The present invention relates to the field of pump operated dispensers.
Pump operated dispensers, such as soap dispensers used to dispense liquid hand soap in public restrooms, deliver contents from a container of the dispenser to a dispensing portion that may be located at or near a top of the container.
“Touchless” soap dispensers typically utilize an electric motor that drives a pump to which it is coupled, and that is activated in response to a signal delivered upon the activation of a switch or sensor of the dispenser system, such as a motion detector or other optic sensor. Upon receiving the signal, the rotor rotates to drive a drive shaft of the pump located within the container to dispense an amount of soap. Such a configuration may require the motor to be mounted within the container of the soap dispenser, or may require a physical connection through a portion of the container for physically coupling the motor to the mechanics of the pump located within the container to drive the drive shaft. However, submersible motors require special sealing to protect components of the motor, while physical connections through the container may require special sealing of the system to prevent liquid from leaking from the container. Furthermore, such configurations may lead to deterioration of the motor and the moving parts associated with the mechanics of the pump due to stress and friction. Thus, a fluid dispenser having fewer parts and/or fewer mechanical couplings is desired.
According to embodiments of the present invention, a pump located within a container is operated by rotation of a rotor coupled to a drive shaft of the pump to dispense fluid contents of the container by driving the pump. The rotor includes one or more magnets, and is driven by a rotating magnetic field created by a plurality of coils that are located on an exterior of the container in sufficient proximity to the magnets of the rotor.
According to one embodiment of the present invention, there is provided a fluid dispenser including a container configured to store a fluid, a pump for placement in an interior of the container and for pumping contents of the container to an exterior of the container, a motor system for driving the pump and including a rotor for placement in the interior of the container, and a stator for placement on the exterior of the container, wherein an electric current is passed through the stator for causing rotation of the rotor.
The fluid dispenser may further include a cap configured to be coupled to the container, and the pump may be configured to be coupled to the cap.
The cap may be configured to be threadably coupled to the container.
The stator may include three coils electrically coupled in a delta pattern or a star pattern.
The three coils may be shaped to form a ring and may be configured to be driven by three half bridges in an open loop.
The fluid dispenser may further include a processor for regulating the electric current through the stator, and a sensor for sensing an object proximate the sensor and for sending a sensor signal to the processor.
The pump may be for pumping the contents in response to the sensor signal generated by the sensor.
The electric current through the stator is regulated using at least one of a pulse-width modulated (PWM) signal or variable frequency.
The sensor signal may be generated upon detection of motion of a user.
The processor may be configured to have the electric current passed through the stator upon receiving the sensor signal.
The fluid dispenser may further include a flexible circuit for carrying at least one of the sensor signal and the electric current through the stator.
The rotor may include a ring magnet.
The fluid dispenser may further include a battery for delivering the electric current through the stator.
The fluid dispenser may further include a processor configured to regulate electric current through the stator corresponding to a voltage level of the battery.
The fluid dispenser may further include a dispensing end fluidly coupled to the pump for dispensing the fluid pumped by the pump.
The fluid dispenser may further include a drive shaft for coupling the pump to the rotor.
The electric current may cause the stator to produce a magnetic field substantially surrounding the rotor for causing rotation of the rotor.
The rotor may include a plurality of magnets.
According to another embodiment of the present invention, there is provided a motor system for driving a pump for pumping contents of a container includes a rotor for placement in an interior of the container, and a stator for placement on an exterior of the container.
According to yet another embodiment of the present invention, there is provided a pump assembly including a container, a pump for pumping contents of the container, and a motor system for driving the pump and including a rotor for placement in an interior of the container, and a stator for placement on an exterior of the container.
According to another embodiment of the present invention, there is provided a method of dispensing a fluid from a container, the method including providing a magnetic field using a stator, moving a magnet in response to the magnetic field, driving a pump in response to the motion of the moving magnet, and pumping the fluid from the container with the pump.
Accordingly, embodiments of the present invention provide a submersible pump located inside a container and magnetically driven by a magnetic field generated on an exterior of the container.
Embodiments of the present invention may include an assembly including a container, a container end cap, and a pumping mechanism including a pump rotor. These features may be similar to those that are disclosed in U.S. Patent Application Publication 2010/0213208 A1, which is fully incorporated herein by reference. Furthermore, other features disclosed in U.S. Patent Application Publication 2010/0213208 A1 may be incorporated with embodiments of the present invention. Accordingly, some components of embodiments of the present invention that are included in the incorporated reference are not discussed at length herein.
Referring to
According to the present embodiment, a bottom cap 22 has threads 19 to enable the bottom cap 22 to be coupled to a threaded base section 14 of a container 12, which is configured to contain a material (e.g., a fluid such as a liquid) to be dispensed, to seal a bottom opening 18 of the container 12 (see
Although the pump 58 of the present embodiment is coupled near a bottom of the container 12, different applications of embodiments of the present invention may be configured to have the pump 58 differently located. Furthermore, although embodiments of the present invention are described with reference to a pump for pumping a fluid or liquid, other embodiments of the present invention may be used to pump other materials, such as gasses, foams, or slurries or other types of fluids.
One or more magnets 68, such as an electromagnet, a permanent magnet, a ring magnet, or one or more magnet segments, are part of, or may be mounted on or coupled to, an impeller of the rotor 69 that is coupled to a drive shaft 62 of the pump 58 for driving the pump. The magnet or magnet segment(s) 68 act(s) as a rotor 69 of the pump 58 to be driven by a stator 91 and to be used as an integrated part of an open frame DC servo motor 20, such as an open frame brushless DC servo motor. Driving the drive shaft 62 of the pump 58 causes the fluid contained in the container 12 to pass through an inlet 70 of the pump 58 and be pumped by the pump to an outlet 72 of the pump 58, wherein the outlet 72 may be coupled to a tube 76 (see
According to the present embodiment, the magnet or magnet segment(s) 68 may be driven by manipulating a magnetic field produced by the stator 91, which substantially circumscribes the magnet or magnet segment(s) 68, although different embodiments of the present invention may use various configurations of the servo motor 20, wherein the stator 91 is able to drive the rotor 69 via the magnetic field. This magnetic field may be produced by an electromagnet, such as electromagnetic coils 24 which form the stator 91, or may be produced by some other device that is placed in proximity to the bottle 12 so as to cause motion of the magnet or magnet segment(s) 68 attached to the drive shaft 62 of the pump 58, causing the drive shaft 62 to rotate. Accordingly, the electromagnetic coils 24 are operated as the stator 91 of the open frame servo motor 20 of the present embodiment. Furthermore, as shown in
By using the above described open frame servo motor 20, the fluid dispensing system 10 of the present embodiment eliminates the need for moving parts that are external to the container 12. Furthermore, the need to align the stator 91 with the rotor 69 becomes less critical, making effective driving of the pump 58 with the stator 91 more easily accomplished.
According to the present embodiment, the stator 91 includes three or more coils 24 formed in the shape of a ring to be located outside of the bottom cap 22, allowing the stator 91 to be an open frame stator 91 without commutator, as shown in
Although the present embodiment shows a bottom cap 22 that is engageable with the bottle 12, and that may be removed from the bottle 12, other embodiments of the present invention may include one-piece, or integrally formed, bottle/cap structure.
Referring to
The fluid dispensing system 10 according to the present embodiment includes a substantially cylindrically-shaped bottle 12 for holding the fluid to be dispensed, although differently shaped containers may be used to contain the fluid without departing from the spirit or scope of the present invention. At the top 4 of the bottle 12 is a neck section 16, which may be threaded 108 to threadably couple the bottle 12 to a spout dispensing end 28 (see
Referring to
The processor 99 and software may also be used to monitor a voltage drop of a battery pack 97 (shown schematically in
Although a battery pack 97 is described, other embodiments of the present invention may use a power supply other than the battery pack 97. Furthermore, according to the present embodiment, the speed of the servo motor 20 may be controlled by controlling a frequency of a signal delivered thereto. By controlling the frequency of the signal, the rate of rotation of the magnetic field provided by the stator 91 may be more uniform, which in turn causes the speed of the rotor 69 to be more uniform. Variations in the rate of rotation of the rotor 69 may otherwise cause variations in the performance of the pump 58 (e.g., amounts of fluid pumped by the pump 58 may vary). By controlling the servo motor 20 using, for example, frequency-based signals, and PWM signals, variations in voltage delivered to the servo motor 20 will have less of an effect on performance of the servo motor 20, and amounts of fluid or liquid output in response to activation of the sensor 38 will be more consistent.
Furthermore, the software may also be used to control the speed, direction, and torque of the magnet or magnet segment(s) 68 coupled to the drive shaft 62 by adjusting and controlling the PWM signals. In the present embodiment, the open frame servo motor 20 is a brushless direct current (DC) motor 20. Accordingly, the magnet or magnet segment(s) 68 may be driven by the set of electromagnetic coils 24 of the stator 91, which may be driven according to the PWM signals from the processor 99 to create a rotating magnetic field in proximity to the bottle 12.
Referring to
While the present invention has been particularly shown and described with reference to exemplary embodiments thereof, it will be understood by those of ordinary skill in the art that features of different embodiments may be combined to form further embodiments, and that various changes in form and details may be made therein, without departing from the spirit and scope of the present invention as defined by the following claims and their equivalents.
Number | Date | Country | |
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61643666 | May 2012 | US |