Field of the Invention
Our present invention relates to an amplifier for audio signals, more particularly to an amplifier of class AB.
Background of the Invention
Amplifiers of class B or AB, in which at least the final stage draws current only during part of a signal cycle, have the advantage of greater output power in comparison with class-A amplifiers, enabling transistors of limited physical dimensions to produce large-amplitude output signals. This is particularly important for audio amplifiers realized with integrated circuitry.
In a larger system, in which such an amplifier is energized along with one or more additional amplifiers or other equipment from a common direct-current source, inconveniences arise from the fact that the current consumption of the amplifier varies with signal amplitude; this variation, of course, influences the operation of the remaining device or devices drawing current from the common source. A conventional solution of this problem (aside from the possibility of using a separate power supply for any amplifier of the class referred to) lies in the provision of a current sink connected in parallel with the amplifier of class B or AB and controlled to draw direct current at a rate complementary to that of the amplifier. This solution, evidently, is rather uneconomical in view of the wasteful energy dissipation in the current sink.
Object of the Invention
The object of our present invention, therefore, is to provide an amplifier -- particularly of class AB -- which draws a substantially constant direct current from its power supply without the need for a compensatory current sink.
Summary of the Invention
An amplifier embodying our present improvement comprises, in a manner known per se, a preliminary stage including pilot transistor means and a final stage including output transistor means connected in parallel with each other across a source of direct current, the pilot transistor means receiving the incoming audio signals and controlling the conduction of the output transistor means in response to these signals, by way of an interstage biasing circuit, for corresponding energization of a load. In accordance with our invention, the conduction control exerted by the biasing circuit is modified by current-sensing means, connected between the two stages, to maintain a substantially constant flow of direct current at least in the final amplifier stage.
In the embodiment more particularly described hereinafter, the preliminary stage includes a constant-current generator in series with a first and a second pilot transistor of opposite conductivity types, the current-sensing means comprising a feedback transistor connected to the constant-current generator for energization in parallel with the pilot transistors. The feedback transistor has an input (i.e. a base) tied to a junction between an output resistor and a first power transistor in the final stage, that stage also including a complementary second power transistor connected across the load circuit. The first pilot transistor, which is of the same conductivity type as the feedback transistor, has its input (base) tied to a point of fixed potential, advantageously via a Zener diode; the audio signals are applied to the input (base) of the second pilot transistor.
The biasing circuit comprises a pair of leads respectively extending from the inputs (i.e. bases) of the two power transistors to opposite ends of resistance means inserted between the two pilot transistors, more specifically between the collectors thereof. The biasing current flowing through the resistance means, which drives the two power transistors in push-pull, is modulated on the one hand by the incoming audio signal and on the other hand by changes in the junction potential between the output resistor and the first power transistor which, through the differential action of the circuit including the feedback transistor and the first pilot transistor, leads to a compensatory change in the distribution of the current emanating from the constant-current generator.
Brief Description of the Drawing
The above and other features of our invention will now be described in detail with reference to the accompanying drawing in which:
FIG. 1 is a circuit diagram of a class-AB audio amplifier embodying our invention; and
FIG. 2 is a circuit diagram similar to FIG. 1, illustrating a modification.
Specific Description
The amplifier shown in FIG. 1, constituted by integrated circuitry within a dotted rectangle H, comprises a preliminary stage with a first pilot transistor T.sub.1 of PNP type and a second pilot transistor T.sub.2 of NPN type, a final stage with a first power transistor T.sub.3 of NPN type and a second power transistor T.sub.4 of PNP type, a biasing resistor R.sub.3 inserted between the collectors of the two complementary pilot transistors, a constant-current generator G.sub.1 in series with the two pilot transistors and resistor R.sub.3, a PNP feedback transistor T.sub.5 connected in parallel with these pilot transistors to generator G.sub.1 between a pair of conductors 11 and 12, a Zener diode D.sub.Z connected in series with a resistor R.sub.2 between these conductors, and another constant-current generator G.sub.2 also connected between conductors 11 and 12 in series with resistor R.sub.3 and transistor T.sub.2. Conductor 11 is tied to a supply terminal K which is energized with a positive voltage +V.sub.s from a d-c source, not further illustrated, whose negative terminal M is grounded and tied to conductor 12.
The base of pilot transistor T.sub.1 is connected to the junction A of Zener diode D.sub.Z with resistor R.sub.2 to receive a constant biasing potential V.sub.z. The base of feedback transistor T.sub.5 is tied to a terminal B representing a junction point between the collector of power transistor T.sub.3 and an external output resistor R.sub.1 lying between terminals B and K. Terminal B is further connected to the opposite pole of the source, i.e. ground, via a capacitor C.sub.1 defining with resistor R.sub.1 an integrating network whose time constant preferably exceeds a cycle of the lowest audio frequency to be amplified.
A partly resistive load R.sub.L, such as a loudspeaker, is shown connected between ground terminal M and another terminal E by way of a blocking capacitor C.sub.2, terminal E being tied to the interconnected emitters of power transistors T.sub.3 and T.sub.4. The base of pilot transistor T.sub.2 is connected to a terminal F which receives incoming audio signals V.sub.a through a coupling capacitor C.sub.3 and is biased at a suitable positive potential +V.sub.b, considerably lower than supply voltage +V.sub.s, whose magnitude is less than the average signal amplitude so that transistor T.sub.2 conducts only during part of a negative half-cycle. The collectors of the two pilot transistors T.sub.1, T.sub.2, and therefore the two ends of resistor R.sub.3, are connected to the bases of power transistors T.sub.3, T.sub.4 by way of respective leads 13, 14 forming part of a biasing circuit for the latter transistors.
In operation, but in the presence of an audio signal V.sub.a, transistor T.sub.2 conducts and draws current from both generators G.sub.1 and G.sub.2 to develop a voltage drop across resistor R.sub.3 whereby the two complementary power transistors T.sub.3 and T.sub.4 are rendered conductive, drawing a constant repose current I.sub.0 from the power supply through output resistor R.sub.1. The resulting voltage drop across the latter resistor produces a junction potential V.sub.j at terminal B which may be so chosen, with reference to the Zener voltage V.sub.z at point A, that a suitable portion of the generator current traverses the resistor R.sub.3.
Upon the appearance of an input signal V.sub.a, the collector/emitter resistance of transistor T.sub.2 changes along with the biasing voltages on leads 13 and 14 whereby the conductivity of power transistors T.sub.3 nd T.sub.4 varies in opposite senses. With signals above a certain amplitude threshold, transistor T.sub.2 cuts off completely during part of a negative half-cycle and so does transistor T.sub.4. With transistor T.sub.3 saturated during that cut-off phase, the current traversing the resistor R.sub.1 divides between capacitors C.sub.1 and C.sub.2, part of it flowing through the load R.sub.L. During positive half-cycles, transistors T.sub.2 and T.sub.4 become highly conductive and cause the discharge of capacitor C.sub.2 with reversal of the load current.
If transistor T.sub.3 were cut off during conduction of transistor T.sub.4, a charge depending on signal amplitude would build up on capacitor C.sub.1 and would thereby drive the junction B more positive so that the output current through resistor R.sub.1 would decrease. An increase in junction potential V.sub.j, however, lowers the conductivity of feedback transistor T.sub.5 which results in a reduction of the internal resistance of constant-current generator G.sub.1 for a complementary reduction of the voltage drop thereacross with maintenance of the rated output current. An increased portion of this output current now passes through pilot transistor T.sub.1, biasing resistor R.sub.3 and pilot transistor T.sub.2 ; this drives the lead 13 more positive and therefore enhances the conductivity of transistor T.sub.3. Obviously, a reduction of potential V.sub.j below its normal value would have the opposite compensatory effect.
Thus, the circuit arrangement according to our invention maintains a substantially constant voltage drop across resistor R.sub.1 and therefore a current flow through that resistor which remains close to its repose value I.sub.0 irrespectively of signal amplitude. Since generators G.sub.1 and Zener diode D.sub.Z also draw practically constant currents, and since the current of generator G.sub.2 (less than 7 milliamp) is negligible compared with the current flowing through the power transistors T.sub.3 and T.sub.4 (about 0.5 to 1 amp), the total current consumption of the amplifier is substantially invariant.
In FIG. 2, we have shown a similar amplifier wherein, however, the biasing resistance between the collectors of pilot transistors T.sub.1 and T.sub.2 includes the forward resistances of two cascaded diodes D.sub.1 and D.sub.2 in series with resistor R.sub.3. Diodes D.sub.1 and D.sub.2 have thermal coefficients of conductivity substantially equaling those of the base/emitter paths of power transistors T.sub.3 and T.sub.4 in order to balance, in a manner known per se, the effect of thermal changes upon the conduction of these transistors.
As further shown in FIG. 2, constant-current generator G.sub.2 is connected to supply voltage +V.sub.s via an ancillary conductor 11' and a terminal N, this generator feeding only the diodes D.sub.1 and D.sub.2 in series with transistor T.sub.2 but supplying virtually no current to biasing resistor R.sub.3. A switch S, normally engaging a contact I, connects terminal K and conductor 11 to supply voltage +V.sub.s so that the system of FIG. 2 operates in essentially the same manner as that of FIG. 1. An optional reversal of switch S, from contact I to an alternate contact II, short-circuits the output resistor R.sub.1 and disconnects transistors T.sub.1 and T.sub.5 as well as generator G.sub.1 and Zener diode D.sub.Z from the supply so that the amplifier operates in the conventional manner, e.g. when driven in class A or when no other devices affected by a change in current consumption are connected to the same power supply.