Plastic Latching System For Securement of Electronic Component to a DIN Rail
20230080025 · 2023-03-16
Inventors
- Rudy Mark D. Halcon (Antipolo City, PH)
- Kyle Vergel R. Maan (Pasig City, PH)
- Gajanan R. Muttepawar (Maharashtra, IN)
- Roderick P. De Castro (Batangas, PH)
Cpc classification
H02B1/0526
ELECTRICITY
International classification
Abstract
An apparatus for securing an electronic component to a DIN rail including an electronic component, a latching system positioned on an end of the electronic component adapted for attachment to the DIN rail, wherein the latching system is made of a plastic material, wherein the DIN rail has a flat upper surface with two legs extending downwardly from, and perpendicular to, the flat upper surface, and a flange extends outwardly from each leg, wherein the latching system includes a recess, an upper surface above the recess having an angled slot positioned in the upper surface adapted to receive an upper flange of the DIN rail, and a lower surface below the recess adapted to have an end of a lower flange of the DIN rail positioned thereover.
Claims
1. An apparatus comprising: an electronic component; a latching system positioned on an end of the electronic component adapted for attachment to a DIN rail; wherein the latching system is made of a plastic material; wherein the DIN rail has a flat upper surface with two legs extending downwardly from, and perpendicular to, the flat upper surface, and a flange extends outwardly from each leg; wherein the latching system comprises: a recess; an upper surface above the recess having an angled slot positioned in the upper surface adapted to receive an upper flange of the DIN rail; and a lower surface below the recess adapted to have an end of a lower flange of the DIN rail positioned thereover.
2. The apparatus of claim 1, wherein the angled slot in the upper surface of the recess accommodates the lower flange of the DIN rail having a thickness between 1-1.5 mm.
3. The apparatus of claim 1, wherein the angled slot has an angle of between 61.7 degrees+/−3% from horizontal.
4. The apparatus of claim 1, wherein an inner surface of the angled slot has a protrusion extending into an interior of the angled slot.
5. The apparatus of claim 4, wherein the protrusion is adapted to exert a force against a lower surface of the upper flange of the DIN rail which is counteracted by a force on an upper surface or end of the upper flange from an opposed wall of the angled slot when the upper flange of the DIN rail is positioned within the angled slot and the lower flange of the DIN is positioned on the lower surface of the recess.
6. The apparatus of claim 1, wherein when the upper flange is positioned in the angled slot, the lower flange is adapted to be snap fit into position on the lower surface of the beneath the recess of the latching system.
7. The apparatus of claim 1, wherein a backstop upwardly extends from the lower surface below the recess and a lower flange of the DIN rail is positionable over the lower surface below the recess behind the backstop.
8. A method of securing an electronic component to a DIN rail, comprising: providing an apparatus including an electronic component, a latching system positioned on an end of the electronic component adapted for attachment to a DIN rail, wherein the latching system is made of a plastic material, wherein the DIN rail has a flat upper surface with two legs extending downwardly from, and perpendicular to, the flat upper surface, and a flange extends outwardly from each leg, wherein the latching system includes a recess, an upper surface above the recess having an angled slot positioned in the upper surface adapted to receive an upper flange of the DIN rail, and a lower surface below the recess adapted to have an end of a lower flange of the DIN rail positioned thereover; positioning the upper flange of the DIN rail into the angled slot of the upper surface above the recess of the latching system; and moving the lower flange of the DIN rail such that the lower end of the lower flange is positioned over the lower surface below the recess of the latching system.
9. The method of claim 8, wherein the angled slot in the upper surface of the recess accommodates an upper leg having a thickness between 1-1.5 mm.
10. The method of claim 8, wherein the angled slot has an angle of 61.7 degrees +/−3% from horizontal.
11. The method of claim 8, wherein an inner surface of the angled slot has a protrusion extending into an interior of the angled slot.
12. The method of claim 11, wherein the protrusion is adapted to exert a force against a lower surface of the upper flange of the DIN rail which is counteracted by a force on an upper surface or end of the upper flange from an opposed wall of the angled slot when the upper flange of the DIN rail is positioned within the angled slot and the lower flange of the DIN is positioned on the lower surface of the recess.
13. The method of claim 8, wherein the lower flange is snap fit into position on the lower surface of the below the recess.
14. The method of claim 8, wherein a backstop upwardly extends from the lower surface below the recess and a lower flange of the DIN rail is moved into position over the lower surface below the recess behind the backstop.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION
[0016]
[0017] An angled slot 120 extends into upper surface 140, and a protrusion 124 extends from an inner wall 122 of angled slot 120 that is adapted to receive an upper flange 210 of a DIN rail 200 (shown in
[0018] Latching system 110, 110a is made of plastic, which provides a degree of flexibility when securing electronic component housing 14 to DIN rail 200. Latching system 110, 110a is preferably made of a thermoplastic, specifically acrylonitrile butadiene styrene (ABS) or Polycarbonate (PC) or a combination of two thermoplastics PC-ABS.
[0019]
[0020]
[0021] To secure the DIN rail 200 to the latching system 110, upper flange 210 is inserted into angled slot 120 above the recess. Then the lower flange 220 is rotated in a clockwise direction until the end 224 of lower flange 220 is positioned over lower surface 130 of the recess to lock the DIN rail 200 into position.
[0022] Lower surface 130 of the recess may include a backstop 150 extending upwardly from the lower surface 130 that maintains the lower flange 220 in position on the lower surface 130 of the recess. The latching system 110 may be slid into position on the DIN rail 200 such that the upper flange 210 is positioned within the angled slot 120 above the recess and the lower flange 220 is positioned on the lower surface 130 of the recess behind the backstop 150 on the lower surface 130 of the recess.
[0023] The plastic latching system 110 provides a number of advantages over prior metal alloy latching systems. The plastic latching system 110 is lighter weight, more economical, easier to manufacture, and provides for easy mounting and demounting from the DIN rail. The plastic latching system 110 also accommodates both thin and thick DIN rails of 1-15 mm. The plastic latching system 110 also provides a degree of flexibility not found in metal alloy latching systems. The configuration of latching system 110 also provides a more secure mounting of the electronic component housing to the DIN rail compared to existing latching systems.
[0024] In addition, electronic components may be located in harsh environments which may be prone to vibration. Latching system 110 provides for a secure attachment to a DIN rail even when subjected to vibrations. Furthermore, the latching system 110 may be provided on a variety of different electronic components, and may be integral to the electronic component housing 14 or attached to the electronic component housing 14.