CA2136301C - Battery charging system, stepping and interactively self-adjusting to the nominal voltage of the battery - Google Patents

Battery charging system, stepping and interactively self-adjusting to the nominal voltage of the battery Download PDF

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Publication number
CA2136301C
CA2136301C CA002136301A CA2136301A CA2136301C CA 2136301 C CA2136301 C CA 2136301C CA 002136301 A CA002136301 A CA 002136301A CA 2136301 A CA2136301 A CA 2136301A CA 2136301 C CA2136301 C CA 2136301C
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Prior art keywords
battery
charging
voltage
periodic interval
terminal voltage
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French (fr)
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CA2136301A1 (en
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Eleftherios Tsantilis
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/00032Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange
    • H02J7/00038Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange using passive battery identification means, e.g. resistors or capacitors
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/00032Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange
    • H02J7/00038Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange using passive battery identification means, e.g. resistors or capacitors
    • H02J7/00041Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange using passive battery identification means, e.g. resistors or capacitors in response to measured battery parameters, e.g. voltage, current or temperature profile
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/00047Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries with provisions for charging different types of batteries
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02JCIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
    • H02J7/00Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
    • H02J7/007Regulation of charging or discharging current or voltage
    • H02J7/00712Regulation of charging or discharging current or voltage the cycle being controlled or terminated in response to electric parameters
    • H02J7/007182Regulation of charging or discharging current or voltage the cycle being controlled or terminated in response to electric parameters in response to battery voltage
    • H02J7/007186Regulation of charging or discharging current or voltage the cycle being controlled or terminated in response to electric parameters in response to battery voltage obtained with the battery disconnected from the charge or discharge circuit

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Charge And Discharge Circuits For Batteries Or The Like (AREA)
  • Secondary Cells (AREA)

Abstract

A charging system (1) for a variety of batteries (nominal voltage, capacity, chemical components), stepping, and self adjusting to the top-of charge voltage of the battery (12a) by interacting with the terminal voltage of this battery in each one of a series of periodic intervals (steps). CONTROL means (2) are provided for enabling signals (4) in predetermined subintervals in each periodic interval, to control the charging process. The charging voltage parameter in the running periodic interval is set by REFERENCE VOLTAGE means (10), based on the sample of the terminal voltage of the battery taken by READING means (5) in the beginning of the running periodic interval and slightly amplified by a predetermined factor (25 96). Thereafter VOLTAGE REGULATOR means (15) regulate the voltage of the charging current according to, as this set, charging voltage parameter.
Every time a sample of the terminal voltage of the battery is taken, COMPARATOR means (9) compare this sample with the one taken in the previous periodic interval and, then, the charging is proceeding when this comparison has a predetermined result (or alternately a combination or combinations of results from comparisons of more parameters), otherwise the charging process terminates.

Description

WO 94122202 _ PCT/GR94i00004 BATTERY CHARGING SYSTEM, STEPPING AND INTERACTIVELY
SELF-ADJUSTING TO THE NOMINAL VOLTAGE OF THE BATTERY
______________________________________________________ , Technical field This invention relates generally to automatically reg°
elated charging systems for a variety of rechargeable bat-teries and more particularly to a charging system that pro-gressively self°adjusts to the top-of-charge voltage of the battery by interacting with the terminal voltage of the bat-tery, in each one of a series of periodic intervals (steps).
Background of the invention ~5 ___________________________ In order to charge different types of batteries (nomi-nal voltage, capacity, chemical components), the automatical-ly regulated chargers of prior art, need first to identify each different type so that they can adjust accordingly their operating parameters for each corresponding type. But, since this, i en~ifioa~on can not be done by such a charger only on the basis ~f the voltage that the battery is presenting at its terminals, it becomes necessary to externally support these chargers either by equipping them with special battery 2S housings or . by placing electrical components on the batteries or eventually by using specially adapted batteries; in a Way that all of these could provide to the charger an electrical Signature of each battery type. This certainly limits, physi-tally, the use of these chargers only to those adapted bat-aeries or to those batteries that each charger is designed fax.
Therefore, it could be useful for a charger to be able to charge each one of a variety of batteries without needing to identify each different type and therefore without any ex°
ternal support with the consequent 3imitations.
The use of high charging rates, through the whole charging time, causes wear and tear to the battery. As the battery approaches full charge, its need for energy is de-creasing and can not consume all of the charging current and so the rest of it is transformed to heat and gas evolution ~IIR.~'~'~'TIIT'~ 5~~~'~

WO S41Z2202 PCT/GR.94/00004 ~lv 136~Oi z which causes tear and wear to the plates and separators and water loss to the electrolyte of the battery. This could hap-pen, also, from the beginning of the charging when the bat-s tery is in a poor condition (age, discharged for a long time, abnormal sulfatation, etc.).
P~lso, constant voltage charging, under certain condi-tions, could cause wear and tear to the battery and sometimes could drive to thermal runaway which to certain sealed bat-1,0 teries {NiCd) results to battery e~cplosion.
Therefore, it could be useful 'for a charger to charge a battery fast witho~;t causing any harm to it, by adausting its operating parameters according to battery's state, in the beginning and repetitively until the end of the charging pro-15 case.
Various factors, like the age of the battery, heat and high charging rates contribute to reduce the top-of-charge voltage, and so it becomes impossible to detect a formerly fined higher value, for those chargers that relay upon the 20 . detection of a predetermined value that the terminal voltage of the battery has to reach (representing the top-of-charge state) to terminate the charging.
Such factors. sometimes, could cause short circuits (because of dendritic whiskers) between battery plates; which 25 appear as droppings ~. in the . charging voltage and. eventually, could drive ..to abruptly end the charge, for those chargers that relay- upon the detection of a selected slope of the charging voltage, versus time (a NiCd battery charging char-acteristic), .- to decide for a top-of-charge state of the bat-30 tery, to terminate the charging (0v charging).
Moreover, since these short circuits increase the flow of the charging current, . they could eventually mislead those chargers that relay upon the monitoring for a threshold value of tae charging current, to terminate the charging.
35 But also, the loose character of monitoring with e~-ternal temperature sensors or thermal switches (affected by ambient temperature) for a threshold value of the battery's temperature, for those chargers that relay upon this value in order to terminate the charging, could cause wear and tear 40 and premature aging of the battery from high heat and gas-SUBSTITUTE SHEET

"~ ~~.~6~(l~.
WO 94122202 _ PCT/GR94/00004 sing, because of the, repetitively, delayed termination of the charging.
Therefore, it could be useful for a charger to detect accurately the top-of-charge state of a battery. by avoiding to decide upon voltage or current characteristics during the charge (charging conditions), as they are subject to casual alterations, or upon external temperature switches and detec-tors because they are prone to ambient temperature changes.
The object of the present invention is to provide a battery charging system able to: charge one each time of a variety of rechargeable batteries without needing to identi-fy the type of the battery and consequently without any ex-ternal support; charge each battery fast without causing any harm to it, by adjusting its operating parameters accarding to battery's state, in the beginning and repetitively until the end of the' charging process; finally, terminate the charging process when it accurately detects that the battery is in a top-of-charge state.
2a . Disclosure of the invention According to the present invention, an automatically regulated charging system is provided; able to charge one : each time of a variety of - rechargeable batteries (nominal voltage, capacity, chemical components), without needing to identify each different type and cansequently without any ex-ternal support like battery housings, electrical components on the batteries or. eventually, specially adapted batteries.
T his is attained b y . slicin g the whole char Qing time in independent, shirt, duration, periodic intervals of charging ' (e.g. 6 min) and proceeding by first reading, in the begin ning of each such periodic interval, the battery's state and ~ examining if the charge of the previous period has been ac cepted (as present terminal voltage magnitude and as a dif-.
ference to the one read in the previous periodic interval) in order to decide far the continuation of the charging process (when, there is noted an increase or not of the terminal voltage of the battery) and if affirmative, then setting the charging parameters analogously to battery's state (the actu suras°riTu~r~ s~E~'r WO 94!22202 PCTIGR94100004 ~1 - ally read terminal voltage of the battery) and, in turn, charging the battery in this . periodic interval according to these parameters.
For this reason, means are provided for enabling in predetermined subintervals of a series of preset duration pe-riodic intervals, control signals of operations related with the charging process. Thus, in the beginning of each running periodic interval they send a control signal to means provid-ed, to sample the battery's terminal voltage and hold this sample, at least, until a predetermined subinterval of the next periodic interval. Then, they send (and keep active un-til the end of this periodic interval) a control signal to means provided, to set (and keep setting until this control signal ceases) the charging voltage parameter for this run-ning periodic interval slightly higher (with a predetermined factor e.g. 25%), than the recently sampled and held terminal voltage of the battery. Thereafter, according to this just being set charging voltage parameter, means provided are reg-ulating the voltage of the charging current with which, in turn, the battery..,,;is charged for this running periodic inter-val.
By regulating the charging voltage- to be slightly higher than the sample of the terminal voltage of the bat-tery (about 25% higher; so that the charging current should be high enough even for certain, chemical components type, batteries e.g: Niche! hydride- which have higher internal .re-sistance than the usual) then the charging current would be high enough indeed when the charge in each periodic interval begins, but should decrease. progressively (tapering) as the terminal voltage of the battery under charge, would be ap-proachinq this not so high being regulated charging voltage (depending also of the actual chaxge state of the battery).
Now, to find out when the. battery is in a top-of--charge state in order to end the charging process. the means fox enabling control signals, every time a periodic interval is finished, firstly they let pass a short duration sLbinter val (e.g. 1 min) of inactivity, and then (before the setting of the charging voltage parameter) they send a control signal to means provided, to compare the sample of the terminal . SUBSTITITfE SHEET

dV~ 9dI2Z2~2 ~~~~~az voltage of the battery of the. running periodic interval with the sample of the previous periodic interval, and to signal-ize a top-of-charge state in case that from this comparisan 5 there would be no sign of increase of the actual terminal voltage of the battery (although the battery had been having a periodic interval of charge) as this would be taken as a sign that the regeneration of the active materials in the battery has ceased and therefore the battery should be con-sidered as being in a top-of-chare~e state: In that case. the charging process terminates.
The reliability of this way of detection of the top--of-charge state is due to the fact that the samples of the terminal voltage of the battery are not taken under charge conditions, since they are taken in the beginning of each pe-riodic interval before the charge in thus periodic interval begins (because the charging parameters for this running pe-riodic interval are not yet set and so the voltage of the charging current should be zero) and well after is fanished the charge of the previous periodic interval (to let rela-tively- settxe down ~~ ~e e~ccited from the charge terminal volt-age of the battery)t. Therefare, they are free of the symptoms that could have if they were taken under charge conditions and so they are independent of the charging characteristics of the various, chemical component's type, batteries.
By this way of progressive (stepping) charging, the battery's state (magnitude of the battery's terminal voltage) is taken into account from the beginning of the charging and the acceptance or not of the charge of each periodic interval (difference of the battery's terminal voltage of the actual periodic interval to that of the previous periodic interval) is tested in each periodic interval. Therefore, the charging starts and proceeds independently of the nominal voltage type ' of the battery and indeed in a very fast way, since in each periodic interval the battery is charged under constant volt-age and receives as much current can absorb with its internal resistance (meaning that each different capacity type battery would receive sn analogous charging current, since a high ca-pacity battery with its larger plate surface should present a lower internal resistance and consequently would receive more su~s°riTUTE s~~E'~

~'C194/22202 PCT/GR94/00004 ' charging current than a lower capacity type battery) at its actual charge state (more current for a more than a less dis-charged battery) and under the actually being set charging voltage in this periodic interval (e.g. 25% higher than the recent sample of the terminal voltage of the battery).
In another version of the present invention, because some battery types either have idiosyncratic charging charac-teristics, or even, when they stilt need charging they are not shaving, practically, any increase in their terminal voltage or, in contrary, they are showing a slight decrease, for this reason, except to the comparison of the samples of terminal voltage of the running and the previous periodic in-terval, in assistance, there is compared by means provided, the magnitudes of the charging current which the battery was receiving in a predetermined subinterval in the last two pe-riodic intervals, and then the charging takes an end, only in case that from these comparisons in combination there is no sign of further increase in the terminal voltage of the bat-tery and no further decrease in the charging current.
The decrease of the charging current is taken into ac-count here, because as the battery approaches the tog-of -charge state, the charging current, far its part, decreases and this continuing. decrease from periodic interval to peri-odic interval is, a sign of still continuing chargins~ activi-ties on the plates, of, the battery and. consequently; the charging shouldn't end until there wouldn't be any other de-crease in the charging. current.
In still another version of the present invention, means provided, switch the connection of the charger with the battery, every time the charging of one battery is termi-mated, with the next battery from a series of a predetermined number and restarts the charging with the newly connected battery. Therefore, by this way, a multiplicity of recharge-able batteries in series could be charged.
Brief description of the drawings Fig. 1 is a simplified block diagram of a battery charging system according to the present invention.
SUBSTITUTE SHEET

p~ 2135301 Vd0 94122202 -1.
Fig. 2 is a block diagram of a first preferred embodi-ment of a charging system according to tyke present invention.
Fig. ~ is a schematic diagram of a CONTROL 2a circuit within Fig. ~.
Fig. 4 is a schematic diagram of a S/H 5a circuit within Fig. 2.
Fig. 5 is a schematic diagram of a S/H 5b circuit within Fig. 2.
Fig. 6 is a schematic diagram of a COMPARATOR 9a cir-Cult withlll Flg o 2.
Fig. 7 is a schematic diagram of a REFERENCE VOLTAGE
10 circuit within Fig. 2.
Fig. 8 is a schematic diagram of a VOLTAGE REGULATOR
15 circuit within Fig. 2.
Fig. 9 is a schematic diagram of a POWER SUPPLY 18 Cl.rCUit W7.thln F7.g. ~.
Fig. 10 is a schematic diagram of a CONTROL 9b circuit which is a modification of the CONTROL 2a circuit of Fig. 3.
to suit a second preferred embodiment of a charging system according to the present invention. . .
Fig. 11 is a schematic diagram of a COMPARATOR 9b cir-cuit which is a modification of the COMPARATOR 9a. circuit of . Fig. 5.. to suit a second preferred embodiment of a charging system according to the present invention.
,._ Fig, 12 ss a schematic diagram of POWER SUPPLY 7.8 car cuit which is a modification of the.. POWER SUPPLY- 18 circuit of Fig. 9. by xncluding~ an additional MONITOR ?4 circuit for monitoring the potential difference across the current limit ing resistor- 81 of this. POWER. SUPPLY 18, to suit a second preferred embodiment of a charging system according to the present invention.
Fig. 13 is a schematic diagram of a CONTROL 2c circuit which is a modification of the CONTROL 2a circuit of Fig. 3, to suit a third preferred embodiment of a charging system ac-cording to the present invention.
Fig. 14 is a schematic diagram of an EXTENSION 85 cir-suit for connecting up to ten batteries, in accordance to a third preferred embodiment of a charging system according to the present invention.

~YVO 94122202 PCT/GR.9~I0000~t _ Detailed description of the preferred embodiments The preferred embodiments are now described by way of illustration of the present invention and they are not in-tended to limit the different implementations in part or of the whole of each one of these embodiments, when the scope and the conception of this invention, as referred in the ac-companying claims, is preserved.
First embodiment Referring to Fig. 2. there is illustrated a block dia-gram Gf a first preferred embodiment of a charging system ac-cording to the present invention that progressively self-ad-justs to the top°of-charge voltage of the battery. by inter-acting with the terminal voltage of the battery in each one of a series of periodic intervals (steps).
The battery 12a for charging, is connected with the SYSTEM 1 via the connectors 13a and 16a. The SYSTEM 1 in-eludes a POWER SUPPLY 15,ircu~t which provides current, via line 17;: to a VOLTAGE REGULATOR 15 circuit which in turn reg°
ulates~the voltage of this current according to a reference voltage provided via line 11 by a REFERENCE VOLTAGE 10 cir-cuit and then the current under this so" regulated voltage, via line' 6 and connector 13a, is provided to the battery ~12a as charging current. Understandably; if there is no reference voltage- (zero). then the voltage of the charging current .
would. be. zero. . ' . . ..
A S/H 5a circuit or a S/H 5b' circuit, via line 6, can sample and hold the value of the terminal valtage of the bet-'tery, when it is activated via lines 4b or 4h correspanding-ly, with a (high) cnntrol signal "Sample". This S/H 5a or S/H
5b can be reset with a (high) control signal "Reset", via lines 4a or 4g correspondingly. Also, via lines 7a and ?b, the sample of S/H 5a can be compared (far being greater) to the sample of the S/H 5b and the sample of S/H 5b can be com-pared (for being greater) to the sample of the S/H 5a, by a COMPARATOR 9a circuit, when the latter is activated with a (high) control signal "Compare" via lines 4c or 4i correspon-SUBSTITIITI~ SN~E'~' 2 ~ 3 6 ~ ~ .~ ~~GR94~~o0~
W~ ~4/222(f2 -dingly. When, the result from this comparison is positive, causes the sending, via line .3, of a (high) signal "OK" to a CONTROL 2a circuit. Also, via lines 7a ar 7b, ane of these samples, alternately. from one periodic interval to the other periodic interval becomes the basis on which the reference voltage parameter is set, with a predetermined factor, higher than this sample by the REFERENCE VOLTAGE 10, when the latter is activated via lines 4d or 4j correspondingly with a ZO (high) control signal "Charge".
The CONTROL 2a is timing the periodic intervals and produces (in predetermined subintervals in each periodic in-terVal). the CantrGl SlgnalS "Reset", "Sample°', "Compare", "Charge" and also proceeds, for the sending of these signals correspondingly. via the group of lines 4a, 4b, 4c and 4d or via the group of lines 4g, 4h, 4i and ~ 4j, alternately for each periodic interval. Now, depending the sending group, in each periodic interval: with the control signal "Reset" the corresponding S/H 5a or S/H 5b is reset; with the control signal "Sample'° the corresponding S/H 5a or S/H 5b"samples and holds the value of the terminal voltage of the battery 12a; . with .they control signal "Co pare" the CO~SFARATOR 9a is requested to confirm (during a predetermined waiting time e.g. l sec) by sending a high signal "OK" via line~'3 to' CON-2~:. TROL 2a- if the sample of S/H 5a is greater thaw: the v sample of B/H~-:5b or the inverse correspondingly: and finallyv;with the contxol signal "Change" { w hen there is confirmation with the signal ."OR"~ ~.he REFERENCE VOLTAGE 10 uses; via lines 7a or fib; the held s8mple of the corresponding S/H 5a or S/H 5b (for- as long: as this "Charge" signal is kept active) as the basis- for setting the reference voltage parameter; '-: with. a ' ' predetermined' factor (25~), higher than this sample. Accord-ing now to this reference voltage parameter, the VOLTAGE REG-ULATOR 15 regulates the voltage of the charging current with which in turn the battery 12a is charged. If, in the con-trasy.; there is no confirmation with the signal "OK", during the predetermined waiting time, then the CONTROL 2a should stop sending control signals and the charging process would take an end.
By referring now, also, to Figures 3, 4, 5, 6, 7, 8, SUBSTITtJ'TE SHEET

WO ~4/ZZ20~ POT/GR94100004 and 9, a more detailed description of the charging system of Fig. 2, is following.

The battery 12a for charging, is connected to the SYS-5 TEM l, via the connectors 13a and 16a and the SYSTEM 1 to AC

Mains, via the plug 84. When, with the switch 83 the SYSTEM

is powered on, via the combination of transformer 80, bridge ?8 and capacitor ??, a 4.5 Ah of unregulated 24 V DC is pro-vided (in this illustrated embodiment wherein the SYSTEM 1 is ZO able to fast charge, in two hours average time, batteries of 1.2 V - 12 V nominal voltage and up to 4 Ah capacity, and eventually of greater capacity by lengthening accordingly the charging time), firstly. to a voltage regulator IC (Inte-grated Circuit) 82 (LM ?818) which regulates 18 V DC for the feeding and operation of the various circuits of the SYSTEM

and secondly, to a conventional current limiter circuit com-prising the adjustable voltage regulator IC ?9 (LM 338) in floating operation, and resistor 81 (for limiting this cur-rent to 4.2 F.h and by so doing. avoiding the kneeling of the POWER SUPPLY 18 b~ a high charging current demand and thus preserving the well feeding of the various circuits of SYSTEM

1) and therefrom, via line 1?, to the VOLTAGE REGULATOR 15.

.. : ~ As. the SYSTEM 1 is powered on, a conventional Master . Reset Pulse circuit composed mainly of the inverter buffer IC

25. : 20 ~ and capacitor 21: resets the. J-K flip-flog (CD402?).-IC

(output;;-Q high) and so: the group of AND gates ICs-40,' 41, and.43 is set into service (one input high); resets the bina-ry counter IC. 23 (CD .4024) and decade counter IC 26. (CD

4017); resets the S/H 5a and S~H 5b; and finally, sets the ~30 J-K flip-flop (CD402?) IC 19 (output Q high) and therefore this. high. output Q. in turn, starts resetting the decade -counter IC 24 (CD 401?) and the binary counter IC 29 (CD

4024). so they are both restrained to count.

Now then, in the beginning of a periodic interval only 35 the binary counter IC 23 is counting the pulses of a conven-tional 1 Hz oscillator circuit which is compared mainly of the 21-stage counter IC 2? (CD 4045) and the crystal 28. Af-ter counting 64 Hz (this 64 seconds of inactivity is used later when the charge in a periodic interval is finished. to 40 relatively settle down the excited, from the charge, voltage SUBSTITUTE S~~E'f PCTlGR94100004 ~~ WO 94122202 of the battery for ease of sampling purposes) its output Q6 goes high which. connected with the AND gate IC 22, contrib-utes so that the 1 Hz pulses pass also to decade counter IC

26.

With the first pulse counted by decade counter IC 26 its output Q1 goes high which toggles the Flip-Flop IC 32 and so the output Q of the latter goes high which, in turn. sets now into service (one input high) the group of AND gates ICs 36, 37. 38 and 39.

With the second pulse counted by decade counter IC 26 its output Q2 goes high now, activating the in service AND

gate IC 39 and so the signal "Reset" is send to S/H 5a via line 4a. This 'Reset" signal activates the electronic switch IC 51 (CD 4016) which grounds the holding capacitor 49 and therefore reset the S/H 5a preparing it for a new sampling.

With the third pulse counted by decade, counter IC 26, its output Q3 goes high now, activating the in service AND

gate IC 38 and so the signal "Sample" is send to S/H 5a via line 4b. This "Sample' signal, by activating the electronic switch IC 52 (CD 401.6) enables the sampling and holding of the value of the terminal voltage of the battery 12a, by the S/H 5a.: . ..:. ,.. _.

This S/H 5a (and the similar S/H 5b), is a conventional, . Sample: and Hold circuit composed of the two electronic switches ICs 52 and 51 (55 and 58)~ . the holding capacitor 49 . (54); and of: the two' high input impedance (JFET) op-amps SO

and 53: (57 and 56). : - :. , . -, r: With the, fourth pulse counted by decade counter IC 26 ite output Q4 goes high now, activating the in service : AND

gate IC 37 and so the signal "Compare" is send; via line 4c, t~ the AND gate IC 59 of the COMPARATOR 9a.

Thzs COMPARATOR 9a, is composed of two opamps (JFET) as comparators IC 63 and IC 64 circuits, and so arranged that the sample of S/H 5a is feeding the non inverting input of compaxator IC 63 and the inverting input of comparator IC 64, and the sample of S/H 5b, inversely, is feeding the non in-verting input of comparator IC 64 and the inverting input of comparator IC 63. By sending the signal "Compare" in one of the two inputs of one of the included AND gates ICs 59 or 60, SUBSTITUTE SHEET

WO 94122202 PCTlGR94/00004 and when there is a positive result (high output) from the comparison by the corresponding comparator IC 63 or IC 64 (as the other input of each one of these AND gates ICs 59 and 60, is connected with the output of the corresponding comparators ICs 63 and 64), then the corresponding AND gate IC 59 or IC
60 would be triggered to send the signal "OK" via line 3 to CONTROL 2a.
[Note: Because of the non ideal characteristics of the usual op-amps and also because many batteries need overcharg-ing in order to obtain full capacity, it could be worth men-tionning a variation in the implementation of the confirms-tian logic. So. instead of being valid only the confirmation by the COMPARATOR 9a that the recent sample is greater than the previous sample in order to continue the charging pro-cess, to be valid also, the confirmation that it is equal to the previous sample for up to a predetermined number (e.g. 8) of repetitions (periodic intervals). This limited repetition (of periodic intervals) of charge, only, in case of equality, from one hand dampens the sr~ll irregularities in the re-sponse of op-amps (comparators) when the charging is near completion and from the other hand has vthadvantage to allow a programmed overcharge that many batteries need in order to obtain full capacity:] .. .. . . .
.=:.~ So; now the~.output. of the comparator 63 is high. be-osuse only:: the S/H : Sa has taken a simple of the terminal voltage ~ of the battery,~~ therefore the "OK" signal is enabled and, via line 3, resets. the Flip-Flop IC 19 of which by.' going high ids: output -Q. firstly keeps resetting the count-30. ors ICs w 23 and 26,w restraining them to count, while. are al-lowed to count the counters ICs 24 and 29 and. secondly acti-votes the', in service,.. AND gate IC 36 and so the signal "Charge" is send, via line 4d, to activate the electronic switch IC 69 (CD 4016) of the REFERENCE VOLTAGE 10. Thus, the sampled by S/H 5a and held value of the terminal voltage of the battery 12a, reaches, via line 7a, the (non inverting) op-amp 71 (JFET) of the REFERENCE VOLTAGE 10, whereby is amplified with a preset factor 25% and is passed, via line 11, to the VOLTAGE REGULATOR 15.
This VOLTAGE REGULATOR 15 is composed of the adjust-SUBSTITUTE SHEET

~ WO 94/22202 ~ ~ ~ PCT/GR94100004 able voltage regulator IC 73 (LM 338) and the power op-amp IC
?3 (CA 3094) which acts as a difference amplifier circuit and so, according to the difference of the (continuously altered during the charging) terminal . voltage of the battery 12a to the reference voltage, influences the voltage at the adjust-ing input of the adjustable voltage regulator IC 73, and therefore the output voltage of the latter is regulated (con-tinuously) according to the reference voltage.
With this, so regulated voltage, the battery 12a is charged until the combination of counter IC 24 with the counter IC 29 will count 320 pulses of 1 Hz (5 min and 20 sec), driving high the output Q5 of counter IC 29 which, in turn; sets the Flip-Flop IC 19 and so, terminates one of the periodic intervals and the next one begin.
The selection of this, approximately 5.5 minutas, du-ration of charging has been made, by considering that it is long enough for the battery to receive a fair amount of charging current, since this is the first and consequently 20. the higher amperage portion of the decreasing charging cur . rent as the battery's :voltage a~pgroaches the set voltage of the charging current (tapering) and' in contr ~a~ry, it is~ very . short for the battery to. be damaged by a high current, even from some hurt- circuits between the plates ( whiskers):
~ ~- Now. after some; periodic interval and in the beginning of , the next one, when with the signal "Compare" the confirma-tion of a positive result of the corresponding comparison is requested and there is no answer with the signal "OK" (which -could : cause the resetting of the P'lip-Flop 19 and so, should 30- start the next periodic interval, then the counter iC. 26 con-.
tinues .to' count the 1 Hz.. pulses until its output Q9 goes v 'high, 'wlii:ch co~nnec~ed with the input CLOCK INHIBTT of the latter causes the freezing (stand still) of this counter IC
26 and the illumination of the LED 31, indicating the end of the whole charging process.
Second embodiment By referring now, also, to Figures 10, 11 and 12 which are replacing the corresponding Figures 3, 6 and . 9, there is SUBSTITUTE SHEET

W~ 9.~1~220Z PCT/GYt94100004 ~4 illustrated a second preferred embodiment of a charging sys-tem according to the present invention.
This second illustrated embodiment is similar to the first embodiment with certain additions to accommodate in as-sistance to the comparison of magnitude of the samples of the terminal voltage of the battery, also the comparison between the magnitude of two samples of the charging current which the battery was receiving in a predetermined subinterval in the last two preceding periodic intervals, in order to decide the continuation of the charging process.
So, a MONITOR 74 circuit is added, with the op°amp IC
76 (CA 3080), acting as a difference amplifier, far monitor-ing the potential difference across the current limiter re-sistor 81 of the POWER SUPPLY 18. The magnitude o~f this po-tential difference can be sampled and held, via line 75, by the additional S/H 5c or S/H 5d circuits (similar to S/H 5a and S/H 5b and reset also by the Master Reset Pulse when the SYSTEM 1 is powered on).
The CONTROL 2b circuit is similar to the replaced CON-TROL 2a except the, as follows, described differences and ad-ditions to accommodate the extra operations.
Thus, now in a periodic interval when. in the middle of the charge, the binary counter IC 29 has count 1G0 of the 1 Hz. pulses its output Q4 goes high which connected with the additional AND gate 30 contributes so that the 1 Hz pulses can pass also to the additional decade counter IC 33 (CD
4017) .
With the first pulse counted by decade counter IC 33, its output Ql goes high activating whichever of the two addi-tional AND gates ICs 35 or 44 is in service and so resetting the corresponding S/H 5c or S/H 5d.
With the second pulse counted by decade counter IC 33, its output Q2 goes high now, activating whichever of the two additional AND gates TCs 34 or 45 is in service and so en-ables the sampling and holding by the corresponding S/H 5c or S/H 5d, of the magnitude of the potential difference across the current limner resistor 81, monitored by the MONITOR 74.
With the third pulse counted by decade counter IC 33, its output Q3 goes high now, which in turn being connected PC'I'IGR94/000~4 '~, W~ 94/?,2~2~2 with its input CLOCK TNHIBIT, causes the freezing (stand still) of this counter IC 33 (in this actual output position) by continuously inhibiting the input to the 1 Hx pulses (re-5 setted later with the signal "OK'°).
The COMPARATOR 9b circuit is replacing and practically is the double of the COMPARATOR 9a of the first embodiment of the present invention and so, now, besides the samples of S/H
5a and S/H 5b which are compared by the comparators 63 and 10 64 correspondingly, there is compared by the two additional (op-amps) comparators 67 and 68, via lines 65 and 65, the samples of S/H 5c and S/H Sd correspondingly.
Therefore, when the signal "Compare" is send, now, there is requested to COMPARATOR 9b to confirm if the recent 15 sample of the terminal voltage of the battery 12a is greater than the previous similar sample and, in assistance, to con-firm if the recent sample of the potential difference across resistor 81 is lesser than the previous similar sample, and then, now, send the signal "OK°° to CONTROL 2c, in order to continue the charging process, if either one or both of the ;results are positive, otherwise terminate it.
Third embodiment . By referring now: also, to Fig. 13 replacing Fig. 3, and to. Fig. 14, there is illustrated a third preferred embod-iment of a charging system according to the present inven-tion. This third illustrated embodiment is similar to the first (or alternatively to the second) preferred embodiment with certain additions to accommodate the serial charging of a. multiplicity of batteries (up to 10 batteries in this il-lustrated embodiment).
So, there is added an EXTENSION 85 circuit which is a modification of the connection between the SYSTEM ' 1 and the battery 12a of the first embodiment of the present invention, to facilitate the serial connection to the SYSTEM 1 of up to ten batteries for charging.
Therefore, line 6 is connected indirectly to the bat-teries 12a, 12b, 12c, ... 12j through the relays 88a, 88b, 88c, ... 88j. When, someone of the outputs Q0, Q1, Q2, ... or SUBSTITUTE SHEET

WO 94122202 PCTIGR94/00004 " , ~~~1 16 , ~~3 _ Q9 of the decade counter IC 86 (CD 4017) goes high, triggers the corresponding of the transistors 87a, 87b, 87c, ... or 87j, which in turn activates the corresponding relay and then the latter connects line 6 with the corresponding battery.
Also, the CONTROL 2c circuit is similar to the re-placed CONTROL 2a of the first embodiment except the, as fol-lows, differences and additions to accommodate the extra ap-erations.
Thus, when the SYSTEM I is powered on, the Master Re-set Pulse resets also, via line 48, the decade counter IC 86 and so its output QO goes high which triggers the transistor 87a and this. in turn, activates the relay 88a and therefore the first battery 12a is connected to the SYSTEM 1. There-after, the charging proceeds as usual.
Now, when in some periodic interval (after the signal "Compare" has been sent to the COMPARATOR 9a) there is no confirmation with the signal "OK" which would trigger another periodic interval (this is taken as meaning that the battery should be considered as being charged) then the decade count er IC 26 continues to count the 1 Hz pulses until:xi.output Q? goes high which is connected with the additional AND gate xC 25: Now, if in the AND gate IC 25, there is. not also pre-sent a (high) signal "Last Battery". then the decade saunter 26 continues to count the 1 Hz.. pulses until its output Q9 goes high and which, from one . hand being connected via ~ line 47 with the CLOCK input of decade counter IC 86 causes to the Tatter to count one pulse and therefore its output Ql goes high which, in turn, causes the disconnection of the first battery 12a and the connection of the second battery 12b; and from the other: hand, by repeating a similar action as the.
'Master Reget Pulse (but excepting the counter 86 from this resetting) causes the beginning of another charging process, now fox. the newly connected battery.
Whenever, under this mode of, switching connection of the batteries with the SYSTEM l, the output Q9 of the decade counter IC 86 would go high, then it should cause from one hand the freezing (stand still) of this decade counter IC 86, since it is connected with its input CLOCK INHIBIT, and from the other hand the sending, via line 46, of the signal °'Last SUBSTITUTE SHEET

WO 9418.2202 PCT/GR94I00004 1?
Battery" which should stay present in the AND gate IC 25, waiting to go high the output Q7 of the decade counter IC 26.
Thus, when after sometime the conne~aed last battery 12j would be considered as being charged, then by going high also the output Q7 of the decade counter IC 26, the AND gate IC 25 would be activated, which being connected with the input CLOCK INHIBIT of the decade counter IC 26, should cause the freezing (stand still) of the latter and the illumination of the LED 31 indicating the end of the whole charging process.

StJBSTITt~TL~ SIi~ET

Claims (2)

1. An integral fully automatic charging system (1), self-adjusting to a variety, of different voltage, capacity, chemistry and construction design types, of rechargeable batteries having a battery voltage that varies with their state of charge, comprising:
control means (2), for timing a series of predetermined short duration, of the order of 6 min, periodic intevals of charging, wherein each one of said periodic intervals includes an initial subinterval of inactivity of predetermined short duration, of the order of 1 min, and for enabling various predetemined control signals (4), during the charging process;
reading means (5), responsive to a first plurality of selected signals (4a, 4b, 4g, 4h) of said various control signals enabled immediately after termination of said subinterval of inactivity and connected with the battery (12a) which is selected from said variety of different voltage, capacity, chemistry and construction design types, of rechargeable batteries and connected each time to said charging system, for reading in each one of said periodic intervals, the battery's terminal voltage parameter as a parameter associated with said connected battery, and wherein said reading means includes means for sampling said battery's terminal voltage parameter in each said periodic interval and holding said sampled battery's terminal voltage parameter, at least, until after another said sampling and holding of said battery's terminal voltage parameter has been carried out in the next said periodic interval;
comparator means (9), connected to said reading means and responsive to a second plurality of selected signals (4c, 4i) of said various control signals, enabled after termination of said subinterval of inactivity, following said first plurality of selected signals, for comparing said sampled and held battery's terminal voltage parameter of the running said periodic interval, with said sampled and held battery's terminal voltage parameter of the immediately previous said periodic interval, and wherein said comparator means, includes means, for effecting termination of said charging process, based upon 18a evidence that there is no increase a.n the value of said battery's terminal voltage parameter of any battery type -selected from said variety, of different voltage, current, chemistry and construction design types, of rechargeable batteries, and connected each time to said charging system- sampled and held in the running said periodic interval, compared to the value of said battery's terminal voltage parameter of said connected battery sampled and held in the immedi-ately previous said periodic interval, or based upon evidence that, for a limited predetermined number of repetitions, said value of said battery's terminal voltage parameter sampled and held in the running said periodic interval is equal to the value of said battery's termi-nal voltage parameter of said connected battery sampled and held in the immediately previous said periodic interval;
reference voltage means (10), connected to said reading means, responsive to a third plurality of selected signals (4d, 4j) of said various control signals, enabled if said comparator means has not effected termination of said charging process, for setting, independ-ently in each one of said periodic intervals, the charging voltage parameter associated with the voltage of the charging current under which is charged a different voltage type battery -selected from said variety, of different voltage, current, chemistry and construction design types, of rechargeable batteries, and connected each time to said charging system- said charging voltage parameter being set based on said battery's terminal voltage parameter of any different voltage type battery -selected from said variety, of different voltage, current, chemistry and construction design types, of rechargeable batteries, and connected each time to said charging system- amplified slightly higher by a predetermined factor of the order of 1.25, constant for all of said periodic intervals, said battery's terminal voltage parameter being sampled and held in the corresponding said periodic interval; and charging means (14, 15, 18), connected to said reference voltage means and coupled to said connected battery, for allowing, in each one of said periodic intervals, the magnitude of said charging current, under regulated said voltage of the charging current in accordance with said charging voltage parameter of the corresponding said periodic interval, to vary according to internal resistance of any different capacity type battery -selected from said variety, of different voltage, current, chemistry and construction design types, of rechargeable batteries, and connected each time to said charging system- at its actual charging state.
2. A charging system as set forth in claim 1, further compris-ing means (85), connected to said control means (2c), for switching the connection of said charging system with one battery of a series of predetermined number of said variety of different voltage, current, chemistry and construction design types, of rechargeable batteries, every time said charging process of the connected said one battery is terminated, with the next one battery of said series of predetermined number of said variety of different voltage, current, chemistry and construction design types, of rechargeable batteries and effecting restarting of said charging process with this recently connected battery of said series of predetermined number of said variety of different voltage, current, chemistry and construction design types, of rechargeable batteries.
CA002136301A 1993-03-19 1994-03-18 Battery charging system, stepping and interactively self-adjusting to the nominal voltage of the battery Expired - Fee Related CA2136301C (en)

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GR93100109 1993-03-19
GR930100109 1993-03-19
PCT/GR1994/000004 WO1994022202A1 (en) 1993-03-19 1994-03-18 Battery charging system, stepping and interactively self-adjusting to the nominal voltage of the battery

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EP0642702A1 (en) 1995-03-15
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US5691623A (en) 1997-11-25
WO1994022202A1 (en) 1994-09-29
GR1001561B (en) 1994-04-29
DE69413917D1 (en) 1998-11-19
EP0642702B1 (en) 1998-10-14
AU689098B2 (en) 1998-03-26
DE69413917T2 (en) 1999-07-01

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