Systems and methods for electrical connector housings and sealed circuit boards

The integration of a circuit board with sensors and secure assembly in electrical connectors addresses assembly challenges and monitors conditions to prevent thermal runaway, enhancing safety and reliability.

JP7772809B2Active Publication Date: 2025-11-18IDEAL IND INC
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Patent Information

Application Number
JP2023548209
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-02-12
Publication Date
2025-11-18
Estimated Expiration
2041-02-12

AI Technical Summary

Technical Problem

Existing electrical connectors, particularly flat-wiping contact connectors, are difficult to assemble and lack mechanisms for monitoring conditions that could lead to thermal runaway or other failures, such as excessive heat, which can compromise their integrity and the connected load or power source.

Method used

The electrical connector design incorporates a circuit board within the housing to monitor temperature and other electrical parameters, using sensors and wireless communication for real-time feedback and alerts, along with a secure assembly method that includes cold-forming retention springs to hold contacts in place.

Benefits of technology

This design enhances assembly efficiency and provides real-time monitoring to prevent thermal runaway and other failures, ensuring the safety and reliability of electrical connections by detecting potential issues before they cause damage.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The electrical connector includes a connector housing configured to receive at least one electrical contact. The electrical connector further includes a circuit board housed within the connector housing. The electrical connector further includes at least one electrical lead configured to electrically connect the circuit board to the at least one electrical contact.
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Description

[Technical Field]

[0001] TECHNICAL FIELD This application relates generally to electrical connectors, methods of assembling electrical connectors, and more particularly to electrical connector housings that house circuit boards therein. [Background technology]

[0002] Generally, electrical connectors, including flat-wiping contact connectors, are known in the art. For example, flat-wiping contact technology is used in applications such as power connections for material handling trucks, and single- and double-pole flat-wiping contact connectors are used for battery connections.

[0003] As an example, U.S. Patent Application Publication No. 2007 / 0129994, the entire contents of which are incorporated herein by reference, describes a flat wiping contact and a method for making the same. For example, a plastic housing may be molded with a passageway or channel through the housing with a large rear opening for the conductor and a more defined front opening for making the electrical connection to a mating connector. The passageway is configured with sidewall slots for seating and retaining a leaf spring that holds the contact and provides the necessary contact wiping pressure for the contact when mated with another connector. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] US Patent Application Publication No. 2009 / 0093149

[0005] The assembly method for such connectors involves inserting a spring into the housing through a large rear opening, where the spring is locked into position within the slot by cold-forming (staking) a portion of the plastic housing behind the rear end of the spring after insertion. On the exterior of the housing, flat wiping contacts are bonded to suitable conductors. The contacts are then attached to the housing through the large rear opening and slid forward until they latch onto the front end of the spring.

[0006] While the described electrical connector may be suitable for its intended purpose, there remains a strong need for an improved flat wiping connector that is easier to assemble and that functions as a flat wiping connector. Summary of the Invention

[0007] The present application describes an electrical connector configured to receive at least one electrical contact and to accommodate a circuit board within a connector housing of the electrical connector, and a method of assembling the electrical connector, the electrical connector further including at least one electrical lead configured to electrically connect the circuit board to the at least one electrical contact that may be inserted into the connector housing.

[0008] A better understanding of the objects, advantages, features, characteristics and relationships of the presently disclosed subject matter will be obtained from the following detailed description and the accompanying drawings, which set forth illustrative examples that show various ways in which the principles of the described embodiments may be employed. [Brief explanation of the drawings]

[0009] [Figure 1A] FIG. 1A is a cross-sectional perspective view of an exemplary electrical connector housing for cold-formed peg and flat-wiping contacts. [Figure 1B] FIG. 1B is a cross-sectional perspective view of the exemplary electrical connector housing of FIG. 1A with flat wiping contacts installed. [Figure 2] FIG. 2 is a top right perspective view of an example electrical connector housing according to the teachings of the present disclosure. [Figure 3] 3 is a top left perspective view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 4] 4 is a bottom front perspective view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 5] 5 is a bottom front perspective view of the electrical connector housing of FIG. 2 having a bottom cover in accordance with the teachings of the present disclosure. [Figure 6] FIG. 6 is a front elevational view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 7] 7 is a rear elevational view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 8] 8 is a right side elevational view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 9] 9 is a left side elevational view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 10] FIG. 10 is a top view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 11A] 11A is a bottom view of the electrical connector housing of FIG. 2 with a bottom cover in accordance with the teachings of the present disclosure. [Figure 11B] FIG. 11B is a bottom view of the electrical connector housing of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 12] FIG. 12 is a top right perspective view of an example circuit board assembly in accordance with the teachings of the present disclosure. [Figure 13] 13 is a top right perspective view of the circuit board assembly of FIG. 12 and two exemplary retention springs in accordance with the teachings of the present disclosure. [Figure 14] FIG. 14 is an exploded perspective view of the electrical connector housing of FIG. 2, an example gasket, an example circuit board, and an example bottom cover in accordance with the teachings of the present disclosure. [Figure 15] 15 is an exploded perspective view of the electrical connector housing, retention spring, and electrical contacts of FIG. 2 in accordance with the teachings of the present disclosure. [Figure 16] 16 is a cross-sectional front view of the electrical connector housing of FIG. 2 taken along section line A shown in FIGS. 8 and 10 in accordance with the teachings of the present disclosure. [Figure 17] FIG. 17 is a cross-sectional front view of an electrical connector assembly taken along section line A shown in FIGS. 8 and 10 in accordance with the teachings of the present disclosure. [Figure 18] 18 is a cross-sectional front view of the electrical connector housing of FIG. 2 taken along section line B shown in FIGS. 8 and 10 in accordance with the teachings of the present disclosure. [Figure 19] FIG. 19 is a cross-sectional front view of an electrical connector assembly taken along section line B shown in FIGS. 8 and 10 in accordance with the teachings of the present disclosure. [Figure 20] FIG. 20 is a bottom left perspective view of another exemplary electrical connector housing in accordance with the teachings of the present disclosure. [Figure 21] FIG. 21 is a block diagram of an example system of an example electrical connector with a circuit board housed therein in accordance with the teachings of the present disclosure. [Figure 22] FIG. 22 is a flowchart illustrating an exemplary method for assembling an electrical connector in accordance with the teachings of the present disclosure. [Figure 23] FIG. 23 is a flowchart illustrating an example method for determining a temperature in an electrical connector in accordance with the teachings of the present disclosure. [Figure 24] FIG. 24 is a schematic diagram of an example user computing environment in accordance with the teachings of the present disclosure. DETAILED DESCRIPTION OF THE INVENTION

[0010] The following description of exemplary methods and apparatus is not intended to limit the scope of the description to the precise forms set forth herein. Instead, the following description is intended to provide an explanation so that others can follow the teachings.

[0011] Described herein is an electrical connector configured to receive at least one electrical contact and accommodate a circuit board within a connector housing of the electrical connector, and a method of assembling the electrical connector. The electrical connector further includes at least one electrical lead configured to electrically connect the circuit board to the at least one electrical contact that may be inserted into the connector housing.

[0012] Electrical connectors may have different sizes and ratings for different applications. For example, the electrical contacts within the connector housing may be of various sizes or materials depending on the intended use of the electrical contacts. Similarly, the housing of an electrical connector may be shaped and sized based on the particular application and may be made from various insulating materials as desired. For example, some electrical connectors may be used to connect the wiring of an electric vehicle to a battery to power the vehicle. As such, electrical connectors may be designed based on the expected amperage (current) that will flow through the connector and the system voltage.

[0013] As an example, an electrical connector may be designed to carry a current between 300 and 500 amps. When an electrical connector is used for currents greater than 500 amps, the electrical contacts of the electrical connector may radiate excessive heat, potentially compromising the integrity of the electrical connector housing. This is sometimes referred to as thermal runaway. For example, during a thermal runaway event, the electrical connector housing may distort, melt, or otherwise malfunction. In addition to using a connector for a current higher than intended, thermal runaway can also occur if the electrical contacts are not properly inserted into the housing, if the electrical contacts are not properly in contact with the second contacts of a second connector, or if the wires are not properly crimped or secured to the electrical contacts. Any of these instances can result in electrical connector failure. Even if the electrical connector does not completely fail, its malfunction can adversely affect the load or power source to which it electrically connects.

[0014] Accordingly, this application discloses various electrical connector housings and sealed circuit boards that can be used to monitor for excessive heat indicative of a thermal runaway event or to measure other aspects of the electricity flowing through the electrical connector to detect misuse of the electrical connector that may result in failure of the electrical connector or damage to a load or power source connected by the electrical connector. The circuit boards within the electrical connectors may also be used for other purposes, such as communicating with other computing devices via wireless transceivers, radio frequency identification (RFID) tags and / or readers, and / or any other type of wireless communication device.

[0015] 1A and 1B, examples of housings and springs without a circuit board housed therein are shown. In particular, Figures 1A and 1B show perspective views of a single-pole housing 10 for a flat wiping connector, sectioned to reveal internal details.

[0016] The rear end opening 12 and the front end opening 14 define a passageway, channel, or chamber through the housing 10. The front end in this case is configured as a hermaphroditic or genderless connector with complementary jaw 15 and U-shaped hood 17 structure that can be connected to another identical connector rotated 180 degrees so that the contact surfaces properly mate. The opposing offset jaws 15 surround the aligned and engaged contacts 32 during connection, and the U-shaped hood 17 of each mating connector is longitudinally and rotationally aligned to accommodate the opposing connector jaws 15 in a straight-line mating motion. The U-shaped hood limits this type of connector to straight-line mating motion only.

[0017] Referring again to FIG. 1A, the leaf spring 16 is held by a spring base extension 18 held in two opposing spring pockets or slots 20 (only one shown) adjacent and parallel to the floor 24. Notably, the spring slots 20 are open or accessible to the rear end opening 12 for insertion of the spring. The leaf spring 16 is inserted through the rear end opening 12 so that the extension 18 slides into the slot 20. The spring is held in its final position within the slot 20 by a spring peg 26 that is driven upward by external pressure through the floor 24 just behind the base of the spring. The peg 26 is cold-formed into the floor 24 of the housing 10 after the leaf spring 16 is inserted into the housing 10. Thus, the front end of the extension 18 is restricted from moving beyond the front end of the slot 20, and the rear end of the leaf spring 16 is fixed in position because its movement is restricted by the peg 26. The cantilevered tip of the leaf spring 16 extends beyond the barrier 22 and is biased upwardly, away from the floor 24 .

[0018] 1B for an explanation of the assembly. The contact 30 includes a front wiping surface 32 terminated by a spring hook 34 and a rear conductor receiving portion 36 (conductors not shown). The contact 30 is installed by inserting it into the rear opening 12 so that the front wiping surface 32 passes under the barrier 22 and rides along the upwardly biased leaf spring 16 until the spring hook 34 latches or snaps onto the front edge or end of the leaf spring 16. The housing is configured so that the front end of the conductor receiving portion 36 abuts the barrier 22 at this point, thereby fixing the contact 30 in this position and preventing further forward or rearward movement, limited only to vertical movement due to compression of the leaf spring 16.

[0019] In subsequent operation, the floating action provided by the spring 16 allows the contacts 30 to be depressed sufficiently during mating with another mating connector to allow for the slight vertical displacement caused by the wiping action that forces the two opposing contacts into compressive engagement with their respective current-carrying wiping surfaces 32.

[0020] However, as discussed above, misuse of or damage to an electrical connector can result in failure of the connector and / or damage to anything to which the electrical connector is electrically coupled. The connectors shown and described in Figures 1A and 1B do not have a mechanism for measuring or identifying if a condition of failure or potential damage to other devices exists. Accordingly, various connector housings are disclosed herein that are configured to receive circuit boards and may have other components within the electrical connector for monitoring the status of the connector (e.g., temperature, voltage, current, etc.). Additionally, methods of assembling such connectors are disclosed herein.

[0021] 2 is a top right perspective view of an example electrical connector housing 200 according to the teachings of the present disclosure. The connector housing 200 may include a rear end opening 202 into which electrical contacts (not shown in FIG. 2) may be inserted. Although the example connector housing 200 is a flat wiping connector, the various systems and methods described herein may be used with types of connectors other than flat wiping connectors.

[0022] FIG. 3 is an upper left perspective view of the electrical connector housing 200 of FIG. 2 in accordance with the teachings of the present disclosure. In FIG. 3, a front-end opening 302 is shown, which is configured to mate with another connector, for example, to connect a load to a power source. The connector housing 200 also includes a hole 304. The hole 304 is configured to receive a pin that connects directly to a circuit board housed within the connector housing 200. In this manner, the pin extending from the hole 304 may function as a male connector for joining the circuit board within the connector housing 200 to a circuit in a mating connector mated to the connector housing 200. In another embodiment, the hole 304 may receive a pin that is part of a connector mated to the connector housing 200. In this manner, the hole 304 may function as a female connector for electrically joining the circuit board within the connector housing 200 to a circuit in the mating connector. In either case, the hole 304 may accommodate an electrical connection to a circuit board within the connector housing.

[0023] Figure 4 is a bottom, front perspective view of the electrical connector housing 200 of Figure 2 in accordance with the teachings of the present disclosure. The view of the connector housing 200 shows a chamber 402 in the bottom of the connector housing 200 in which a circuit board may be mounted or otherwise disposed. Such a circuit board is not shown in Figure 4 but is further illustrated and described in Figures 12-14, 17, and 19. Figure 4 also shows posts 404 molded into the connector housing 200 that may be used to mount a circuit board to the connector housing 200. In various embodiments, the circuit board may be mounted or secured to the connector housing 200 using methods or components other than or in addition to the posts 404.

[0024] Connector housing 200 also includes a pass-through 406 for electrical leads to pass from chamber 402 to a second chamber or passageway of connector housing 200. In this manner, the electrical leads may connect the circuit board within chamber 402 to conductive components, sensors, etc. in other portions of the chambers of connector housing 200. Additionally, pass-through 408 provides an opening for electrical leads or pins to connect the circuit board within chamber 402 to holes 304 in FIG. 3 so that the circuit board can be electrically connected to something outside of connector housing 200. In various embodiments, additional, different, or fewer pass-throughs than pass-throughs 406 and 408 may be used to connect the chamber for the circuit board to another chamber or passageway of the connector housing. In various embodiments, the pass-throughs in connector housing 200 may be sealed after an electrical component is inserted to separate or seal the chamber for the circuit board from the other chambers of the electrical connector.

[0025] Figure 5 is a bottom front perspective view of the electrical connector housing 500 of Figure 2 having a bottom cover in accordance with the teachings of the present disclosure. The connector housing 500 shown in Figure 5 includes a bottom cover 502 disposed over the chamber 402 shown in Figure 4. The bottom cover 502 may be attached, sealed, or otherwise connected to the connector housing 200 to protect the circuit board and other components within the chamber 402.

[0026] Figure 6 is a front elevational view of the electrical connector housing 200 of Figure 2 in accordance with the teachings of the present disclosure. Figure 7 is a back elevational view of the electrical connector housing 200 of Figure 2 in accordance with the teachings of the present disclosure.

[0027] FIG. 8 is a right-side elevation view of the electrical connector housing 200 of FIG. 2 in accordance with the teachings of the present disclosure. FIG. 9 is a left-side elevation view of the electrical connector housing 200 of FIG. 2 in accordance with the teachings of the present disclosure. The connector housing 200 shown in FIG. 8 includes a pin cover 802 that may cover and protect pins leading from a circuit board within the connector housing 200 to holes 304 in the connector housing 200. In some embodiments, the pin cover 802 may not be present in the connector housing 200 itself, but may be mounted on or otherwise part of a circuit board within the connector housing 200. Additionally, FIG. 8 illustrates section lines A and B. Cross-sectional views of the connector housing 200 associated with section lines A and B are shown in FIGS. 16 and 18, respectively. FIG. 10 is a top view of the electrical connector housing 200 of FIG. 2 in accordance with the teachings of the present disclosure. FIG. 10 also illustrates section lines A and B shown in FIGS. 16 and 18, respectively.

[0028] Figure 11A is a bottom plan view of the electrical connector housing 200 of Figure 2 with a bottom cover 502 in accordance with the teachings of the present disclosure. Figure 11B is a bottom plan view of the electrical connector housing 200 of Figure 2 without the bottom cover 502 in accordance with the teachings of the present disclosure. Figure 11A also shows pins 1102 that may pass through holes 304 described herein, which are not shown in Figure 11B. Similar to Figure 4, Figure 11B without the bottom cover 502 shows a chamber 402 configured to receive a circuit board, posts 404 for mounting the circuit board, pass-throughs 406 for connecting the circuit board to components within other passages or chambers in the connector housing 200, and pass-throughs 408 for pins for connecting the circuit board to other devices or connectors.

[0029] FIG. 12 is a top right perspective view of an example circuit board assembly 1200 in accordance with the teachings of the present disclosure. FIG. 13 is a front right perspective view of the circuit board assembly 1200 of FIG. 12 and two example retention springs 1302 in accordance with the teachings of the present disclosure. The components of the circuit board assembly 1200 can be assembled and connected before being inserted into an electrical connector housing, such as the connector housing 200 disclosed herein. The circuit board assembly 1200 includes a circuit board 1202 (circuitry not shown) having holes 1204 for accommodating the posts 404 shown in FIGS. 4 and 11B. The holes 1204 can cover the posts 404, and the circuit board 1202 can conform to the posts 404 in a variety of ways. For example, the posts 404 can be heat staked to slightly melt and secure the circuit board 1202 within the chamber 402. In other examples, adhesive may be used to attach the circuit board 1202 to the posts 404, an interference fit between the circuit board 1202 and the posts 404 may be used to attach the circuit board 1202 to the posts 404, or other suitable methods of securing the circuit board 1202 within the chamber of the connector housing may be used in various embodiments.

[0030] The circuit board assembly 1200 further includes electrical leads 1206 attached to the circuit board. The electrical leads 1206 can be formed such that, when they contact the retention spring 1302, the electrical leads 1206 have a spring force that pushes back against the retention spring 1302 to maintain an electrical connection between the retention spring 1302 and the circuit board 1202. Additionally, the electrical leads 1206 are formed to slide along the retention spring 1302 without catching on the electrical leads 1206 during insertion of the retention spring 1302 into a connector housing, such as the connector housing 200. While FIGS. 12 and 13 illustrate only one possible way of electrically connecting the circuit board 1202 to the retention spring 1302, other ways of connecting the two may be used in various embodiments. Additionally, while the embodiment of FIG. 13 relates to connecting the circuit board 1202 to the retention spring 1302, similar or different electrical leads may electrically connect the circuit board 1202 directly or indirectly to other components within the connector body, such as electrical contacts, sensors, or any other components. The circuit board assembly further includes a pin cover 802 that covers pins 1210 that electrically connect the circuit board 1202 to a device or connector external to the connector in which the circuit board 1202 is housed.

[0031] 14 is an exploded perspective view of the electrical connector housing 200 of FIG. 2, an example gasket 1402, a circuit board 1202, and a bottom cover 502 in accordance with the teachings of the present disclosure. In particular, FIG. 14 shows how the gasket 1402 is positioned between the circuit board 1202 and the surface of the chamber 402 to which the circuit board 1202 is mounted. The gasket 1402 may include openings that align with the pass-throughs 406 and 408 to allow connection from the circuit board 1202 to devices, sensors, components, etc. within the connector housing 200, in addition to holes that accommodate the posts 404 used to mount the circuit board 1202. The gasket 1402 further serves to seal the circuit board 1202 and its components from the remainder of the connector housing 200, including around the pass-throughs 406 and 408.

[0032] 15 is an exploded perspective view of the electrical connector housing 200, retention spring 1302, and electrical contacts 1502 of FIG. 2 in accordance with the teachings of the present disclosure. When using the electrical connector 202, the retention spring 1302 is first inserted into the rear end opening 202. The retention spring 1302 is secured to the connector housing 200 after insertion. A wire is inserted into the opening of the electrical contact 1502, and the electrical contact is crimped around the wire. The electrical contact 1502 is then inserted into the rear end opening 202, and once fully inserted, the electrical contact 1502 is held within the connector housing 200 by the retention spring 1302.

[0033] Figure 16 is a cross-sectional front view of the electrical connector housing 200 of Figure 2 taken along section line A shown in Figures 8 and 10 in accordance with the teachings of the present disclosure. The example of Figure 16 shows the connector housing 200 without a circuit board, gasket, bottom cover, retention spring, or electrical contacts attached. The connector housing 200 includes a rear-end opening 202 into which the retention spring and electrical contacts can be inserted, as disclosed herein. The connector housing 200 further includes a front-end opening 302, which can mate with another connector housing similar to the connector housing 200, as disclosed herein, to also mate the electrical contacts in the two connector housings. Figure 16 also shows a chamber 402 into which a circuit board can be attached and a chamber 1602 into which the electrical contacts can be inserted. A pass-through 406 (as well as a pass-through 408 and another pass-through 406 not shown in FIG. 16 ) connects chamber 402 and chamber 1602 so that electrical leads (e.g., electrical lead 1206) or other components extend from a circuit board within chamber 402 into chamber 1602. FIG. 16 further shows posts 404 that can be used to mount or secure a circuit board within chamber 402.

[0034] FIG. 17 is a cross-sectional front view of an electrical connector assembly taken along section line A shown in FIGS. 8 and 10 in accordance with the teachings of the present disclosure. Specifically, FIG. 17 shows the assembly with the retention spring 1302, electrical contacts 1502, gasket 1402, circuit board 1202, electrical leads 1206, and bottom cover 502 all in place. As shown in FIG. 17, the electrical leads 1206 may extend from the circuit board 1202 to the retention spring 1302. The electrical leads 1206, retention spring 1302, and electrical contacts 1502 may all be made from a conductive material, such as a conductive metal. In this manner, components on the circuit board 1202 may be able to detect aspects of the electricity or electrical signals at the electrical contacts 1502 and the wires within the electrical contacts 1502. For example, the voltage at the electrical contacts 1502 and retention spring 1302 may be detected. In the embodiment of FIG. 17, only a single electrical lead 1206 contacts the retention spring 1302. However, in other embodiments, the connector housing may be configured to provide multiple pass-throughs so that multiple electrical leads contact the retention spring and / or electrical contacts. In this manner, other aspects of the signal passing through the electrical contacts 1502, such as the current through the electrical contacts 1502, may be measured.

[0035] Figure 18 is a cross-sectional front view of electrical connector housing 200 of Figure 2 taken along section line B shown in Figures 8 and 10 in accordance with the teachings of the present disclosure. Figure 18 specifically illustrates pass-through 408 connecting circuit board chamber 402 to chamber 1802. Chamber 1802 is separated from chamber 1602 to isolate the electrical contacts in chamber 1602 from chamber 1802 and another chamber into which a second electrical contact is inserted. Hole 304 provides an opening for passing a pin from the interior of connector housing 200 (e.g., chamber 1802) to the exterior of connector housing 200.

[0036] FIG. 19 is a cross-sectional front view of an electrical connector assembly taken along section line B shown in FIGS. 8 and 10 in accordance with the teachings of the present disclosure. FIG. 19 illustrates how pins 1210 pass from circuit board 1202 through pass-through 408 to chamber 1802 and through hole 304 to the exterior of connector housing 200. In this manner, pins 1210 contact, for example, other electrical connectors to facilitate communication between the two electrical connectors. Pins 1210 may be partially or fully protected within chamber 1802 by a pin cover. Pin cover 802 may extend from circuit board 1202 into chamber 1802 through pass-through 408.

[0037] In various embodiments, circuit board 1202 may include or be connected to various components for measuring the electrical connector, the contacts within the electrical connector, the air / environment within or outside the electrical connector, or any other aspect of or related to the electrical connector. For example, a temperature sensor may be located anywhere on circuit board 1202 or within connector housing 200. For example, a temperature sensor may be located within chamber 402, within chamber 1602, within chamber 1802, or anywhere on the exterior surface of connector housing 200. Additionally or alternatively, a temperature sensor may be positioned to contact one or more of electrical leads 1206, retention spring 1302, electrical contacts 1502, pins 1210, and / or other components within connector housing 200. In various embodiments, other types of sensors may also be incorporated anywhere within connector housing 200 or on connector housing 200 or on components within connector housing 200. For example, a moisture or humidity sensor or any other type of sensor may be used to monitor the condition and / or environment of the connector housing. The various sensors incorporated into connector housing 200 may also include electrical leads from the sensors to circuit board 1202 so that measurements from those sensors may be detected / received. The electrical leads may extend from the sensors through either pass-through 406 or 408 disclosed herein or through a different pass-through.

[0038] FIG. 20 is a bottom left perspective view of another exemplary electrical connector housing 2000 in accordance with the teachings of the present disclosure. The connector housing 2000 includes a pass-through 2004 connecting a chamber for a circuit board to the exterior of the connector housing 2000. A front-end opening 2006 is also shown within the connector housing 2000. Electrical leads for connecting a radio frequency identification (RFID) reader 2002 extend into the pass-through 2004 to connect the RFID reader 2002 to the circuit board within the connector housing 2000. The RFID reader 2002 is positioned on an exterior portion of the connector housing 2000 that overlaps with the other connector housing when the two electrical connectors are mated. In this manner, the RFID reader 2002 can read an RFID tag on the other electrical connector. Thus, a unique identifier read from the other RFID tag can be identified. The unique identifier can be associated with the other electrical connector (not shown), a battery charger to which the other electrical connector is connected, a battery to which the other electrical connector is connected, or any other device associated with the other electrical connector. In this way, the circuit board's processor, or another computing device with which the circuit board's processor communicates, can identify which device or connector the connector housing 2000 is connected to. In another embodiment, the connector housing 2000 may have an RFID tag instead of the RFID reader 2002, or may have both an RFID tag and an RFID reader 2002. By placing either the RFID tag or the RFID reader in the portion of the connector housing 2000 that overlaps the other connector, the RFID reader on one connector can overlap and read the RFID tag on the other connector. Although the RFID reader is shown as being attached to a surface of the connector housing, the RFID reader or tag may also be formed within a portion of the connector housing in various embodiments.

[0039] 21 is a block diagram of an example system 2100 for an example electrical connector accommodated with a circuit board according to the teachings of the present disclosure. Various aspects of system 2100 may be mounted to a circuit board within a connector housing as disclosed herein, mounted on or within the connector housing and electrically connected to a circuit board within the connector housing, or in communication (e.g., wired or wireless) with components of a circuit board within the connector housing as disclosed herein.

[0040] Among other things, the processor 2102 and / or other devices of the system 2100 may be powered by a power source 2106. The power source 2106 may be any type of power source, such as a battery or power drawn from current through electrical contacts in an electrical connector housing. The processor 2102 may be operatively coupled to a memory 2104, an input button 2118, one or more temperature sensors 2110, an RFID tag or reader 2112, a display or light 2114, the input button 2118 (or other user interface), and a wireless transmitter 2116. The memory 2104 may store code (e.g., non-transitory computer-readable instructions) that is read or executed by the processor 2106. Such code may cause the processor 2102 to perform any of the operations, steps, methods, etc. disclosed herein. The memory 2104 may store various captured sensor data, such as temperature, RFID tags read, and voltage or current signals read, along with timestamps of any information sensed or determined by components of the system 2100. The processor 2102 may communicate such data to another computing device 2200 via wireless transmitter 2116. The system 2100 and / or computing device 2200 may have any of the components of or be any of the computing devices described below with respect to Figure 24. In various embodiments, the system 2100 may also communicate with the computing device 2200 or other computing devices via a wired connection.

[0041] The temperature sensor 2110 may be any temperature sensor disclosed herein that is used to monitor the temperature of various components within the connector housing, the air within or outside the connector housing, or the surface of the connector housing to monitor for thermal runaway events or other temperature behavior or conditions that are desirable to monitor. As described below with respect to Figure 23, the processor may send an alert to another computing device if the sensed temperature reaches or exceeds a predetermined temperature threshold that indicates a dangerous or undesirable temperature condition associated with the electrical connector housing, such as a particular location on or within the housing or a particular component within the housing.

[0042] The wireless transmitter 2116 may communicate with the computing device 2200, which may communicate via a wired or wireless (e.g., Bluetooth) connection in various embodiments. The computing device 2200 may be any type of computing device, controller, processor, etc. For example, the computing device 2200 may be a smartphone, tablet, laptop, large output display, computing device specially constructed for use with the system 2100, the controller of a hydraulic or other automated pipe bender, etc. In this manner, the system 2100 may be configured to communicate with any other type of computing device.

[0043] Data representing sensor measurements (e.g., temperature sensor 2110, RFID reader 2112, signal sensor 2108) may be transmitted to computing device 2200 via wireless transmitter 2116 for display, collection, or other purposes. In various examples, wireless transmitter 2116 may be a transceiver that can receive signals / data from computing device 2200.

[0044] An input button 2118 or other type of user input device may be incorporated into system 2100 so that a user may provide input. For example, input button 2118 may be pressed to indicate to system 2100 that data stored in memory 2104 should be transmitted to computing device 2200. In other embodiments, such transmission of data may occur automatically. Display / light 2114 may provide feedback to the user. For example, a green light emitting diode (LED) may indicate that the temperature of the electrical connector is acceptable, while a yellow or red LED may indicate that there is a problem with the connector or the temperature of the connector.

[0045] Various embodiments may incorporate additional, different, or fewer features than those shown in Figure 21. For example, additional sensors of the same type as those shown in Figure 21 may be used, or different types of sensors may be used than those shown in Figure 21, or fewer sensors may be used than those shown in Figure 21. Other devices or components, such as radios, GPS chips, or any other type of electronic device or part, may additionally or alternatively be used. Additionally, as disclosed herein, in various embodiments, the various electronic components (whether shown in Figure 21 or not) may communicate with each other via wired or wireless connections, and with separate computing devices (e.g., computing device 2200) via wired or wireless connections.

[0046] 22 is a flow chart illustrating an example method 2200 for assembling an electrical connector according to the teachings of the present disclosure. At block 2202, a connector housing is made, for example, from a non-conductive plastic. At block 2204, one or more retention springs may be inserted into one or more rear end openings of the connector housing. For example, the retention springs may be retention springs 1302 of FIGS. 13, 15, and 17, and the connector housing may be connector housing 200 disclosed herein.

[0047] At block 2206, one or more retention springs may be secured within the connector housing. Some retention springs and connector housings may be shaped and configured to automatically retain and secure the retention spring within the connector housing, while other types of retention springs and connector housings may utilize deformation of the connector housing (e.g., cold staking) to secure the retention spring within the housing. In either case, the retention spring is secured within the housing.

[0048] At block 2208, a gasket (e.g., gasket 1402 of FIGS. 14 and 17) is inserted into the circuit board chamber (e.g., chamber 402 of FIGS. 4, 11B, 14, and 16-19). At block 2210, a circuit board (e.g., circuit board 1202 of FIGS. 12-14, 17, and 19) is inserted into the circuit board chamber. In various embodiments, the gasket and circuit board may be inserted together after being adhered to one another, or may be inserted separately. At block 2212, the circuit board may be secured within the connector housing. For example, as disclosed herein, posts such as post 404 may be cold staked to form around and secure the circuit board.

[0049] At block 2214, a circuit board chamber cover (eg, bottom cover 502 of FIGS. 5, 11A, 14, 17, and 19) may be placed over and sealed to protect the circuit board chamber.

[0050] At block 2216, wires are inserted into the electrical contacts, which may be inserted into the rear opening of the connector housing at block 2218. At block 2220, the front opening of the connector housing may be mated with a second connector housing as disclosed herein. In various embodiments, blocks 2216, 2218, and 2220 may be performed by a first user in the field with the electrical connector, while the other blocks may be performed by one or more other individuals at a manufacturing facility where the electrical connector is manufactured.

[0051] 23 is a flowchart illustrating an example method 2300 for determining a temperature in an electrical connector according to the teachings of the present disclosure. At block 2302, a temperature sensor signal is received by a processor, such as, for example, processor 2102 of FIG. 21. Based on that signal, the processor may determine a temperature at a temperature sensor associated with the temperature sensor signal based on the temperature sensor signal. In some embodiments, the temperature sensor signal itself may indicate the temperature to be determined, while in other embodiments, the processor may need to perform additional processing on the temperature sensor signal to determine the temperature at the associated temperature sensor. Whether additional processing is used may depend, for example, on the type of temperature sensor used.

[0052] At block 2306, the temperature determined at block 2304 may be compared to a predetermined temperature threshold to determine whether the condition is critical and / or indicative of a condition indicative of a potential thermal runaway event. The predetermined threshold temperature may be based on a number of different factors. For example, the placement of the temperature sensor may affect the predetermined threshold temperature. For example, the temperature may be measured at the surface of one of the electrical leads 1206, the surface of one of the retention springs 1302, or the surface of the electrical contacts 1502 within the connector housing. Because the temperature may be highest at the electrical contacts (e.g., electrical contacts 1502), for example, a temperature measurement at the electrical lead or retention spring may be compared to a lower predetermined threshold temperature than a temperature measurement at the electrical contact. Similarly, different locations within the connector housing or on the exterior or interior surfaces of the connector housing may have different expected temperatures based on the location of a heat source indicative of a potential thermal runaway event. Thus, the predetermined temperature threshold may be configured based on a given temperature sensor placement. Additionally, the predetermined temperature threshold may be configured based on the type of connector housing insulator, the ampere rating or other type or rating of the connector, the thickness of the connector housing, the melting point of the connector housing material, etc. That is, the type of connector used and its intended use may indicate its ability to withstand different temperatures, and therefore the type and intended use of the connector may be considered to set a predetermined temperature threshold at which the connector may be safely used.

[0053] In various embodiments, a potential thermal runaway event may be identified without or in addition to using a predetermined temperature threshold. For example, the temperature sensed in or on the connector housing (or particular components within the connector housing) may be monitored over time, and significant deviations from typical temperatures over time may indicate a potential thermal runaway event or misuse of the electrical connector. That is, the processor may, for example, identify the operating temperature or overall average temperature at which the connector is used and monitor the temperature of the connector for deviations above a certain threshold percentage or other metric above the average temperature. In this way, even if a predetermined temperature threshold that may indicate a dangerous temperature of the connector has not been set or determined, the processor may still monitor the temperature of the connector for temperature deviations that may be unsafe and / or may cause failure of the connector.

[0054] In various embodiments, the temperature sensor can also be configured to measure the temperature of the environment in which the connector is located (e.g., ambient air temperature). For example, the ambient air temperature can be measured by a temperature sensor mounted on the circuit board or otherwise within the circuit board chamber (e.g., chamber 402 disclosed herein). This can help determine what the predetermined threshold temperature used in block 2306 should be, as a hotter environment can make the connector more susceptible to a thermal runaway event because heat may not be able to dissipate quickly from the connector itself. Thus, as discussed above, many different methods of identifying a critical temperature in or at the connector can be utilized.

[0055] If, at block 2308, it is determined that the temperature within the connector exceeds a predetermined temperature threshold (or if it is determined that the connector has reached a potentially dangerous temperature), an alert may be sent. The alert may be one or more of many different types of signals sent by the processor. For example, a signal may be sent to a light on the connector to indicate that the condition is dangerous. The alert may be sent to another computing device via a wired or wireless connection. Based on such an alert, the other computing device may, for example, shut off power to the connector by shutting off a device to which the electrical connector electrically connects via a wire.

[0056] Accordingly, various sensor and connector housing configurations are disclosed herein for preventing thermal runaway events in electrical connectors. This can be useful in identifying instances of connector misuse (e.g., using a connector with a higher than rated amperage), identifying instances of errors made when using the connector (e.g., a poor crimp between the electrical contacts and the wire), or identifying when a device electrically connected to the connector is malfunctioning. Using the connector measurements disclosed herein can also be used to prevent further damage (e.g., by shutting off a device associated with the connector in response to a warning or signal indicating a higher than desired temperature at the connector).

[0057] Additionally, other aspects sensed in the electrical connectors disclosed herein may be useful in other ways. For example, voltage measured at an electrical contact may indicate the condition or health of a battery to which the electrical contact is electrically connected. Such voltage measurements may also indicate the charge level of the battery. Similar to the temperature alert described above, an alert may also be sent if the voltage meets or exceeds a first predetermined threshold or meets or falls below a second predetermined threshold. In this manner, an alert may be sent if the voltage at the connector is undesirable or indicates an undesirable condition elsewhere.

[0058] 24 illustrates an example of a user computing environment that includes a general-purpose computing system environment 100, such as a desktop computer, laptop, smartphone, tablet, or any other device capable of executing instructions, such as those stored in a non-transitory computer-readable medium. Various computing systems (e.g., angle indicator display device, computing device) disclosed herein may be similar to computing system 100 or may include some components of computing system 100. Additionally, while described and illustrated in the context of a single computing system 100, those skilled in the art will appreciate that various tasks described below may also be performed in a distributed environment having multiple computing systems 100 linked via a local or wide area network, where executable instructions may be associated with and / or executed on one or more of the multiple computing systems 100.

[0059] In its most basic configuration, computer system environment 100 typically includes at least one processing unit 102 and at least one memory 104, which may be linked via a bus 106. Depending on the exact configuration and type of computer system environment, memory 104 may be volatile (such as RAM 110), non-volatile (such as ROM 108, flash memory, etc.), or some combination of the two. Computer system environment 100 may have additional features and / or functionality. For example, computer system environment 100 may also include additional storage (removable and / or non-removable) including, but not limited to, magnetic or optical disks, tape drives, and / or flash drives. Such additional storage may be made accessible to computer system environment 100 by, for example, hard disk drive interface 112, magnetic disk drive interface 114, and / or optical disk drive interface 116. As will be appreciated, these devices, which may each be linked to system bus 306, respectively enable reading from and writing to hard disk 118, reading from or writing to removable magnetic disk 120, and / or reading from or writing to removable optical disk 122, such as a CD / DVD ROM or other optical media. The drive interfaces and their associated computer-readable media enable non-volatile storage of computer-readable instructions, data structures, program modules, and other data for computer system environment 100. Those skilled in the art will further appreciate that other types of computer-readable media capable of storing data may be used for the same purposes. Examples of such media devices include, but are not limited to, magnetic cassettes, flash memory cards, digital video disks, Bernoulli cartridges, random access memory, nanodrives, memory sticks, other read / write and / or read-only memory, and / or any other method or technology for storing information, such as computer-readable instructions, data structures, program modules, or other data. Any such computer storage media may be part of computer system environment 100.

[0060] A number of program modules may be stored in one or more memory / media devices. For example, a basic input / output system (BIOS) 124, containing the basic routines that help to transfer information between elements within the computer system environment 100, such as during start-up, may be stored in ROM 108. Similarly, RAM 110, hard drive 118, and / or peripheral storage devices may be used to store computer-executable instructions, including an operating system 126, one or more application programs 128 (which may include functionality disclosed herein), other program modules 130, and / or program data 122. Additionally, computer-executable instructions may be downloaded to the computer environment 100 as needed, for example, via a network connection.

[0061] An end user may enter commands and information into the computer system environment 100 through input devices such as a keyboard 134 and / or a pointing device 136. Other input devices, not shown, may include a microphone, joystick, gamepad, scanner, etc. These and other input devices are typically connected to the processing unit 102 by a peripheral interface 138, which may be coupled to the bus 106. The input devices may be connected directly or indirectly to the processor 102 through an interface such as a parallel port, gameport, FireWire, or universal serial bus (USB). A monitor 140 or other type of display device may also be connected to the bus 106 through an interface, such as a video adapter 132, for displaying information from the computer system environment 100. In addition to the monitor 140, the computer system environment 100 may also include other peripheral output devices, not shown, such as speakers and printers.

[0062] The computer system environment 100 may utilize logical connections to one or more computer system environments. Communications between the computer system environment 100 and a remote computer system environment may be exchanged through an additional processing device, such as a network router 152, which performs network routing functions. Communications with the network router 152 may occur through a network interface component 154. As such, it will be understood that within such a network environment, e.g., the Internet, the World Wide Web, a LAN, or other similar types of wired or wireless networks, the program modules illustrated relative to the computer system environment 100, or portions thereof, may be stored in the memory storage devices of the computer system environment 100.

[0063] The computing system environment 100 may also include localization hardware 186 for determining the location of the computing system environment 100. In some cases, the localization hardware 186 may include, by way of example only, a GPS antenna, an RFID chip or reader, a WiFi antenna, or other computing hardware that may be used to capture or transmit signals that may be used to determine the location of the computing system environment 100.

[0064] While this disclosure has described particular embodiments, it will be understood that the claims are not intended to be limited to these embodiments, unless expressly set forth in the claims. To the contrary, this disclosure is intended to cover alternatives, modifications, and equivalents that may be included within the spirit and scope of the disclosure. Furthermore, in the detailed description of the disclosure, numerous specific details are set forth to provide a thorough understanding of the disclosed embodiments. However, it will be apparent to those skilled in the art that systems and methods consistent with the present disclosure may be practiced without these specific details. In other instances, well-known methods, procedures, components, and circuits have not been described in detail so as not to unnecessarily obscure various aspects of the present disclosure.

[0065] Some portions of the detailed descriptions of this disclosure are presented in terms of procedures, logic blocks, processing, and other symbolic representations of operations on data bits within a computer or digital system memory. These descriptions and representations are the means used by those skilled in the data processing arts to most effectively convey the substance of their work to others skilled in the art. In this application, a procedure, logic block, process, etc., is generally conceived to be a self-consistent sequence of steps or instructions leading to a desired result. The steps require physical manipulations of physical quantities. Usually, though not necessarily, these physical manipulations take the form of electrical or magnetic data capable of being stored, transferred, combined, compared, and otherwise manipulated in a computer system or similar electronic computing device. For reasons of convenience, and common usage, such data may be referred to as bits, values, elements, symbols, characters, terms, numbers, or the like in connection with the various embodiments disclosed herein.

[0066] It should be noted, however, that these terms should be interpreted as referring to physical operations and quantities and are merely convenient labels that should be further interpreted in light of terminology commonly used in the art. As will be apparent from the discussion herein, unless otherwise specified, throughout the description of the present embodiments, descriptions using terms such as "identifying" or "outputting" or "transmitting" or "recording" or "locating" or "storing" or "displaying" or "receiving" or "recognizing" or "utilizing" or "generating" or "providing" or "accessing" or "checking" or "notifying" or "delivering" are understood to refer to the operations and processes of a computer system or similar electronic computing device that manipulates and transforms data. Data is represented as physical (electronic) quantities in the registers and memory of the computer system and is converted to other data that are similarly represented as physical quantities in the memory or registers of the computer system or other information storage, transmission, or display devices described herein or understood by those skilled in the art.

[0067] Although certain exemplary methods and apparatus have been described herein, the scope of coverage of this patent is not limited thereto. On the contrary, this patent covers all methods, apparatus, and articles of manufacture fairly falling within the scope of the appended claims either literally or under the doctrine of equivalents.

Claims

1. a connector housing configured to receive at least one electrical contact; a circuit board accommodated in the connector housing; at least one electrical lead configured to electrically connect the circuit board to the at least one electrical contact; at least one spring retainer secured within the connector housing and configured to lock the at least one electrical contact within the connector housing; a first chamber configured to receive the at least one electrical contact; and a second chamber containing the circuit board; a pass-through connecting the first chamber and the second chamber; An electrical connector comprising: the at least one spring retainer is electrically connected directly to the at least one electrical contact, and the at least one electrical lead is electrically connected directly to the at least one spring retainer; The at least one electrical lead passes between the first chamber and the second chamber through the pass-through.

2. The electrical connector of claim 1 , wherein the at least one spring retainer comprises a conductive metal.

3. 2. The electrical connector of claim 1, wherein the pass-throughs are formed in a bottom surface of the first chamber and a top surface of the second chamber.

4. 4. The electrical connector of claim 3, further comprising a gasket positioned between the circuit board and a top surface of the second chamber.

5. 5. The electrical connector of claim 4, wherein the gasket forms a seal between a top surface of the second chamber and the circuit board, the gasket including an opening corresponding to a shape of the pass-through.

6. The electrical connector of claim 3 , wherein the bottom surface of the second chamber includes a bottom cover sealed to the connector housing.

7. 10. The electrical connector of claim 1, further comprising at least one signal pin connected to the circuit board, the at least one signal pin extending from the circuit board to an interface configured to mate the at least one signal pin with a signal receptacle of a second electrical connector.

8. 8. The electrical connector of claim 7, wherein the electrical connector is a first flat wiping connector and the second electrical connector is a second flat wiping connector configured to mate with the first flat wiping connector.

9. 9. The electrical connector of claim 8, wherein the at least one signal pin is configured to mate with a signal pin receptacle of the second electrical connector on the same side of the electrical connector as a side of the second electrical connector that mates with at least one second electrical contact of the second electrical connector.

10. 10. The electrical connector of claim 1, further comprising a wireless transmitter configured to communicate with a computing device external to the electrical connector.

11. A connector housing having a front end opening and a rear end opening, the connector housing is configured to hold at least one electrical contact; the connector housing further includes a first chamber and a second chamber; the first chamber is located between the front end opening and the rear end opening; A connector housing; a circuit board attached to the connector housing and located within the second chamber; at least one electrical lead electrically connected to the circuit board and extending from the first chamber to the second chamber; an electrical connector including:

12. 12. The electrical connector of claim 11, further comprising a first radio frequency identification (RFID) tag or reader secured to the connector housing, the first RFID tag or reader configured to communicate with a second RFID tag or reader of a second electrical connector configured to mate with the electrical connector.

13. and at least one temperature sensor in communication with the circuit board, the at least one temperature sensor comprising: the first chamber, the second chamber, a surface of an electrical contact inserted into the electrical connector; the at least one electrical lead; or a retention spring within the first chamber; 12. The electrical connector of claim 11, configured to measure the temperature of at least one of:

14. 12. The electrical connector of claim 11, wherein components on the circuit board are powered via electrical current received through the electrical leads from electrical contacts inserted into the electrical connector.

15. 12. The electrical connector of claim 11, wherein the component on the circuit board is configured to measure a voltage across an electrical contact inserted into the electrical connector via the electrical lead.

16. 1. A method for assembling an electrical connector, comprising: forming a connector housing; Inserting a spring retainer into an opening in a first chamber of the connector housing configured to receive an electrical contact; Inserting a circuit board into a second chamber of the connector housing; Fixing the circuit board to the connector housing; sealing a cover over the second chamber of the connector housing; A method comprising: the circuit board includes at least one electrical lead configured to electrically connect the spring retainer to the circuit board after the spring retainer is inserted into the connector housing and the circuit board is secured to the connector housing; The method, wherein the first chamber and the second chamber are connected by a pass-through, and the at least one electrical lead passes between the first chamber and the second chamber through the pass-through.

Citation Information

Patent Citations

  • Power adapter

    CN203967272U

  • Electrical connector

    JP1979158691A

  • Safety check outlet

    JP1995014581U

  • Low-height type connector for connecting boards

    JP1999016647A

  • Turning power plug device

    JP2001351718A