Title of Invention

"A SWITCHING DEVICE WITH A SWITCHING STRUCTURE"

Abstract The invention relates to a switching device with a switching structure (1), comprising a cage assembly (24) having opposing first sidewalls (5) and a bottom wall (6) integrally connecting the first sidewalls (5); a slide (4) displaceably arranged in said cage assembly (24); a limit stop (18) to retain the slide (4); a moving contact bridge (3) associated with stationary contact members held in an opening (27) of the slide (4) under pressure of a contact pressure spring (2), wherein said moving contact bridge (3) extends in a longitudinal direction; and two pairs of insulating second sidewalls (23) forming arcing chambers (7), characterized in that the second sidewalls of each pair (23) delimit a volume which contains opening arcs, each of said second sidewalls of each pair (23) having an inner side facing the respective volume which contains opening arcs, and an outer side (21) opposite to said inner side (24); wherein each pair of the second sidewalls (23) is enclosed by arc splitter plates (16) such that one of said arc splitter plates (16) abuts the outer side of two of said second sidewalls (23) of one of the pairs, and; wherein a clearance space (14) is provided between the first sidewalls (5) for displacement of the contact bridge (3) and the second sidewalls (23) are arranged on opposing sides of the cage assembly (24) and are respectively separated therefrom in the longitudinal direction by a gap (27);
Full Text

FIELD OF THE INVENTION
The invention relates to a switching device with a switching structure that
includes a cage assembly having two opposite first sidewalls and one bottom wall
integrally connecting the first sidewalls. The cage assembly is at least partly
configured as a cage in which a slide is displaceably arranged. A moving contact
bridge associated with stationary contact members is held in an opening of the
slide under the pressure of a contact pressure spring. A clearance is provided
between the two first sidewalls for the displacement of the contact bridge. A limit
stop is provided to retain the slide.
BACKGROUND OF THE INVENTION
German Publication DE 693 02 599 T2 discloses a multipole isolating switch in
which an isolating structure with disconnectable contacts is provided for each
pole current path. Each pole current path includes two stationary contact
members and two movable contacts arranged on a moving contact bridge, which
forms a pole switch with dual interruption. The moving contact bridge is acted
upon by a mechanism to open and close the contacts. This is effected by a
depressor, which is guided in a stationary cage. The cage is made of an
insulating material and includes a bottom wall and sidewalls perpendicularly
extending therefrom and is provided with windows dimensioned to allow the
displacement of the contact bridge, particularly under the action of the opening
and closing mechanism in case of an electrodynamic recoil. The windows further
define an upper limit stop for the contact bridge. A contact pressure sprirg is
disposed between the bottom wall of the cage and the contact bridge in a central
recess of the cage, which acts as a seat and linear guide of the depressor. The

depressor is thus guided along the inner surfaces of the sidewalls of the cage.
The walls of the depressor have openings dimensioned to allow, on the one
hand, the insertion of the contact bridge into the depressor and on the other
hand, an angular movement of the bridge relative to the depressor. The cage
has insulating wings which extend in longitudinal direction over a distance
slightly greater than the length of the contact bridge and the height of which is
sufficient to create a volume that contains the opening arcs.
This arcing chamber assembly is mounted by first inserting the depressor or slide
into the cage and holding it in a defined position. This makes a window in the
slide accessible from the side under the webs forming the limit stops. After the
contact pressure spring has been inserted into the cage from the top through a
hole in the slide, the movable switching element is inserted by means of a die
into the space of the window that is still remaining after the spring has been
pushed through and is then rotated by 90° into its final operating position.
A switching device of the aforementioned type is described in EP 59901859. This
document discloses a switching structure 1, a contact pressure spring 2, a
moving contact bridge 3 and a slide 4 in an exploded view according to FIG. 1.
In the view shown, the switching structure 1 essentially consists of two parallel,
elongated sidewalls 5 connected at the bottom by a bottom wall 6 (not
depicted). The space 7 between the two sidewalls 5, i.e., the interior space;, is
accessible from all sides except from the connecting bottom wall 6. In the center
and perpendicularly to the long sides 8, a guide channel 10 is formed by
contours 9 in the sidewalls 5 and is provided with slots 11 in the sidewalls 5.
After the contact pressure spring 2 has been inserted into this guide channel 10

and is supported against the bottom wall 6, the moving contact bridge 3 is
likewise inserted into the interior from the top. The dimensions of the guide
channel 10 are adapted to the slide 4. After insertion of the moving contact
bridge 3, the slide 4 is inserted into the guide channel 10 such that its lateal
detents 12 latch with the aforementioned slots 11 and abut the contact bridge 3.
For this purpose, the slide 4 has an opening 15 configured as a recess along the
underside to accommodate the contact bridge 3. The upper limit of the slots 11
serves as a limit stop 18 for the slide 4. The sidewalls 5 have external grooves 13
into which arc splitter plates 16 of an arc splitter stack 17 are inserted. Once the
aforementioned components have been mounted, an assembly 1 as shown in
FIG. 2 is obtained. The described switching structure 1 has lateral insulating
wings, which separate an interior space of the arcing chamber in which the
opening arcs are created during operation of the switching device from an
exterior space of the arcing chamber in which parts of the arc splitter
arrangement are accommodated.
The complete assembly 1 consisting of the switching structure and the attached
arcing chamber is inserted into a bottom part 19 of the switching devices as
shown in FIG. 3. A top part 20 illustrated in FIG. 4, in which stationary contact
members, trigger mechanisms, switching mechanisms and other components are
inserted, is latched to the assembled bottom part 19.
Joining the two preassembled parts, the bottom part 19 and the top part 20,
causes the contact slides 4 in the bottom part 19 and the switching mechanisms
in the top part 20 to engage. A resulting problem is that when high currents are
switched, e.g., in case of short circuits, an arc plasma forms which can reach the

top part 20 through gaps and can cause damage there, e.g., as a result of phase
flashovers from one conducting path to another, smoke and thus short circu ts
on a printed circuit board, etc. To prevent this, the goal is always to keep the
gaps between the bottom part 19 and the top part 20 as small as possible. This
results in a contradiction in the area of the contact slide 4. When the bottom part
19 and the top part 20 are joined, the contact slides 4 are guided into openirgs
in the top part 20. Too small a gap can cause the contact slide 4 to jam if the top
part 20 and the bottom part 19 are misaligned.
To solve this problem, essentially two approaches are known:
1. The openings in the top part are made correspondingly large, such that the
maximum occurring misalignment between the top part and the bottom part
cannot cause the contact slide to jam. This necessarily creates a large gap
between the top part and the bottom part.
2. The opening in the top part is configured such that a small gap remains
between the contact slide and the opening in the top part after the top part and
the bottom part have been joined. The entire assembly consisting of the
switching structure and the attached arcing chamber is not fixed in the bottom
part. Meshing elements are formed on the top part. When the top part and
bottom part are jointed, the meshing elements on the top part ensure fixation.
The drawback is that the meshing elements, due to design factors, are not solid
enough to withstand the loads from the arcing chamber, e.g., the mechanical
loads caused by short circuiting, stresses due to vibrations or shock during
transport or use, etc. As a result, the meshing elements are deformed, which in
turn causes the contact slides to jam.

OBJECTS OF THE INVENTION
One object of the invention is to provide a switching device of the
aforementioned type with a switching structure in which jamming of the contact
slide due to component tolerances and/or thermal and mechanical loading is
avoided as much as possible.
A further object of the invention is to provide a method to manufacture such a
switching device.
SUMMARY OF THE INVENTION
These and other objects may be attained as follows.
The switching structure has arcing chambers formed by insulating second
sidewalls. These second sidewalls delimit a volume that contains the opening
arcs. They are arranged on opposite sides of the cage assembly including the
cage, and are respectively separated therefrom by a gap.
In one exemplary embodiment of the invention, a first web of an insulating
material engages with the gap in a positive fit to prevent any harmful thermal
stresses as a result of the opening arcs.
It is furthermore advantageous if the first web is part of a bottom part of the
switching device in which the cage assembly with the cage is arranged.

If the two first sidewalls on the side facing away from the bottom wall are
connected by at least one second web, then at least one of the clearance spaces
for the contact bridge is delimited. This provides, for example, a limit stop for the
contact bridge. It also stabilizes the cage assembly with the cage.
A further advantage is obtained if the two sidewalls are integrally interconnected
in a U-shape.
To prevent the two second sidewalls from collapsing, they are fixed by spacer
means on the side facing away from their connection. The spacer means are not
part of the second sidewalls.
To simplify production, the first and second sidewalls are made part of an
originally integral molded part made of an insulating material.
To influence the opening arcs, arc splitter plates surround the first sidewalls.
Advantageously, at least one blow plate is provided for each switching point to
influence the opening arc.
In a further exemplary embodiment, the first sidewalls are provided with the limit
stop for the slide. The slide can be easily latched to the first sidewalls.
According to yet another exemplary embodiment, the slide has latching elements
that engage with slots formed longitudinally to the slide's direction of movement.
This provides a loose latching connection between the slide and the first
sidewalls enabling the displacement of the slide during the switching process.

A method of the invention includes producing a molded part, which comprises a
cage formed by two opposing first sidewalls and a bottom wall integrally
connecting the same and second sidewalls integrally connected to the cage. The
molded part is severed at the point where the second sidewalls are connected to
the cage, whereby the cage assembly and the severed second sidewalls are
obtained. The cage assembly and the severed second sidewalls are then inserted
into the bottom part, with or without arc splitter plates, such that a defined gap
is left, respectively, between the cage assembly and the second sidewalls.
BRIEF DESCRIPTION OF THE ACCOMPANYING DRAWINGS
An exemplary embodiment of the invention will now be described in greater
detail with reference to the drawings in which:
FIGURE 1 is an exploded view of a switching structure according to the related
art;
FIGURE 2 shows a mounted switching structure according to FIG. 1;
FIGURE 3 shows a bottom part of a switching device with three switching
structures;
FIGURE 4 shows a top part of a switching device;
FIGURE 5 is an exploded view of a switching structure of a switching device
according to the invention;

FIGURE 6 is a perspective view of a switching structure according to FIG. 5;
FIGURE 7 is a view of a bottom part with inserted switching structures;
FIGURE 8 is a view of an alternative cage assembly;
FIGURE 9 is a perspective cutaway view of a bottom part with the top part, and
FIGURE 10 is a perspective view of a switching structure of a switching device
according to the invention before it is installed in a bottom part;
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
A switching device according to the invention has a switching structure 1 that
includes a cage assembly 21 and two arc splitter assemblies 22, which are
spaced apart from the cage assembly 21 by a gap 27 as illustrated in figure 6.
The cage assembly 21 has a cage 24 formed by two opposite first sidewalls 5
and a bottom wall 6 integrally connecting the same as shown in figures 5 and 6
and a slide 4 displaceably arranged therein. A moving contact bridge 3
associated with stationary contact members is held in an opening 15 of the slide
4 under the pressure of a contact pressure spring 2. The cage 24 has a passage
14 leading from its interior 7 toward the outside, which enables the insertion of
the contact bridge 3 into the interior of the cage 24 substantially perpendicular
to the longitudinal extent of the contact bridge for mounting between the contact
pressure spring 2 and the slide 4. A clearance 26 is provided between the two
first sidewalls 5 for the displacement of the contact bridge 3. A limit stop 18 is

provided to retain the slide 4. The switching structure 1, as shown in figure 7,
further includes arcing chambers formed by insulating second sidewalls 23, in
which an opening arc is created when a high current is interrupted. The arc
splitter plates 16 have a region with elongated feet, which enclose the second
sidewalls 23 and cause the arc to drift away from the contact points. The second
sidewalls 23 together with the arc splitter plates 16 form the arc splitter
assembly 22. On the opposite side of the cage assembly 21 and spaced apart
therefrom by a gap 27, an arc splitter assembly 22 is arranged, which parly
encloses the contact bridge 3, as illustrated in FIG. 6. According to one
production method of the invention, the first sidewalls 5 and the second
sidewalls 23 can be parts of an originally integral molded part made of an
insulating material, as illustrated in figure 5.
The first sidewalls 5 have the limit stop 18 for the slide 4. The slide 4 can be
latched to the first sidewalls 5 and is provided with latching elements 12, which
engage in slots 11 formed longitudinally to the direction of movement of the
slide 4.
The two first sidewalls 5 are connected at two opposite long sides by a bottom
wall 6, against which the contact pressure spring 2 is supported.
Figure 7 shows a bottom part 19, typically made of an insulating material, which
has a first web 28 that engages in a form-locking manner with the gap 27
between the cage assembly 21 and the second sidewalls 23.

According to a second embodiment, the two first sidewalls 5 are interconnected
by at least one second web 29 on the side facing away from the bottom wall 6.
This delimits at least one of the clearance spaces 26 for displacing the contact
bridge 3 as shown in FIG. 8. In this case, the second web 29 can stiffen the cage
assembly 21 and/or act as a limit stop for the contact bridge 3.
According to a further embodiment, the two second sidewalls 23 can be
integrally interconnected in a U-shape, as illustrated in figure 9.
In the embodiment according to figure 9, the two second sidewalls 23, along the
side facing away from their connection, are fixed by a spacer 30, which belong to
the top part 20 or to components received in the top part 20. Here, the spacer
30 is configured as projections on the stationary contact members disposed in
the top part 20. Of course, other ways of fixing the sidewalls 23 by spacing as
known in the art are envisioned.
To influence the opening arc, at least one blow plate 31 is provided as shown in
10, which in the present example is pressed against the outside of the second
sidewalls 23. The blow plate 31 represents an alternative solution to the feet of
the arc splitter plates 16 shown in Figure 6. It likewise causes the arc to drift
away from the contact point. Figure 10 shows a switching structure of a
switching device according to the invention prior to installation in a bottom part,
i.e., the sidewalls 23 with the arc splitter plates 16 and the cage assembly 21 are
separate components.

The invention further relates to a method for producing a switching device
according to the invention with the above-described switching structure 1. This
method will now be described in greater detail.
First, the molded part is produced, which includes the cage 24 formed by the two
opposite first sidewalls 5 and the bottom wall 6 integrally connecting the same
and the second sidewalls 23 integrally connected to the cage 24. The first
sidewalls 5, the second sidewalls 23 and the bottom wall 6 form an interior space
which in a plane largely parallel to the bottom wall 6 has a passage 14 to the
outside having a length corresponding to at least the length of the contact bridge
3.
Subsequently the contact pressure spring 2, the contact bridge 3 and the slide 4
are inserted into the cage 24 through the passage 14, and the arc splitter plates
16 are fixed to the second sidewalls 23 to obtain the switching structure 1 shown
in FIG. 6. The arc splitter plates 16 can be fastened by inserting them in grooves
13 of the second sidewalls 23 as illustrated in FIGS. 5 and 6 to obtain a finally
assembled switching structure 1.
Thereafter, the molded part of the switching structure 1 is separated at the point
where the second sidewalls 23 are connected to the cage 24, e.g., in a milling or
cutting process, such that the cage assembly 21 and the two arc splitter
assemblies 22 shown in figure 6 are obtained.
Subsequently, the cage assembly 21 and the separated second sidewalls 23 are
inserted into the bottom part 19, with or without the arc splitter plates 16, as
illustrated in figure 7, such that a defined gap 27 each remains between the cage
assembly 21 and the second sidewalls 23.

Instead of the cage 24 being open toward the top and being provided with the
passage, it may alternatively have second webs 29 as described in DE 69302599
T2.
The sidewalls 23, referred to as insulating wings in that document, are severed
once the cage 24 has been equipped with the contact pressure spring 2, the
contact bridge 3 and the slide 4. The resulting cage assembly 21 and the severed
sidewalls 23 are in turn inserted into the bottom part 19 of the switching device,
either with or without arc splitter plates, such that they are spaced apart from
one another by a defined gap 27. The edge contours of the gaps 27 are
preferably predetermined by the production process.
The above description of the exemplary embodiments has been given by way of
example. From the disclosure given, those skilled in the art will not only
understand the present invention and its attendant advantages, but will also find
apparent various changes and modifications to the structures and methods
disclosed. It is sought, therefore, to cover all such changes and modifications as
fall within the spirit and scope of the invention, as defined by the appended
claims, and equivalents thereof.

WE CLAIMS :
1. A switching device with a switching structure (1), comprising:
a cage assembly (24) having opposing first sidewalls (5) and a bottom
wall (6) integrally connecting the first sidewalls (5);
a slide (4) displaceably arranged in said cage assembly (24);
a limit stop (18) to retain the slide (4);
a moving contact bridge (3) associated with stationary contact
members held in an opening (27) of the slide (4) under pressure of a
contact pressure spring (2), wherein said moving contact bridge (3)
extends in a longitudinal direction; and
two pairs of insulating second sidewalls (23) forming arcing chambers
(7), characterized in that the second sidewalls of each pair (23) delimit
a volume which contains opening arcs, each of said second sidewalls
of each pair (23) having an inner side facing the respective volume
which contains opening arcs, and an outer side (21) opposite to said
inner side (24);
wherein each pair of the second sidewalls (23) is enclosed by arc
splitter plates (16) such that one of said arc splitter plates (16) abuts
the outer side of two of said second sidewalls (23) of one of the pairs,
and;

wherein a clearance space (14) is provided between the first sidewalls
(5) for displacement of the contact bridge (3) and the second sidewalls
(23) are arranged on opposing sides of the cage assembly (24) and
are respectively separated therefrom in the longitudinal direction by a
gap (27);
2. The switching device as claimed in Claim 1, wherein the first sidewalls
(5) are two in number, and wherein the cage assembly (24) is
configured at least as a partial cage (21).


ABSTRACT

TITLE "A SWITCHING DEVICE WITH A
SWITCHING STRUCTURE"
The invention relates to a switching device with a switching structure (1),
comprising a cage assembly (24) having opposing first sidewalls (5) and a
bottom wall (6) integrally connecting the first sidewalls (5); a slide (4)
displaceably arranged in said cage assembly (24); a limit stop (18) to retain the
slide (4); a moving contact bridge (3) associated with stationary contact
members held in an opening (27) of the slide (4) under pressure of a contact
pressure spring (2), wherein said moving contact bridge (3) extends in a
longitudinal direction; and two pairs of insulating second sidewalls (23) forming
arcing chambers (7), characterized in that the second sidewalls of each pair (23)
delimit a volume which contains opening arcs, each of said second sidewalls of
each pair (23) having an inner side facing the respective volume which contains
opening arcs, and an outer side (21) opposite to said inner side (24); wherein
each pair of the second sidewalls (23) is enclosed by arc splitter plates (16) such
that one of said arc splitter plates (16) abuts the outer side of two of said second
sidewalls (23) of one of the pairs, and; wherein a clearance space (14) is
provided between the first sidewalls (5) for displacement of the contact bridge
(3) and the second sidewalls (23) are arranged on opposing sides of the cage
assembly (24) and are respectively separated therefrom in the longitudinal
direction by a gap (27);

Documents:

01441-kolnp-2006 correspondence others-1.1.pdf

01441-kolnp-2006 priority document.pdf

01441-kolnp-2006-abstract.pdf

01441-kolnp-2006-assignment.pdf

01441-kolnp-2006-claims.pdf

01441-kolnp-2006-correspondence others.pdf

01441-kolnp-2006-description complete.pdf

01441-kolnp-2006-drawings.pdf

01441-kolnp-2006-form 1.pdf

01441-kolnp-2006-form 2.pdf

01441-kolnp-2006-form 3.pdf

01441-kolnp-2006-international publicational.pdf

01441-kolnp-2006-international search authority report.pdf

01441-kolnp-2006-pct form.pdf

1441-KOLNP-2006-(19-03-2012)-CORRESPONDENCE.pdf

1441-KOLNP-2006-ABSTRACT.1.1.pdf

1441-KOLNP-2006-CLAIMS.pdf

1441-KOLNP-2006-CORRESPONDENCE 1.1.pdf

1441-KOLNP-2006-CORRESPONDENCE.1.1.pdf

1441-KOLNP-2006-CORRESPONDENCE.pdf

1441-KOLNP-2006-DESCRIPTION (COMPLETE).1.1.pdf

1441-KOLNP-2006-DRAWINGS.1.1.pdf

1441-KOLNP-2006-EXAMINATION REPORT.pdf

1441-KOLNP-2006-FORM 1.1.1.pdf

1441-KOLNP-2006-FORM 18.pdf

1441-KOLNP-2006-FORM 2.1.1.pdf

1441-KOLNP-2006-FORM 3 1.2.pdf

1441-KOLNP-2006-FORM 3.1.1.pdf

1441-KOLNP-2006-FORM 5.pdf

1441-KOLNP-2006-GPA.pdf

1441-KOLNP-2006-GRANTED-ABSTRACT.pdf

1441-KOLNP-2006-GRANTED-CLAIMS.pdf

1441-KOLNP-2006-GRANTED-DESCRIPTION (COMPLETE).pdf

1441-KOLNP-2006-GRANTED-DRAWINGS.pdf

1441-KOLNP-2006-GRANTED-FORM 1.pdf

1441-KOLNP-2006-GRANTED-FORM 2.pdf

1441-KOLNP-2006-GRANTED-SPECIFICATION.pdf

1441-KOLNP-2006-OTHERS DOCUMENTS.pdf

1441-KOLNP-2006-OTHERS.pdf

1441-KOLNP-2006-PETITION UNDER RULE 137.pdf

1441-KOLNP-2006-REPLY TO EXAMINATION REPORT.pdf

abstract-01441-kolnp-2006.jpg


Patent Number 254390
Indian Patent Application Number 1441/KOLNP/2006
PG Journal Number 44/2012
Publication Date 02-Nov-2012
Grant Date 30-Oct-2012
Date of Filing 29-May-2006
Name of Patentee SIEMENS AKTIENGESELLSCHAFT
Applicant Address WITTELSBACHERPLATZ 2, 80333 MUNCHEN
Inventors:
# Inventor's Name Inventor's Address
1 Rudolf Kinzler Am Sudhang 1 92272 Freudenberg
2 Anton Scharf Trifweg 4 92263 Ebermannsdorf
3 Ludwig Niebler Erzgebirgstr.8 93164 Laaber
PCT International Classification Number H01H71/02; H01H71/02
PCT International Application Number PCT/EP04/012387
PCT International Filing date 2004-11-02
PCT Conventions:
# PCT Application Number Date of Convention Priority Country
1 10356271.0 2003-11-28 Germany