[0001] The invention relates to a panel assembly comprising a panel and a frame, which panel
can be hinged between an open and a closed position with respect to the frame, which
panel assembly comprises means for automatically releasing the panel from the closed
position when a predetermined force is exerted on the panel. In practice such a panel
is also called an "explosion vent" or an explosion relief panel. It is explicitly
noted that within the framework of the invention the term "panel" is understood to
include also a door, a window or the like, so that the invention is not limited to
a panel, but also extends to doors, windows and the like. For the sake of convenience,
only the term "panel" will be used hereinafter so as not to make the description unnecessarily
complicated.
[0004] US patent No. 4,181,338 (Sterling) describes a door assembly comprising a door and a frame provided with means for
releasing the door from the closed position when a predetermined force is excerted
on the door, wherein the assembly further comprises a stop member on a frame, which
can be pivoted about a pivot pin between a first and a second position, in which the
stop member releases a catch bolt when a predetermined force is exerted on the panel,
the stop member being biased to the first position by a spring, and forming part of
a lock of the panel assembly, wherein the catch bolt cooperates with a handle. However,
this known assembly does not function in the locked position of the dead bolt, so
that the door will not be released in the event of an elevated pressure when the door
is double-locked. Moreover, the pressure at which the door of said door assembly will
be released cannot be set with a reasonable degree of precision.
[0008] The invention will now be explained in more detail with reference to figures illustrated
in a drawing, in which figures 1-3 are schematic, perspective views, each of a different
variant of a construction of a stop member according to the invention, and in which
figures 4-6 are schematic cross-sectional views of the construction is shown in figures
1-3 in the mounted condition thereof.
Figure 1 shows a part 1 of a cylinder lock which is to be mounted to the frame of
a panel assembly and which is to receive the catch bolt and the dead bolt of the part
of the cylinder lock that is mounted to the panel of a panel assembly. As already
noted before, the catch bolt usually forms part of a handle on the panel, whilst the
dead bolt forms part of the actual lock of the cylinder lock. The part 1 is provided
with holes 2, into which holes bolts can be screwed for mounting the part 1 to the
frame of a panel assembly. The part 1 is provided with a stop member 3, which can
be pivoted through approximately 75 degrees about a pivot pin 4 between a first position,
in which the catch bolt and the dead bolt abut against the stop member 3 (see figure
1A), and the second position, in which the stop member 3 releases both bolts (see
figure 1B). As figure 1B shows, the stop member 3 comprises an elevated portion 5
for the dead bolt and a lower portion 6 for the catch bolt, so that both bolts abut
against the stop member 3 in the position of the stop member that is shown in figure
1A. The top member 3 is biased to the first position by two coil springs 7,8. The
two coil springs 7,8 engage a shaft 9 near the pivot pin 4 with one end, whilst they
engage a shaft 10 extending parallel to the shaft 9 with their other end. The shaft
9 is welded to the part 1, whilst the shaft 10 is passed through coaxial holes 11
in the part 1. The stop member 3 will release the catch bolt and the dead bolt when
a predetermined force, for example of 1000 N, is exerted on the panel, so as to make
it possible to divert explosive forces being exerted on the structure of a building
directly via the panel. Said predetermined force, for example of 1000 N, is determined
by the spring force of the coil springs 7,8. The predetermined force can be increased
by using thicker coil springs 7,8 of the same length and/or by using more coil springs.
After all, the spring force of the coil springs 7,8 to be overcome is increased in
this manner. The coil springs 7,8 have a wire thickness of about 2 mm, a diameter
of about 8 mm, and a length in untensioned condition of about 32 mm, whilst the spring
constant C amounts to approximately 32 N/mm.
Figure 2 shows a part 1 of a cylinder lock which is to be mounted to the frame of
a window and which is to receive the catch bolt and the dead bolt of the part of the
cylinder lock that is mounted to the leaf of a window assembly. Parts that correspond
to parts shown in figure 1 are indicated by the same numerals.
Figure 3, to conclude, shows a part 1 of a cylinder lock which is to be mounted to
the frame of a door and which is to receive the catch bolt and the dead bolt of the
part of the cylinder lock that is mounted to the door of a door assembly. Parts that
correspond to parts shown in figure 1 are indicated by the same numerals in this figure,
too.
Figure 4 is a schematic cross-sectional view of the construction of figure 1 in the
mounted condition thereof, in which parts that correspond to parts shown in figure
1 are indicated by the same numerals. The part 1 shown in figure 1 is now mounted
to the frame 12 of the panel assembly 13, whilst the part 14 of the cylinder lock
comprising the catch bolt 15 is mounted to the panel 16 of the panel assembly 13.
The part 14 comprises a handle 17, which co-operates with the catch bolt 15.
Figure 5 and 6 correspond to figure 4, and parts that correspond to parts shown in
figure 1 are indicated by the same numerals. Figure 5, however, does not show a panel
assembly comprising a frame and a panel, but a window assembly 13 comprising a frame
12 and a leaf 16. Similarly, figure 6 relates to a door assembly 13 comprising a frame
12 and a door 16.