HEAVY CURRENT REED SWITCH CONTACT STRUCTURE
20190066949 ยท 2019-02-28
Inventors
Cpc classification
H01H1/06
ELECTRICITY
H01H33/12
ELECTRICITY
International classification
H01H33/12
ELECTRICITY
H01H36/00
ELECTRICITY
Abstract
A heavy current reed switch contact structure comprises at least one set of elastic reed electrode (11, 12) or at least one fixed electrode (12) and an elastic reed electrode (11). The reed electrode (11, 12) is made of a conductive material. Contacts (13, 14) are arranged on opposing surfaces of mutually overlapping ends. A side of the end having the contacts is disposed with an arc discharge device (16, 162). The reed switch employs a specially designed contact structure, and the arc discharge structure device is additionally disposed on the basis of a traditional switch contact structure. As a result, the reed switch quickly transfers to the contact arc discharge structure device an instantons arc generated upon switching the switch contact, thereby easing burnout resulting from an arc on the contact surfaces of the contacts, enabling the contacts to be less prone to being adhered together, and considerably increasing a bearing current and a switching capacity of the reed switch. The heavy current reed switch contact structure has a simple structure and provides a heavy bearing current.
Claims
1. A reed switch contact, comprising at least a pair of elastic reed electrodes, or at least one fixed electrode and one elastic reed electrode; wherein the electrodes are made of conducting material, and opposite sides of overlapped ends of the electrodes comprise contacts; the reed switch contact further comprises an arc discharge device configured to receive an electric arc produced at an on/off moment of the reed switch contact.
2. The switch contact of claim 1, wherein opposite sides of side shoulders of the electrodes and shoulders of the arc discharge device are electroplated with an arc resistant layer.
3. The switch contact of claim 1, wherein a front distance (L1) between the contacts and a distance (L2) between sides of the contacts and the arc discharge device are determined by relevant working parameters comprising a breaking current and voltage and breakdown voltage; the front distance (L1) is larger than the distance (L2) between sides of the contacts and the arc discharge device, and the distance (L2) between sides of the contacts and the arc discharge device is a maximum distance for the breakdown voltage.
4. The switch contact of claim 1, comprising at least one pair of elastic reed electrodes (11, 12), or at least one fixed electrode (12) and one elastic reed electrode (11); wherein the electrodes (11, 12) are made of conducting materials, and surfaces of one end of the electrodes overlap; the opposite sides of the overlapped ends comprise contacts (13, 14); one end of one elastic reed electrode (11) in the vicinity of the contacts is provided with a first protruding arc discharge device (16), and one end of the other elastic reed electrode (12) in the vicinity of the contacts is provided with a second protruding arc discharge device (162).
5. The switch contact of claim 1, comprising at least one pair of elastic reed electrodes (21, 22), or at least one fixed electrode (22) and one elastic reed electrode (21); wherein the electrodes (21, 22) are made of conducting materials, and surfaces of one end of the electrodes overlap; the opposite sides of the overlapped ends comprise contacts (23, 24); and one end of the elastic reed electrode (22) in the vicinity of the contacts is provided with a protruding arc discharge device (26).
6. The switch contact of claim 1, being applied to a magnetic reed switch and comprising an insulation tube (58), and a pair of elastic reed electrodes (51, 52), or a fixed electrode (52) and an elastic reed electrode (51); wherein the insulation tube (58) is filled with inert gas; the reed electrodes (51, 52) are made of conducting materials; surfaces of one end of the electrodes overlap, and the opposite sides of the overlapped ends comprise contacts (53, 54); and one end of the elastic reed electrode (52) in the vicinity of the contacts is provided with a protruding arc discharge device (56).
7. The switch contact of claim 1, being applied to a magnetic reed switch and comprising an insulation tube (68), and a pair of elastic reed electrodes (61, 62), or a fixed electrode (62) and an elastic reed electrode (61); wherein the insulation tube is filled with inert gas; the reed electrodes (61, 62) are made of conducting materials; surfaces of one end of the electrodes overlap, and the opposite sides of the overlapped ends comprise contacts (63, 64); and one end of one elastic reed electrode (62) in the vicinity of the contacts is provided with a first protruding arc discharge device (662), and one end of the other elastic reed electrode (61) in the vicinity of the contacts is provided with a second protruding arc discharge device (66).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0016] Reed switches are generally divided into three types: the normally open type A, the normally closed type B and the change-over type C.
EXAMPLE 1
[0017]
[0018] At the moment when the state of the two electrodes (11, 12) transforms from a closed state to an open state, an electric arc is produced between the two contacts (13, 14). As the distance (L1) between the two contacts increases gradually, when the front distance (L1) between the electric contacts (13, 14) increases and is larger than the distance (L2) between the side shoulders (15, 152) of the contacts and the shoulders (17, 172) of the arc discharge device, the electric arc transfers to between the side shoulders (15, 152) of the contacts and the shoulders (17, 172) of the arc discharge device (16, 162). As the distance (L1) between the two electrodes further increases, the front distance (L1) between the contacts and the distance (L2) between the side of the contact and the arc discharge device increase simultaneously until the electric arc quenches. Finally, when the front distance (L1) of the contacts and the distance (L2) between the side of the contact and the arc discharge device maximize, the two electrodes (11, 12) maintain the final stable state.
[0019] The transformation process of the two electrodes (11, 12) from an open state to a closed state is the opposite of the open process.
EXAMPLE 2
[0020]
[0021] The transformation process of the two electrodes (21, 22) between a closed state and an open state and the movement process of the electric arc between the contacts are similar to the open and closed processes in Example 1.
EXAMPLE 3
[0022]
[0023] The transformation process of the two electrodes (31, 32) between a closed state and an open state and the movement process of the electric arc between the contacts are similar to the open and closed processes in Example 1.
EXAMPLE 4
[0024]
[0025] The transformation process of the pair of electrodes (41, 42, 49) between a closed state and an open state and the movement process of the electric arc between contacts are similar to the open and closed processes in Example 1.
EXAMPLE 5
[0026]
[0027] Under the polarization of magnetic fields and the circumstance of removing magnetic fields, the closed and open processes between all electrodes of the magnetic reed switch and the movement process of the electric arc between the contacts are similar to that in Example 1.
EXAMPLE 6
[0028]
[0029] Under the polarization of magnetic fields and the circumstance of removing magnetic fields, the closed and open processes between all electrodes of the magnetic reed switch and the movement process of the electric arc between the contacts are similar to that in Example 1.
[0030] While particular embodiments of the invention have been shown and described, it will be obvious to those skilled in the art that changes and modifications may be made without departing from the invention in its broader aspects, and therefore, the aim in the appended claims is to cover all such changes and modifications as fall within the true spirit and scope of the invention.