104.
Yet, in power-supply system 100, have two power chain.Article one, power chain comprises charger 106, and another power chain comprises DC-DC transducer 104.These two power chain have increased the power consumption of power-supply system 100, and then have reduced the power efficiency of system.Article two, power chain has also increased the complexity of power-supply system 100.In addition, owing to used charger 106 and DC/DC transducer 104 simultaneously, the size of printed circuit version (print circuit board is called for short PCB) is increased, and then increased the cost of power-supply system 100.
Traditional portable illumination device, for example, the family expenses flashlight generally adopts incandescent lamp to throw light on.In recent years, light-emitting diode (light emitting diode, be called for short LED) develop into gradually that LCD (Liquid Crystal Display is called for short LCD) is backlight, the light source of home lighting light fixture and street lamp.Because LED has preferable luminous efficiency and long useful life compared to incandescent lamp, use LED also general gradually as the light source of flashlight.
Traditional flashlight needs powered battery.Yet in the moment of opening flashlight, the surging that is applied to lamp will damage lamp, and then reduces the useful life of lamp.Modal settling mode is to add current-limiting resistance between lamp and battery.Yet the power consumption that newly-increased resistance increases can shorten battery life.
LED has a forward voltage between 3.2V to 4.0V usually when conducting is luminous.A family expenses alkaline battery provides 1.5V voltage usually.Therefore, need at least 3 alkaline batteries to power to LED.Fig. 7 A is depicted as the structural representation of drive circuit 700 of a kind of flashlight of prior art.Drive circuit 700 uses the formed battery pack 710 of alkaline battery of 3 series connection as the power supply of drive circuit 700.Each alkaline battery provides 1.5V voltage.Battery pack 710 provides energy with driving LED 730 by switch 720.LED730 has the forward voltage of 3.2V and the conducting electric current of 100mA when conducting is luminous.Drive circuit 700 for example comprises the current-limiting resistance 740(that is located between LED730 and the battery pack 710,13 ohm).
In operation, the power consumption of current-limiting resistance 740 is about 0.13 watt, and is about 0.32W in the power consumption of LED730.Hence one can see that, and the power consumption of LED730 only provides 71% of power for battery pack 710.In other words, the portion of energy that provides of battery pack 710 has been wasted on the current-limiting resistance 740.Therefore, battery pack 710 needs the supply more energy, and to keep the brightness of LED730, this will shorten the useful life of battery pack 710.
If LED730 is subjected to manufacture process or other factor affecting, when conducting, have the forward voltage of 4.0V, the electric current of the LED730 that then flows through is about 38.5mA, approximate rated current (for example, 100mA) 38.5%.Correspondingly, 38.5% of expection brightness (that is the electric current of the LED730 that flows through equals rated current) is reduced in the brightness of LED730.If change the resistance of this current-limiting resistance 740 into 5 ohm by 13 ohm, though can make forward voltage is that the brightness of the LED730 of 4.0V reaches expection brightness (electric current of the LED730 that namely flows through is 100mA), but it is lower (for example for other forward voltages, 3.2V) LED, then may produce over-current phenomenon avoidance, the electric current of feasible these LED that flow through increases (for example, being about 260mA), thus, shortened the useful life of these LED.
Fig. 7 B is depicted as the performance map 750 of the drive circuit 700 of prior art shown in Fig. 7 A.It is the LED of 100mA to drive rated current that the drive circuit 700 of prior art utilizes three 1.5V alkaline batteries to cooperate current-limiting resistance.Shown in performance map 750, use the battery life of the drive circuit 700 of prior art to be about 100 minutes.
In addition, if the user changes the LED of different capacity, then the drive circuit 700 of prior art has limitation when practical application.For example, if the user wishes to obtain bigger power, and be that the LED of 100mA is replaced by the LED that rated current is 1A with rated current.Yet because current-limiting resistance is to design in advance and fixing, the electric current of the LED that flows through is with constant, so can't meet user's expectation.Simultaneously, because number of battery cells is usually by the structures shape of flashlight, and random variation voluntarily.Generally speaking, thisly in the prior art adopted the drive circuit effect of current-limiting resistance low, lack flexibility and applicability low.
Summary of the invention
The technical problem to be solved in the present invention is to provide method and the controller of a kind of portable illumination device, control powering load, can improve circuit design and application flexibility, and can prolong the useful life of portable illumination device.
For addressing the above problem, the invention provides a kind of portable illumination device, this portable illumination device comprises power supply, load and controller.Power supply is used for providing voltage.Load comprises light-emitting diode (LED) light source; Controller is used for receiving voltage, and regulates the electric current of the led light source of flowing through according to the sensing signal of indication power source voltage.Wherein, when sensing signal indication power source voltage during greater than first voltage threshold, will the flow through electric current of led light source of controller is adjusted to first electric current; When sensing signal indication power source voltage during less than second voltage threshold, will the flow through electric current of led light source of controller is adjusted to second electric current; When sensing signal indication power source voltage was between first voltage threshold and second voltage threshold, the sensing voltage that controller is regulated the current following sensing signal of the led light source of flowing through changed.
The present invention also provides the method for a kind of control to the led light source power supply.This method comprises: under the control of controller, power supply is powered to led light source; Controller receives the sensing signal of indication power source voltage; Regulate the electric current of the led light source of flowing through according to sensing signal, wherein, when sensing signal indication power source voltage during greater than first voltage threshold, will the flow through electric current of led light source of controller is adjusted to first electric current; When sensing signal indication power source voltage during less than second voltage threshold, will the flow through electric current of led light source of controller is adjusted to second electric current; And when sensing signal indication power source voltage was between first voltage threshold and second voltage threshold, controller was regulated the sensing voltage linear change of the current following sensing signal of the led light source of flowing through.
The present invention also provides the controller of a kind of control to the led light source power supply, and this controller comprises power input mouth, sensing ports and feedback port.Power input and power supply coupling are used for receiving from power source voltage.Sensing ports with the power supply coupling, is used for receiving the sensing signal of indication power source voltage.Feedback port is used for receiving the feedback signal of the transient current of indicating the described led light source of flowing through, wherein, controller produces the reference signal of the target current value of indicating the led light source of flowing through according to feedback signal and sensing signal, and regulate the electric current of the led light source of flowing through according to feedback signal and reference signal, when sensing signal was indicated power source voltage greater than first voltage threshold, the reference voltage of reference signal was in first voltage; When sensing signal was indicated power source voltage less than second voltage threshold, the voltage of reference signal was in second voltage; When sensing signal indication power source voltage was between first voltage threshold and second voltage threshold, the reference voltage of reference signal was followed the sensing voltage linear change of sensing signal.
Method and the controller of portable illumination device provided by the invention, control powering load can extend the life of a cell, thereby prolong the life-span of light-emitting component.
Description of drawings
Below by to the description of some embodiments of the present invention in conjunction with its accompanying drawing, can further understand purpose of the present invention, specific structural features and advantage.
Figure 1 shows that the block diagram of a kind of power-supply system of prior art;
Fig. 2 A is depicted as the structural representation of power-supply system according to an embodiment of the invention;
Fig. 2 B is depicted as according to the adjustable reference voltage V in the power-supply system of Fig. 2 A illustrated embodiment
ADJWith voltage V
UVLSBetween concern schematic diagram;
Fig. 3 A is depicted as the sequential chart according to the control signal of power-supply system under charge mode of Fig. 2 A illustrated embodiment;
Fig. 3 B is depicted as the sequential chart according to the control signal of power-supply system under the load powering mode of Fig. 2 A illustrated embodiment;
Figure 4 shows that the structural representation according to the control circuit 220 in the power-supply system of Fig. 2 A illustrated embodiment;
Figure 5 shows that the sequential chart according to the relevant signal of the trigger in the control circuit embodiment illustrated in fig. 4 220;
Figure 6 shows that the operational flowchart of power-supply system according to an embodiment of the invention;
Fig. 7 A is depicted as the structural representation of drive circuit of a kind of flashlight of prior art;
Fig. 7 B is depicted as the performance map of the drive circuit of prior art shown in Fig. 7 A;
Figure 8 shows that the structural representation of the drive circuit of portable illumination device according to an embodiment of the invention;
Figure 9 shows that the structural representation of the drive circuit of portable illumination device in accordance with another embodiment of the present invention;
Figure 10 A is depicted as the structural representation according to controller embodiment illustrated in fig. 9 950;
Figure 10 B is depicted as the sequential chart according to the signal in the drive circuit 900 of Figure 10 A illustrated embodiment;
Figure 11 shows that the structural representation of the drive circuit of the portable illumination device of another embodiment according to the present invention;
Figure 12 shows that the structural representation of the drive circuit of the portable illumination device of another embodiment according to the present invention;
Figure 13 shows that the structural representation according to controller embodiment illustrated in fig. 12 1250;
Figure 14 shows that the performance map according to the drive circuit 900 of Figure 10 A illustrated embodiment;
Figure 15 shows that according to the present invention again the structural representation of drive circuit of the portable illumination device of another embodiment;
Figure 16 shows that the structural representation according to controller embodiment illustrated in fig. 15 1550;
Figure 17 shows that according to the schematic diagram that concerns between reference voltage VADJ embodiment illustrated in fig. 16 and the sensing voltage VSEN;
Figure 18 shows that the structural representation according to reference signal generating unit embodiment illustrated in fig. 16;
Figure 19 shows that the structural representation of the drive circuit of the portable illumination device of another embodiment according to the present invention;
Figure 20 shows that the structural representation according to controller embodiment illustrated in fig. 19 1950;
Shown in Figure 21 is the method flow diagram of giving light source power supply according to an embodiment of the invention.
Embodiment
Below will provide detailed reference to embodiments of the invention.Although the present invention sets forth by these execution modes and illustrates, it should be noted that the present invention not merely is confined to these execution modes.On the contrary, all substitutes, variant and the equivalent in the defined invention spirit of claims and the invention scope contained in the present invention.
In addition, in following detailed description of the present invention, to understand completely in order providing at of the present invention, to have illustrated a large amount of details.Yet it will be understood by those skilled in the art that does not have these details, and the present invention can implement equally.In some other embodiment, scheme, flow process, element and the circuit known for everybody are not described in detail, so that highlight purport of the present invention.
Fig. 2 A is depicted as the structural representation of power-supply system 200 according to an embodiment of the invention.In the embodiment shown in Fig. 2 A, power-supply system 200 comprises first power supply (for example, adapter 202), second source (for example, battery 210), switch 203, switch 205 and switch 207, controller 206 and load (for example, led light source 208).Adapter 202 receives alternating voltage or direct voltage and output dc voltage V
ADIn one embodiment, power-supply system 200 can optionally work in charge mode or load powering mode.Controller 206 is coupled with adapter 202 and battery 210, and with the direct voltage V of adapter 202 outputs
ADCell voltage V with battery 210
BATCompare.As the direct voltage VAD of the adapter 202 output cell voltage V greater than battery 210
BATThe time, controller 206 control adapters 202 charge via switch 203 and 207 pairs of batteries 210 of switch under charge mode.Particularly, under charge mode, controller 206 cut-off switch 205, and be alternately closed switch 203 and switch 207, thus make 202 pairs of batteries 210 of adapter charge.Adapter 202 can be according to the state of battery 210, and for example, cell voltage carries out constant current charge or constant voltage charge to battery 210.Cell voltage V when battery 210
BATGreater than the direct voltage V when adapter 202 outputs
ADThe time, controller 206 control batteries 210 give led light source 208 power supplies via switch 205 and switch 207 under the load powering mode.Particularly, under the load powering mode, controller 206 cut-off switch 203, and be alternately closed switch 205 and switch 207, thus make battery 210 give led light source 208 power supplies.In one embodiment, controller 206 can be integrated in integrated circuit (IC) chip (being the control circuit 220 in the present embodiment) with switch 203, switch 205 and switch 207.Though it will be appreciated by persons skilled in the art that in an embodiment of the present invention power-supply system 200 and adapter 202, battery 210 and led light source 208 are incorporated into line description, the present invention is not limited thereto.Adapter 202 and battery 210 can be substituted by the power supply of other type; Led light source 208 also can be substituted by light source or the load of a plurality of led light sources or other type and number.
In one embodiment, controller 206 includes output port CTR1, output port CTR2 and output port CTR3.Output port CTR1 is used for the closed of control switch 203 or disconnects; Output port CTR2 is used for the closed of control switch 205 or disconnects; Output port CTR3 is used for the closed of control switch 207 or disconnects.In one embodiment, switch 203, switch 205 and switch 207 can be n channel metal oxide semiconductor field effect transistor (Metal-Oxide-Semiconductor Field-Effect Transistor are called for short MOSFET).When the output control signal of output port CTR1, output port CTR2 or output port CTR3 is logic high, corresponding switch 203, switch 205 or switch 207 closures; When the output control signal of output port CTR1, output port CTR2 or output port CTR3 was logic low, corresponding switch 203, switch 205 or switch 207 disconnected.Controller 206 also comprises input port VAD, input port VBAT, input port ICHG, port VLED, port ILED and port UVLS.Input port VAD is for detection of the direct voltage V of adapter 202 outputs
ADInput port VBAT is for detection of the cell voltage V of battery 210
BATUnder the cooperation of input port VBAT, input port ICHG is by the voltage V of monitoring inductive reactance 216
216Detect the charging current I of battery 210
CHGPort VLED receives the anode voltage V of indication LED light source 208
LEDSignal; Under the cooperation of port VLED, port ILED is by the voltage V of monitoring inductive reactance 212
212Detect the electric current I of the led light source 208 of flowing through
LEDPort UVLS and divider resistance 230 couplings, and receive pilot cell voltage V
BATVoltage V
UVLS, for example, voltage V
UVLSWith cell voltage V
BATProportional.In one embodiment, controller 206 is based on voltage V
UVLSRegulate adjustable reference voltage V
ADJController 206 is according to adjustable reference voltage V
ADJThe flow through electric current I of led light source 208 of adjusting
LEDController 206 also comprises the port STATUS of battery 210 states that are used to indicate (for example, whether battery 210 is full of).
When being connected, adapter 202 converts this supply voltage to direct voltage V with power supply (for example, the 220V line voltage) when adapter 202
AD Controller 206 is with the direct voltage V of adapter 202 outputs
ADWith cell voltage V
BATCompare.In one embodiment, the direct voltage V that exports when adapter 202
ADGreater than cell voltage V
BATAnd battery 210 underfill still (for example, cell voltage V
BATLess than a threshold value) time, power-supply system 200 works in charge mode.The power-supply system 200 that Fig. 3 A is depicted as Fig. 2 A illustrated embodiment is operated under the charge mode, the exemplary sequential chart of the output control signal of the output port CTR1 of controller 206, output port CTR2 and output port CTR3.As shown in Figure 3A, the output control signal of output port CTR1 and output port CTR3 is the pulse signal of non-stack, and for example, pulse width modulation (pulse-width modulation is called for short PWM) signal is in order to be alternately closed switch 203 and switch 207.The control signal of output port CTR2 output is logic low, thus cut-off switch 205.
With reference to shown in the figure 2A, under charge mode, switch 203, switch 207, the inductance 214 and the electric capacity 213 that are coupled between switch 203 and the switch 207 are battery 210 chargings as step-down controller again.Particularly, when switch 203 closures and switch 207 disconnections, adapter 202 is via 210 chargings of 214 pairs of batteries of inductance.Simultaneously, inductance 214 storage power.When switch 203 disconnections and switch 207 closures, inductance 214 discharges are to provide electric energy to battery 210.
In one embodiment, controller 206 detects cell voltage V
BATCharging current I with battery 210
CHGControl the charging process of battery 210.Particularly, under charge mode, controller 206 is with cell voltage V
BATWith predetermined threshold value V
THCompare, recently regulate the rechargeable electrical energy that adapter 202 offers battery 210 by the duty of control switch 203.As cell voltage V
BATLess than predetermined threshold value V
THThe time, thereby controller 206 control switchs 203 and switch 207 charge to battery 210 in constant-current phase, namely with substantially invariable electric current battery 210 are charged.It will be appreciated by persons skilled in the art that " substantially constant " in the embodiment of the invention refers to charging current I
CHGCan depart from steady state value owing to the reasons such as imperfection of circuit unit, still, the value that departs from is in the negligible scope.For example, as the voltage V of inductive reactance 216
216Greater than reference voltage V
BATREFThe time, i.e. charging current I
CHGGreater than the preset charged electric current I
BATREFThe time, controller 206 recently reduces charging current I by the duty that reduces switch 203
CHGVoltage V when inductive reactance 216
216Less than reference voltage V
BATREFThe time, i.e. charging current I
CHGLess than the preset charged electric current I
BATREFThe time, controller 206 recently increases charging current I by the duty that increases switch 203
CHGYet, as cell voltage V
BATIncrease to predetermined threshold value V
THThe time, controller 206 control switchs 203 and switch 207, thus in constant-voltage phase battery 210 is charged, and namely in one embodiment, charging voltage can remain predetermined threshold value V
TH
Under charge mode, controller 206 can also be according to cell voltage V
BATWith charging current I
CHGDetect cell resistance R
BAT, shown in equation (1):
R
BAT=V
BAT/I
CHG (1)
Thus, controller 206 can be according to cell resistance R
BATDetermine battery types.If the battery types that controller 206 is determined is non-rechargeable battery (for example, alkaline battery), thereby controller 206 finishes charging protection battery 210 and power-supply system 200 to battery 210.
In addition, power-supply system 200 can also work in the load powering mode.The power-supply system 200 that Fig. 3 B is depicted as Fig. 2 A illustrated embodiment is operated under the load powering mode, the exemplary sequential chart of the output control signal of the output port CTR1 of controller 206, output port CTR2 and output port CTR3.Shown in Fig. 3 B, the output control signal of output port CTR2 and output port CTR3 is the pulse signal of non-stack, and for example, pwm signal is in order to be alternately closed switch 205 and switch 207.Thereby the control signal of output port CTR1 output is logic low cut-off switch 203.
Under the load powering mode, switch 205, switch 207, the inductance 214, electric capacity 211 and the electric capacity 213 that are coupled between switch 205 and the switch 207 are led light source 208 power supplies as the buck-boost transducer.Particularly, when switch 207 closures and switch 205 disconnections, 214 chargings of 210 pairs of inductance of battery; When switch 207 disconnections and switch 205 closures, battery 210 and inductance 214 give led light source 208 power supplies together.In the present embodiment, by adjustable duty ratio alternately Closing Switch 205 and switch 207, produce greater than cell voltage V at an end of led light source 208
BATVoltage V
3Like this, the voltage V of led light source 208
208Just equal voltage V
3With cell voltage V
BATDifference.In one embodiment, by the operation of buck-boost transducer, the voltage V of led light source 208
208Can be greater than or less than cell voltage V
BATLike this, power-supply system 200 can be powered to the load of dissimilar and different numbers, thus the flexibility that has improved system.
In one embodiment, controller 206 detects the electric current I of the led light source 208 of flowing through by port VLED and port ILED
LED, and according to adjustable reference voltage V
ADJThereby come the duty ratio of control switch 207 to regulate electric current I
LEDFig. 2 B is depicted as the adjustable reference voltage V in the power-supply system 200 of Fig. 2 A illustrated embodiment
ADJWith voltage V
UVLSBetween concern schematic diagram.Shown in Fig. 2 B, as voltage V
UVLSDuring greater than first threshold V1, controller 206 is with adjustable reference voltage V
ADJBe adjusted to the first constant voltage values V
LED1Like this, controller 206 electric current I of led light source 208 of will flowing through
LEDBe adjusted to the first predetermined current I
LEDREF1As voltage V
UVLsLess than the second threshold value V2(first threshold V1 greater than the second threshold value V2) time, controller 206 is with adjustable reference voltage V
ADJBe adjusted to the second constant voltage values V
LED2Like this, controller 206 electric current I of led light source 208 of will flowing through
LEDBe adjusted to the second predetermined current I
LEDREF2As voltage V
UVLSBut during less than first threshold V1 greater than the second threshold value V2, controller 206 is according to voltage V
UVLSRegulate adjustable reference voltage V
ADJIn one embodiment, adjustable reference voltage V
ADJAccording to voltage V
UVLSLinear change.Because voltage V
UVLSWith cell voltage V
BATProportional, so adjustable reference voltage V
ADJAccording to cell voltage V
BATLinear change.Like this, controller 206 is according to cell voltage V
BATRegulate electric current I
LED, make electric current I
LEDAccording to cell voltage V
BATLinear change.Advantageously, the work duration of battery 210 is prolonged, and therefore, the work duration of led light source 208 is also prolonged.
With reference to shown in the figure 2A, controller 206 is with indicator current I again
LEDSignal (for example, the voltage V of inductive reactance 212
212) and adjustable reference voltage V
ADJCompare, and according to comparative result control switch 205 and switch 207.If voltage V
212Greater than adjustable reference voltage V
ADJ(for example, electric current I
LEDIncrease), controller 206 reduces the duty ratio of switch 207, thereby reduces electric current I
LEDIf voltage V
212Less than adjustable reference voltage V
ADJ(for example, electric current I
LEDReduce), controller 206 increases the duty ratio of switch 207, thereby increases electric current I
LEDLike this, according to the adjustable reference voltage V of Fig. 2 B illustrated embodiment
ADJThe flow through electric current I of led light source 208 of adjusting
LED
Advantageously, under charge mode, switch 203, switch 207, inductance 214 and electric capacity 213 can be used as step-down controller, and under the load powering mode, switch 205, switch 207, inductance 214, electric capacity 211 and electric capacity 213 can be used as the buck-boost transducer, so the flexibility of power-supply system 200 is improved.Power-supply system 200 can be supported various dissimilar loads and power supply.In power-supply system 200, by two power chain (for example, charger 106 and transducer 104) in the power-supply system 100 of a power chain (transducer that for example, comprises control circuit 220) replacement prior art.Therefore, the power consumption of power-supply system 200 reduces.And the complexity of power-supply system 200 reduces, thereby has strengthened the reliability of system.In addition, also corresponding minimizing of the PCB size of power-supply system 200 and cost.
Figure 4 shows that the structural representation according to the control circuit 220 in the power-supply system 200 of Fig. 2 A illustrated embodiment.Fig. 4 will be described in conjunction with Fig. 2 A.As shown in Figure 4, control circuit 220 comprise oscillator 411, comparator 413, comparator 417, error amplifier 415, error amplifier 416, error amplifier 419, selector 414, trigger 412, with door 421, with door 422, switch 203, switch 205, switch 207, adder 431, amplifier 432, ramp signal generator 433, subtracter 434, subtracter 436, voltage regulator 440 and current source 446.
In one embodiment, comparator 413 is with the cell voltage V at input port VBAT place
BATDirect voltage V with input port VAD place
ADCompare, and produce comparison signal to enable or to forbid error amplifier 415, error amplifier 416 and error amplifier 419.In one embodiment, the output of the output of the negative pole of current source 446, error amplifier 415 and error amplifier 419 is coupled in shared end points.In the embodiment shown in fig. 4, error amplifier 415 is with error amplifier 419 or be connected.In one embodiment, as direct voltage V
ADGreater than cell voltage V
BATThe time, power-supply system 200 is operated under the charge mode, and comparator 413 enables error amplifier 415 and error amplifier 419; As direct voltage V
ADLess than cell voltage V
BATThe time, power-supply system 200 is operated under the load powering mode, and comparator 413 enables error amplifier 416.When error amplifier 415 is enabled, error amplifier 415 with the signal of the charging current of pilot cell 210 (for example, by the voltage V of the expression inductive reactance 216 of subtracter 434 outputs
216) and reference voltage V
BATREFCompare, and control the output voltage V that shares the end points place according to comparative result
CMP1When error amplifier 419 was enabled, error amplifier 419 was with cell voltage V
BATWith predetermined threshold value V
THCompare, and control the output voltage V that shares the end points place according to comparative result
CMP1When error amplifier 416 was enabled, error amplifier 416 was flowed through the signal of electric current of led light source 208 (for example, by the voltage V of the expression inductive reactance 212 of subtracter 436 output with indication
212) and adjustable reference voltage signal V
ADJCompare, and according to comparative result control output voltage V
CMP2In one embodiment, selector 414 is coupled in error amplifier 415, error amplifier 416 and error amplifier 419, selects output voltage V
CMP1Perhaps output voltage V
CMP2, and with the output voltage V of selected output voltage as selector 414
TOPParticularly, as direct voltage V
ADGreater than cell voltage V
BAT, when comparator 413 enabled error amplifier 415 and error amplifier 419, selector 414 was selected output voltage V
CMP1As output voltage V
TOPAs direct voltage V
ADLess than cell voltage V
BAT, when comparator 413 enabled error amplifier 416, selector 414 was selected output voltage V
CMP2As output voltage V
TOPComparator 417 receives output voltage V
TOP
In one embodiment, an end of adder 431 is coupled in amplifier 432 to receive voltage V
SEN, voltage V
SENIndicate the electric current I of the inductance 214 of flowing through
SWThe other end of adder 431 is coupled in ramp signal generator 433 to receive ramp signal RAMP.Thus, the output voltage V of adder 431
SWBe voltage V
SENSummation with the voltage of ramp signal RAMP.Comparator 417 is with the output voltage V of adder 431
SWOutput voltage V with selector 414
TOPCompare, and provide the R end that exports trigger 412 to control switch 203, switch 205 and switch 207.The S end of trigger 412 is coupled in oscillator 411 with receive clock signal CLK.For example, the frequency of clock signal clk is the 1M hertz.The reversed-phase output QB control switch 207 of trigger 412.In addition, the in-phase output end Q of trigger 412 is under the cooperation of comparator 417, by coming control switch 203 and switch 205 respectively with door 421 with door 422.
In operation, as direct voltage V
ADGreater than cell voltage V
BATThe time, the output of comparator 413 has first state (for example, logic high), thereby makes power-supply system 200 work in charge mode.Under charge mode, error amplifier 415 and error amplifier 419 are enabled, and error amplifier 416 is disabled; Disconnect with door 422 control switchs 205.Trigger 412 and with door 421 alternately Closing Switch 203 and switch 207.Trigger 412 is also according to output voltage V
SWOutput voltage V with selector 414
TOPComparative result come the duty ratio of control switch 203 and switch 207, and then control offers the rechargeable electrical energy of battery 210.
Figure 5 shows that the exemplary sequential chart of basis trigger 412 coherent signals as shown in Figure 4.As shown in Figure 5, under charge mode, when switch 203 closures and switch 207 disconnections, adapter 202 is via switch 203 and 210 chargings of 214 pairs of batteries of inductance, inductance 214 storage power simultaneously.And along with inductive current I
SWIncrease, can cause the output voltage V of adder 431
SW(namely indicate inductive current I
SWVoltage V
SENSummation with the voltage of signal RAMP) reaches the output voltage V of selector 414
TOPValue, at this moment, the R of trigger 412 end is input as logic high.When the clock signal clk of the S of trigger 412 end input was logic low, the in-phase output end Q of trigger 412 was logic low, via disconnecting with door 421 control switchs 203; The reversed-phase output QB of trigger 412 is logic high, thus control switch 207 closures.When switch 203 disconnections and switch 207 closures, inductance 214 discharges are indicated the inductive current I that flows through to provide electric energy to battery 210
SWVoltage V
SENBe reduced to close to 0 the output voltage V of adder 431
SWBe similar to the voltage of ramp signal RAMP and less than the output voltage V of selector 414
TOPValue, as shown in Figure 5.When the clock signal clk of receiving when the S of trigger 412 termination was logic high, the in-phase output end Q of trigger 412 was logic high, and the reversed-phase output QB of trigger 412 is logic low, thereby control switch 207 disconnects and switch 203 closures.Thus, under charge mode, trigger 412 is Closing Switch 203 and switch 207 alternately.
Particularly, under charge mode, as cell voltage V
BATLess than predetermined threshold value V
THThe time, control circuit 220 control switchs 203 and switch 207, thus battery 210 is carried out constant current charge.Error amplifier 415 is with signal (for example, the voltage V of resistance 216 of the charging current of pilot cell 210
216) and reference voltage V
BATREFCompare, and the control output voltage V
CMP1Selector 414 is selected output voltage V
CMP1Output voltage V as selector 414
TOPThus, trigger 412 is according to output voltage V
TOPWith output voltage signal V
SWComparative result control switch 203 and the duty ratio of switch 207.As voltage V
216Less than reference voltage V
BATREFThe time, i.e. charging current I
CHGLess than the preset charged electric current I
BATREFThe time, output voltage V
CMP1Increase, thus, output voltage V
TOPIncrease.As shown in Figure 5, when switch 203 closures and switch 207 disconnections, along with output voltage V
TOPIncrease, output voltage V
SWNeed the long time just can reach output voltage V
TOPValue, thereby so that the input R input logic high level of trigger 412 triggers in-phase output end Q output logic low level.Like this, the in-phase output end Q of trigger 421 can continue the output logic high level in the long time period, and namely the duty ratio of switch 203 increases, thereby correspondingly increases the charging current I of battery 210
CHGAs voltage V
216Greater than reference voltage V
BATREFThe time, i.e. charging current I
CHGGreater than the preset charged electric current I
BATREFThe time, output voltage V
CMP1Reduce, thus output voltage V
TOPReduce.As shown in Figure 5, when switch 203 closures and switch 207 disconnections, along with output voltage V
TOPReduce output voltage V
SWCan reach output voltage V in the short period section
TOPValue, thereby so that the input R input logic high level of trigger 412 triggers in-phase output end Q output logic low level.Like this, the in-phase output end Q of trigger 421 is the output logic high level in the short time period, and namely the duty ratio of switch 203 reduces, thereby correspondingly reduces the charging current I of battery 210
CHGThus, at constant current charge stage, charging current I
CHGBe adjusted to the preset charged electric current I
BATREF
As cell voltage V
BATReach predetermined threshold value V
THThe time, control circuit 220 control switchs 203 and switch 207, thus battery 210 is carried out constant voltage charge.In the constant voltage charge stage, error amplifier 419 is with cell voltage V
BATWith predetermined threshold value V
THCompare, and the control output voltage V
CMP1For example, as cell voltage V
BATGreater than predetermined threshold value V
THThe time, output voltage V
CMP1Reduce.Correspondingly, output voltage V
TOPAlso reduce.As indicated above, the duty ratio of switch 203 correspondingly reduces, thereby correspondingly reduces the charging voltage of battery 210.Thus, in the constant voltage charge stage, charging voltage is adjusted to predetermined threshold value V
TH
As direct voltage V
ADLess than cell voltage V
BATThe time, the output of comparator 413 has second state (for example, logic low), thereby makes power-supply system 200 work in the load powering mode.Under the load powering mode, forbidding error amplifier 415 and error amplifier 419, and enable error amplifier 416.Under the load powering mode, switch 203 is disconnected with door 421.Trigger 412 with the mating reaction of door 422 under, alternately Closing Switch 205 and switch 207.According to output voltage V
SWOutput voltage V with selector 414
TOPComparative result, thereby trigger 412 is gone back the flow through electric current of led light source 208 of the duty ratio control of control switch 205 and switch 207.As shown in Figure 5, under the load powering mode, when switch 207 disconnections and switch 205 closures, battery 210 and inductance 214 are together to led light source 208 power supplies, the electric current I of the inductance 214 of flowing through
SWIncrease voltage V
SENIncrease, so the output voltage V of adder 431
SWCorrespondingly increase, up to output voltage V
SWIncrease to the output voltage V of selector 414
TOPValue.At this moment, the input R of trigger 412 is logic high, and when the clock signal clk of the input S of trigger 412 input was logic low, the in-phase output end Q of trigger 412 was logic low, via disconnecting with door 422 control switchs 205; At this moment, the reversed-phase output QB output logic high level of trigger 412, control switch 207 closures.As shown in Figure 5, when switch 207 closures and switch 205 disconnections, inductive current I is indicated in 214 chargings of 210 pairs of inductance of battery this moment
SWVoltage V
SENClose to 0, the output voltage V of adder 431
SWBe similar to ramp signal RAMP and less than the output voltage V of selector 414
TOPValue.When the clock signal clk that receives as the input S of trigger 412 was logic high, the in-phase output end Q of trigger 412 was logic high, and the reversed-phase output QB of trigger 412 is logic low, thereby control switch 207 disconnects and switch 205 closures.Thus, under the load powering mode, trigger 412 is Closing Switch 205 and 207 alternately.According to output voltage V
SWOutput voltage V with selector 414
TOPComparative result, the duty ratio of trigger 412 control switchs 205 and switch 207, and then the flow through electric current I of led light source 208 of control
LED
Particularly, under the load powering mode, error amplifier 416 is with flow through signal (for example, the voltage V of resistance 212 of electric current of led light source 208 of indication
212) and adjustable reference voltage V
ADJ Compare.Voltage regulator 440 is according to voltage V
UVLSRegulate adjustable reference voltage V
ADJIn one embodiment, voltage V
UVLSPilot cell voltage V
BAT, voltage V for example
UVLSWith cell voltage V
BATProportional.As voltage V
UVLSDuring greater than first threshold V1, voltage regulator 440 is with adjustable reference voltage V
ADJBe adjusted to the first constant voltage values V
LED1As voltage V
UVLSDuring less than the second threshold value V2, voltage regulator 440 is with adjustable reference voltage V
ADJBe adjusted to the second constant voltage values V
LED2As voltage V
UVLSDuring less than first threshold V1 and greater than the second threshold value V2, voltage regulator 440 is regulated adjustable reference voltage V
ADJWith voltage V
UVLSLinear change.Because voltage V
UVLSWith cell voltage V
BATProportional, so adjustable reference voltage V
ADJWith cell voltage V
BATLinear change.
Voltage V according to resistance 212
212With adjustable reference voltage V
ADJComparative result, error amplifier 416 control output voltage V
CMP2Selector 414 is selected output voltage V
CMP2As its output voltage V
TOPThus, trigger 412 is according to output voltage V
TOPWith output voltage V
SWComparative result come the duty ratio of control switch 205 and switch 207.Figure 5 shows that the sequential chart of trigger 412 coherent signals in the control circuit 220 among Fig. 4.As voltage V
212Less than adjustable reference voltage V
ADJThe time, the electric current I of the led light source 208 of namely flowing through
LEDWhen reducing, output voltage V
CMP2Reduce output voltage V
TOPAlso correspondingly reduce.Therefore, the duty ratio of switch 207 increases, thereby correspondingly increases electric current I
LEDAs voltage V
212Greater than adjustable reference voltage V
ADJThe time, the electric current I of the led light source 208 of namely flowing through
LEDDuring increase, output voltage V
CMP2Increase output voltage V
TOPAlso correspondingly increase.Therefore, the duty ratio of switch 207 reduces, thereby correspondingly reduces electric current I
LEDThus, according to adjustable reference voltage V
ADJElectric current I to the led light source 208 of flowing through
LEDRegulate.Therefore, as voltage V
UVLSDuring greater than first threshold V1, with electric current I
LEDBe adjusted to the first predetermined current I
LEDREF1As voltage V
UVLSDuring less than the second threshold value V2, with electric current I
LEDBe adjusted to the second predetermined current I
LEDREF2As voltage V
UVLSDuring less than first threshold V1 and greater than the second threshold value V2, electric current I
LEDBe adjusted to cell voltage V
BATAnd linear change.
When unusual or unexpected situation (for example, overcurrent, overvoltage or excess temperature) had taken place, control circuit 220 can also be by finishing that power-supply system 200 is protected in the charging of battery 210.In one embodiment, control circuit 220 can comprise comparator (not shown in Figure 4), is used for cell voltage V
BATWith overvoltage threshold value V
OVCompare, thereby determined whether that over-voltage condition takes place.Control circuit 220 can comprise comparator (not shown in Figure 4), is used for the voltage V with resistance 216
216With indication overcharge current I
OCPredetermined threshold value V
OCCompare, thereby determine whether to have taken place overcurrent condition.Control circuit 220 can comprise comparator (not shown in Figure 4), and being used for will be from signal and the excess temperature threshold value V of temperature-sensitive resistance (not shown in Figure 4)
OTCompare, thereby determine whether to have taken place the excess temperature situation.When arbitrary abnormal conditions had taken place, control circuit 220 finished the charging of battery 210 with protection power-supply system 200 by cut-off switch 203 and switch 207.
Figure 6 shows that the operational flowchart 600 of power-supply system according to an embodiment of the invention.Describe below with reference to Fig. 2 A and the Fig. 6 of Fig. 4.
In step 602, power-supply system (for example, power-supply system 200) compares the voltage of first power supply (for example, adapter 202) and the voltage of second source (for example, battery 210).When first power source voltage during greater than the voltage of second source, power-supply system 200 works in first pattern, for example, and charge mode.When first power source voltage during less than the voltage of second source, power-supply system 200 works in second pattern, for example, and the load powering mode.
When power-supply system 200 works in charge mode, enter step 604.In step 604, power-supply system 200 is by alternately closed first switch (for example, switch 203) and second switch (for example, switch 207) and disconnect the 3rd switch (for example, switch 205) and come second source (for example, battery 210) is charged.
In step 606, power-supply system 200 is recently regulated first power supply to the rechargeable electrical energy of second source by the duty of regulating first switch (for example, switch 203) and second switch (for example, switch 207).Particularly, as voltage (for example, the cell voltage V of second source
BAT) less than predetermined threshold value V
THThe time, 200 pairs of second sources of power-supply system carry out constant current charge.In the constant current charge stage, power-supply system 200 is with charging current I
CHGWith the preset charged electric current I
BATREFCompare.As charging current I
CHGGreater than the preset charged electric current I
BATREFThe time, thereby reducing the duty ratio of switch 203, power-supply system 200 reduces charging current I
CHGAs charging current I
CHGLess than the preset charged electric current I
BATREFThe time, thereby increasing the duty ratio of switch 203, power-supply system 200 increases charging current I
CHGTherefore, with charging current I
CHGBe adjusted to the preset charged electric current I
BATREF
Voltage (for example, cell voltage V when second source
BAT) reach predetermined threshold value V
THThe time, 200 pairs of second sources of power-supply system carry out constant voltage charge.In the constant voltage charge stage, power-supply system 200 is with cell voltage V
BATWith predetermined threshold value V
THCompare, thereby and the duty ratio of control switch 203 and switch 207 charging voltage is adjusted to predetermined threshold value V
THTherefore, in constant-voltage phase second source is charged.
When power-supply system 200 works in the load powering mode, enter step 603.In step 603, power-supply system 200 disconnects first switches (for example, switch 203), and alternately closed second switch (for example, switch 207) and the 3rd switch (for example, switch 205), to power to load (for example, led light source 208).
In step 605, power-supply system 200 is according to the electric current I of the led light source 208 of flowing through
LEDWith can regulate reference current I
ADJComparative result come the duty ratio of by-pass cock 207 and switch 205.In one embodiment, power-supply system 200 is with the flow through electric current I of led light source 208 of indication
LEDSignal (for example, the voltage V of resistance 212
212) and adjustable reference voltage V
ADJCompare, with the duty ratio of by-pass cock 207 and switch 205.In one embodiment, according to cell voltage V
BATProportional voltage V
UVLSRegulate and to regulate reference current I
ADJAs voltage V
UVLSDuring greater than first threshold V1, can regulate reference current I
ADJBe adjusted to the first predetermined current I
LEDREF1As voltage V
UVLSDuring less than the second threshold value V2, can regulate reference current I
ADJBe adjusted to the second predetermined current I
LEDREF2As voltage V
UVLSDuring less than first threshold V1 and greater than the second threshold value V2, can regulate reference current I
ADJBe adjusted to voltage V
UVLSWith cell voltage V
BATAnd linear change.
Electric current I when the led light source 208 of flowing through
LEDGreater than regulating reference current I
ADJThe time, power-supply system 200 reduces the duty ratio of switch 207 to reduce electric current I
LEDElectric current I when the led light source 208 of flowing through
LEDLess than regulating reference current I
ADJThe time, power-supply system 200 increases the duty ratio of switch 207 to increase electric current I
LEDTherefore, according to regulating reference current I
ADJRegulate electric current I
LEDLike this, as voltage V
UVLSDuring greater than first threshold V1, can regulate reference current I
ADJBe adjusted to the first predetermined current I
LEDREF1As voltage V
UVLSDuring less than the second threshold value V2, can regulate reference current I
ADJBe adjusted to the second predetermined current I
LEDREF2As voltage V
UVLSDuring less than first threshold V1 and greater than the second threshold value V2, can regulate reference current I
ADJBe adjusted to voltage V
UVLSWith cell voltage V
BATAnd linear change.
Figure 8 shows that the structural representation of the drive circuit 800 of portable illumination device according to an embodiment of the invention.In one embodiment, portable illumination device is flashlight.Drive circuit 800 comprises be used to the battery supply 810 that supply voltage Vbatt is provided, switch 820, load (for example, light source 830), sensing element 840, controller 850 and inductance L 1.In one embodiment, battery supply 810 is one or more alkaline batteries.In one embodiment, light source 830 is LED.In one embodiment, controller 850 is integrated circuit (IC).In one embodiment, controller 850 comprises power input mouth VIN, output port of power source OUT, sensing ports ISENSE, port GND, switches output port SW; Wherein, power input mouth VIN is used for receiving the input voltage from battery supply 810, and output port of power source OUT is used for providing output voltage, and sensing ports ISENSE is used for receiving feedback signals, port GND ground connection is switched output port SW and is coupled with power input mouth VIN via inductance L 1.
In one embodiment, the power input mouth VIN of controller 850 is coupled to battery supply 810 via switch 820.The output port of power source OUT of controller 850 is coupled to light source 830.Sensing element 840 is connected with light source 830, is used for providing the feedback signal of indication light source 830 electrical characteristics.In one embodiment, aforementioned feedback signal comprises the electric current of the light source 830 of flowing through.Feedback signal is transferred into the sensing ports ISENSE of controller 850.
In one embodiment, inductance L 1 is as the energy-storage travelling wave tube of boost converter.When switch 820 closures, the power input mouth VIN of controller 850 is coupled to battery supply 810, receives the electric energy that battery supply 810 provides.Light source 830 can receive electric energy via the output port of power source OUT of controller 850.When switch 820 disconnected, battery supply 810 stopped to controller 850 and light source 830 power supplies.In one embodiment, controller 850 is adjusted the electric energy that offers light source 830 according to the feedback signal that the state of switch 820 (for example, closed or disconnect) and sensing ports ISENSE receive.
Figure 9 shows that the structural representation of the drive circuit 900 of portable illumination device in accordance with another embodiment of the present invention.Drive circuit 900 comprises battery supply 810, switch 820, light source 830, sensing element 840, controller 950 and inductance L 1.The label components identical has identical or similar function among Fig. 9 and Fig. 8, for simplicity's sake, will repeat no more at this.
In one embodiment, controller 950 is integrated circuit.In one embodiment, drive circuit 900 also comprises the capacitor C 1 between the power input mouth VIN that is coupled in battery supply 810 and controller 950.In one embodiment, drive circuit 900 also comprises the capacitor C 2 between the output port of power source OUT that is coupled in light source 830 and controller 950.In one embodiment, controller 950 comprises the port DIM with switch 820 couplings, for detection of closure or the off-state of switch 820.
In one embodiment, controller 950 is regulated the electric energy that offers light source 830 according to the input signal of port DIM, and then regulates the brightness of light source 830.In one embodiment, when switch 820 closures, controller 950 is regulated the electric energy that offers light source 830.
Figure 10 A is depicted as the structural representation of the controller 950 in embodiment illustrated in fig. 9.The label components identical has identical or similar function among Figure 10 A and Fig. 9, for simplicity's sake, will repeat no more at this.
In one embodiment, controller 950 comprises low-voltage lock 1051, circuits for triggering 1052, gate generator 1053, reference signal selection device 1054, adjuster 1055, driver 1056 and switch 1057 and switch 1058.Below will cooperate the signal timing diagram shown in Figure 10 B, the brightness adjustment control operation of an embodiment middle controller 950 will be described.
When switch 820 closures, the electric energy of battery supply 810 is applied to the power input mouth VIN of controller 950.Supply for light source 830 power supplies with rated current this moment.In one embodiment, reference signal selection device 1054 produces low frequency pulse-width modulation (Low frequency pulse width modulation is called for short LPWM) reference signal.In one embodiment, the LPWM reference signal has different electric pressures, for example, the highest reference voltage Vmax, the first reference voltage V1, the second reference voltage V2 etc., wherein the highest reference voltage Vmax〉the first reference voltage V1〉the second reference voltage V2.The different brightness of the different electric pressure corresponding light sources 830 of LPWM reference signal.Adjuster 1055 is regulated the brightness of light source 830 according to the electric pressure of LPWM reference signal.In one embodiment, when initial condition, reference signal selection device 1054 arranges the LPWM reference signal and is the highest reference voltage Vmax, and correspondingly, when initial condition, adjuster 1055 is regulated light source 830 and reached high-high brightness (for example, brightness is 100%).
When switch 820 disconnects, cut off the electric energy that battery supply 810 is applied to controller 950.Correspondingly, circuits for triggering 1052 produce and have the triggering signal of first trailing edge.Controller 950 is by the electric energy power supply that is stored in the capacitor C 1.Therefore, in a period of time after switch 820 disconnects, the voltage on power input mouth VIN is brought down below low-voltage locking (under voltage lockout, UVLO) threshold value.If switch 820 is closed again before the voltage on the power input mouth VIN drops to the UVLO threshold value, then circuits for triggering 1052 produce and have the triggering signal of first rising edge.Correspondingly, gate generator 1053 produces first clock pulse signal in response to first rising edge of triggering signal.First clock pulse signal offers reference switch selector 1054, has the LPWM reference signal of the first reference voltage V1 with generation.In one embodiment, the first reference voltage V1 is lower than the highest reference voltage Vmax.For example, when the LPWM reference signal was the first reference voltage V1, the brightness of light source 830 was 75%.The first reference voltage V1 can arrange according to different application demands.
In one embodiment, switch 820 disconnects again, and then circuits for triggering 1052 produce and have the triggering signal of second trailing edge.In a period of time before voltage on power input mouth VIN drops to the UVLO threshold value, if switch 820 is closed again, then circuits for triggering 1052 produce and have the triggering signal of second rising edge.Correspondingly, gate generator 1053 produces the second clock pulse signal in response to second rising edge of triggering signal.This second clock pulse signal offers reference signal selection device 1054, has the LPWM signal of the second reference voltage V2 with generation.In one embodiment, the second reference voltage V2 is lower than the first reference voltage V1.For example, when the LPWM reference signal was the first reference voltage V2, the brightness of light source 830 was 50%.In another embodiment, the second reference voltage V2 is higher than the first reference voltage V1 and is lower than the highest reference voltage Vmax, and for example, when the LPWM reference signal was the first reference voltage V2, the brightness of light source 830 was 80%.
When switch 820 repeats to disconnect and be closed, repeat the operation of aforementioned adjustment light source 830 brightness.Reference voltage (for example, the highest reference voltage V
Max, the first reference voltage V1, the second reference voltage V2 ... Deng) can set in advance according to different application demands and dispose.In one embodiment, for example, in response to four continuous clock pulse signals that gate generator 1053 produces, the electric pressure of the reference voltage of LPWM reference signal can be reduced successively by height, and for example, from 100% to 75% to 50% again to 25%; In another embodiment, the electric pressure of the reference voltage of LPWM reference signal also can be raise successively by low, and for example, from 25% to 50% to 75% again to 100%.In one embodiment, the change of the reference voltage of LPWM reference signal can make the brightness linear change of light source 830, and for example, from 25% to 50% to 75% again to 100%; In another embodiment, the change of the reference voltage of LPWM reference signal also can make the brightness of light source 830 be nonlinear change, and for example, from 20% to 30% to 80% again to 100%.In yet another embodiment, the reference voltage of LPWM reference signal can be configured such that the brightness of light source 830 becomes 50% from 100% and becomes 100% again, with the distress signal of expression SOS.
In one embodiment, adjuster 1055 produces conditioning signal according to the feedback signal of indication light source 830 electric energy that voltage and the sensing element 840 of LPWM reference signal produces, with the electric current of the light source 830 of flowing through by the output controlling electric energy of regulating output port of power source OUT, correspondingly regulate the brightness of light source 830 thus.In one embodiment, sensing element 840 is resistance.In another embodiment, sensing element 840 is the combination (not shown among Figure 10 A) of resistance and electric capacity.
In one embodiment, the output of adjuster 1055 is amplified by driver 1056.In one embodiment, 1057 couplings of the output of driver 1056 and switch, with control switch 1057, thus optionally with on the battery supply 810 or the electric energy on the capacitor C 1 provide to the output port of power source OUT of controller 950.In one embodiment, adjuster 1055 is pulse width modulation (pulse width modulation, PWM) circuit.In another embodiment, adjuster 1055 is pulse frequency modulated (pulse frequency modulation, PFM) circuit.
In one embodiment, switch 1057, switch 1058 form boost converter with capacitor C 2, inductance L 1, the voltage on the output port of power source OUT can be increased to the voltage that is enough to driving light source 830.In one embodiment, switch output port SW via inductance L 1 with power input mouth VIN coupling, via switch 1057 ground connection, be coupled to output port of power source OUT via switch 1058, and output port of power source OUT is coupled with capacitor C 2.Therefore, even the voltage that battery supply 810 provides lower (for example, only being 1V), but improve the voltage of output port of power source OUT via this boost converter, but controller 950 is driving light source 830 still, and regulates the electric energy that offers light source 830, and then prolongs the useful life of battery supply 810.
In one embodiment, switch 1057 and switch 1058 be mos field effect transistor (metal oxide semiconductor field effect transistor, MOSFET).In one embodiment, switch 1058 and switch 1057 state complementations.In other words, alternately conducting or shutoff of switch 1057 and switch 1058.In one embodiment, switch 1057 is N-channel MOS FET.In one embodiment, switch 1058 is the P channel mosfet.In another embodiment, switch 1058 is diode.
When 820 lasting disconnection a period of times of switch, the voltage on power input mouth VIN is lower than predetermined value (for example, low-voltage locking (UVLO) threshold value), and then low-voltage lock 1051 will produce ULVO signal (for example, replacement (reset) signal).This reset signal gate generator 1053 of can resetting, and cut off light source 830.Light source 830 keeps dissengaged positions, and is closed again up to switch 820.
Figure 11 shows that the structural representation of the drive circuit 1100 of the portable illumination device of another embodiment according to the present invention.Drive circuit 1100 comprises battery supply 1110, switch 820, light source 830, sensing element 840, controller 1150 and inductance L 2.In one embodiment, battery supply 1110 is one or more alkaline batteries.In one embodiment, light source 830 is LED.In one embodiment, controller 1150 is integrated circuit.Figure 11 has identical or similar function with Fig. 8 label components identical, for simplicity's sake, will repeat no more at this.
In one embodiment, inductance L 2 is as the energy-storage travelling wave tube of step-down controller.When switch 820 closures, the power input mouth VIN of controller 1150 is coupled to battery supply 1110, and light source 830 receives electric energy via the output port of power source OUT of controller 1150.When switch 820 disconnected, battery supply 1110 stopped controller 1150 power supplies.In one embodiment, controller 1150 is regulated the electric energy that offers light source 830 according to the closure of switch 820 and off-state and the received feedback signal of sensing ports ISENSE.
Figure 12 shows that the structural representation of the drive circuit 1200 of the portable illumination device of another embodiment according to the present invention.Drive circuit 1200 comprises battery supply 1110, switch 820, light source 830, sensing element 840, controller 1250, inductance L 2 and capacitor C 1 and C2.Figure 12 has identical or similar function with Figure 11 label components identical, for simplicity's sake, will repeat no more at this.
Figure 13 shows that the structural representation of controller embodiment illustrated in fig. 12 1250.Controller 1250 comprises low-voltage lock 1051, circuits for triggering 1052, gate generator 1053, reference signal selection device 1054, adjuster 1055, driver 1056, switch 1357 and switch 1358.Figure 13 has identical or similar function with Figure 10 A label components identical, for simplicity's sake, will repeat no more at this.Brightness adjustment control shown in the brightness adjustment control of controller 1250 and Figure 10 B is similar, will repeat no more at this.
In one embodiment, switch 1357, switch 1358 form step-down controller with capacitor C 2, inductance L 2, the voltage on the output port of power source OUT can be reduced, thereby with lower voltage driving light source 830.In one embodiment, switch output port SW via switch 1357 with power input mouth VIN coupling, via switch 1358 ground connection, and via inductance L 2 and capacitor C 2 ground connection.Output port of power source OUT is coupled to the node between inductance L 2 and the capacitor C 2.Therefore, even the voltage that battery supply 1110 provides (for example is higher than the required voltage of driving light source 830,6V), but via the voltage on the step-down controller reduction output port of power source OUT, controller 1250 still the exportable low voltage of light source 830 specifications that meets with driving light source 830, and regulate the electric energy that offers light source 830, and then prolong the useful life of battery supply 1110.
In one embodiment, switch 1357 and switch 1358 be mos field effect transistor (metal oxide semiconductor field effect transistor, MOSFET).In one embodiment, switch 1358 and switch 1357 state complementations.In other words, alternately conducting or shutoff of switch 1358 and switch 1357.In one embodiment, switch 1357 is N-channel MOS FET.In one embodiment, switch 1358 is the P channel mosfet.In another embodiment, switch 1358 is diode.
Figure 14 shows that basis as the performance map of the drive circuit 900 of Figure 10 A illustrated embodiment, it has shown that utilizing two 1.5V alkaline batteries driving rated current is the experimental result of the LED of 100mA.Curve is indicated the electric current of the LED that flows through among Figure 14.Figure 14 and prior art Fig. 7 B are compared as can be known, under the situation of the LED electric current of flowing through identical (being that luminosity is identical), using the battery life of prior art only is 100 minutes (shown in Fig. 7 B), and uses the battery life of drive circuit 900 of the present invention to extend to about 205 minutes.Therefore, use the present invention not only can save number of batteries, but also extending battery life.
Figure 15 shows that according to the present invention again the structural representation of the drive circuit 1500 in the portable illumination device of another embodiment.Drive circuit 1500 comprises battery supply 810, switch 820, load (for example, light source 830), sensing element 840, controller 1550 and inductance L 1.Figure 15 has identical or similar function with Fig. 8, Fig. 9 label components identical, for simplicity's sake, will repeat no more at this.
In one embodiment, controller 1550 comprises power input mouth VIN, sensing ports V
SENSE, output port of power source OUT, feedback port I
SENSE, port GND, switch output port SW and indication port BATLO.Power input mouth VIN is via switch 820 and battery supply 810 couplings.Sensing ports V
SENSE Via voltage divider 1502 and switch 820 and battery supply 810 couplings.Output port of power source OUT and light source 830 couplings.Feedback port I
SENSEWith sensing element 840 couplings.Port GND ground connection.Switch output port SW via inductance L 1 and power input mouth VIN coupling.Indication port BATLO and indicating device 1504 couplings.In one embodiment, drive circuit 1500 also comprises the capacitor C 1 between the power input mouth VIN that is coupled in battery supply 810 and controller 1550.In one embodiment, drive circuit 1500 also comprises the capacitor C 2 between the output port of power source OUT that is coupled in light-emitting component 830 and controller 1550.
In operation, if switch 820 closures, power input mouth VIN receives the electric energy from battery supply 810, sensing ports V
SENSEReceive the sensing signal SEN of the voltage of pilot cell power supply 810.Output port of power source OUT provides the output electric energy for light source 830.Feedback port I
SENSEReceive the feedback signal FB of the transient current of indicating the light source 830 of flowing through.Controller 1550 is regulated the electric current of the light source 830 of flowing through according to feedback signal FB and sensing signal SEN.Particularly, if the voltage of sensing signal SEN pilot cell power supply 810 is greater than first voltage threshold, will the flow through electric current of light source 830 of controller 1550 is adjusted to first electric current.If the voltage of sensing signal SEN pilot cell power supply 810 is less than second voltage threshold, will the flow through electric current of light source 830 of controller 1550 is adjusted to second electric current.Wherein, second electric current is lower than first electric current.If the voltage of sensing signal SEN pilot cell power supply 810 is between first voltage threshold and second voltage threshold, controller 1550 changes the electric current of regulating the light source 830 of flowing through according to sensing signal SEN.Therefore, the brightness of controller 1550 adjustable light sources 830.
Figure 16 shows that the structural representation of controller embodiment illustrated in fig. 15 1550.Figure 16 has identical or similar function with Figure 10 A label components identical, for simplicity's sake, will repeat no more at this.Figure 17 shows that the schematic diagram that concerns of middle reference signal ADJ embodiment illustrated in fig. 16 and sensing signal SEN.Figure 16 is described in conjunction with Figure 17.
As shown in figure 16, in one embodiment, controller 1550 comprises low-voltage lock 1651, reference signal generating unit 1654, adjuster 1055, driver 1056, switch 1057 and switch 1058.Low-voltage lock 1651 and power input mouth VIN coupling.Reference signal generating unit 1654 and sensing ports V
SENSECoupling.Adjuster 1055 and reference signal generating unit 1654 couplings.Driver 1056 and adjuster 1055 couplings, switch 1057 and switch 1058 and driver 1056 couplings.
If switch 820 closures, power input mouth VIN receives the electric energy of battery supply 810.Reference signal generating unit 1654 produces reference signal ADJ according to sensing signal SEN.The target current of reference signal ADJ indication light source 830.The sensing voltage V of sensing signal SEN
SENProportional with the voltage of battery supply 810.Sensing voltage V as sensing signal SEN
SENGreater than the first voltage threshold V
TH1The time (voltage of pilot cell power supply 810 is greater than first voltage), controller 1550 is with the reference voltage V of reference signal ADJ
ADJBe adjusted to the first voltage V
ADJ1Sensing voltage V as sensing signal SEN
SENLess than the second voltage threshold V
TH2The time (voltage of pilot cell power supply 810 is less than second voltage), controller 1550 is with the reference voltage V of reference signal ADJ
ADJBe adjusted to the second voltage V
ADJ2Sensing voltage V as sensing signal SEN
SENGreater than the second voltage threshold V
TH2But less than the first voltage threshold V
TH1The time (voltage of pilot cell power supply 810 is greater than second voltage but less than first voltage), controller 1550 is regulated the reference voltage V of reference signal ADJ
ADJFollow the sensing voltage V of sensing signal SEN
SENLinear change, the voltage linear that the electric current of the light source 830 of therefore flowing through is also followed battery supply 810 changes.
Adjuster 1055 produces dim signal DRV according to reference signal ADJ and feedback signal FB, with the flow through electric current of light source 830 of adjusting.Among the embodiment as shown in figure 16, switch 1057, switch 1058, capacitor C 2 and inductance L 1 are formed boost converter, and being promoted to the voltage with output port of power source OUT is enough to drive light-emitting component 830.Switch output port SW via inductance L 1 with power input VIN coupling, via switch 1057 ground connection, also via switch 1058 and output port of power source OUT coupling.Output port of power source OUT and capacitor C 2 couplings.So, (for example, 1V), but via the voltage on the boost converter rising output port of power source OUT, controller 1550 still can drive light-emitting component 830 even battery supply 810 provides lower voltage.Driver 1056 is according to dim signal DRV control switch 1057 and switch 1058.In one embodiment, switch 1057 and switch 1058 state complementations.In other words, alternately conducting or shutoff of switch 1057 and switch 1058.Therefore, the electric current with the light source 830 of flowing through is adjusted to the target current of being determined by reference signal ADJ.In addition, reference signal generating unit 1654 also produces index signal IDC according to sensing signal SEN.If the sensing voltage V of the voltage of pilot cell power supply 810
SENLess than second voltage threshold, index signal IDC is in first state (for example, logic height).If the sensing voltage V of the voltage of pilot cell power supply 810
SENGreater than second voltage threshold, index signal IDC is in second state (for example, logic low).Therefore, in one embodiment, if index signal IDC is in first state, indicating device 1504 is opened voltage with pilot cell power supply 810 less than second voltage.If index signal IDC is in second state, indicating device 1504 cuts out voltage with pilot cell power supply 810 greater than second voltage.When the voltage of power input mouth VIN is lower than when closing threshold value low-voltage lock 1651 closing controllers 1550; When the voltage of power input mouth VIN is higher than when opening threshold value, low-voltage lock 1651 is opened controller 1550.
Figure 18 shows that the structural representation of the reference signal generating unit 1654 in embodiment illustrated in fig. 16.Reference signal generating unit 1654 comprises first comparator 1808, second comparator 1810, first multiplexer 1804, second multiplexer 1806, sensing signal processing unit 1802, the 3rd comparator 1812 and switch 1858.Sensing signal processing unit 1802 provides signal SEN ' after the processing according to sensing signal SEN.Signal SEN ' after the processing and sensing signal SEN are proportional.
In operation, first comparator 1808 is with the sensing voltage V of sensing signal SEN
SENWith the first voltage threshold V
TH1Compare, select signal SEL1 to produce first.Second comparator 1810 is with the sensing voltage V of sensing signal SEN
SENWith the second voltage threshold V
TH2Compare, select signal SEL2 to produce second.First multiplexer 1804 is according to first signal SEN ' or the first voltage signal ADJ1 that selects after signal SEL1 optionally exports processing.Second multiplexer 1806 selects signal SEL2 optionally to export output signal or the second voltage signal ADJ2 of first multiplexer 1804 according to second.Particularly, if the sensing voltage V of sensing signal SEN
SENGreater than the first voltage threshold V
TH1, first multiplexer, 1804 outputs, the first voltage signal ADJ1, output signal (for example, the first voltage signal ADJ1) conduct of second multiplexer, 1806 outputs, first multiplexer 1804 is with reference to signal ADJ.If the sensing voltage V of sensing signal SEN
SENLess than the second voltage threshold V
TH2, the second voltage signal ADJ2 is as the reference signal for 1806 outputs of second multiplexer.If the sensing voltage V of sensing signal
SENGreater than the second voltage threshold V
TH2And less than the first voltage threshold V
TH1, the signal SEN ' after 1804 outputs of first multiplexer are handled, the output signal (for example, the signal SEN ' after the processing) of second multiplexer, 1806 outputs, first multiplexer 1804.Thus, the reference voltage V of reference signal ADJ
ADJSensing voltage V with sensing signal SEN
SENProportional, also be the reference voltage V of reference signal ADJ
ADJProportional with the voltage of battery supply 810.
If the sensing voltage V of sensing signal SEN
SENLess than the second voltage threshold V
TH2, the voltage of pilot cell power supply 810 is less than second voltage, and the 3rd comparator 1812 cut-off switch 1858 have first state () index signal for example, the logic height, thereby hit indicator 1504 with generation.If the sensing voltage V of sensing signal SEN
SENGreater than the first voltage threshold V
TH1, the voltage of pilot cell power supply 810 is greater than first voltage, and the 3rd comparator 1812 is connected switches 1858 and is had second state () index signal for example, logic low, thereby open indicator 1504 with generation.
Figure 19 shows that the present invention's structural representation of the drive circuit 1900 of the portable illumination device of another embodiment again.Drive circuit 1900 comprises battery supply 1110, switch 820, load (for example, light source 830), sensing element 840, controller 1950, inductance L 2, capacitor C 1 and capacitor C 2.The label components identical has identical or similar function among Figure 19 and Figure 12 and Figure 15, for simplicity's sake, will repeat no more at this.
Figure 20 shows that the structural representation of the controller 1950 in embodiment illustrated in fig. 19.The label components identical has identical or similar function among Figure 20 and Figure 10 A, Figure 13 and Figure 16.In one embodiment, controller 1950 comprises low-voltage lock 1651, reference signal generating unit 1654, adjuster 1055, driver 1056, switch 1357 and switch 1358.Wherein low-voltage lock 1651 is coupled with power input mouth VIN.Reference signal generating unit 1654 and sensing ports V
SENSECoupling.Adjuster 1055 and reference signal generating unit 1654 couplings.Driver 1056 and dimmer 1055 couplings.Switch 1357 and switch 1358 and driver 1056 couplings.In the embodiment shown in Figure 20, switch 1357, switch 1358 and capacitor C 2 and inductance L 2 formed step-down controllers, but the voltage of the output port of power source OUT of controller 1950 is down to the low voltage of driving light source 830.In one embodiment, switch 1357 and switch 1358 state complementations.In other words, alternately closed or disconnection of switch 1357 and switch 1358.In the embodiment shown in Figure 20, switch output port SW via switch 1357 with power input mouth VIN coupling, via switch 1358 ground connection, via inductance L 2 and capacitor C 2 ground connection.Therefore, (for example, 6V), controller 1950 can be by step-down controller with lower voltage driving light source 830 even the voltage that battery supply 1110 provides is higher than the suitable voltage of driving light source 830.
Shown in Figure 21 is the method flow diagram 2100 of giving light source power supply according to an embodiment of the invention.In step 2102, under the control of controller, battery supply is given light source power supply.In step 2104, provide the sensing signal of pilot cell power source voltage to controller.In step 2106, controller is regulated the electric current of the light source of flowing through according to sensing signal.Particularly, when sensing signal pilot cell power source voltage during greater than first voltage threshold (being that the voltage of battery supply is greater than first voltage), the electric current of the light source of flowing through is adjusted to first electric current; When sensing signal pilot cell power source voltage during less than second voltage threshold (being that the voltage of battery supply is less than second voltage), the electric current of the light source of flowing through is adjusted to second electric current.Second voltage threshold is less than first voltage threshold.When sensing signal pilot cell power source voltage (is being that the voltage of battery supply is between second voltage and first voltage between second voltage threshold and first voltage threshold, wherein second voltage is less than first voltage) time, the voltage linear of regulating the current following sensing signal of the light source of flowing through changes.
Comprise that also controller produces reference signal according to sensing signal for the method for light source power supply.Reference signal is indicated the target current value of the light source of flowing through.When sensing signal pilot cell power source voltage during greater than first voltage threshold, the reference voltage of reference signal is adjusted to first voltage; When sensing signal pilot cell power source voltage during less than second voltage threshold, the reference voltage of reference signal is adjusted to second voltage; When sensing signal pilot cell power source voltage is between second voltage threshold and first voltage threshold, regulates the reference voltage of reference signal and follow the sensing voltage linear change.
Comprise that also controller produces index signal with the control indicating device according to sensing signal for the method for light source power supply.When sensing signal pilot cell power source voltage during less than second voltage threshold, index signal is in first state; When sensing signal pilot cell power source voltage during greater than second voltage threshold, index signal is in second state.
Advantageously, the invention provides method and the controller that a kind of portable illumination device, control are given light source power supply.The voltage of controller sensing battery supply is regulated reference signal according to the sensing voltage of pilot cell power source voltage.Regulate the electric current of the light source of flowing through according to the reference signal of the target current value of indicating light source.If the voltage of battery supply is lower, the electric current of the light source of then will flowing through is adjusted to than low value.Therefore, the life-span of battery prolongs, thereby prolongs the life-span of light-emitting component.
One of ordinary skill in the art will appreciate that " battery " of the present invention or " battery pack " are not limited to dry cell or alkaline battery, it can comprise dissimilar battery (for example, the battery of lithium battery or other types).In addition, though embodiments of the invention only show a light-emitting component, it will be appreciated by persons skilled in the art that the present invention is not limited to the quantity of light-emitting component, but can adopt the light-emitting component of any amount.Be embodiment for ease of explanation with light-emitting diode (LED), but the present invention can replace with LED the light-emitting component of other types not as limit herein.Be illustrated though the present invention is example with the flashlight, be not limited to family expenses or compact flashlights, it also comprises the portable illumination device of different size, different purposes, such as but not limited to: mountain-climbing, the used head lamp of detection, or the car light of bicycle etc.
Above embodiment and accompanying drawing only are embodiment commonly used of the present invention.Obviously, under the prerequisite that does not break away from the present invention's spirit that claims define and invention scope, can have and variously augment, revise and replace.It should be appreciated by those skilled in the art that the present invention can change aspect form, structure, layout, ratio, material, element, assembly and other to some extent according to concrete environment and job requirement in actual applications under the prerequisite that does not deviate from the invention criterion.Therefore, embodiment disclosed here only is illustrative rather than definitive thereof, and scope of the present invention is defined by claims and legal equivalents thereof, and the description before being not limited thereto.
Claims (20)
1. a portable illumination device is characterized in that, described portable illumination device comprises at least:
Power supply is used for providing voltage;
Load comprises LED source; And
Controller is used for receiving described voltage, and regulates the electric current of the described LED source of flowing through according to the sensing signal of the described voltage of indicating described power supply,
Wherein, the described voltage of indicating described power supply when described sensing signal is during greater than first voltage threshold, and will the flow through described electric current of described LED source of described controller is adjusted to first electric current; When described sensing signal indicates the described voltage of described power supply low during less than second voltage threshold, will the flow through described electric current of described LED source of described controller is adjusted to second electric current; The described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, and the sensing voltage that described controller is regulated the described sensing signal of described current following of the described LED source of flowing through changes.
2. portable illumination device according to claim 1, it is characterized in that, the described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, described controller is regulated the described voltage linear variation of the described power supply of described current following of the described LED source of flowing through according to described sensing signal and feedback signal, wherein, described feedback signal is indicated the transient current of the described LED source of flowing through.
3. portable illumination device according to claim 1, it is characterized in that, described controller comprises reference signal generating unit, be used for producing according to described sensing signal the reference signal of the target current value of indicating the described LED source of flowing through, wherein, the described voltage of indicating described power supply when described sensing signal is during greater than described first voltage threshold, and the reference voltage of described reference signal is in first voltage; The described voltage of indicating described power supply when described sensing signal is during less than described second voltage threshold, and the described reference voltage of described reference signal is in second voltage; The described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, and the voltage linear that the described reference voltage of described reference signal is followed described sensing signal changes.
4. portable illumination device according to claim 3 is characterized in that, described reference signal generating unit comprises at least:
First comparator is used for described sensing signal and described first voltage threshold are compared;
Second comparator is used for described sensing signal and described second voltage threshold are compared;
The sensing signal processing unit is used for providing signal after the processing according to described sensing signal;
First multiplexer is used for according to signal or first voltage signal after the described processing of output selectivity ground output of described first comparator; And
Second multiplexer is used for output signal or second voltage signal according to described first multiplexer of output of the output selectivity of described second comparator, to produce described reference signal.
5. portable illumination device according to claim 4 is characterized in that, the signal after the described processing and described sensing signal are proportional.
6. portable illumination device according to claim 3, it is characterized in that, described controller comprises adjuster, be used for producing dim signal according to described reference signal and feedback signal, with the flow through described electric current of described LED source of adjusting, wherein, described feedback signal is indicated the transient current of the described LED source of flowing through.
7. portable illumination device according to claim 1, it is characterized in that described controller produces index signal according to described sensing signal, wherein, the described voltage of indicating described power supply when described sensing signal is during less than described second voltage threshold, and described index signal is in first state; The described voltage of indicating described power supply when described sensing signal is during greater than described second voltage threshold, and described index signal is in second state.
8. portable illumination device according to claim 7 is characterized in that, described portable illumination device also comprises indicating device, and wherein, when described index signal was in described first state, described indicating device was connected; When described index signal was in described second state, described indicating device disconnected.
9. portable illumination device according to claim 1 is characterized in that, described controller comprises sensing ports, with described power supply coupling, is used for receiving the described sensing signal of the described voltage of indicating described power supply.
10. portable illumination device according to claim 1 is characterized in that, described controller comprises the power input mouth, is used for receiving the described voltage of described power supply.
11. portable illumination device according to claim 10 is characterized in that, described controller comprises the switching output port, and described switching output port is via inductance and the coupling of described power input mouth.
12. the method that control is powered to LED source is characterized in that described method comprises:
Under the control of controller, power supply is powered to described LED source;
Described controller receives the sensing signal of the described power source voltage of indication; And
Regulate the electric current of the described LED source of flowing through according to described sensing signal, wherein,
The described voltage of indicating described power supply when described sensing signal is during in first voltage threshold, and will the flow through described electric current of described LED source of described controller is adjusted to first electric current;
The described voltage of indicating described power supply when described sensing signal is during less than second voltage threshold, and will the flow through described electric current of described LED source of described controller is adjusted to second electric current; And
The described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, and the voltage linear that described controller is regulated the described sensing signal of described current following of the described LED source of flowing through changes.
13. method according to claim 12, it is characterized in that, the described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, the described voltage linear of regulating the described power supply of described current following of the described LED source of flowing through according to described sensing signal and feedback signal changes, wherein, described feedback signal is indicated the transient current of the described LED source of flowing through.
14. method according to claim 12 is characterized in that, described method also comprises:
Described controller produces reference signal according to described sensing signal;
The described voltage of indicating described power supply when described sensing signal is regulated reference voltage to the first voltage of described reference signal during greater than described first voltage threshold;
The described voltage of indicating described power supply when described sensing signal is regulated described reference voltage to the second voltage of described reference signal during less than described second voltage threshold; And
The described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, and the described reference voltage of regulating described reference signal is followed the described sensing voltage linear change of described sensing signal.
15. method according to claim 13 is characterized in that, described method also comprises:
Described controller produces index signal according to described sensing signal, with the control indicating device;
The described voltage of indicating described power supply when described sensing signal is controlled described index signal and is in first state during less than described second voltage threshold; And
The described voltage of indicating described power supply when described sensing signal is controlled described index signal and is in second state during greater than described second voltage threshold.
16. a controller is used for control to the LED source power supply, it is characterized in that described controller comprises:
The power input mouth with the power supply coupling, is used for receiving from described power source voltage;
Sensing ports with described power supply coupling, is used for receiving the sensing signal of the described voltage of indicating described power supply; And
Feedback port is used for the feedback signal that the transient current of the described LED source of flowing through is indicated in reception,
Wherein, described controller produces the reference signal of the target current value of indicating the described LED source of flowing through according to described feedback signal and described sensing signal, and regulate the electric current of the described LED source of flowing through according to feedback signal and described reference signal, the described voltage of indicating described power supply when described sensing signal is during greater than first voltage threshold, and the reference voltage of described reference signal is in first voltage; The described voltage of indicating described power supply when described sensing signal is during less than second voltage threshold, and the described reference voltage of described reference signal is in second voltage; The described voltage of indicating described power supply when described sensing signal is between described first voltage threshold and described second voltage threshold time, and the described voltage linear that the described reference voltage of described reference signal is followed described sensing signal changes.
17. controller according to claim 16 is characterized in that, described controller also comprises:
First comparator is used for sensing voltage and first voltage threshold of described sensing signal are compared;
Second comparator is used for sensing voltage and second voltage threshold of described sensing signal are compared;
The sensing signal processing unit is used for providing signal after the processing according to described sensing signal;
First multiplexer is used for according to signal or first voltage signal after the described processing of output selectivity ground output of described first comparator; And
Second multiplexer is used for output signal or second voltage signal according to described first multiplexer of output selectivity ground output of described second comparator.
18. controller according to claim 17 is characterized in that, the signal after the described processing and described sensing signal are proportional.
19. controller according to claim 16, it is characterized in that described controller produces index signal according to described sensing signal, wherein, the described voltage of indicating described power supply when described sensing signal is during less than described second voltage threshold, and described index signal is in first state; The described voltage of indicating described power supply when described sensing signal is during greater than described second voltage threshold, and described index signal is in second state.
20. controller according to claim 16 is characterized in that, described controller also comprises:
The indication port, with indicating device coupling, wherein, the described voltage of indicating described power supply when described sensing signal is during less than described second voltage threshold, and described indicating device is connected; The described voltage of indicating described power supply when described sensing signal is during greater than described second voltage threshold, and described indicating device disconnects.
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US13/400,121 | 2012-02-20 | ||
US13/400,121 US8508142B2 (en) | 2009-03-20 | 2012-02-20 | Portable lighting device and method thereof |
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Cited By (7)
Publication number | Priority date | Publication date | Assignee | Title |
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CN105282896A (en) * | 2014-05-27 | 2016-01-27 | 宁波高新区赛尔富电子有限公司 | Power supply control circuit of LED lamp |
CN105939555A (en) * | 2016-06-03 | 2016-09-14 | 杭州士兰微电子股份有限公司 | LED drive device and control circuit and control method of LED drive device |
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CN107148752A (en) * | 2014-10-10 | 2017-09-08 | Iee国际电子工程股份公司 | Capacitance type sensing equipment |
CN108476574A (en) * | 2015-11-26 | 2018-08-31 | 飞利浦照明控股有限公司 | It is arranged to be attached to the lighting module of lamps and lanterns |
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Families Citing this family (1)
Publication number | Priority date | Publication date | Assignee | Title |
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Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN2859217Y (en) * | 2005-12-16 | 2007-01-17 | 彭建成 | Safety miner's lamp |
CN201396582Y (en) * | 2009-03-20 | 2010-02-03 | 凹凸电子(武汉)有限公司 | Portable illumination device |
US20100102773A1 (en) * | 2008-10-27 | 2010-04-29 | Laszlo Lipcsei | Circuits and methods for power conversion |
CN201750607U (en) * | 2010-09-10 | 2011-02-16 | 重庆辉腾光电有限公司 | Controller for solar energy street lamp |
Family Cites Families (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
WO2011110969A1 (en) * | 2010-03-08 | 2011-09-15 | Koninklijke Philips Electronics N.V. | Lighting device |
TWM412574U (en) * | 2011-04-15 | 2011-09-21 | Excelliance Mos Corp | Driving circuit of light emitting diode |
-
2012
- 2012-12-05 TW TW101145722A patent/TWI507082B/en not_active IP Right Cessation
-
2013
- 2013-01-30 CN CN2013100350814A patent/CN103260303A/en active Pending
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN2859217Y (en) * | 2005-12-16 | 2007-01-17 | 彭建成 | Safety miner's lamp |
US20100102773A1 (en) * | 2008-10-27 | 2010-04-29 | Laszlo Lipcsei | Circuits and methods for power conversion |
CN201396582Y (en) * | 2009-03-20 | 2010-02-03 | 凹凸电子(武汉)有限公司 | Portable illumination device |
CN201750607U (en) * | 2010-09-10 | 2011-02-16 | 重庆辉腾光电有限公司 | Controller for solar energy street lamp |
Cited By (10)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN105282896A (en) * | 2014-05-27 | 2016-01-27 | 宁波高新区赛尔富电子有限公司 | Power supply control circuit of LED lamp |
CN107148752A (en) * | 2014-10-10 | 2017-09-08 | Iee国际电子工程股份公司 | Capacitance type sensing equipment |
CN107148752B (en) * | 2014-10-10 | 2020-08-14 | Iee国际电子工程股份公司 | Capacitive sensing device |
CN108476574A (en) * | 2015-11-26 | 2018-08-31 | 飞利浦照明控股有限公司 | It is arranged to be attached to the lighting module of lamps and lanterns |
CN108476574B (en) * | 2015-11-26 | 2021-02-02 | 飞利浦照明控股有限公司 | Lighting module arranged to be attached to a luminaire |
CN105939555A (en) * | 2016-06-03 | 2016-09-14 | 杭州士兰微电子股份有限公司 | LED drive device and control circuit and control method of LED drive device |
CN105939555B (en) * | 2016-06-03 | 2018-11-30 | 杭州士兰微电子股份有限公司 | LED drive device and its control circuit and control method |
CN106487073A (en) * | 2016-12-13 | 2017-03-08 | 合肥中感微电子有限公司 | A kind of power supply circuits and electronic equipment |
CN112672460A (en) * | 2019-10-15 | 2021-04-16 | 凹凸电子(成都)有限公司 | Controller and method for controlling light source module |
CN114352983A (en) * | 2022-03-17 | 2022-04-15 | 深圳市爱图仕影像器材有限公司 | Method and device for distributing power, electronic equipment and storage medium |
Also Published As
Publication number | Publication date |
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TW201336344A (en) | 2013-09-01 |
TWI507082B (en) | 2015-11-01 |
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Application publication date: 20130821 |