It is known to manufacture enclosures for circuit boards and other electronic components from a metal or a polymeric material, each of which has advantages in terms of ease of manufacturability, cost, toughness, thermal properties, electrical properties, weight, etc. It is also know to manufacture an electronic enclosure using a combination of metal and polymeric materials, where the metal and polymeric portions of the enclosure are manufactured separately and then assembled together using fasteners and like means to define the enclosure. All of these prior enclosure structures exhibit some deficiencies in terms of physical properties, cost, manufacturability, complexity, and the like. Accordingly, according to the present development, it has been deemed desirable to provide a new enclosure for electronics that is partially defined from metal and partially defined from a polymeric material, but that does not require separate manufacture and assembly of the metal and polymer components to define the enclosure and that exhibits other benefits and advantages over known enclosures such as those described above.
In accordance with one aspect of the present development, an enclosure for electronics includes a body defining a recess adapted to receive at least one associated electronic component. The body includes a metal component and at least one polymeric component overmolded thereon so that the at least one polymeric component is bonded to and mechanically interconnected with the metal component. The polymeric component includes at least one electrical isolation zone that electrically insulates the metal component from the electronic component located in the recess. The polymeric component also includes at least one attachment feature for capturing the associated electronic component in the recess.
In accordance with another aspect of the present development, a method of manufacturing an electronics enclosure includes providing a metal component that defines a first part of an enclosure body. The metal component defines a heat sink. The method further includes placing the metal component in a mold and overmolding a polymeric component onto part of the metal component by an injection molding process such that the polymeric component defines a second part of the enclosure body that is mechanically interlocked with the metal component. A complete enclosure body is defined by the first and second parts of the enclosure body and includes a recess adapted to receive and retain an associated electronic component. The polymeric component defines at least one electrical isolation zone that covers and electrically insulates a first portion of the metal component from the associated electronic component. The electrical isolation zone including at least one opening that exposes a second portion of the metal component such that the exposed second portion of the metal component defines an electrical contact adapted to be connected to an electrical ground connection of the associated electronic component.
In accordance with another aspect of the present development, an enclosure for electronics includes a body comprising a metal component and a polymeric component overmolded onto the metal component so as to be connected to the metal component without fasteners. The body defines a recess. A heat sink is defined in the metal component. A printed circuit board is located in the recess and includes a plurality of electronic components mounted thereon. The polymeric component includes at least one attachment feature that captures the printed circuit board at a select location in the recess such that: (i) at least a first one of the electronic components is electrically connected to a contact region of the metal component that is exposed through a portion of said polymeric component; (ii) at least a second one of the electronic components is electrically isolated from the metal component by an electrical isolation zone of the polymeric component; and (ii) at least a third one of the electronic components is located adjacent a thermal transfer region of the metal component that underlies the heat sink. The thermal transfer region is uncovered by the polymeric component so as to be exposed in the recess.
The body B comprises a single mechanical package or component that is defined by a single metal body component M (
As compared to the polymeric component P (or as compared to an all polymeric enclosure body), the metal component M of the enclosure body B is superior for providing a first set of features and characteristics to the enclosure E. For example, the strength of the metal component M makes it an ideal location for multiple mounting tabs MT including respective apertures that are adapted to be engaged by associated fasteners for securing the enclosure E to a desired mounting location or mating enclosure E. The mounting tabs MT are external to the recess R.
The metal component M also provides a means for functional electrical/logic grounding. In the illustrated embodiment, the metal component M includes one or more electrical contact regions EC that are located within the recess R and that are adapted to be electrically connected to one or more electronic components located in the recess R, such as the ground circuit of the printed circuit board PCB or an electrical component EB mounted thereon. As shown, the electrical contact regions EC are electrically connected to the printed circuit board PCB to provide electrical grounding for the electrical components mounted on the printed circuit board PCB. As is generally known in the art, the metal component M can, itself, be connected to another electrical ground location such as a mounting rail, chassis or the like such that the metal component M provides an electrical grounding pathway between the electronic components PCB contained in the recess R and the associated electrical ground location to which the metal component M is electrically connected. It should be noted that the metal component M also shields the electronic contents of the recess R from electromagnetic interference (EMI).
The metal component M also provides a thermal pathway to conduct heat out of the enclosure recess R. In particular, the metal component includes or defines at least one heat sink HS. As shown, the heat sink HS is defined by a plurality of fins F separated from each other by airflow passages AP. The fins F follow a curved path to maximize the surface area in contact with the ambient air flowing through the passages AP.
In contrast to the metal component M (or as compared to an all metal enclosure body), the polymeric component P of the enclosure body B is superior for providing a second set of features and characteristics to the enclosure E. For example, the polymeric component P provides superior structural compliance and electrical insulation capabilities.
With reference to
With respect to structural compliance, the polymeric component P, as overmolded to the metal component M, include a plurality of attachment features AF for securing one or more electronic components, such as a printed circuit board PCB, within the recess R. In one example, as shown herein, a first side wall portion PS1 of the polymeric component P defines part of the enclosure body side wall S1 and a second side wall portion PS2 of the polymeric component P defines part of the enclosure body side wall S2, and the attachment features AF are defined as part of the first and second side wall portions PS1,PS2. As shown herein, the attachment features AF of the in the illustrated embodiment are provided one or more printed circuit board retention nibs N defined by the first side wall portion PS1 and/or the second side wall portion PS2 of the polymeric component P. In particular, each nib N is dimensioned and conformed to capture the printed circuit board PCB in the recess R. Specifically, a printed circuit board PCB is captured between each nib N of the polymeric portion P and another portion of the body defined by either the metal or polymeric component M,P. As shown, the nibs N capture the circuit board PCB against supports ST defined by either the metal component M or polymeric component P. It is preferred, as shown herein, that each nib N located on at least one of the side wall portions PS1,PS2 be defined with a ramped surface N1 that diverges away from the side wall portion PS1,PS2 from which it projects as it extends deeper into the recess R toward the top wall IT. The ramped surface N1 and the natural resiliency of the side wall portions PS1,PS2 of the polymeric portion P facilitates a sliding snap-fit engagement of a printed circuit board PCB into the recess R to a position where it is captured in the recess R by the nibs N as shown in
The polymeric component P is also preferred relative to the metal component M for defining air flow slots U and other openings in the enclosure body B. The polymeric component P is injection molded to include such slots U and other openings for connectors and the like so that no milling of the metal component M or other post-processing of either the metal or polymeric component M,P is required once the polymeric component P is overmolded onto the metal component M.
The development has been described with reference to preferred embodiments. Those of ordinary skill in the art will recognize that modifications and alterations to the preferred embodiments are possible. The disclosed preferred embodiments are not intended to limit the scope of the following claims, which are to be construed as broadly as possible, whether literally or according to the doctrine of equivalents.