The present invention relates to electronic components, more particularly, the present invention relates to a phase-controlled non-zero-cross phototriac with isolated feedback.
Phototriac couplers are used in numerous applications, including in applications which are powered by the AC mains network and AC voltage loads are to be controlled through switching. Phototriac couplers may be used to galvanically isolate the control side of a circuit and a load side of a circuit. Thus, phototriac couplers are useful in various types of applications, including the control of motors.
Both zero-cross and non-zero-cross phototriac couplers are available. In a zero-cross type phototriac, the output will only switch to an on-state if the load voltage is below the zero-cross voltage value. In a non-zero-cross type phototriac coupler, the switching to the on-state is immediate. In a non-zero-cross type phototriac coupler, the root mean square may be controlled by phase delays.
What is needed is a means to provide isolated feedback from a load side of a circuit which uses a phototriac coupler to the control side of the circuit in a non-zero-cross phototriac.
Therefore, it is a primary object, feature, or advantage of the present invention to improve over the state of the art.
It is a further object, feature, or advantage of the present invention to provide a phase-controlled non-zero-cross phototriac with isolated feedback.
One or more of these and/or other objects, features, or advantages of the present invention will become apparent from the specification and claims that follow.
According to one aspect of the present invention, an electronic component for providing optical isolation is provided. The electronic component includes an electronic component package, a phototriac disposed within the electronic component package for providing the optical isolation, and a reverse zero-cross feedback channel integrated into the electronic component package to thereby provide zero-cross detection.
According to another aspect of the present invention, an electrical circuit is provided. The electrical circuit includes an electronic component having an electronic component package, a phototriac disposed within the electronic component package for providing optical isolation, and a reverse zero-cross feedback channel integrated into the electronic component package to thereby provide for zero-cross detection. The electrical circuit also includes a phase control circuit electrically connected to inputs of the reverse zero-cross feedback channel.
According to another aspect of the present invention, a method of driving an AC load and providing zero-cross detection using a single electronic component is provided. The method includes providing an electronic component having an electronic component package, a phototriac disposed within the electronic component package, and a reverse zero-cross feedback channel integrated into the electronic component package to thereby provide for zero-cross detection. The method further includes placing the electronic component within a circuit.
To provide feedback, an optional multiplexer 44 is shown which is electrically connected across the load 16 and to a phase control circuit 50. The phase control circuit 50 is electrically connected to parallel LEDs 52, 54 which are are configured in opposite directions. An opto-receiver 56 is shown with outputs 58, 60 from the electronic component 42 which may be electrically connected to feedback logic and ultimately to the microcontroller 36. As shown, the microcontroller 36 may control a triac over a first optically isolated non-zero-cross channel and receive zero-cross detection feedback over an optically isolated second channel in the opposite direction. The zero-cross detection feedback allows the microcontroller 36 to alter the power delivered to the load 16, based on the zero-cross detection feedback.
The multiplexer 44 is optional when only a signal at node A 46 or only a signal at node B 48 is to be determined for feedback purposes. If however, signals at both node A 46 and node B 48 are to be determined, then the multiplexer should be used.
Therefore, a phase-controlled non-zero-cross phototriac with isolated feedback has been disclosed. In addition, a circuit has been disclosed for use with the phase-controlled non-zero-cross phototriac has also been disclosed. The present invention is not to be limited to specific embodiments herein, as modifications, options, and alternatives, are intended to fall within the spirit and scope of the claimed invention.