The present invention relates to a container with a high dissipation capacity, in particular for control and actuating devices of electric motors.
It is known in the product sector relating to the manufacture of electric motors that there exists the need to equip the same with apparatus for controlling operation thereof.
It is also known that, in the most recent embodiments, said control apparatus are combined with the motor by means of corresponding housings constrained in various manners to the said motor, normally on the opposite side to that of the drive shaft to be coupled with the load which is to be rotated. As an alternative, embodiments are also known where the casing of the motor is designed to receive the control electronics. Although fulfilling their function, these embodiments nevertheless have the drawback that it is difficult to dissipate the heat generated by the power elements of the control section which are enclosed inside containers—sometimes small in size—and are therefore subject to overheating due to accumulation of their own heat together with that of the surrounding environment and/or motor.
The technical problem which is posed, therefore, is to provide a container for control devices of electric motors and the like, which may be combined with the latter and which allows effective transmission and dissipation externally of the heat generated by the power elements of the said control system.
Within the context of this problem it is also required that this container should have small dimensions, be easy and inexpensive to produce and assemble and be easily adaptable to the different levels of dissipation required depending on the different control systems and the different conditions of use of a same motor and/or be able to be assembled on different motors.
These results are obtained according to the present invention by a container for control and actuating devices of electric motors equipped with power components, comprising a side wall, a front wall able to be constrained to the motor and a rear wall, said rear wall being able to come into thermal contact with the power components of the said control and actuating devices in order to dissipate the heat.
The present invention relates furthermore to an electric motor equipped with this container.
Further details may be obtained from the following description of a non-limiting example of embodiment of the subject of the present invention provided with reference to the accompanying drawings in which:
As shown, the motor 1, which is per se conventional and therefore only schematically shown together with its drive shaft 1a (referred to as “front part” for the sake of convenience of the description) is associated with a control device 2 which comprises power elements 2a and is inserted inside a container 10 constrained to the rear part of the motor 1 (opposite to that of the shaft 1a).
The power element 2a is normally mounted on one side 3a of a printed circuit 3.
The said container 10 has a front wall 11 able to be constrained to the motor 1, a side wall 10a and a rear wall 12 for frontal opening/closing of the container in order to allow insertion/extraction of the control device.
Said rear surface 12 has a projection 12a which extends axially towards the inside of the container and is able to come into contact with the power component 2a; in the example according to
By forming the said rear wall 12 with suitable material having a high thermal conductivity, it is clear how the said wall forms a high-capacity heat dissipator in view of the possibility of making use of the whole surface of the wall 12 in order to convey heat outside.
In the embodiment according to
In this configuration, as also illustrated in
In addition to this it is furthermore possible to regulate the dissipation capacity also once the motor has been installed and functioning, adapting it to the different environmental conditions and actual conditions of use.
According to a preferred embodiment it is envisaged moreover that the front wall 11 of the container 10 has a form and perimetral dimensions such as to allow frontal mating with the side surfaces 10a of the container and bore holes 11a suitable for mating with stud bolts 1c for constraining the motor 1 to said front wall 16.
In this way it is possible to apply the same container 10 to numerous types of motors by providing the appropriate bore holes 11a on the front wall 11 which is the only component which differs in the various possible cases.
According to preferred embodiments it is envisaged moreover that said front wall is made of heat-insulating material so as to form a thermal barrier able to prevent the heat generated by the motor from passing towards the inside of the container containing the control electronics.
As schematically shown by the arrow “S” in the various figures it is envisaged that the container 10 has, associated with it, means for pushing in an axial direction the printed circuit 3 and/or the component 2a against the projection 12 of the rear part of the container so as to ensure optimum thermal contact between the two parts for dissipation of the heat.
It is therefore obvious how the container according to the invention ensures a high dissipation of the heat while maintaining small dimensions and a high degree of standardization, modularity and the possibility of application to different types of motor.
It is envisaged also that the printed circuit may be reversed so as to have the power component on the same side as the dissipation projection so that it is not required to provide openings in the said printed circuit.
| Number | Date | Country | Kind |
|---|---|---|---|
| MI2003A 002131 | Nov 2003 | IT | national |