Hereinafter, the embodiment of the present invention will be explained.
Numeral 1 indicates a main power source and concurrently charger (hereinafter, referred to as a main power source), which is composed of an AC-DC converter, or a DC-DC converter, or a storage battery.
Numeral 2 indicates a load, which is supplied with power from the main power source 1 and is driven.
Numeral 3 indicates an auxiliary power source, which is composed of a plurality of capacitors C1 to Cn connected in series and assists power supply from the main power source 1 to the load 2.
The main power source 1 and load 2 are connected directly to each other and the auxiliary power source 3, via a current detection section 4 for detecting the current supplied from the auxiliary power source, is connected to the connection route between the main power source 1 and the load 2. Further, between the connection route of the main power source 1 with the load 2 and the connection terminal, a voltage detection section 5 for detecting the output voltage of the auxiliary power source, that is, the voltage impressed to the load 2 is connected.
Numeral 6 indicates a control section, which is related to a current Ic supplied from the auxiliary power source, inputs an output Vic of the current detection section 4 and an output Vh of the voltage detection section 5, and transmits a control signal Vin for the main power source 1. The control section 6 functions as a power control section to control an output current of the main power source.
Here, the power unit to which the present invention is applied is preferably set under the specification satisfying the following relationship.
Zm≦Zc
where Zm is an internal impedance of the main power source and Zc is an internal impedance of the auxiliary power source; and
Is≧ILpeak−(ΔVCAP−ΔVL)/Zc
where Is (A) is an output current of the main power source, ILpeak (A) is the peak current of the load, ΔVCAP (V) is a voltage drop allowable width of the auxiliary power source and ΔVL (V) is a voltage drop width per cycle of the load current due to power supply from the auxiliary power source to the load.
Further, in the ROM of the memory 6B, the programs according to the flow charts shown in
Next, the operation of the present invention will be explained by referring to the time charts shown in
Here, prior to the operation explanation, the time charts shown in
In
In
(Current Detection Operation)
Firstly, the current detection control operation mainly drawn in
In the following operation explanation, it is assumed that the maximum current supplied from the main power source 1 which is a constant current source is variable from 1 A to 5 A and the initial value thereof is 3 A.
Firstly, as initial setting, the reference value I1 (first set value) and I2 (second set value) of the power source supplied from the auxiliary power source 3 and the maximum current Is (3 A in this case) supplied from the main power source are set (Step S1).
Next, the current detection section 4 judges whether the load 2 is on or off (Step S2).
When the load 2 is on and power is supplied to the load, next, the current detection section 4 detects the current Ic of the auxiliary power source 3 and inputs the detection results to the control section 6.
The control section 6 compares the detected current Ic with the set value I1, judges whether Ic is smaller than I1 or not (Step S3), when there is a relationship of Ic<I1, then calculates the difference (I1−Ic=ΔI) between the first set value I1 and Ic, sets a new set value (Is′=Is−ΔI), and reduces the output current Is of the main power source (namely, controls so as to increase the burden of the auxiliary power source) (Step S4).
Next, the control section 6 judges whether the new output current Is′ of the main power source set as mentioned above is lower than the lower limit of the variable range (for example, 1 A) or not (Step S5) and when it is lower than the lower limit, controls so as to change it to the lower limit value (1 A) (Step S6). Here, when it is not lower than the lower limit value, the control section 6 maintains the new set value (Step S7).
At Step S3, when it is judged that the auxiliary power source current Ic is not smaller than the set value I1, then the control section 6 judges whether it (Ic) is larger than the second set value I2 (Ic>I2) or not (Step S9).
And, when Ic>I2 is judged, the control section 6 calculates the difference (ΔI=Ic−I2), controls by a new set value (Is′=Is+ΔI) based on it, thereby increases the main power source current, and lightens the burden of the auxiliary power source (Step S10). The control section 6 judges whether the new current Is′ of the main power source set like this is larger than the upper limit (for example, 5 A) of the variable range of the main power source or not (Step S11), when the new current Is′ is larger than 5 A, controls so as to change it to 5 A (Step S12), and when it is not larger than 5 A, maintains the new set current (Step S13).
Finally, the control section 6 judges whether the load 2 is turned off or not, and when it is not turned off, returns to the first flow, and when it is turned off, finishes the process (Step S8).
(Voltage Detection Operation)
Next, by referring to the flow chart shown in
On the assumption of the following operation explanation, it is assumed that the maximum current supplied from the main power source is variable from 1 A to 5 A and a current instruction to the main power source is in increments of 0.5 A.
Firstly, initial setting is executed. Namely, the third set value Vc3 is set as a reference value of the auxiliary power source voltage and the initial value of the maximum current supplied from the main power source is set to 3 A (Step S21). Next, whether the load is on or off is judged and when it is on, the process goes to the next step (Step S22).
The voltage detection section 5 detects the voltage Vh of the auxiliary power source, judges whether it is smaller than the third set value Vc3 or not (Step S23), and when Vh<Vc3, sets the new output current Is′ of the main power source. In this case, the current increases in each 0.5 A (Step S24). In this way, the burden of the main power source is increased and the burden of the auxiliary power source is lightened.
And, the voltage detection section 5 judges whether the new set current Is′ is higher than 5 A or not (Step S25), and when it is higher, resets it to 5 A (Step S26), and when it is not higher, maintains the new set value (Step S27). Finally, the voltage detection section 5 judges whether the load is turned off or not, and when it is not turned off, returns to the first flow, and when it is turned off, finishes the process (Step S28).
Next, by referring to
A concrete configuration example of the control section 6 is shown in
The control section 6 is composed of a first comparator COM1 for inputting the output Vic of the current detection section 4 to the + side terminal and inputting a first set value Vref1 which corresponds to a first predetermined value to the inversion side terminal, a second comparator COM2 for inputting the output Vic to the inversion side input terminal and inputting a second set value Vref2 which corresponds to a second predetermined value to the + side terminal, a first change-over switch SW1 for switching three steps of voltages V1, V2, and V3 by the outputs of the first and second comparators COM1 and COM2, a third comparator COM3 for inputting the output Vh of the voltage detection section 5 to the + side input terminal and inputting a third set value Vref3 which correspond to a third predetermined value to the inversion input terminal, a second change-over switch SW2 for switching to either of two steps of voltages V4 and V5 by the output of the third comparator COM3, and a third change-over switch SW3 for switching either of the outputs of the first and second change-over switches on the basis of an external switching signal.
Here, the external switching signal aforementioned switches either of the case that it detects the output current of the auxiliary power source 3 and as a result of this, controls the maximum output current of the main power source (the current detection control route) and the case that it detects the output voltage of the auxiliary power source and as a result of this, controls the maximum output current of the main power source (the voltage detection control route) and the cases can be selected optionally.
The operation of the control section 6 for performing the aforementioned operation will be explained by referring again to
(Current Detection Operation)
Firstly, the process for a signal from the current detection section 4 shown on the lower part of
The output Vic by the current detection section 4 is inputted to the control section 6, is inputted to the plus side input terminal of the first comparator COM1 and the inversion side input terminal of the second comparator COM2, and is compared with the set reference voltage. Here, the set reference value Vref1 of the first comparator COM1 is structured so as to correspond to the first set current I1 shown in
And, the output of comparison results of the first and second comparators COM1 and COM2 is inputted to the first switching section SW1 and switches the switch terminal.
The first switch SW1 is equipped with terminals from the three kinds of voltage sources of V1, V2, and V3 (a relationship of V1<V2<V3 is held), and the terminals are switched on the basis of the output signals of the first and second comparators COM1 and COM2, thus the output signals are outputted. Generally, the first switch SW1 is connected to the central V2 terminal.
For example, when the output Vic from the current detection section 4 is lower than the reference voltage Vref1 of the first comparator COM1, a switching control signal is outputted from the comparator COM1 and functions so as to switch the switching terminal of the switching section SW1 from V2 to V1. As mentioned above, the output of the first switching section SW1 switched to the side of voltage V1 which is lower than the set voltage under normal conditions is inputted to the main power source 1 as a voltage Vin via the third switching section SW3 and controls so as to reduce the output current Is of the main power source. By doing this, the concerned output functions so as to increase the burden of the auxiliary power source.
On the other hand, when the output Vic from the current detection section 4 is higher than the set reference voltage Vref2 of the second comparator COM2, a switching control signal is outputted from the comparator COM2 and on the basis of it, the switching terminal of the first switching section SW1 is switched to the side of the high voltage terminal V3 of the first switching section SW1, and when the switching control signal is inputted as an input voltage Vin to the main power source 1 via the third switching section SW3, it functions so as to increase the output current Is of the main power source and lighten the burden of the auxiliary power source.
(Voltage Detection Operation)
Next, the process of the output from the voltage detection section arranged on the upper part of
When the output Vh of the voltage detection section 5 is lower than the set reference voltage Vref3 (corresponding to the third set value shown in
As mentioned above, the current supplied to the load is shared and controlled by the main power source and auxiliary power source.
Further, the control by current detection and the control by voltage detection are selected by an external switching signal for switching the third switching section SW3, though it is preferable to optionally switch this selection standard, for example, in an operation environment that the load periodically reaches the peak, so as to select the current detection control and in an environment that a case that the load instantaneously reaches the peak (when an instantaneous current flows) is apt to occur, so as to select the voltage detection control.
As shown in the drawing, an image forming apparatus 10 having a DC power source 10A is combined with a post-processing apparatus (for example, a finisher) 11 and to the post-processing apparatus 11, a connection configuration of the main power source 1, auxiliary power source 3, control section 6, and load 2 is applied.
And, in such a system, the power unit performs the operations shown in the flow charts in
Number | Date | Country | Kind |
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JP2006-212332 | Aug 2006 | JP | national |