Background of the Invention
The present invention relates to an accurate signal generating circuit which can be manufactured in the form of an integrated circuit.
A conventional signal generating circuit of the same general type to which the invention pertains is shown in FIG. 1A. In FIG. 1A, reference numeral 1 designates a timing pulse signal generating circuit; 2, a comparison circuit; R.sub.1 and R.sub.2, comparison voltage generating resistors; V.sub.1, a comparison voltage; Q.sub.1, a switching transistor; R, a timing resistor which is externally connected to the circuit; and C, a timing capacitor which is also externally connected to the circuit.
When the timing signal generating circuit produces a pulse of a signal S.sub.1, the switching transistor Q.sub.1 is turned on and the voltage at the circuit point S.sub.2 becomes the collector saturation voltage V.sub.CES of the transistor Q.sub.1, as shown in FIG. 1B. When the signal S.sub.1 returns to the low level, the switching transistor Q.sub.1 is rendered nonconductive. As a result, a charging current flows through the capacitor C via the resistor R. In this case, the voltage E at the circuit point S.sub.2 can be represented by the following expression:
The period of time T required for establishing E=V.sub.1 is:
When E becomes equal to V.sub.1, the state of the comparison circuit 2 is changed and the comparison circuit provides an active output.
In the conventional signal generating circuit designed as described above, the period of time T required for the voltage at the circuit point S.sub.2 to become equal to the comparison voltage includes terms of the supply voltage V.sub.cc and the collector saturation voltage V.sub.CES. Accordingly, the period of time T is affected by variations of the supply voltage V.sub.cc and the variations in the collector saturation voltage V.sub.CES. Temperature changes also affect T. Therefore, it is impossible to determine the period of time T with a high accuracy. This is especially difficult in a low voltage circuit operating from a low supply voltage.
An object of the invention is to overcome the above-described difficulties accompanying a conventional signal generating circuit. More specifically, an object of the invention is to provide an accurate signal generating circuit which is not affected by variations of the supply voltage and temperature or by variations in characteristics among transistors, which has a simple circuit arrangement, and is suitable for manufacturing in the form of an integrated circuit.
Summary of the Invention
In accordance with the above and other objects of the invention, there is provided a temperature-stable signal generating circuit, adapted for manufacture in the form of an integrated circuit, including a differential amplifier driven by a timing signal. A comparison voltage, applied to one input terminal of a comparison circuit, is provided by resistively voltage dividing a DC power source voltage. The differential amplifier is enabled by the timing signal to connect the DC source to the RC time constant circuit. The voltage across the time constant circuit is applied to a second input of the comparison circuit.
Brief Description of the Drawings
FIG. 1A is a circuit diagram showing a conventional signal generating circuit;
FIG. 1B is a waveform diagram used for a description of the operation of the circuit shown in FIG. 1A;
FIG. 2A is a circuit diagram showing the basic arrangement of a signal generating circuit according to the invention;
FIG. 2B is a waveform diagram used for a description of the operation of the circuit of FIG. 2A;
FIG. 3 is a circuit diagram showing a detailed example of the signal generating circuit of FIGS. 2A and 6A;
FIGS. 4 and 5 are circuit diagrams showing modifications of the signal generating circuit of FIG. 3;
FIG. 6A is a circuit diagram showing another modification of a signal generating circuit according to the invention;
FIG. 6B is a waveform diagram used for a description of the operation of the circuit of FIG. 6A;
FIG. 7A is also a circuit diagram showing another modification of a signal generating circuit according to the invention; and
FIG. 7B is a waveform diagram used for a description of the operation of the circuit of FIG. 7A.
Description of the Preferred Embodiments
The invention will now be described in further detail with reference to FIGS. 2A through 7B.
FIG. 2A is a block diagram showing the basic arrangement of a signal generating circuit according to the invention, and FIG. 2B is a timing chart showing voltage waveforms at various circuit points in the circuit of FIG. 2A.
In FIG. 2A, reference character V.sub.a designates a reference voltage; V.sub.b, a comparison voltage; and SW, a switch.
When a timing signal generating circuit 1 outputs a pulse of a signal S.sub.1, the switch SW is turned on, as shown in FIG. 2B, so that a charging current flows through an externally connected capacitor. At that time, the voltage E at the circuit point S.sub.2 is equal to the reference voltage Va. In this case, a comparison circuit 2 provides an output S.sub.3. When the signal S.sub.1 returns to the low level, the switch SW is turned off. The discharge current of the capacitor C flows through an externally connected resistor R. In this case, the voltage E at the circuit point S.sub.2 is:
The time T.sub.0 required for the voltage E to become equal to the comparison voltage V.sub.b is:
where:
Therefore:
T.sub.0 =-RC log.sub.e (R.sub.2 /(R.sub.1 +R.sub.2)).
That is, the time T.sub.0 is determined by the resistance values of the comparison resistors R.sub.1 and R.sub.2 and the capacitance value of the capacitor C only, and is independent of the absolute values of the voltages V.sub.a and V.sub.b. The time T.sub.0 can of course easily be changed by adjusting the values of the externally connected resistor R and the externally connected capacitor C.
An example of a signal generating circuit according to the invention will now be described with reference to FIG. 3. In FIG. 3, transistors Q.sub.1 and Q.sub.2 form a differential pair which is driven by a constant current circuit including a transistor Q.sub.6. Transistors Q.sub.3 and Q.sub.4 form a current mirror circuit. That is, the transistor Q.sub.4 passes a current which is equal to that which the transistor Q.sub.3 passes.
A transistor Q.sub.5 is used for current amplification, applying current to an externally connected resistor R and an externally connected capacitor C. The transistors Q.sub.1 through Q.sub.5 form a 100% negaive feedback amplifier driven by the transistor Q.sub.6, which operates as a constant voltage source and a switch.
Transistors Q.sub.7 and Q.sub.8 form a differential pair which is driven by a current source I.sub.0. Transistors Q.sub.9 and Q.sub.10 form a current mirror circuit. That is, the transistor Q.sub.10 passes a current which is equal to that which the transistor Q.sub.9 passes. The transistors Q.sub.7 through Q.sub.10 and the current source I.sub.0 form an amplifier circuit which has an extremely large voltage gain. The amplifier serves as the voltage comparison circuit 2.
In FIG. 3, reference character V.sub.a designates an internally produced reference voltage having a suitable value. Further in FIG. 3, reference character S.sub.1 designates a timing signal used for charge and discharge control. When the timing signal S.sub.1 is raised to the high level, the transistor Q.sub.6 is driven to cause the differential amplifier to be operated. The voltage at the base of the transistor Q.sub.2, that is, the voltage at the external connecting terminal, becomes equal to the voltage at the base of the transistor Q.sub.1, namely, the reference voltage V.sub.a. In this case, current is supplied through the transistor Q.sub.5 to an extremely connected resistor R and an externally connected capacitor C. The transistor Q.sub.5 has a capacity large enough to quickly charge the capacitor C.
When the signal S.sub.1 is set to the low level, the driving of the transistor Q.sub.6 is suspended. As a result, all the transistors Q.sub.1 through Q.sub.5 are rendered nonconductive and the capacitor C is discharged. In this case, the voltage E at the circuit point S.sub.2 is:
The error component is only the base current of the transistor Q.sub.7. The error can be made insignificantly small by using a transistor having a sufficiently high h.sub.fE or by employing Darlington-connected transistor.
The comparison voltage V.sub.b is applied to the base of the transistor Q.sub.8 in the voltage comparison circuit 2. When E=V.sub.b, the output S.sub.3 is set to the low level. The time T.sub.0 required for the voltage E to become equal to the comparison voltage V.sub.b is:
Accordingly, even if the reference voltage V.sub.a varies with temperature or the supply voltage, the time T.sub.0 is not at all affected thereby.
One factor affecting the time T.sub.0 is R.sub.2 /(R.sub.1 +R.sub.2). Variations of these resistances can be compensated for by using a variable resistor as the externally connected resistor R. That is, the variations can be compensated for by adjusting a variable resistor. The resistors R.sub.1 and R.sub.2 have the same temperature characteristic because they are IC internal resistors. Therefore, once the adjustment of the variable resistor is made, the time T.sub.0 will not be affected by temperature changes.
Another factor affecting T.sub.0 is the product RC. However, this effect can be eliminated by using a resistor and a capacitor which have very stable temperature characteristics.
The externally connected capacitor C may be connected to the power source V.sub.cc as shown in FIG. 4. However, it should be noted that, in this case, the operation of the circuit is affected by the ripple component of the power source.
The signal generating circuit may be modified as shown in FIG. 5 wherein, instead of NPN transistors and PNP transistors as employed in the arrangement of FIG. 3, the opposite conductivity types are employed, that is, PNP transistors and NPN transistors are employed, respectively.
FIG. 6A shows another example of a signal generating circuit of the invention. This embodiment is formed by adding an R-S flip-flop 3 to the circuit of FIG. 2A or 3. In this example, the time from the leading edge of the timing signal can be set as shown in FIG. 6B.
The R-S flip-flop 3 is set by the timing signal S.sub.1A to raise the Q output signal OUT to a high level. The Q signal of the flip-flop 3 turns off the switch SW to cause the capacitor C to be discharged. When the voltage at the circuit point S.sub.2 becomes equal to the comparison voltge V.sub.b, the output S.sub.3 of the voltage comparison circuit 2 is raised to the high level to thus reset the R-S flip-flop 3 and lower the Q output signal OUT. Therefore, the Q signal is raised to the high level to turn on the switch SW, thus charging the capacitor C. Accordingly, the level of the output S.sub.3 is quickly changed and the capacitor is maintained charged until the next pulse of the signal S.sub.1 is applied to the circuit.
FIG. 7A shows still another example of a signal generating circuit of the invention. In this case, two voltage comparison circits 2 and 2' form a window comparator with which a pulse is generated with a delay time from the occurrence of a trigger signal as shown in FIG. 7B.
The circuit of FIG. 7 can be used for generating keying signals for keyed clamping of a video signal.
As is apparent from the above description, the signal generating circuit of the invention is not affected by variations of the supply voltage, and is temperature-compensated, even in the case where the temperature of the interior of the IC is different from that of the exterior. Therefore, in the circuit of the invention, the time constant can be determined with a considerably high accuracy.
The signal generating circuit of the invention has a simple configuration, and has only one external connecting terminal.