PIN ALIGNMENT FIXTURE
20170358877 · 2017-12-14
Inventors
Cpc classification
International classification
Abstract
A stacking pin alignment fixture for a stacking connector includes a substrate and a plurality of openings defined in the substrate, the plurality of openings being arranged in a predefined pattern. The predefined pattern corresponds to a pattern of a field of straight pins arranged on the stacking connector.
Claims
1. A stacking pin alignment fixture for a stacking connector, comprising: a substrate; a plurality of openings defined in the substrate, the plurality of openings being arranged in a predefined pattern, wherein the predefined pattern corresponds to a pattern of a field of straight pins arranged on the stacking connector.
2. The stacking pin alignment fixture of claim 1, wherein the substrate comprises an electrically non-conductive board.
3. The stacking pin alignment fixture of claim 2, wherein the substrate is a substantially stiff board having a thickness of approximately 1 millimeter.
4. The stacking pin alignment fixture of claim 1, wherein the plurality of openings in the substrate are configured to be aligned with the pattern of the field of straight pins of the stacking connector when the substrate is placed onto the field of straight pins.
5. The stacking pin alignment fixture of claim 4, wherein the substrate is configured to move up and down a length of each straight pin in the field of straight pins when a substantially equal force is applied to both sides of the substrate.
6. The stacking pin alignment fixture of claim 4, wherein the substrate is configured to maintain each pin in the field of straight pins in a substantially straight position when the substrate is placed onto the field of straight pins.
7. The stacking pin alignment fixture of claim 6, wherein a length of each pin in the field of straight pins is approximately three-inches.
8. The stacking pin alignment fixture of claim 1, wherein the pre-defined pattern corresponds to an Airborn HMM series connector with 122 pins.
9. The stacking pin alignment fixture of claim 1, wherein a length of the substrate is approximately three-inches, and a thickness is approximately 1 millimeter.
10. The stacking pin alignment fixture of claim 1, wherein the substrate is configured to slide up and down the pins in the field of straight pins.
11. A stacking pin connector configured for space flight, comprising: a plurality of spaced-apart straight pins arranged in a pre-defined pattern on a first portion of the connector; a mating portion of the connector comprising a plurality of openings, wherein each opening is configured to receive a straight pin of the plurality of straight pins; and a substrate having a plurality of spaced-apart openings defined therein, the plurality of spaced-apart openings being arranged in a pattern corresponding to the pre-defined pattern of spaced-apart straight pins, wherein the substrate is configured to be mounted onto the plurality of spaced-apart straight pins to maintain each pin in a substantially straight position.
12. The connector of claim 11, wherein the substrate is configured to be positioned between the first portion of the connector and the mating portion of the connector when the first portion is connected to the mating portion.
13. The connector of claim 11, wherein the substrate is a substantially stiff board member, having thickness of approximately 1 millimeter.
14. The connector of claim 11, wherein the substrate is configured to slide up and down the plurality of pins when equal forces are applied to each side of the substrate.
15. The connector of claim 11, wherein the substrate substantially prevents lateral movement of the straight pins in the plurality of pins.
16. The connector of claim 11, wherein the connector is a 122-pin stacking connector.
17. The connector of claim 11, wherein the connector is a stacking connector for an avionics assembly board of a spacecraft.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025] In the following, the invention will be explained in more detail with reference to the example embodiments shown in the drawings, in which:
[0026]
[0027]
[0028]
[0029]
DETAILED DESCRIPTION OF THE DISCLOSED EMBODIMENTS
[0030] Referring to
[0031] A stacking connector is a connector type that has inherently long pins. An exemplary dimension of long pins is in the range of approximately one inch to three inches. An example of a stacking connector is shown in
[0032]
[0033] Referring again to
[0034] In one embodiment, the substrate 102 includes a plurality of holes or openings 104. The plurality of holes 104 are arranged in a pre-defined pattern 106. The pattern 106 will generally correspond to the pin pattern of a corresponding connector, as will be further illustrated below. In one embodiment, as is described below, the pin pattern of the corresponding connector is referred to as a field of pins.
[0035] The holes 104 are suitably sized to receive the pins of the corresponding connector. In one embodiment, a size of the holes 104 will include a minimal amount of tolerance that allows for the pin alignment fixture 100 to be inserted onto the pins of the corresponding connector. In one embodiment, the size of the openings or holes 4 can generally be driven by the min/max pin thickness tolerances provided by the manufacturer of the connectors and pins.
[0036] In one embodiment, the pin alignment fixture 100 is configured for a pin connector having a 122 pin pattern that is centered on the board 100. Although a 122 pin pattern is used in this example, it will be understood that the pin alignment fixture 100 can be used with any suitable connector having any number of pins of any suitable size. In this example, the length L of the board 102 is approximately 2.355 inches+/−0.010. The distance L1 is approximately 2.250 inches. The distance L2 is approximately 0.75 inches, while the distance L2 is approximately 0.375 inches.
[0037] The height H is approximately 0.330 inches+/−0.010 and the width W is approximately 0.62 inches. The distance H1 is approximately 0.225 inches and the distance H2 between adjacent rows of holes 104 is approximately 0.75 inches.
[0038]
[0039]
[0040] In one embodiment, the pin alignment fixture 100 of
[0041] In one embodiment, the pin alignment fixture 100 is configured to move up and down the connector pins 202 only if substantially equal forces are applied to each side of the board 102 of the pin alignment fixture 100. If a force from only one side of the pin alignment fixture 100 is applied that is not approximately the same as a force applied to the other side of the pin alignment fixture, due to the hole tolerancing, the pin alignment fixture 100 will not move, or will not easily move. This advantageously helps the pin alignment fixture 100 maintain the pins 202 in a substantially straight position or orientation as well as prevent the pin alignment fixture 100 from falling off of the connector 200.
[0042] The pin alignment fixture 100 of the disclosed embodiments advantageously aligns the pins 202 of a connector 200 with the receiving openings of a mating connector. In this manner, the pins 202 will not be bent when a force is applied to the mating connector parts of the connector assembly.
[0043] In one embodiment, once the mating connector parts 304 are mated together, the pin alignment fixture 100 is configured to slide over the pins 202 until a desired insertion position is reached. In this manner, the pin alignment fixture 100 remains with the connector assembly in the mated position.
[0044] Referring to
[0045] The pin alignment fixture 100 of the disclosed embodiments can be used with any connector that has pins that are not fixed on both ends. The design of the pin alignment fixture 100, such as the pattern and size of the holes 104 and the size of the board 102 can be changed to accommodate different pin diameters, pin spacing, the number of pins or any arrangement or pattern of pins.
[0046] The aspects of the disclosed embodiments advantageously maintain the pins of a connector, such as the long pins of a stacking connector, in a substantially straight position. In this manner, the pins cannot be easily bent or misaligned during handling. When the connector portions are mated together, the risk of a bent pin or a misalignment of the pin and receiving hole is minimized. This is particularly useful when the connector assembly or particular implementation requires a blind mate.
[0047] Thus, while there have been shown, described and pointed out, fundamental novel features of the invention as applied to the exemplary embodiments thereof, it will be understood that various omissions, substitutions and changes in the form and details of devices and methods illustrated, and in their operation, may be made by those skilled in the art without departing from the spirit and scope of the invention. Further, it is expressly intended that all combinations of those elements, which perform substantially the same function in substantially the same way to achieve the same results, are within the scope of the invention. Moreover, it should be recognized that structures and/or elements shown and/or described in connection with any disclosed form or embodiment of the invention may be incorporated in any other disclosed or described or suggested form or embodiment as a general matter of design choice. It is the intention, therefore, to be limited only as indicated by the scope of the claims appended hereto.