Automatic Gain and Return Loss Compensating Line Circuit
Abstract
The disclosed T-type line compensation circuit reduces the gain and return loss variations when customer equipment is connected to a central office or PBX over telephone lines of various lengths. A linear resistor of a first series leg is thermally coupled, as a heat source, to a positive temperature coefficient (PTC) resistor of a second series leg. The shunt leg consists of a series connection of a bilateral zener diode, linear resistor, and varistor. The resistance value of both the second series leg and the shunt leg of the line circuit vary automatically with the direct current in the line to minimize gain variation due to telephone line length variation. The thermal feedback to the PTC resistor varies automatically with the direct current in the line to minimize return loss variations seen by the customer equipment. This invention relates to a line circuit for compensating telephone loop line and return loss variations due to variations in line lengths. In the telephone loop plant it is frequently necessary to transmit and receive signals over telephone lines of various lengths. These telephone loop length variations arise because of the varying distances between the subscriber locations and the associated central office location. The length of the telephone line from the central office to the subscriber determines the magnitude of the direct current which flows to the subscriber telephone set. Thus, when a modern telephone set is connected at the subscriber's premises, an equalizer incorporated therein will equalize transmitting and receiving levels and side-tone levels in accordance with the magnitude of the direct current flowing from the central office. The circuit disclosed in U.S. Pat. No. 2,629,783 issued to H. F. Hopkins on Feb. 24, 1953 is typical of telephone equalizer circuitry. In Hopkins a current-sensitive resistance element is placed across the line terminals of the telephone circuit. As the loop length varies the direct current flowing through the loop will vary and if the current-sensitive element has the proper degree of nonlinearity, the received and the transmitted levels at the telephone terminals will be held substantially constant, assuming constant inputs at the telephone transmitter. In Hopkins, the current-sensitive element is placed in shunt across the telephone circuit. A variable shunt across the telephone circuit imposes an additional burden on the side-tone balancing circuit, since with the variable shunt the loop impedance "looking out" from the telephone terminals will vary over a greater range than without the variable shunt. This additional burden is alleviated in Hopkins by employing in combination with the variable shunt equalizing circuit, a variable line balancing circuit which is also responsive to the loop direct current. Thus, Hopkins and other prior art does not compensate the telephone line to match a fixed impedance, but rather balances the telephone equipment to the varying line impedance. A problem exists, however, when subscriber equipment has a conference capability in which multiple central office (CO) lines are connected to a single telephone. Since each CO line will be supplying current the total current received by the telephone will bear no relationship to the length of the connected CO lines. Additionally, in some customer equipment the telephones at the subscriber location are dc isolated from the CO lines and hence not supplied with a direct current which varies with loop length. Thus, the equalization approach used in the prior art will not be applicable. In addition, the diversity of customer premises communication equipment has grown rapidly in recent years with some equipment requiring a constant impedance "looking out" from the customer's terminals, towards the central office or private business exchange (PBX), to match the impedance of the customer's equipment. In the telephone system any impedance mismatch between the telephone loop lines and the connecting central office or customer equipment may result in echoes or singing. A measure of this characteristic is called return loss which is an inverse measure of the transmission energy loss due to an impedance mismatch. Accordingly, a need exists in the art for a line circuit which will automatically compensate for variations in line impedance to effect a better impedance match when connected to fixed impedance communications equipment. Another need exists in the art for a line circuit which will automatically compensate for variations in line impedance as well as gain variations due to different telephone loop lengths. Another need is to provide a gain and return loss compensating line circuit which reduces the unbalance caused by connection of multiple central office lines to one telephone. Another need is to provide a gain and return loss compensating line circuit which operates independent of the telephone dc currents. Another need is to provide a gain and return loss compensating line circuit which can be inserted in cascade with existing lines at the subscriber's location. Yet another need is to provide a gain and return loss compensating line circuit which is economical, small and mechanically rugged. In the instant application one embodiment of a gain and return loss compensating line circuit is disclosed which satisfies the existing needs. The disclosed four-terminal compensating line circuit is inserted in cascade with each CO line at a transformer input to the customer equipment. The transformer isolates the line dc currents from the dc currents of the telephone set. Since each CO line has its own compensating line circuit, unbalance is reduced when multiple CO lines are connected together. One embodiment of the disclosed circuit is arranged as a "T" type attenuator having a first series leg, a shunt leg and a second series leg with a common connection node for one terminal of each leg. The shunt leg, which provides gain compensation, consists of a series connection of a bilateral zener diode, linear resistor, and bilateral varistor. A linear resistor of the first series leg is thermally coupled, as a heat source, to a positive temperature coefficient (PTC) resistor of the second series leg. Alternately, if the PTC can be made with low enough thermal inertia the first series leg is not necessary as an additional heat source and may be eliminated along with its audio bypass capacitor. This circuit would be better adapted to applications where the series resistance must be kept low for supervisory applications. Normally any such resistance in series with the line adds signal loss which decreases the effectiveness of the gain compensating circuit. However, the linear resistor of the first series leg is required to limit current and avoid saturation of the transformer on short CO loops. Since the PTC resistor is placed in series with the line such that the gain compensator's current flows through the PTC resistor, any gain variations caused by the PTC resistor are minimized by the gain compensating circuit while enabling the PTC resistor to provide the desired return loss improvement. Return loss improvement requires the value of series resistance for short loops to be greater than the resistance for long loops. Thus, a PTC resistor was used as the series resistance. Since short loops have higher dc current, more heat is developed in the PTC resistor, and the thermally coupled linear resistor thus increasing the temperature and hence resistance of the PTC resistor. The temperature rise, and hence the resistance increase, of the PTC resistor is more pronounced when heat is coupled to it from an additional heat source, the linear resistor of the first series leg, of the compensator circuit. Thus, the impedance value of both the second series leg and the shunt leg of the line circuit vary automatically with the direct current in the CO loop in a manner to minimize gain variations when connected to CO loops of various lengths. The thermal feedback to the PTC resistor varies automatically with the direct current in the line in a manner to change its resistance to minimize return loss variations at both the customer and central office locations. Accordingly, it is a feature of my invention to provide both an automatic gain and return loss compensating line circuit which uses series and shunt regulation circuitry to compensate for impedance and signal variations of various telephone loop lengths. It is a feature of my invention to provide an automatic gain and return loss compensating circuit, utilizing a PTC resistor with thermal feedback, which can be used with protective coupler devices. It is another feature of my invention to provide an automatic gain and return loss compensating circuit, utilizing a PTC resistor with thermal feedback, which can be used in a telephone station set. Finally, it is a feature of my invention to provide a small, solid state mechanically rugged, yet economical compensating line circuit.
Metadata
Assignee
- Bell Telephone Laboratories, Incorporated
Inventor
- Douglas C. Smith
Application Information
Classifications
Patent Drawings (3 sheets)
Description
Brief Description of the Drawings
General Description
Component Selection
Detailed Description
Circuit Performance
Other Applications
Claims
Patent Citations (6)
| Patent | Date | Inventor | Cited By |
|---|---|---|---|
| US2620402 | 1952-12-01 | Botsford et al. | |
| US2629783 | 1953-02-01 | Hopkins | |
| US2777994 | 1957-01-01 | Hurault | |
| US3436488 | 1969-04-01 | Barbato et al. | |
| US3810247 | 1974-05-01 | Ono | |
| US4027259 | 1977-05-01 | Zellmer |
Non-Patent Literature (2)
- "Automatic Level Control Telephone Circuits with Nonlinear Resistances," Kakehi, Review of the Electrical Communications Labs, vol. 22, No. 11-12, Nov.-Dec. 1974, pp. 1004-1018.
- "An Improved Circuit for the Telephone Set", Bennett, Bell System Technical Journal, May 1953, pp. 611-626.