NZ260221A - Series regulator for bleed current - Google Patents

Series regulator for bleed current

Info

Publication number
NZ260221A
NZ260221A NZ26022194A NZ26022194A NZ260221A NZ 260221 A NZ260221 A NZ 260221A NZ 26022194 A NZ26022194 A NZ 26022194A NZ 26022194 A NZ26022194 A NZ 26022194A NZ 260221 A NZ260221 A NZ 260221A
Authority
NZ
New Zealand
Prior art keywords
transistor
current
load
emitter
resistor
Prior art date
Application number
NZ26022194A
Inventor
Murray David Wild
Ronald Christopher Shaw Fox
Original Assignee
Alcatel Australia
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Alcatel Australia filed Critical Alcatel Australia
Publication of NZ260221A publication Critical patent/NZ260221A/en

Links

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02HEMERGENCY PROTECTIVE CIRCUIT ARRANGEMENTS
    • H02H9/00Emergency protective circuit arrangements for limiting excess current or voltage without disconnection
    • H02H9/02Emergency protective circuit arrangements for limiting excess current or voltage without disconnection responsive to excess current
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04MTELEPHONIC COMMUNICATION
    • H04M19/00Current supply arrangements for telephone systems
    • H04M19/08Current supply arrangements for telephone systems with current supply sources at the substations

Description

<div class="application article clearfix" id="description"> <p class="printTableText" lang="en">Priority D®te{§): isi.sla.B <br><br> \ Comptete Specification Filed: .;k?.)-S.|.9.4v.. <br><br> ^ Class: {§)....QQS.E)../.Sfc.j <br><br> ] <br><br> | Publication Data: <br><br> i P.O. Journal No: LVhf?..^. <br><br> , -vr?:MT OFF ICS <br><br> I -- <br><br> \ <br><br> « <br><br> \ <br><br> L <br><br> i <br><br> L-. <br><br> OMAR 1934 • <br><br> NEW ZEALAND PATENTS ACT 1953 COMPLETE SPECIFICATION <br><br> " CURRENT CONTROL CIRCUIT " <br><br> WE, ALCATEL AUSTRALIA LIMITED,ooo o©£&gt; 3&amp;&gt;3) A Company of the State of New South Wales, of 280 Botany Road, Alexandria, New South Wales, 2015, Australia, hereby declare the invention for which we pray that a patent may be granted to us, and the method by which it is to be performed, to be particularly described in and by the following statement: <br><br> l <br><br> This invention relates to a bleed current circuit to provide power to an electronic circuit in its quiescent mode. This bleed current may be necessary to provide power for circuit elements such as a memory or processor while the circuit is not in use. A common situation where the need for such a bleed circuit arises is in the case of an ON-HOOK telephone subset, and the invention will be described in that context. <br><br> Many modern telephones include memories and processors and are connected to the phone line via a line switch which is open circuit when the phone is ON-HOOK. The phone is powered from the exchange via the phone line so when the phone is ON-HOOK the phone is unpowered. <br><br> One way to continue to provide power for the phone when ON-HOOK is to provide a large value bleed resistor (~ 1MQ) shunting the line switch. However, this solution may not always be acceptable. In Australia, there is a requirement that bleed currents be kept below 50//A, so the bleed resistor must limit the current to that value with maximum line voltage which may be of the order of 50V. However where two phones are connected in parallel to a line and one of the phones is taken OFF-HOOK the line voltage may fall to e.g., 10V. This means that the bleed current for the ON-HOOK phone is reduced in proportion to the change in line voltage. This may cause the bleed current to fall below that required by the phone's circuit. Alternatively if the bleed resistor is chosen to provide sufficient current at minimum line voltage, the current may exceed the permitted level at maximum line voltage. <br><br> 2 <br><br> According to the invention there is provided a current supply arrangement to supply a load current to a load via a load switch when the load is in an activated condition with the load switch being switched ON, and to supply a bleed current to the load via a bleed current circuit when the load is in a quiescent condition with the load switch being switched OFF, wherein the bleed current circuit is in parallel with the load switch, the bleed current circuit including a first transistor with its emitter-collector path in series with a first resistor and the load, a second transistor with its emitter-collector path in series with a second resistor and the load, the base of the first transistor being connected to the junction of the collector of the second transistor and the second resistor, and a third transistor with its collector emitter path in series between a third resistor and the load, the base of the thrid transistor being connected to the collector of the first transistor, the third resistor being connected between the base-emitter terminals of the second transistor, wherein, when the current through the third resistor causes the voltage drop across the third resistor to exceed the turn-on base-emitter voltage of the second transistor, the emitter-collector voltage of the second transistor falls, reducing the emitter collector current of the furst transstor, which tends to reduce the collector-emitter current of the third transistor, whereby the collecter-emitter current of the third transistor is limited. <br><br> Figure 1 shows a bleed circuit embodying the invention. <br><br> In Figure 1 an on-hook load L1, e.g., a telephone memory and real time clock circuit is connected to a source of electric power VS, e.g., a telephone line, via a switch S1, e.g., the line switch, and a diode D1, and an off-hook load L2 e.g., a telephone speech circuit being also coupled to VS. In the case of an electronic line switch, S1 may be controlled from a handset detection circuit which switches S1 on and off via line W1 depending on whether the handset is OFF-HOOK or ON-HOOK respectively. Line W1 may also be used to switch S1 where the subset includes a handsfree control switch. <br><br> When the phone is ON-HOOK, S1 is open circuited, so the phones memory and real time clock circuit is powered via the bleed circuit. The bleed circuit contains first, second, and third transistors T1, T2 and T3, resistors R1, R2 and R3 and capacitor C1. Diode D1 prevents current from the bleed circuit flowing via load L2. <br><br> Under normal operating conditions T1, T2 and T3 are biased in their <br><br> 3 <br><br> linear regions. In one embodiment R1 and R3 are each of the order of 5MQ and R2 is of the order of 14KQ. The main bleed current path is via R2 and the collector-emitter path of TR3 to load L1. Thus the supply voltage VS is dropped across R2, VCE of TR3, and across the load (VL). The operating point of T3 is chosen so that for a nominal line voltage Vs of 50v, the bleed current will be 45jl/A. This means that (45/vA x 14000Q) volts are dropped across R2 so that the remaining voltage (50 - VR2) is dropped across TR3 and load L1. <br><br> VR2*=0.5v and the load voltage VL is an order of magnitude smaller than VS. Thus the major part of VS is dropped across TR3 (~47v). T3 is controlled by the current passed by T\ and T1 in turn is controlled by T2. T2 is controlled by the voltage drop across R2 as this corresponds to VBE for T2. <br><br> Thus as the bleed current through R2 increases, VBE for T2 increases. When VBE T2 exceeds the turn-on voltage, T2 begins to conduct. This causes a reduction in VCE for T2 which is equal to VBE for T1. Thus the emitter-collector current of T1 is reduced, reducing the base current for T3. Consequently the collector-emitter current of T3 is stabilized and prevented from exceeding the predetermined limit. <br><br> The bleed current is determined by the formula: <br><br> jj-,- VBE(T2) VR3 <br><br> R2 R3 <br><br> When VS falls to a level where VR2 &lt; V BE(turnon) (approximately 0.5v) for T2, T2 is switched off and does not contribute to the bleed current. The <br><br> 4 <br><br> bleed current lb is determined by the gains of T1 and T3, so that <br><br> Jb_ 01.03 (VS-VL) <br><br> R3 <br><br> Where £1 is the gain of T1, and <br><br> 03 is the gain of T3. <br><br> Capacitor C1 filters noise from the line. <br><br></p> </div>

Claims (6)

<div class="application article clearfix printTableText" id="claims"> <p lang="en"> What we claim is:<br><br>
1. A current supply arrangement to supply a load current to a load via a load switch when the load is in an activated condition with the load switch being switched ON, and to supply a bleed current to the load via a bleed current circuit when the load is in a quiescent condition with the load switch being switched OFF, wherein the bleed current circuit is in parallel with the load switch, the bleed current circuit including a first transistor with its emitter-collector path in series with a first resistor and the load, a second transistor with its emitter-collector path in series with a second resistor and the load, the base of the first transistor being connected to the junction of the collector of the second transistor and the second resistor, and a third transistor with its collector emitter path in series between a third resistor and the load, the base of the third transistor being connected to the collector of the first transistor, the third resistor being connected between the base-emitter terminals of the second transistor, wherein, when the current through the third resistor causes the voltage drop across the third resistor to exceed the turn-on base-emitter voltage of the second transistor, the emitter-collector voltage of the second transistor falls, reducing the emitter-collector current of the first transistor, which tends to reduce the collector-emitter current of the third transistor, whereby the collecter-emitter current of the third transistor is limited.<br><br>
2. An arrangement as claimed in claim 1 in which tfefi|fr^|%an'sistor is a<br><br> A* "<br><br> first PNP transistor, the second transistor is a second PNP transistor, and the third transistor is an NPN tranistor.<br><br>
3. An arrangement as claimed in claim 1 or claim 2, including a noise suppression capacitor connected between the base and the emitter of the first transistor.<br><br>
4. An arrangement as claimed in any one of claims 1 to 3, wherein the first and second resistors are of the order of 5MQ and the third resistor is of the order of 14KQ.<br><br>
5. A telephone circuit including a current supply arrangement as claimed in any one of claims 1 to 4.<br><br>
6. A telephone circuit including a current supply arrangement substantially as herein described with reference to the accompanying drawing.<br><br> ALCATEL AUSTRALIA LIMITED<br><br> B. O'Connor Authorized Agent P5/1/1703<br><br> 7<br><br> </p> </div>
NZ26022194A 1993-05-19 1994-03-30 Series regulator for bleed current NZ260221A (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
AUPL886993 1993-05-19

Publications (1)

Publication Number Publication Date
NZ260221A true NZ260221A (en) 1996-09-25

Family

ID=3776903

Family Applications (1)

Application Number Title Priority Date Filing Date
NZ26022194A NZ260221A (en) 1993-05-19 1994-03-30 Series regulator for bleed current

Country Status (4)

Country Link
BE (1) BE1009093A5 (en)
GB (1) GB2278246B (en)
NZ (1) NZ260221A (en)
SG (1) SG44687A1 (en)

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3691426A (en) * 1971-10-26 1972-09-12 Teledyne Inc Current limiter responsive to current flow and temperature rise
JPS5121781B2 (en) * 1973-05-02 1976-07-05
GB2182527B (en) * 1985-11-02 1989-11-29 Stc Plc Telephone circuit
IT1186131B (en) * 1985-12-02 1987-11-18 Gte Telecom Spa POWER CIRCUIT FOR TELEPHONE DEVICES
US4975949A (en) * 1989-06-15 1990-12-04 Plantronics, Inc. Electronic headset telephone

Also Published As

Publication number Publication date
BE1009093A5 (en) 1996-11-05
GB9409979D0 (en) 1994-07-06
SG44687A1 (en) 1997-12-19
GB2278246B (en) 1997-04-09
GB2278246A (en) 1994-11-23

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