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EP 2 888 477 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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13.11.2019 Bulletin 2019/46 |
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Date of filing: 27.08.2013 |
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International Patent Classification (IPC):
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International application number: |
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PCT/US2013/056750 |
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International publication number: |
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WO 2014/035938 (06.03.2014 Gazette 2014/10) |
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DIAPHRAGM METERING PUMP HAVING A DEGASSING SYSTEM
MEMBRANDOSIERPUMPE MIT EINEM ENTGASUNGSSYSTEM
POMPE DOSEUSE À MEMBRANE AVEC SYSTÈME DE DÉGAZAGE
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Designated Contracting States: |
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AL AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL
NO PL PT RO RS SE SI SK SM TR |
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Priority: |
27.08.2012 US 201213595380
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Date of publication of application: |
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01.07.2015 Bulletin 2015/27 |
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Proprietor: Milton Roy, LLC |
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Ivyland, PA 18974 (US) |
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Inventors: |
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- KOTLYAR, Taya
Warwick, PA 18974 (US)
- HIGBEE, Joel, E.
Horsham, PA 19044 (US)
- STRICKER, Scot, C.
Glenside, PA 19038 (US)
- CARLING, James, B.
Chalfont, PA 18914 (US)
- EDWARDS, Phillip
Berwyn, PA 19312 (US)
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Representative: Carpintero Lopez, Francisco et al |
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Herrero & Asociados, S.L.
Cedaceros 1 28014 Madrid 28014 Madrid (ES) |
| (56) |
References cited: :
DE-A1- 2 216 215 DE-A1- 4 439 962 DE-C1- 3 631 984
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DE-A1- 2 803 470 DE-B1- 2 803 471 US-A1- 2004 062 662
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
BACKGROUND OF THE INVENTION
[0001] Exemplary embodiments pertain to the art of diaphragm metering pumps and, more particularly,
to a diaphragm metering pump having a degassing system.
[0002] Diaphragm metering pumps generally draw in a fluid from a source to an inlet at a
first pressure, and discharge the fluid through an outlet at a second pressure. Often
times, gas entrained in the fluid, or developed as a consequence of pumping, may become
trapped in a head portion of the pump causing a vapor lock condition. In such cases,
fluid discharge may be reduced or even arrested. In order to alleviate vapor lock,
many diaphragm metering pumps include a bleed valve that is manually or automatically
activated to allow trapped gas to escape. In some cases, the trapped gas is discharged
to ambient. In other cases, the trapped gas, along with a portion of discharged fluid,
is passed back to the source through a piping system.
[0003] US2004062662 A1 relates to a diaphragm metering pump suitable for metering an effervescent gas. The
pump has a pump head with a product chamber having an inlet end with a one-way inlet
valve and an outlet end with a one-way outlet valve. A displaceable diaphragm member
defines a boundary of the product chamber. The diaphragm member is capable of being
reciprocated to cause pumping displacements. A discharge side is disposed downstream
from the outlet valve. A passageway is disposed in fluid communication between the
discharge side and the product chamber. A valve is disposed in the passageway. The
valve is opened intermittently to allow liquid to re-enter the product chamber in
an amount effective to purge gas from the product chamber to prevent loss of prime.
[0004] DE2803470 A1 relates to a pump head that has a pumping chamber which can be linked to the suction
or compression side via a pulsating lifting element. The lifting element is actuated
electromagnetically and the travel is restricted. It will avoid the collection of
gases in the pumping chamber. There is a solenoid valve and a pressure valve in the
ventilating channel between the upper section of the pump chamber and the link for
the return pipe to the reservoir.
BRIEF DESCRIPTION OF THE INVENTION
[0006] Disclosed is a diaphragm metering pump including a pump body having a head portion
including a suction side and a discharge side defining a flow path. A valve seat is
arranged at the discharge side and a check valve is arranged at the valve seat. A
degassing system includes a check valve actuator operatively connected to the check
valve. The check valve actuator is selectively activated to unseat the check valve
from the valve seat to allow gases trapped in the head portion to pass through the
discharge side.
[0007] Also disclosed is a method of degassing a diaphragm metering pump. The method includes
drawing a liquid from a liquid source through a suction side of a diaphragm metering
pump, passing the liquid from the suction side into a head portion of the diaphragm
metering pump, guiding the liquid through a check valve from the head portion to a
discharge side of the diaphragm metering pump, and initiating a check valve actuator
to unseat the check valve allowing gases collected in the head portion to pass through
the discharge portion.
BRIEF DESCRIPTION OF THE DRAWINGS
[0008] The following descriptions should not be considered limiting in any way. With reference
to the accompanying drawings, like elements are numbered alike:
FIG. 1 is a cross-sectional plan view of a diaphragm metering pump having a degassing
system in accordance with an exemplary embodiment;
FIG. 2 is a cross-sectional plan view of the degassing system of FIG. 1;
FIG. 3 is a cross-sectional plan view of a degassing system in accordance with another
aspect of an exemplary embodiment;
FIG. 4 is a cross-sectional plan view of a degassing system in accordance with still
another aspect of an exemplary embodiment;
FIG. 5 is a cross-sectional plan view of a degassing system in accordance with yet
another aspect of an exemplary embodiment;
FIG. 6 is a cross-sectional plan view of a degassing system in accordance with still
yet another aspect of an exemplary embodiment; and
FIG. 7 is a cross-sectional plan view of a degassing system in accordance with yet
still another aspect of the exemplary embodiment.
DETAILED DESCRIPTION OF THE INVENTION
[0009] A detailed description of one or more embodiments of the disclosed apparatus and
method are presented herein by way of exemplification and not limitation with reference
to the Figures.
[0010] A diaphragm metering pump in accordance with an exemplary embodiment is illustrated
generally at 2 in FIG. 1. Diaphragm metering pump 2 includes a pump body 4 having
an actuator portion 6 and a head portion 8. Actuator portion 6 includes a rotating
shaft 10 coupled to an eccentric mechanism 12. Eccentric mechanism 12 is coupled to
a connecting rod 14 that connects with a pump diaphragm 16. Eccentric mechanism 12
and connecting rod 14 create a reciprocating motion at pump diaphragm 16 that leads
to pressure changes within a pump chamber 20 carried by head portion 8. At this point
it should be understood that the particular form of actuator portion 6 may vary. Pump
chamber 20 includes a suction side 23 and a pressure or discharge side 25. Suction
side 23 is fluidically coupled to a fluid source 28. Discharge side 25 is fluidically
coupled to a discharge flow path 30 that leads to a fluid destination 32. Fluid destination
32 may take on a variety of forms.
[0011] Suction side 23 includes an inlet fitting 36 including a check valve 38 shown in
the form of a check ball 40 that selectively rests upon a valve seat 43. The term
"check valve" should be understood to mean a valve having a checking element configured
to allow fluid to pass in one direction and arrest fluid flow in an opposing direction.
Of course the particular form of check valve 38 may vary. Check valve 38 allows fluid
to enter pump chamber 20 from fluid source 28 during a suction stroke and prevents
fluid from exiting through inlet fitting 36 during a pressure stroke. A discharge
fitting 56 is fluidically connected to discharge side 25 through a check valve 58.
In the exemplary embodiment shown, check valve 58 is shown in the form of a check
ball 60 that selectively rests upon a valve seat 62. Check valve 58 allows fluid to
flow from pump chamber 20 toward fluid destination 32 during a pressure stroke and
prevents fluid from being ingested into pump chamber 20 through discharge fitting
56 during a suction stroke.
[0012] In accordance with an exemplary embodiment, diaphragm metering pump 2 is provided
with a degassing system 66 fluidically connected to discharge side 25 of pump chamber
20. As shown in FIG. 2, degassing system 66 includes a support member 71 having a
mounting surface 75, and an outlet 76. Mounting surface 75 is secured to head portion
8 at discharge side 25. Outlet 76 includes a check valve receiving portion 77 that
houses check ball 60 and valve seat 62. Support member 71 includes a first passage
78 and a second passage 79. First passage 78 includes a first end 83 that extends
from mounting surface 75 to second end 84 that fluidically connects with check valve
receiving portion 77. Second passage 79 includes a first end portion 86 to a second
end portion 87 that fluidically connects with first passage 78 and check valve receiving
portion 77. At this point it should be understood that second passage 79 does not
conduct a fluid but rather serves as a passageway as will be described more fully
below.
[0013] Degassing system 66 includes a check valve actuator 96 connected to mounting surface
75 though a mounting block 97. Check valve actuator 96 takes the form of a linear
actuator 99 shown in the form of a solenoid 100. Solenoid 100 includes a coil 104
and a plunger 107. Plunger 107 acts upon an actuating pin assembly 109 that projects
through second passage 79 along a path that is substantially parallel to discharge
flow path 30. Specifically, upon application of an electrical current to coil 104,
plunger 107 acts upon actuating pin assembly 109. Actuating pin assembly 109 extends
along second passage 79, contacts and unseats check ball 60 allowing gases trapped
within pump chamber 20 to pass from discharge flow path 30 to fluid destination 32.
Degassing system 66 is also shown to include a sealing member 110 that takes the form
of an isolation diaphragm or seal 113 that extends about actuating pin assembly 109
to prevent fluid from exiting second passage 79. In addition, check valve actuator
96 includes a return spring 115 that biases actuating pin assembly 109 into a ready
position as shown in FIG. 2.
[0014] Reference will now be made to FIG. 3, wherein like reference numbers represent corresponding
parts in the respective views, in describing a degassing system 120 in accordance
with another aspect of the exemplary embodiment. Degassing system 120 includes a support
member 124 having a first mounting surface 126 and a second mounting surface 128.
First mounting surface 126 is coupled to head portion 8. Support member 124 also includes
an outlet 133 and a check valve receiving portion 136 that houses check ball 60 and
valve seat 62. Outlet 133 is arranged opposite to check valve receiving portion 136
and is fluidically connected with discharge fitting 56. First and second passages
140 and 141 extend within support member 124. First passage 140 includes a first end
144 that extends from check valve receiving portion 136 to a second end 145 fluidically
connected to outlet 133. Second passage 141 includes a first end portion 147 that
extends from check valve receiving portion 136 to a second end portion 148 at second
mounting surface 128.
[0015] Degassing system 120 is also shown to include a check valve actuator 154 supported
from second mounting surface 128. Check valve actuator 154 takes the form of a linear
actuator 156. Linear actuator 156 is shown as a solenoid 158 having a plunger 161
that acts upon an actuating pin 162 through a spacer 163 and a diaphragm seal 164.
Solenoid 158 is also shown to include a return spring 165 that biases actuating pin
162 into a ready position such as shown in FIG. 3. Actuating pin 162 is selectively
acted upon by plunger 161 to shift check ball 60 from valve seat 62 to allow gases
accumulating in head portion 8 to flow through discharge fitting 56. Actuating pin
162 projects through second passage 141 along a path that is substantially perpendicular
to discharge flow path 30 to directly contact and unseat check ball 60.
[0016] Reference will now be made to FIG. 4, wherein like reference numbers represent corresponding
parts in the respective views, in describing a degassing system 170 in accordance
with another aspect of the exemplary embodiment. Degassing system 170 includes a support
member 174 having a first mounting surface 176, a second mounting surface 178, and
a third mounting surface 179. First mounting surface 176 is connected to head portion
8. Support member 174 is also shown to include an outlet 183 fluidically connected
to discharge fitting 56 and a check valve receiving portion 186 extending into second
end 195. Check valve receiving portion 186 houses valve seat 62. Support member 174
includes a first passage 190 and a second passage 191. First passage 190 includes
a first end 194 that extends from check valve receiving portion 186 to a second end
195 through an angled portion 196. Second end 195 is fluidically connected to outlet
183. Second passage 191 includes a first end portion 197 that extends from third mounting
surface 179 to a second end portion 198 that connects with first passage 190 at angled
portion 196.
[0017] Degassing system 170 includes a check valve actuator 204 mounted to third mounting
surface 179. Check valve actuator 204 is shown in the form of a linear actuator 206.
Linear actuator 206 is depicted as a solenoid 208 supported from third mounting surface
179 through a generally U-shaped bracket 210. Solenoid 208 includes a plunger 211
that is coupled to an actuating pin 214. Actuating pin 214 includes a first end section
216 mechanically linked to plunger 211 and a second end section 217 that defines a
check valve 219 in the form of a check ball 220. Actuating pin 214 passes into second
passage 191 through a sealing member 222 and is surrounded, in part, by a return spring
225. Return spring 225 is configured to bias actuating pin 214 into a ready position.
Actuating pin 214 is configured to respond to pressure changes in pump chamber 20
to allow fluid to pass into first passage 190 and on through discharge fitting 56.
Actuating pin 214 is also configured to be acted upon by solenoid 208 through plunger
211 to selectively unseat check ball 220 from valve seat 62 allowing gases accumulating
in head portion 8 to pass through discharge fitting 56. In the exemplary arrangement
shown, actuating pin 214 is selectively shifted along a path that substantially coincides
with discharge flow path 30.
[0018] Reference will now be made to FIG. 5, wherein like reference numbers represent corresponding
parts in the respective views, in describing a degassing system 230 in accordance
with yet another aspect of the exemplary embodiment. Degassing system 230 includes
a support member 232 having a first support element 233 joined to a second support
element 234 through a joint or interface 235. First support element 233 includes a
first mounting surface 236 coupled to head portion 8. Second support element 234 includes
a second mounting surface 238. First support element 233 is also shown to include
an outlet 243 fluidically connected to discharge fitting 56. A check valve receiving
portion 246 is encapsulated within first support element 233 at interface 235.
[0019] Support member 232 houses a first passage 250, and a second passage 251. A third
passage 252 is housed in second support element 234. First passage 250 includes a
first end 256 that extends from discharge flow path 30 to a second end 257 that terminates
at interface 235 and is selectively fluidically connected with check valve receiving
portion 246. Second passage 251 includes a first end portion 259 that extends from
interface 235 and fluidically connects with check valve receiving portion 246 to a
second end portion 260 through an angled portion 261. Second end portion 260 terminates
at and is fluidically connected with outlet 243. Third passage 252 includes a first
end section 263 that extends from second mounting surface 238 to a second end section
264 that terminates at interface 235.
[0020] Degassing system 230 includes a check valve actuator 268 shown in the form of a linear
actuator 270. Linear actuator 270 takes the form of a solenoid 272 mounted to second
mounting surface 238 through a generally U-Shaped bracket 274. Solenoid 272 includes
a plunger 277. Plunger 277 is mechanically linked to a coupler 279. Coupler 279 is
mechanically linked to an actuating pin 282 that extends through third passage 252.
Actuating pin 282 includes a first end 284 that extends to a second end 285. First
end 284 includes a clip 286 that detachably engages with coupler 279. Second end 285
connects with a diaphragm valve 287 that serves as a check valve. A return spring
290 is linked to actuating pin 282 and is configured to bias actuating pin 282 into
a ready position. With this arrangement, diaphragm valve 287 responds to pressure
changes within pump chamber 20 to allow fluid to flow through first and second passages
250 and 251 and pass through discharge fitting 56. Diaphragm valve 287 also responds
to changes in position of plunger 277 to selectively allow gases trapped within head
portion 8 to pass through discharge fitting 56.
[0021] Reference will now be made to FIG. 6, wherein like reference numbers represent corresponding
parts in the respective views, in describing a degassing system 300 in accordance
with still yet another aspect of the exemplary embodiment. Degassing system 300 includes
a support member 304 having a first mounting surface 307 coupled to head portion 8
and a second mounting surface 308. Support member 304 also includes an outlet 311
that receives discharge fitting 56 and a check valve receiving portion 314 that houses
valve seat 62. Support member 304 is further shown to include a first passage 317
and a second passage 318. First passage 317 includes a first end 320 that extends
from first mounting surface 307 to a second end 321. Second passage 318 includes a
first end portion 323 that extends from and is fluidically connected with an intermediate
portion (not separately labeled) to a second end portion 324 that fluidically connects
with outlet 311.
[0022] A check valve actuator 329 is attached to support member 304 at second mounting surface
308. Check valve actuator 329 is shown in the form of an electro-magnetic actuator
331. Electro-magnetic actuator 331 takes the form of a solenoid 333 having a coil
334. Coil 334 is configured to generate an electro-motive force that acts upon a plunger
336. Plunger 336 includes an integral check valve 338 that takes the form of a check
ball 340. Plunger 336 and check ball 340 return to a ready position under force of
gravity. With this arrangement, check ball 340 responds to pressure changes within
pump chamber 20 to allow fluid to flow from flow path 30, through first and second
passages 317 and 318, and pass through discharge fitting 56. Check ball 340 is also
unseated when electro-magnetic actuator 331 is energized drawing plunger 336 toward
coil 334 to selectively allow gases trapped within head portion 8 to pass through
discharge fitting 56.
[0023] Reference will now be made to FIG. 7, wherein like reference numbers represent corresponding
parts in the respective views, in describing a degassing system 350 in accordance
with yet still another aspect of the exemplary embodiment. Degassing system 350 includes
a support member 354 having a first mounting surface 357 coupled to head portion 8
and a second mounting surface 358. Support member 354 also includes an outlet 360
that fluidically connects with discharge fitting 56 and a check valve receiving portion
362. Check valve receiving portion 362 is arranged adjacent to first mounting surface
357 and houses check valve 60 and valve seat 62. Support member 354 is further shown
to include a first passage 364 and a second passage 365. First passage 364 includes
a first end 367 that extends from and fluidically connects with check valve receiving
portion 362 to a second end 368 that fluidically connects with outlet 360. Second
passage 365 includes a first end portion 370 that extends from, and fluidically connects
with, check valve receiving portion 362 to a second end portion 371 that is fluidically
exposed at second mounting surface 358.
[0024] A check valve actuator 375 is supported at second mounting surface 358. Check valve
actuator 375 takes the form of a linear actuator 377. Linear actuator 377 is shown
in the form of a solenoid 379 including a plunger 380 operatively connected to a reservoir
member 381 coupled to second mounting surface 358. Reservoir member 381 includes a
reservoir 383 and a diaphragm 387. Diaphragm 387 is connected to plunger 380. With
this arrangement, check valve 60 responds to changes in pressure in pump chamber 20.
More specifically, check valve actuator 375 acts indirectly upon check valve 60. In
the event of gas build up in head portion 8, solenoid 379 is activated to shift plunger
380 causing diaphragm 387 to deliver a pulse of liquid through second passage 365.
The pulse of liquid unseats check ball 60 from valve seat 62 allowing any trapped
gases to pass through first passage 364 and out from discharge fitting 56.
[0025] At this point it should be understood that the exemplary embodiments provide a system
for alleviating gas build up in a head portion of a diaphragm metering pump. The exemplary
embodiments include an actuator that acts directly upon a discharge check valve or
indirectly on the discharge check valve to allow built up gases to flow to through
an outlet. In addition, in contrast to prior art systems that bleed off a portion
of the liquid to the liquid source to degas, the exemplary embodiments allow built
up gases to flow through the pump outlet to the liquid destination. In this manner,
the exemplary embodiments eliminate the need for additional plumbing, valves or other
hardware and also ensure that all liquid passing though the discharge is passed from
the outlet. Also, while described as using a linear actuator, the exemplary embodiments
may use various actuators, including pneumatic actuators, hydraulic actuators, electric
actuators, or actuators that are not linear, to unseat the check valve allowing gases
to pass from the outlet.
[0026] Additionally, while the check valve is shown and described as a check ball and a
diaphragm valve, other types of checking elements may be employed. For example, the
exemplary embodiments may employ poppet valves, flapper valves, reed valves, wafer
type valves or other elements that may be employed to allow fluid flow through a passage
in one direction and to check or arrest fluid flow through the passage in an opposing
direction. Further, while the mounting brackets are described as being generally U-Shaped,
other types of brackets including a wide range of geometries may be employed. Still
further, it should be understood that the accumulation of gases may be sensed using
various techniques/devices and check valves may be unseated to alleviate gas build
up based on these techniques and/or signals from these devices or, alternatively,
the check valve may be periodically unseated on a time basis.
[0027] While the invention has been described with reference to an exemplary embodiment
or embodiments, it will be understood by those skilled in the art that various changes
may be made and equivalents may be substituted for elements thereof without departing
from the scope of the invention. In addition, many modifications may be made to adapt
a particular situation or material to the teachings of the invention without departing
from the essential scope thereof. Therefore, it is intended that the invention not
be limited to the particular embodiment disclosed as the best mode contemplated for
carrying out this invention, but that the invention will include all embodiments falling
within the scope of the claims.
1. A diaphragm metering pump (2) comprising:
a pump body (4) having a head portion (8) including a suction side (23) and a discharge
side (25) defining a flow path (30) from a fluid source (28) to a fluid destination
(32), wherein the discharge (25) side comprises an outlet (76) including a valve seat
(62) arranged at the discharge side and a check valve (58) arranged at the valve seat
(62); and
a degassing system (66) including a check valve actuator (96) operatively connected
to the check valve (58), the check valve actuator (96) being selectively activated
to unseat the check valve (58) from the valve seat (62) to allow the gases trapped
in the head portion (8) to pass through the discharge side (25); and
wherein the gases and all liquid passing through the discharge side (25) are passed
from the outlet (76) to the fluid destination (32).
2. The diaphragm metering pump (2) according to claim 1, wherein the check valve actuator (96) is configured and disposed to act upon the
check valve (58) along an axis substantially parallel to the flow path.
3. The diaphragm metering pump (2) according to claim 1, wherein check valve actuator (96) is configured and disposed to act upon the check
valve (58) along an axis extending at an angle relative to the flow path.
4. The diaphragm metering pump (2) according to claim 1, wherein the check valve actuator (96) is configured and disposed to act upon the
check valve (58) along an axis that coincides with the flow path.
5. The diaphragm metering pump (2) according to claim 1, wherein the check valve actuator (96) comprises a solenoid having a plunger (107).
6. The diaphragm metering pump (2) according to claim 5, wherein the plunger (107) acts upon actuator pin that acts directly upon the check
valve (58).
7. The diaphragm metering pump (2) according to claim 5, wherein the plunger (107) acts indirectly upon the check valve (58).
8. The diaphragm metering pump (2) according to claim 5, wherein the check valve (58) is integrally formed with the plunger (107).
9. The diaphragm metering pump (2) according to claim 5, wherein the check valve (58) is detachably connected to the plunger (107).
10. The diaphragm metering pump (2) according to claim 1, wherein the check valve (58) comprises a check ball (60).
11. The diaphragm metering pump (2) according to claim 1, wherein the check valve (58) comprises a diaphragm valve (287).
12. A method of degassing a diaphragm metering pump comprising:
drawing a liquid from a liquid source through a suction side (23) of a diaphragm metering
pump (2);
passing the liquid from the suction side (23) into a head portion (8) of the diaphragm
metering pump (2);
guiding the liquid through a check valve (58) from the head portion (8) to a discharge
side (25) of the diaphragm metering pump (2),
wherein the discharge side (25) comprises an outlet including a valve seat (62) with
the check valve (58) arranged at the valve seat (62); and
initiating a check valve actuator (96) to unseat the check valve (58) allowing gases
collected in the head portion (8) and all the liquid to pass through the outlet at
the discharge side (25) to a fluid destination.
13. The method of claim 12, further comprising: sensing a parameter of the liquid passing from the discharge
side (25) of the diaphragm metering pump (2), wherein the check valve actuator (96)
is initiated in response to the parameter of the liquid passing from the discharge
side (25) of the pump (2).
14. The method of claim 12, wherein the check valve actuator (96) is initiated in response to passage of a predetermined
amount oftime.
15. The method of claim 12, wherein initiating the check valve actuator (96) includes activating a linear actuator
having a plunger (107).
1. Membrandosierpumpe (2), umfassend:
einen Pumpenkörper (4) mit einem Kopfabschnitt (8), der eine Saugseite (23) und eine
Druckseite (25) aufweist, die einen Strömungspfad (30) von einer Fluidquelle (28)
zu einem Fluidziel (32) definieren, wobei die Druckseite (25) einen Auslass (76) mit
einem Ventilsitz (62), der auf der Druckseite angeordnet ist, und ein Rückschlagventil
(58) umfasst, das auf dem Ventilsitz (62) angeordnet ist; und
ein Entgasungssystem (66) mit einem Rückschlagventilstellglied (96), das funktionell
mit dem Rückschlagventil (58) verbunden ist, wobei das Rückschlagventilstellglied
(96) selektiv aktiviert wird, um das Rückschlagventil (58) vom Ventilsitz (62) zu
lösen, damit die im Kopfabschnitt (8) eingeschlossenen Gase durch die Auslassseite
(25) gelangen können; und
wobei die Gase und die gesamte Flüssigkeit, die durch die Auslassseite (25) strömen,
von dem Auslass (76) zu dem Flüssigkeitsziel (32) geleitet werden.
2. Membrandosierpumpe (2) nach Anspruch 1,wobei das Rückschlagventilstellglied (96) konfiguriert
und angeordnet ist, um auf das Rückschlagventil (58) entlang einer im Wesentlichen
parallel zum Strömungsweg verlaufenden Achse einzuwirken.
3. Membrandosierpumpe (2) nach Anspruch 1, wobei das Rückschlagventilstellglied (96)
konfiguriert und angeordnet ist, um auf das Rückschlagventil (58) entlang einer Achse
einzuwirken, die sich in einem Winkel zum Strömungsweg erstreckt.
4. Membrandosierpumpe (2) nach Anspruch 1, wobei das Rückschlagventilstellglied (96)
konfiguriert und angeordnet ist, um auf das Rückschlagventil (58) entlang einer Achse
einzuwirken, die mit dem Strömungsweg übereinstimmt.
5. Membrandosierpumpe (2) nach Anspruch 1,wobei das Rückschlagventilstellglied (96) eine
Magnetspule mit einem Kolben (107) umfasst.
6. Membrandosierpumpe (2) nach Anspruch 5, wobei der Kolben (107) auf einen Stellgliedstift
wirkt, der direkt auf das Rückschlagventil (58) wirkt.
7. Membrandosierpumpe (2) nach Anspruch 5, wobei der Kolben (107) indirekt auf das Rückschlagventil
(58) wirkt.
8. Membrandosierpumpe (2) nach Anspruch 5, wobei das Rückschlagventil (58) integral mit
dem Kolben (107) ausgebildet ist.
9. Membrandosierpumpe (2) nach Anspruch 5, wobei das Rückschlagventil (58) lösbar mit
dem Kolben (107) verbunden ist.
10. Membrandosierpumpe (2) nach Anspruch 1,wobei das Rückschlagventil (58) eine Rückschlagkugel
(60) umfasst.
11. Membrandosierpumpe (2) nach Anspruch 1,wobei das Rückschlagventil (58) ein Membranventil
(287) umfasst.
12. Verfahren zum Entgasen einer Membrandosierpumpe, umfassend:
Ansaugen einer Flüssigkeit aus einer Flüssigkeitsquelle durch eine Saugseite (23)
einer Membrandosierpumpe (2);
Leiten der Flüssigkeit von der Saugseite (23) in einen Kopfabschnitt (8) der Membrandosierpumpe
(2);
Führen der Flüssigkeit durch ein Rückschlagventil (58) vom Kopfabschnitt (8) zu einer
Druckseite (25) der Membrandosierpumpe (2),
wobei die Druckseite (25) einen Auslass mit einem Ventilsitz (62) und dem am Ventilsitz
(62) angeordneten Rückschlagventil (58) umfasst.; und
Einleiten eines Rückschlagventilstellglieds (96), um das Rückschlagventil (58) zu
lösen, so dass im Kopfabschnitt (8) angesammelte Gase und die gesamte Flüssigkeit
durch den Auslass an der Auslassseite (25) zu einem Flüssigkeitsziel gelangen.
13. Verfahren nach Anspruch 12, ferner umfassend: Erfassen eines Parameters der von der
Druckseite (25) der Membrandosierpumpe (2) strömenden Flüssigkeit, wobei das Rückschlagventilstellglied
(96) als Reaktion auf den Parameter der von der Druckseite (25) der Pumpe (2) strömenden
Flüssigkeit ausgelöst wird.
14. Verfahren nach Anspruch 12, wobei das Rückschlagventilstellglied (96) als Reaktion
auf das Verstreichen einer vorbestimmten Zeitspanne ausgelöst wird.
15. Verfahren nach Anspruch 12, wobei das Auslösen des Rückschlagventilstellglieds (96)
das Aktivieren eines Linearstellglieds mit einem Kolben (107) beinhaltet.
1. Pompe doseuse à membrane (2) comportant :
un corps de pompe (4) ayant une partie de tête (8) comprenant un côté aspiration (23)
et un côté refoulement (25) définissant un trajet d'écoulement (30) depuis une source
de fluide (28) vers une destination de fluide (32), le côté refoulement (25) comportant
une sortie (76) comprenant un siège de soupape (62) disposé du côté refoulement et
un clapet anti-retour (58) disposé sur le siège de soupape (62) ; et
un système de dégazage (66) comprenant un actionneur de clapet anti-retour (96) connecté
de manière opérationnelle au clapet anti-retour (58), l'actionneur de clapet anti-retour
(96) étant activé de manière sélective pour détacher le clapet anti-retour (58) du
siège de soupape (62) afin de permettre aux gaz piégés dans la partie de tête (8)
de passer à travers le côté refoulement (25) ;
et les gaz et tout le liquide sortant côté refoulement (25) s'écoulent depuis la sortie
(76) vers la destination du fluide (32).
2. Pompe doseuse à membrane (2) selon la revendication 1, dans laquelle l'actionneur
de clapet anti-retour (96) est configuré et disposé pour agir sur le clapet anti-retour
(58) le long d'un axe sensiblement parallèle au trajet d'écoulement.
3. Pompe doseuse à membrane (2) selon la revendication 1, dans laquelle l'actionneur
de clapet anti-retour (96) est configuré et disposé pour agir sur le clapet anti-retour
(58) le long d'un axe s'étendant selon un angle par rapport au trajet d'écoulement.
4. Pompe doseuse à membrane (2) selon la revendication 1, dans laquelle l'actionneur
de clapet anti-retour (96) est configuré et disposé pour agir sur le clapet anti-retour
(58) le long d'un axe qui coïncide avec le trajet d'écoulement.
5. Pompe doseuse à membrane (2) selon la revendication 1, dans laquelle l'actionneur
de clapet anti-retour (96) comprend un solénoïde ayant un piston (107).
6. Pompe doseuse à membrane (2) selon la revendication 5, dans laquelle le piston (107)
agit sur la broche de l'actionneur qui agit directement sur le clapet anti-retour
(58).
7. Pompe doseuse à membrane (2) selon la revendication 5, dans laquelle le piston (107)
agit indirectement sur le clapet anti-retour (58).
8. Pompe doseuse à membrane (2) selon la revendication 5, dans laquelle le clapet anti-retour
(58) est formé d'un seul tenant avec le piston (107).
9. Pompe doseuse à membrane (2) selon la revendication 5, dans laquelle le clapet anti-retour
(58) est relié de manière amovible au piston (107).
10. Pompe doseuse à membrane (2) selon la revendication 1, dans laquelle le clapet anti-retour
(58) comprend une bille anti-retour (60).
11. Pompe doseuse à membrane (2) selon la revendication 1, dans laquelle le clapet anti-retour
(58) comprend un clapet à membrane (287).
12. Procédé de dégazage d'une pompe doseuse à membrane comprenant les étapes consistant
à:
aspirer un liquide d'une source de liquide à travers un côté aspiration (23) d'une
pompe doseuse à membrane (2);
faire passer le liquide du côté aspiration (23) dans une partie de tête (8) de la
pompe doseuse à membrane (2) ;
guider le liquide à travers un clapet anti-retour (58) depuis la partie de tête (8)
vers un côté refoulement (25) de la pompe doseuse à membrane (2) ;
le côté refoulement (25) comportant une sortie comprenant un siège de soupape (62)
avec le clapet anti-retour (58) disposé sur le siège de la soupape (62) ; et
initier un actionneur de clapet anti-retour (96) pour ouvrir la valve anti-retour
(58) afin de permettre aux gaz recueillis dans la partie de tête (8) et à tout le
liquide de passer à travers la sortie du côté refoulement (25) vers une destination
de fluide.
13. Procédé selon la revendication 12, comprenant en outre: la détection d'un paramètre
du liquide sortant du côté refoulement (25) de la pompe doseuse à membrane (2), dans
lequel l'actionneur de clapet anti-retour (96) est déclenché en réponse au paramètre
du liquide sortant du côté refoulement (25) de la pompe (2).
14. Procédé selon la revendication 12, dans lequel l'actionneur de clapet anti-retour
(96) est déclenché en réponse au passage d'une durée prédéterminée.
15. Procédé selon la revendication 12, dans lequel le déclenchement de l'actionneur de
clapet anti-retour (96) comprend l'activation d'un actionneur linéaire ayant un piston
(107).
REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description