The present disclosure is related to a monolithic thermal-mechanical flexible sensor and actuator for an overload relay.
An overload relay is used to protect electrical equipment, such as, for example, motors, controllers and branch-circuit conductors, from current overload. The overload relay is connected between a power source and the electrical equipment. When an overload condition exists, the overload relay opens electrical contacts (e.g., normally closed (NC) contacts) to interrupt power to the equipment via a contactor or other circuit interrupter. The overload relay can also include other electrical contacts (e.g., normally open (NO) contacts), which are closed to turn on an alarm in response to the overload condition.
There are different types of overload relays, such as a thermal overload relay, melting alloy overload relay, bimetallic overload relay, and magnetic current relay. An overload relay can include a sensing element to detect a current overload condition (e.g., a high current condition or over current condition) and an actuating element to actuate a trip mechanism which opens the electrical contacts, such as normally closed (NC) contacts, when a current overload condition is detected by the sensing element. Some overload relays use a heating coil as the sensing element and a bimetallic strip as the actuating element for each current phase. The bimetallic strip has the heating coil wound directly thereon. The heating coil is a conductor which is connected to receive current (e.g., one phase of the current) that flows to the electrical equipment. In operation, the heating coil is heated by current flow therethrough. The bimetallic strip is configured to deflect and actuate the trip mechanism to open the electrical contacts when the bimetallic strip is heated by the heating coil at or above a threshold temperature which reflects a current overload condition, e.g., a high current condition.
Accordingly, these types of overload relays require at least two or more parts for the sensing and actuating elements (e.g., a heating coil and a bimetallic strip), thereby increasing complexity of assembly, potential frictional failure due to the contact of two parts, and overall costs. Such overload relays also require a substantial amount of materials for the sensing and actuating elements and require substantial current calibration.
The present disclosure is directed to an overload relay for use in the protection of electrical equipment, such as motors, controller and branch-circuit conductors. Specifically, the overload relay incorporates a single-arm, monolithic compliant mechanism actuator (CMA) to detect a high current condition (e.g., a current overload condition or over current condition) for the electrical equipment and to cause a trip mechanism to open electrical contacts (e.g., normally closed (NC) contacts) in response to the detected high current condition. When the electrical contacts are opened, the power supplied to the electrical equipment is interrupted, via a contactor or other circuit interruption device. The actuator can replace a heating coil and bimetallic strip that are used as sensing and actuating elements in some thermal overload relays, such as TeSys® D Thermal Overload Relay manufactured by Schneider Electric.
The actuator can have a single arm that includes a mounting support, a single bar with a first end and opposing second end, and a compliant hinge connected between the mounting support and the single bar. The compliant hinge can have or be a flexure member, which is connected to the single bar between the first and second ends of the single bar. The single bar is electrically coupled to a line side (e.g., power source) or a load side (e.g., the electrical equipment). In an example operation, one of the first and second ends (e.g., a free end) of the single bar deflects relative to the compliant hinge as a result of the high current condition, which in turn causes the trip mechanism to open the electrical contacts in order to interrupt power to the electrical equipment. The overload relay can include an actuator for each current phase of a multi-phase power source.
Accordingly, an overload relay can be designed and constructed with a single-arm, monolithic compliant mechanism actuator that performs the functions of the sensing and actuating elements while reducing overall energy loss. The overload relay requires less overall parts and materials, which further allow for a more simplified assembly process and current calibration process and for reduced overall costs. The actuator is configurable to detect a predetermined high current condition and to deflect under such condition, through the design of a shape and dimension as well as the thermal profile of the actuator, and the material(s) used to fabricate the actuator. The actuator can also be formed from a conductive material, such as aluminum or any other conductive metal with a high thermal expansion coefficient.
The description of the various exemplary embodiments is explained in conjunction with the appended drawings, in which:
A single-arm, monolithic compliant mechanism actuator (CMA) is disclosed for use in an overload relay, and is configured to detect a high current condition (e.g., a current overload condition or over current condition) for electrical equipment and to cause a trip mechanism to open electrical contacts, e.g., normally closed (NC) contacts, in response to the detected high current condition. When the NC contacts are opened, the power supplied to the electrical equipment is interrupted, via a contactor or other circuit interruption device. Furthermore, the overload relay can include other types of electrical contacts, such as normally open (NO) contacts, which are closed when the trip mechanism is tripped by the high current condition. The NO contacts can be used to control an alarm to identify the status of the overload relay, or other devices. Both the NO and NC contacts can have a stationary electrical contact, and a movable electrical contact, which is maintained on a movable contact carrier (e.g., a slider). The movable contact carrier is movable between a normal position and a tripped position to open and close the electrical contacts of the NO and NC contacts.
The actuator is an electro-thermal compliant mechanism that includes a mounting support, a single bar (e.g., a hot bar), and a compliant hinge connected between the mounting support and the single bar. The compliant hinge is a flexure member, which is connected to the single bar between the ends of the single bar. The single bar is electrically coupled to a line side (e.g., power source) or a load side (e.g., the electrical equipment), and deflects relative to the compliant hinge as a result of a thermal force generated from the high current condition. An example of the actuator and its operations will be described in further detail below with reference to the Figures.
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For example, the actuator 120 is electrically connected on one end 132 by a wire 190 to a power line side via the power line connection 10 and on the opposite end 130 to a wire 189. The wire 189 is connected to the load line connection 20, with current flowing in the direction from the power line connection 10 to the load line connection 20. The connections 10 and 20 can include electrically conductive cables, and can also include electrical connector(s). In
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In this exemplary model design, there are two boundary conditions, such as defined by a fixed support and a roller type support. The fixed support holds one end of the hot arm, in this case an end of the portion X2 (e.g., 132 of
Accordingly, a single-arm compliant mechanism actuator can be configured to deflect in a predefined direction with a predefined amount of force at a predefined temperature and/or current condition according to various factors, including but not limited to the location, dimension and shape of the supports (e.g., in the relay casing) which define the boundary conditions as well as the dimension, shape and electrical/heat conductive materials of the flexure, the portions X1 and X2 of the hot arm, and the location of the pivot point (e.g., the location of the flexure along the hot arm).
Furthermore, the actuator described herein can be used in combination with various types of trip mechanisms for use in an overload relay, including those which utilize a shifter, for example, as generally known in the art and used in the TeSys® D OLR cited above. For example, turning back to
The compensator lever 176 is assembled to the case 110 also with a pin joint 188, which allows rotation of the compensator lever 176. Once motion is transmitted to the compensation bimetal 174 and the compensation bimetal support 172 by the compensator lever 176, they rotate and push against the bistable spring 178. The bistable spring 178 has energy stored and is resting in one of the two bistable positions. When the bistable spring 178 receives the push force, it releases the stored energy and changes to a second state. When the bistable spring 178 changes from one position to the second bistable position, it causes the movable contact carrier 180 to move in a first direction from the normal position with the electrical contacts 181 and 182 in the normal position (e.g., normally open and normally closed, respectively) to a tripped position in which the electrical contacts 181 and 182 are closed and opened respectively. When the actuators 120 cool down and the normal conditions return, the actuators 120 return back to a normal state and the movable contact carrier 180 can be moved in a second direction back to the normal position.
The overload relay (e.g., 100) and its components are provided as an example. The overload relay can have a single-arm monolithic compliant mechanism actuator per pole, as described herein, depending on the power configuration to be monitored, such as the number of phases, the use of a neutral, or a combination thereof. The components of the single-arm actuators can also be configured with different dimension and materials, with the bar or other portions deflecting according to a predefined temperature profile or predetermined high current condition in order to trip the trip mechanism in the overload relay. The actuator can also be formed using any suitable thermally and electrically conductive material(s), such as aluminum or any other conductive metal with a high thermal expansion coefficient.
Words of degree, such as “about”, “substantially”, and the like are used herein in the sense of “at, or nearly at, when given the manufacturing, design, and material tolerances inherent in the stated circumstances” and are used to prevent the unscrupulous infringer from unfairly taking advantage of the invention disclosure where exact or absolute figures and operational or structural relationships are stated as an aid to understanding the invention.”
While particular embodiments and applications of the present disclosure have been illustrated and described, it is to be understood that the present disclosure is not limited to the precise construction and compositions disclosed herein and that various modifications, changes, and variations can be apparent from the foregoing descriptions without departing from the invention.