[0001] The present invention relates to a household dishwashing machine having a screen
filter with flow holes, separating the washing space from a drainage shaft and lying
at the bottom of the washing space, sealing the perimeter.
[0002] Such a dishwashing machine is disclosed in
US-A-5700329. Such document discloses a relatively flat screen type filter for a dishwasher made
of metallic material, provided with legs to link the filter with other portions of
the dishwasher.
GB-A-1530206 discloses a flat screen filter for dishwashers made in a single piece of plastic
molded material. The screen filter removes entrained solid particles from the liquid
when draining the liquid from the washing space by passing it through the holes. They
are held back by the screen filter and do not end up in the drainage shaft. The solid
particles can be taken out when removing the screen filter and disposed of when cleaning
the screen filter.
[0003] Filter screens of this type are usually designed as flexible metal punch-hole components
that on the one hand can not optimally be designed in terms of flow restriction, i.e.
the entire flow surface, and on the other hand cannot effectively seal the edges due
to production reasons. The result is that often small solid particles cannot sufficiently
be retained and end up in the drainage shaft.
[0004] The task of the invention is to create a screen filter of the type mentioned at the
outset that can be manufactured easily and cost efficiently and that is optimized
in terms of flow restriction and the entire flow surface, provides an optimal sealing
effect at the edges and that largely excludes the influence of material fatigue due
to its design.
[0005] This requirement is solved by the invention thanks to the features listed in the
appended claims.
[0006] The edge lining of the screen filter around the drainage shaft is improved and sealed
in that a link web that protrudes vertically on the underside is designed as a sealing
lip.
[0007] The seal can be improved even more by providing the edge area with a double web that
protrudes vertically on the underside that is designed as a double sealing lip or
that is provided at the edge with an edging that protrudes out on the bottom side
that is provided with receptacles for attaching an elastic sealing element.
[0008] According to another preferred feature of the invention, the screen filter is equipped
with flow holes that flare out in the flow direction, which are condensed to individual
honeycombs in staggered row formation, that at the exterior of the edge it is provided
with an orbiting, vertically aligned web that seals and is flat or linear shape, that
it provides stiffening, injected reinforcement links in partitions on its underside,
and the flow holes can be selected very small such that even the smallest of solid
particles are retained. The number of flow holes can be selected very large to achieve
a large overall flow area while simultaneously retaining very small solid particles.
At the same time, reinforcement links on the bottom of the screen filter provide the
screen filter with sufficient stability and stiffness even in thin screen filters.
This also achieves long, device-specific lifetimes for screen filters manufactured
in this way.
[0009] The intended design of the screen filter is that it adopts a thickness of approx.
1 to 1.2 mm and that the diameter of the flow holes is approx. 1 mm and a distance
of approx. 2 mm between adjacent rows. It is intended furthermore that adjacent rows
of flow holes are each offset opposite to each other by half the distance between
rows and the imaginary connection lines of the midpoint of three directly adjacent
flow holes form an isosceles triangle, thus the entire flow surface can be optimized
to the maximum by the honeycombs, which are separated by reinforcement links.
[0010] The design of the reinforcement links provides for a thickness of between 0.5 to
0.8 mm and a height of approx. 2 mm.
[0011] In one design, optimal use of screen filter surface space is achieved in that the
reinforcement links arranged on the bottom separate individual, normally constructed,
hexagonal honeycombs fields, which are furnished with "2 N -1" rows of flow holes,
wherein "N" is the number of holes at the edges of the honeycombs. The design provides
rows of holes at the honeycomb edge with "n" flow holes and rows of holes with "2
N -1" flow holes in the middle of the honeycombs field.
[0012] Draining the liquid from which solid particles have been removed can be improved
in that the profile of the flow holes flares out towards the underside, preferably
designed as truncated cones.
[0013] The invention is described in more detail using the example embodiments shown in
the attached drawings in which:
- Fig. 1,
- is a perspective view of the underside of a screen filter for a dishwashing machine
according to the invention,
- Fig. 2,
- is a partial view of the bottom side of a hexagonal field of the screen filter of
Figure 1,
- Fig. 3,
- is a sectional view along the line III-III of the field of Figure 2,
- Fig. 4,
- is a sectional view along the line IV-IV of the field of Figure 2,
- Fig. 5 to Fig. 7
- show three designs for the vertically aligned edge links of Fig. 1, and
- Fig. 8
- shows the arrangement and design of the honeycomb-shape designed flow holes.
[0014] The design of the screen filter 10 shown in Fig. 1 is typical for a dishwashing machine.
The opening 11 embedded in the screen filter 10 normally surrounds a coarse filter
that is set in the drainage shaft, wherein the edge 12, which sticks up on the underside
13 of the screen filter 10 accepts the fit after sealing. The edge 14 that encompasses
the circumference of the screen filter 10 also protrudes on the underside 13 and serves
the same purpose, as will be shown below.
[0015] The screen filter 10, which is designed and manufactured as a plastic-injection mould
part is relatively thin with a material thickness of approx. 1 to 1.2 mm and can therefore
be produced with low material cost. In order for the entire surface of the screen
filter 10 to maintain sufficient stability, reinforcement links 15 that stick up are
injected on the underside 13 next to the edges 12 and 14 that have a thickness of
between 0.5 mm and 0.8 mm and a height of approx. 2 mm and separate the fields 16.
These fields 16 are designed for optimal use of space as standard hexagons that border
each other in a honeycomb shape and cover the vast majority of the surface space of
the screen filter 10. These fields 16 are provided with rows of flow holes 17, the
arrangement of which will be shown as an example.
[0016] In order to attain the greatest flow passage within a honeycomb, the holes are arranged
as shown in Fig. 8. Flow passage is optimized in that the flow holes are arranged
in the shape of an isosceles triangle. The distance "d1" equals the length of the
sides. The distances "d1" and "d2" are contingent upon the minimal wall thicknesses.
In order to achieve maximum flow passage the screen is designed with two distances
"d1" and "d2"; "d1" defines the hole spacing within a honeycomb and "d2" the minimum
hole spacing between the outer holes of two bordering honeycombs (see Fig. 8).
[0017] Figure 2 shows such a surface 16 of the screen filter 10 in the view of its underside
13. Reinforcement links 15 encompass the surface 16 and the adjacent surfaces 16 link
up without surface loss. The flow holes 17 have a diameter of approx. 1 mm and are
arranged in rows, wherein they provide a distance of approx. 2 mm in the rows. In
the example embodiment thirteen rows are provided that begin and end with seven flow
holes on the edges of the field 6 and increase to thirteen flow holes 17 in the middle,
as shown in the sectional views of Fig. 3 and 4. Since the adjacent rows of flow holes
17 are always offset to each other by half the distance, the distance of the rows
is kept small and the surface of the field 16 can be used optimally for a large flow
surface, however keep the surface of flow holes 17 very small in order to retain small
solid particles as well.
[0018] The flow holes 17 may continually increase in profile from the topside to the underside
13 of the screen filter 10 in order to improve the flow of liquid that has been freed
of solid particles. A truncated cone-like design of the flow holes 17 has proven to
be particularly beneficial.
[0019] The edge 14 of the screen filter 10 is designed, in a first embodiment of the invention,
as a sealing lip which forms the transition from the screen filter 10 to the base
20 of the water conducting space, in order to seal the drainage shaft, as shown in
Fig. 5. According to a second embodiment of the invention, the edge is designed as
a double sealing lip, as Fig. 6 illustrates.
[0020] Finally, the edge 14 also provides receptacles 19 that allow for the attachment or
injection of a separate, elastic sealing element 30, as shown in Fig. 7.
1. A household dishwashing machine having a screen filter (10) with flow holes (17),
which separates the washing space from a drainage shaft and lies at the bottom of
the washing space, sealing the perimeter,
characterized in that
the screen filter (10) is designed and manufactured as a plastic-injection
mould part and it is provided with an the edge (14, 18) that protrudes vertically
on the underside (13) as a sealing lip.
2. A household dishwashing machine according to claim 1, characterized in that the edge presents a double web (18) protruding vertically on the underside (13) as
a double seal lip.
3. A household dishwashing machine according to claim 1 or 2,
characterized in that the edge (14, 18) that protrudes vertically on the underside (13) is provided with
receptacles (19) for mounting an elastic sealing element (30).
4. A household dishwashing machine according to any of the preceding claims,
characterized in that the screen filter (10) is provided with defined bearing surfaces that guarantee a
favorable flow contact with retainers and also provide a positive form fit at the
edge even after material fatigue has set in.
5. A household dishwashing machine according to any of the preceding claims,
characterized in that the screen filter (10) on its underside (13) is divided at least in partitions by
means of injected reinforcement links (15) in fields (16) with flow holes (17) that
are arranged in rows.
6. A household dishwashing machine according to any of the preceding claims,
characterized in that the reinforcement links (15) are designed as regular hexagons separating the fields
(16) with rows of flow holes (17).
7. A household dishwashing machine according to any of the preceding claims,
characterized in that the rows of the flow holes (17) of the screen filter (10), which are at the edges
of the field (16), are provided with N flow holes and in the middle of the field (16)
with 2N-1 flow holes (17).
8. A household dishwashing machine according to any of the preceding claims,
characterized in that the reinforcement links (15) of the screen filter (10) have a thickness between 0.5
to 0.8 mm and a height of approx. 2 mm.
9. A household dishwashing machine according to any of the preceding claims,
characterized in that the profiles of the flow holes (17) grow continually larger in the direction of the
underside (13), preferably designed truncated cone-shaped.