The invention relates to a diaphragm pump with two diaphragm heads and two separate pump housings and diaphragms provided therein, with the pump housings being arranged adjacent to each other and the drive of the diaphragms being off-set by 180 degrees such that the direction of the simultaneous deflections of the diaphragms of the two diaphragm heads each are in opposite directions.
Such diaphragms are known and are proven.
Here, the air moved from the respective bottom of the diaphragms must be exhaled from the respective pump housing through bearings or other places, when the diaphragms perform their suctioning motion, and the air must again be suctioned in, when the membrane moves in its driving phase. These air motions result in considerable noise.
Therefore the object is to provide a diaphragm pump with two diaphragm heads and two separate pump housings having the advantages of such a “dual” diaphragm pump, but reducing or avoiding the noise development by the air moved by the bottom of the diaphragm.
In order to attain this seemingly contradictory object, the diaphragm pump defined at the outset is characterized in that the two—separate—pump housings are connected to each other in an air-permeable fashion. This way it is achieved that the air moved by the membranes in the pump housings no longer or only to a minor extent has to exit to the outside, because the air displaced by one membrane can flow into the other pump housing when its membrane is expanding the interior space of the second pump housing. The respectively displaced air can therefore be moved back and forth between the two sealed pump housings. This way they can be embodied in an air-tight or largely air-tight fashion in reference to their environment.
Here, it is particularly advantageous when at least one connecting line is provided between the pump housings, essentially arranged parallel in reference to each other, and when the cross-section and/or the flow resistance of the connecting line or the connecting lines is determined such that at least a portion or all of the air moved or displaced by the bottom of the diaphragm can be fed to the respectively other pump housing. Therefore, at least one connecting line is provided for the air that is moved back and forth as a particularly simple air-permeable connection so that the design of the diaphragm pump and its separate pump housings can remain unchanged and only one appropriate connecting line needs to be provided.
The connecting line may particularly connect the sides or walls of the two pump housings facing each other in a straight fashion. This practically represents the shortest connection for the air line, so that therefore its flow resistance is correspondingly low. Furthermore, usually sufficient unused space is available in the immediate space between the two pump housings, in order to allow placing such a connecting line.
The two separate pump housings and/or the displacement volume per stroke of the two membranes arranged therein may beneficially be of the same size. This results in a best-possible compensation of the respectively displaced air from one to the other pump housing and back.
In order to prevent air from leaking at any other location during its movement back and forth from one pump housing into the other and back, for example at the bearings or ball bearings, it is beneficial when in the area of the bearing and penetrating opening at least one seal is provided at the respective pump housing, particularly for the common drive shaft, with its flow resistance being greater than the one of the connecting line between the two pump housings. A combination of the seal of respective openings at the pump housings with one or more common connecting lines can provide better prevention of any air from exiting the pump housing, so that not only respective noise but also potential contamination of the environment of the diaphragm pump can be avoided.
Here, at the bearing of the drive shaft a felt washer covering each bearing may be provided in the area of the penetration through the pump housing. Felt washers are effective seals, themselves not causing any or hardly any noise.
Here, the felt washer can be located at the side of the bearing or ball bearing facing towards and/or facing away from the inside of the pump housing. This may depend on the respective design of the bearing of the drive shaft.
Another or an additional measure may be that the respective pump housing has an intermediate wall in the area of the connecting rod for driving of the diaphragm to separate the crank case from the motion chamber of the diaphragm head, provided with a penetrating opening for said connecting rod, and that the connection or connecting line of the two pump housings is particularly provided between this intermediate wall and the bottom of the respective diaphragm head. This way, too, the air moved by the diaphragms and/or the diaphragm heads inside the pump housing is primarily or exclusively guided into the connecting line and thus any risks for air leaking from the pump housings are further reduced or avoided.
Here, it is beneficial for the penetrating opening in the intermediate wall for the connecting rod to have a close tolerance and/or a seal or felt washer impinging the connecting rod and allowing its motion. This way the pneumatic resistance inside the pump housing against air passing through the connection line is further increased.
Primarily in a combination of one or more of the above-described features and measures a diaphragm pump with two diaphragm heads and two separate pump housings as well as a common drive shaft for the two connecting rods is provided, in which the air moved by the diaphragms and diaphragm heads no longer needs to exit to the outside because it can be moved back and forth between the two pump housings via the common air-permeable connection or connecting line and thus any compressions and relaxations of the respective air volumes in the pump housings, caused by the movements of the diaphragm heads, can be compensated.
In the following, exemplary embodiments of the invention are explained in greater detail using the drawing. It shows in a partially schematic illustration:
A diaphragm pump, in its entirety marked 1, has two diaphragms 6 and two separate pump housings 3, containing them and arranged adjacent in reference to each other, as well as two diaphragm heads 15, with a common drive shaft 4 driving the connecting rods 5 for the two membranes 6. Here, the drive of the two diaphragms 6 and/or the two mushroom-shaped connecting rod heads 2 carrying them, as clearly shown in
It is clearly discernible in
The cross-section of the connecting line 7 provided between the pump housings 3 essentially arranged parallel in reference to each other and their flow resistance are here sized such that, to the extent possible, the entire air moved and displaced by the respective bottom of the membrane is transported into the respectively other pump housing 3.
This is fostered in that the two pump housings 3 and primarily the transportation volume resulting from each stroke of the diaphragms 6 are of identical size so that for each stroke of one of the connecting rod heads 2 with the diaphragms 6 simultaneously the air volume is accepted in the respective pump housing 3 which is displaced by the motion of the opposite stroke in the adjacent pump housing 3.
In
In
In addition to a close tolerance of said penetrating opening 13 in reference to the connecting rod 5 additionally, according to
By the air-tight connection of the two parallel separate pump housings 3 via at least one connection line 7 the air respectively displaced by the motion of the diaphragms 6 can be transported from one into the other pump housing 3 and back due to the opposite motions so that an exhalation of said displaced aid from the pump housings 3 and thus any noise connected thereto can be avoided or largely avoided.
The diaphragm pump 1 has two diaphragm heads 15, two diaphragms 6 each, and two separate pump housings 3, in which the connecting rods 5 with connecting rod heads 2 for the diaphragms 6 is arranged, which may be driven by a common shaft 4, and the drive for the shaft 4 may be arranged between the two pump housings 3. The two pump housings 3 are here connected to each other in an air-permeable fashion, particularly via a connection line 7, so that the air respectively displaced by one diaphragm 6 can be moved into the other pump housing 3, in which the corresponding diaphragm 6 leads to an expanding space due to the opposite drive.
Number | Date | Country | Kind |
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10 2007 003 720.3 | Jan 2007 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP07/10520 | 12/4/2007 | WO | 00 | 6/29/2009 |