BACKGROUND OF THE INVENTION
[0001] Air operated double diaphragm pumps of various sorts have been known and used for
many years. Such pumps typically utilize a pair of diaphragms molded from various
materials depending upon the chemical compatibility required for the pump. The diaphragms
are typically molded in a hat shaped configuration. Because one side of the diaphragm
is designed to face the fluid and the other to face the air chamber, when assembling
the pump it is generally necessary to turn one of the "hats" inside out for assembly.
In larger pump sizes, this requirement may be especially difficult.
SUMMARY OF THE INVENTION
[0002] It is therefore an object of this invention to provide a diaphragm for such pumps
which will ease the assembly of such pumps and which would exhibit increased life
compared to prior art designs.
[0003] In the instant invention, the diaphragm is molded in an "S" shape which corresponds
to the shape of the diaphragm in the center (of the pump stroke) or relaxed position.
By allowing the pump to be assembled in this center or relaxed position, the diaphragm
need not be flexed in order to perform the assembly.
[0004] The use of such diaphragms should also lead to increased life of the diaphragm. There
is less chance for the diaphragm to rub and be abraded on either the fluid cover or
air cover housings. Further, the maximum distance that the diaphragm will flex is
substantially less than with diaphragms manufactured according to current practice.
Improved diaphragm life due to reduced applied stress at pump stroke changeover will
result as the diaphragm profile facilitates a natural roll motion through the peak
stress points in pump operation. Proportionally larger arc segments can be used in
this diaphragm profile cross-section as well to improve the flex life of diaphragms.
[0005] The diaphragm as shown in the attached drawing is made of a rubber material (such
as VITON™) having a nylon fabric reinforcement and is manufactured using a compression
molding process. Of course this same technique may be used for diaphragms made of
other materials as well. For a 14 inch diameter diaphragm in a 3 inch pump, the diaphragm
has a nominal thickness of .160 inches.
[0006] These and other objects and advantages of the invention will appear more fully from
the following description made in conjunction with the accompanying drawings wherein
like reference characters refer to the same or similar parts throughout the several
views.
A BRIEF DESCRIPTION OF THE DRAWINGS
[0007] Figure 1 is a front view of the diaphragm of the instant invention.
[0008] Figure 2 is a sectional view taken along line 2-2 of Figure 1.
[0009] Figure 3 shows the diaphragm in its relaxed position in solid and at the two extreme
positions in phantom.
DESCRIPTION OF THE PREFERRED EMBODIMENT
[0010] In the instant invention, the diaphragm 10 is molded in an "S" shape which corresponds
to the shape of the diaphragm in the center (of the pump stroke) or relaxed position.
By allowing the pump to be assembled in this center or relaxed position, the diaphragm
need not be flexed into the first 12 or second 14 extreme positions in order to perform
the assembly.
[0011] The diaphragm 10 as shown in the attached drawings is made of a rubber material (such
as VITON™ having a nylon fabric reinforcement and is manufactured using a compression
molding process. Of course this same technique may be used for diaphragms made of
other materials as well. For a 14 inch diameter diaphragm in a 3 inch pump, the diaphragm
has a nominal thickness of .160 inches.
[0012] It is contemplated that various changes and modifications may be made to the diaphragm
without departing from the spirit and scope of the invention as defined by the following
claims.
1. A diaphragm for use in an air-operated double diaphragm pump, siad diaphragm flexing
during use between first and second extreme positions, the improvement comprising
said diaphragm being molded in a relaxed state so as to be shaped similar to the shape
of said diaphragm intermediate said first and second positions.
2. The diaphragm of claim 1 wherein said relaxed state shape is the shape of said diaphragm
at a position equidistant from said first and second positions.
3. The diaphragm of claim 1 wherein said diaphragm is S-shaped in cross-section.