This application claims priority benefits to Chinese Patent Application No. 200720074176.7 filed Aug. 28, 2007and Chinese Patent Application No. 200720074746.2 and Sep. 17, 2007. The contents of all of the aforementioned specifications are incorporated herein by reference.
1. Field of the Invention
The present invention is related to basic electric elements, and more especially to a relay.
2. Description of the Related Art
A relay includes a yoke assembly, a magnetic steel assembly, a contact system and a shell. The yoke assembly is composed of coils and yokes. The magnetic steel assembly is an integrated one including a cylindrical shaft, a magnetic steel and a plastic armature, and the cylindrical shaft is installed in an axle hole defined by a bottom case of the shell and a tongue-shaped or triangular supporting frame that is plug-connected with a locating and dividing slot board of the magnetic steel assembly inside the shell. The contact system includes movable and immovable contact spring assemblies and a pusher pad that has a slot for insertion of the movable contact spring assembly. There is an obround trepan hole in a front end of the pusher pad for engaging with a push pin which is installed on a pin boss interconnected with a plastic mold envelope of the magnetic steel assembly. One end of each contact spring of the contact system is extended outside the bottom case and connected into an external circuit via bolts. The shell consists of the bottom case and an upper cover, and is shaped approximately like a rectangular case, with locating and dividing slots arranged inside the bottom case according to partitioned part installation area. The relay overcomes the defect that the magnetic steel assembly and the contact system are obstructed by an original rectangular supporting frame and the problem that assembling quality of the magnetic circuit assembly is hard to control for the magnetic latching relay, but the influences of erection stress on internal structural parameters shall be avoided when mounting an electric meter for satisfying requirements of future popularization.
The movable contact spring assembly is one major element in the contact system of the relay. Normally the movable contact spring assembly includes a movable contact spring with a contact at one end and a movable contact spring seat inserted inside the shell of the relay, both of which are connected by three rivets. The contact is arranged in a foreside of the movable contact assembly, and a riveting section on a root of the movable contact spring is connected with that of the movable contact spring seat by lap riveting. Because the movable contact spring is linearly extended in an extension direction of the riveting section of the movable contact spring seat, a long installation section is required inside the shell. In order to fulfill requirements of current density and low power consumption, many back contact springs with partially round arch or “U” shaped convex bends are stacked close to a rear side of the movable contact spring, and front ends of the back contact springs and the movable contact spring are overlapped for riveting the contact, moreover their roots overlapped for being riveted by rivets. Previously the round arch-shaped bends are large and have an unsteady flexibility. Structural pattern of the movable contact spring assembly shall be appropriate and perfect if possible due to its relation to reliability of the contact system of the relay.
An object of the present invention is to provide a magnetic latching relay which avoids influences of erection stress on internal structural parameters thereof by perfecting a movable contact spring assembly and relevant structures.
To achieve the above-mentioned object, a magnetic latching relay in accordance with the present invention is disclosed. The magnetic latching relay includes a yoke assembly, a magnetic steel assembly, a contact system having movable and immovable contact spring assemblies and a pusher pad, and a shell having a bottom case and an upper cover. Back contact springs of the movable contact spring assembly are arc-shaped and stacked on one side of each movable contact spring of the movable contact spring assembly. The bottom case has clip-shaped bosses which are formed outside two side walls of the bottom case to fasten extension ends of the movable and the immovable contact springs and supported with bolts to clamp the springs extending out of clip-shaped openings of the bosses.
The present invention avoids large occupied space and unsteady flexibility caused by projection of the back contact springs due to the integral arc shape of the back contact springs of the movable contact spring assembly. Many back contact springs of the present invention are stacked for conducting high current and achieving low power consumption and good action flexibility. Through the improvement of the structure outside both side walls of the bottom case of the shell of the magnetic latching relay, the springs of the extended boss are well-clamped so as to avoid the influences of erection stress on the internal structural parameters of the magnetic latching relay when the contact spring projects from the magnetic latching relay as inserts of an electric meter. The present invention is especially applicable for two-phase 200 A magnetic latching relays, favoring their popularization.
As shown in
The magnetic steel assembly 2 is an integrated one including a cylindrical shaft, a magnetic steel and a plastic armature. A supporting frame 3 for mounting the shaft of the magnetic steel assembly 2 is tongue-shaped or triangular. A pin in a rearside of supporting frame 3 is plug-connected with a tubular jack on a partitioned locating and dividing slot board of the magnetic steel assembly inside the shell. A shaft hole is arranged on a foreside of the tongue-shaped or triangular supporting frame 3 for installing the shaft of the magnetic steel assembly 2.
A movable contact spring assembly of the contact system includes a contact spring with a contact at one end and a contact spring which extends along locating and dividing slots inside a bottom case and projects outside the shell of the relay, and both of the contact springs are connected by rivets 10 (as shown in
Table 1 indicates the flexibility test data of the movable contact spring assembly of the present invention; and Table 2 gives the flexibility test data of the “U”-shaped movable contact spring.
Shown from Tables 1 and 2, the movable contact spring assembly of the present invention has a larger flexibility more than previous “U”-shaped ones.
Contact springs 8, 9 of an immovable contact spring assembly (as shown in
The shell 4 is assembled with the bottom case (as shown in
Number | Date | Country | Kind |
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2007 2 0074176 U | Aug 2007 | CN | national |
2007 2 0074746 U | Sep 2007 | CN | national |
Number | Name | Date | Kind |
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4060847 | Penrod | Nov 1977 | A |
4272746 | Wright et al. | Jun 1981 | A |
7659800 | Gruner et al. | Feb 2010 | B2 |
7710224 | Gruner et al. | May 2010 | B2 |
Number | Date | Country | |
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20090058576 A1 | Mar 2009 | US |