Flow control

Information

  • Patent Grant
  • 8801389
  • Patent Number
    8,801,389
  • Date Filed
    Wednesday, December 1, 2010
    14 years ago
  • Date Issued
    Tuesday, August 12, 2014
    10 years ago
Abstract
Embodiments of the invention provide a pumping system for at least one aquatic application. The pumping system includes a pump, a motor coupled to the pump, and a controller in communication with the motor. The controller determines a first motor speed, obtains a reference flow rate, determines a present flow rate, and determines a present power consumption. The controller calculates a difference value between the reference flow rate and the present flow rate, and uses at least one of integral, proportional, and derivative control to generate a second motor speed based on the difference value. The controller attempts to drive the motor at the second motor speed until reaching a steady state condition.
Description
FIELD OF THE INVENTION

The present invention relates generally to control of a pump, and more particularly to control of a variable speed pumping system for a pool.


BACKGROUND OF THE INVENTION

Conventionally, a pump to be used in a pool is operable at a finite number of predetermined speed settings (e.g., typically high and low settings). Typically these speed settings correspond to the range of pumping demands of the pool at the time of installation. Factors such as the volumetric flow rate of water to be pumped, the total head pressure required to adequately pump the volume of water, and other operational parameters determine the size of the pump and the proper speed settings for pump operation. Once the pump is installed, the speed settings typically are not readily changed to accommodate changes in the pool conditions and/or pumping demands.


During use, it is possible that a conventional pump is manually adjusted to operate at one of the finite speed settings. Resistance to the flow of water at an intake of the pump causes a decrease in the volumetric pumping rate if the pump speed is not increased to overcome this resistance. Further, adjusting the pump to one of the settings may cause the pump to operate at a rate that exceeds a needed rate, while adjusting the pump to another setting may cause the pump to operate at a rate that provides an insufficient amount of flow and/or pressure. In such a case, the pump will either operate inefficiently or operate at a level below that which is desired.


Accordingly, it would be beneficial to provide a pump that could be readily and easily adapted to provide a suitably supply of water at a desired pressure to pools having a variety of sizes and features. The pump should be customizable on-site to meet the needs of the particular pool and associated features, capable of pumping water to a plurality of pools and features, and should be variably adjustable over a range of operating speeds to pump the water as needed when conditions change. Further, the pump should be responsive to a change of conditions and/or user input instructions.


SUMMARY OF THE INVENTION

In accordance with one aspect, the present invention provides a pumping system for moving water of a swimming pool. The pumping system includes a water pump for moving water in connection with performance of an operation upon the water and a variable speed motor operatively connected to drive the pump. The pumping system further includes means for determining a first motor speed of the motor and means for determining a value indicative of a flow rate of water moved by the pump. The pumping system further includes means for determining a first performance value of the pumping system, wherein the first performance value is based upon the determined flow rate, means for determining a second performance value of the pumping system, means for comparing the first performance value to the second performance value, and means for determining an adjustment value based upon the comparison of the first and second performance values. The pumping system further includes means for determining a second motor speed based upon the adjustment value, and means for controlling the motor in response to the second motor speed.


In accordance with another aspect, the present invention provides a pumping system for moving water of a swimming pool. The pumping system includes a water pump for moving water in connection with performance of a filtering operation upon the water through a fluid circuit that includes at least the water pump and the swimming pool, a variable speed motor operatively connected to drive the pump, and a filter arrangement in fluid communication with the fluid circuit and configured to filter the water moved by the water pump. The pumping system further includes means for determining a first motor speed of the motor, means for determining a first performance value of the pumping system, means for determining a second performance value of the pumping system, and means for comparing the first performance value to the second performance value. The pumping system further includes means for determining an adjustment value based upon the comparison of the first and second performance values, means for determining a second motor speed based upon the adjustment value, and means for controlling the motor in response to the second motor speed.


In accordance with another aspect, the present invention provides a method of controlling a pumping system for moving water of a swimming pool including a water pump for moving water in connection with performance of a filtering operation upon the water, a filter arrangement in fluid communication with the pump, a variable speed motor operatively connected to drive the pump, and a controller operatively connected to the motor. The method comprises the steps of determining a first motor speed of the motor, determining a first performance value based upon the first motor speed, determining a second first performance value, and comparing the first performance value to the second performance value. The method also comprises the steps of determining an adjustment value based upon the comparison of the first and second performance values, determining a second motor speed based upon the adjustment value, and controlling the motor in response to the second motor speed.





BRIEF DESCRIPTION OF THE DRAWINGS

The foregoing and other features and advantages of the present invention will become apparent to those skilled in the art to which the present invention relates upon reading the following description with reference to the accompanying drawings, in which:



FIG. 1 is a block diagram of an example of a variable speed pumping system in accordance with the present invention with a pool environment;



FIG. 2 is another block diagram of another example of a variable speed pumping system in accordance with the present invention with a pool environment;



FIG. 3 is a block diagram an example flow control process in accordance with an aspect of the present invention;



FIG. 4 is a block diagram of an example controller in accordance with an aspect of the present invention;



FIG. 5 is a block diagram of another example flow control process in accordance with another aspect of the present invention;



FIG. 6 is a perceptive view of an example pump unit that incorporates the present invention;



FIG. 7 is a perspective, partially exploded view of a pump of the unit shown in FIG. 6; and



FIG. 8 is a perspective view of a control unit of the pump unit shown in FIG. 6.





DESCRIPTION OF EXAMPLE EMBODIMENTS

Certain terminology is used herein for convenience only and is not to be taken as a limitation on the present invention. Further, in the drawings, the same reference numerals are employed for designating the same elements throughout the figures, and in order to clearly and concisely illustrate the present invention, certain features may be shown in somewhat schematic form.


An example variable-speed pumping system 10 in accordance with one aspect of the present invention is schematically shown in FIG. 1. The pumping system 10 includes a pump unit 12 that is shown as being used with a swimming pool 14. It is to be appreciated that the pump unit 12 includes a pump 16 for moving water through inlet and outlet lines 18 and 20.


The swimming pool 14 is one example of a pool. The definition of “swimming pool” includes, but is not limited to, swimming pools, spas, and whirlpool baths, and further includes features and accessories associated therewith, such as water jets, waterfalls, fountains, pool filtration equipment, chemical treatment equipment, pool vacuums, spillways and the like.


A water operation 22 is performed upon the water moved by the pump 16. Within the shown example, water operation 22 is a filter arrangement that is associated with the pumping system 10 and the swimming pool 14 for providing a cleaning operation (i.e., filtering) on the water within the pool. The filter arrangement 22 can be operatively connected between the swimming pool 14 and the pump 16 at/along an inlet line 18 for the pump. Thus, the pump 16, the swimming pool 14, the filter arrangement 22, and the interconnecting lines 18 and 20 can form a fluid circuit or pathway for the movement of water.


It is to be appreciated that the function of filtering is but one example of an operation that can be performed upon the water. Other operations that can be performed upon the water may be simplistic, complex or diverse. For example, the operation performed on the water may merely be just movement of the water by the pumping system (e.g., re-circulation of the water in a waterfall or spa environment).


Turning to the filter arrangement 22, any suitable construction and configuration of the filter arrangement is possible. For example, the filter arrangement 22 may include a skimmer assembly for collecting coarse debris from water being withdrawn from the pool, and one or more filter components for straining finer material from the water.


The pump 16 may have any suitable construction and/or configuration for providing the desired force to the water and move the water. In one example, the pump 16 is a common centrifugal pump of the type known to have impellers extending radially from a central axis. Vanes defined by the impellers create interior passages through which the water passes as the impellers are rotated. Rotating the impellers about the central axis imparts a centrifugal force on water therein, and thus imparts the force flow to the water. Although centrifugal pumps are well suited to pump a large volume of water at a continuous rate, other motor-operated pumps may also be used within the scope of the present invention.


Drive force is provided to the pump 16 via a pump motor 24. In the one example, the drive force is in the form of rotational force provided to rotate the impeller of the pump 16. In one specific embodiment, the pump motor 24 is a permanent magnet motor. In another specific embodiment, the pump motor 24 is an induction motor. In yet another embodiment, the pump motor 24 can be a synchronous or asynchronous motor. The pump motor 24 operation is infinitely variable within a range of operation (i.e., zero to maximum operation). In one specific example, the operation is indicated by the RPM of the rotational force provided to rotate the impeller of the pump 16. In the case of a synchronous motor 24, the steady state speed (RPM) of the motor 24 can be referred to as the synchronous speed. Further, in the case of a synchronous motor 24, the steady state speed of the motor 24 can also be determined based upon the operating frequency in hertz (Hz). Thus, either or both of the pump 16 and/or the motor 24 can be configured to consume power during operation.


A controller 30 provides for the control of the pump motor 24 and thus the control of the pump 16. Within the shown example, the controller 30 includes a variable speed drive 32 that provides for the infinitely variable control of the pump motor 24 (i.e., varies the speed of the pump motor). By way of example, within the operation of the variable speed drive 32, a single phase AC current from a source power supply is converted (e.g., broken) into a three-phase AC current. Any suitable technique and associated construction/configuration may be used to provide the three-phase AC current. The variable speed drive supplies the AC electric power at a changeable frequency to the pump motor to drive the pump motor. The construction and/or configuration of the pump 16, the pump motor 24, the controller 30 as a whole, and the variable speed drive 32 as a portion of the controller 30, are not limitations on the present invention. In one possibility, the pump 16 and the pump motor 24 are disposed within a single housing to form a single unit, and the controller 30 with the variable speed drive 32 are disposed within another single housing to form another single unit. In another possibility, these components are disposed within a single housing to form a single unit. Further still, the controller 30 can receive input from a user interface 31 that can be operatively connected to the controller in various manners.


The pumping system 10 has means used for control of the operation of the pump. In accordance with one aspect of the present invention, the pumping system 10 includes means for sensing, determining, or the like one or more parameters or performance values indicative of the operation performed upon the water. Within one specific example, the system includes means for sensing, determining or the like one or more parameters or performance values indicative of the movement of water within the fluid circuit.


The ability to sense, determine or the like one or more parameters or performance values may take a variety of forms. For example, one or more sensors 34 may be utilized. Such one or more sensors 34 can be referred to as a sensor arrangement. The sensor arrangement 34 of the pumping system 10 would sense one or more parameters indicative of the operation performed upon the water. Within one specific example, the sensor arrangement 34 senses parameters indicative of the movement of water within the fluid circuit. The movement along the fluid circuit includes movement of water through the filter arrangement 22. As such, the sensor arrangement 34 can include at least one sensor used to determine flow rate of the water moving within the fluid circuit and/or includes at least one sensor used to determine flow pressure of the water moving within the fluid circuit. In one example, the sensor arrangement 34 can be operatively connected with the water circuit at/adjacent to the location of the filter arrangement 22. It should be appreciated that the sensors of the sensor arrangement 34 may be at different locations than the locations presented for the example. Also, the sensors of the sensor arrangement 34 may be at different locations from each other. Still further, the sensors may be configured such that different sensor portions are at different locations within the fluid circuit. Such a sensor arrangement 34 would be operatively connected 36 to the controller 30 to provide the sensory information thereto. Further still, one or more sensor arrangement(s) 34 can be used to sense parameters or performance values of other components, such as the motor (e.g., motor speed or power consumption) or even values within program data running within the controller 30.


It is to be noted that the sensor arrangement 34 may accomplish the sensing task via various methodologies, and/or different and/or additional sensors may be provided within the system 10 and information provided therefrom may be utilized within the system. For example, the sensor arrangement 34 may be provided that is associated with the filter arrangement and that senses an operation characteristic associated with the filter arrangement. For example, such a sensor may monitor filter performance. Such monitoring may be as basic as monitoring filter flow rate, filter pressure, or some other parameter that indicates performance of the filter arrangement. Of course, it is to be appreciated that the sensed parameter of operation may be otherwise associated with the operation performed upon the water. As such, the sensed parameter of operation can be as simplistic as a flow indicative parameter such as rate, pressure, etc.


Such indication information can be used by the controller 30, via performance of a program, algorithm or the like, to perform various functions, and examples of such are set forth below. Also, it is to be appreciated that additional functions and features may be separate or combined, and that sensor information may be obtained by one or more sensors.


With regard to the specific example of monitoring flow rate and flow pressure, the information from the sensor arrangement 34 can be used as an indication of impediment or hindrance via obstruction or condition, whether physical, chemical, or mechanical in nature, that interferes with the flow of water from the pool to the pump such as debris accumulation or the lack of accumulation, within the filter arrangement 34. As such, the monitored information is indicative of the condition of the filter arrangement.


The example of FIG. 1 shows an example additional operation 38 and the example of FIG. 2 shows an example additional operation 138. Such an additional operation (e.g., 38 or 138) may be a cleaner device, either manual or autonomous. As can be appreciated, an additional operation involves additional water movement. Also, within the presented examples of FIGS. 1 and 2, the water movement is through the filter arrangement (e.g., 22 or 122). Such additional water movement may be used to supplant the need for other water movement.


Within another example (FIG. 2) of a pumping system 110 that includes means for sensing, determining, or the like one or more parameters indicative of the operation performed upon the water, the controller 130 can determine the one or more parameters via sensing, determining or the like parameters associated with the operation of a pump 116 of a pump unit 112. Such an approach is based upon an understanding that the pump operation itself has one or more relationships to the operation performed upon the water.


It should be appreciated that the pump unit 112, which includes the pump 116 and a pump motor 124, a pool 114, a filter arrangement 122, and interconnecting lines 118 and 120, may be identical or different from the corresponding items within the example of FIG. 1. In addition, as stated above, the controller 130 can receive input from a user interface 131 that can be operatively connected to the controller in various manners.


Turning back to the example of FIG. 2, some examples of the pumping system 110, and specifically the controller 130 and associated portions, that utilize at least one relationship between the pump operation and the operation performed upon the water attention are shown in U.S. Pat. No. 6,354,805, to Moller, entitled “Method For Regulating A Delivery Variable Of A Pump” and U.S. Pat. No. 6,468,042, to Moller, entitled “Method For Regulating A Delivery Variable Of A Pump.” The disclosures of these patents are incorporated herein by reference. In short summary, direct sensing of the pressure and/or flow rate of the water is not performed, but instead one or more sensed or determined parameters associated with pump operation are utilized as an indication of pump performance. One example of such a pump parameter or performance value is power consumption. Pressure and/or flow rate, or the like, can also be calculated/determined from such pump parameter(s).


Although the system 110 and the controller 130 may be of varied construction, configuration and operation, the function block diagram of FIG. 2 is generally representative. Within the shown example, an adjusting element 140 is operatively connected to the pump motor and is also operatively connected to a control element 142 within the controller 130. The control element 142 operates in response to a comparative function 144, which receives input from one or more performance value(s) 146.


The performance value(s) 146 can be determined utilizing information from the operation of the pump motor 124 and controlled by the adjusting element 140. As such, a feedback iteration can be performed to control the pump motor 124. Also, operation of the pump motor and the pump can provide the information used to control the pump motor/pump. As mentioned, it is an understanding that operation of the pump motor/pump has a relationship to the flow rate and/or pressure of the water flow that is utilized to control flow rate and/or flow pressure via control of the pump.


As mentioned, the sensed, determined (e.g., calculated, provided via a look-up table, graph or curve, such as a constant flow curve or the like, etc.) information can be utilized to determine the various performance characteristics of the pumping system 110, such as input power consumed, motor speed, flow rate and/or the flow pressure. In one example, the operation can be configured to prevent damage to a user or to the pumping system 10, 110 caused by an obstruction. Thus, the controller (e.g., 30 or 130) provides the control to operate the pump motor/pump accordingly. In other words, the controller (e.g., 30 or 130) can repeatedly monitor one or more performance value(s) 146 of the pumping system 10,110, such as the input power consumed by, or the speed of, the pump motor (e.g., 24 or 124) to sense or determine a parameter indicative of an obstruction or the like.


Turning to the issue of operation of the system (e.g., 10 or 110) over a course of a long period of time, it is typical that a predetermined volume of water flow is desired. For example, it may be desirable to move a volume of water equal to the volume within the swimming pool (e.g., pool or spa). Such movement of water is typically referred to as a turnover. It may be desirable to move a volume of water equal to multiple turnovers within a specified time period (e.g., a day). Within an example in which the water operation includes a filter operation, the desired water movement (e.g., specific number of turnovers within one day) may be related to the necessity to maintain a desired water clarity.


In another example, the system (e.g., 10 or 110) may operate to have different constant flow rates during different time periods. Such different time periods may be sub-periods (e.g., specific hours) within an overall time period (e.g., a day) within which a specific number of water turnovers is desired. During some time periods a larger flow rate may be desired, and a lower flow rate may be desired at other time periods. Within the example of a swimming pool with a filter arrangement as part of the water operation, it may be desired to have a larger flow rate during pool-use time (e.g., daylight hours) to provide for increased water turnover and thus increased filtering of the water. Within the same swimming pool example, it may be desired to have a lower flow rate during non-use (e.g., nighttime hours).


Within the water operation that contains a filter operation, the amount of water that can be moved and/or the ease by which the water can be moved is dependent in part upon the current state (e.g., quality) of the filter arrangement. In general, a clean (e.g., new, fresh) filter arrangement provides a lesser impediment to water flow than a filter arrangement that has accumulated filter matter (e.g., dirty). For a constant flow rate through a filter arrangement, a lesser pressure is required to move the water through a clean filter arrangement than a pressure that is required to move the water through a dirty filter arrangement. Another way of considering the effect of dirt accumulation is that if pressure is kept constant then the flow rate will decrease as the dirt accumulates and hinders (e.g., progressively blocks) the flow.


Turning to one aspect that is provided by the present invention, the system can operate to maintain a constant flow of water within the fluid circuit. Maintenance of constant flow is useful in the example that includes a filter arrangement. Moreover, the ability to maintain a constant flow is useful when it is desirable to achieve a specific flow volume during a specific period of time. For example, it may be desirable to filter pool water and achieve a specific number of water turnovers within each day of operation to maintain a desired water clarity despite the fact that the filter arrangement will progressively increase dirt accumulation.


It should be appreciated that maintenance of a constant flow volume despite an increasing impediment caused by filter dirt accumulation can require an increasing pressure and is the result of increasing motive force from the pump/motor. As such, one aspect of the present invention is to control the motor/pump to provide the increased motive force that provides the increased pressure to maintain the constant flow.


Turning to one specific example, attention is directed to the block diagram of an example control system that is shown in FIG. 3. It is to be appreciated that the block diagram as shown is intended to be only one example method of operation, and that more or less elements can be included in various orders. For the sake of clarity, the example block diagram described below can control the flow of the pumping system based on a detection of a performance value, such as a change in the power consumption (i.e., watts) of the pump unit 12,112 and/or the pump motor 24, 124, though it is to be appreciated that various other performance values (i.e., motor speed, flow rate and/or flow pressure of water moved by the pump unit 12, 112, filter loading, or the like) can also be used though either direct or indirect measurement and/or determination. Thus, in one example, the flow rate of water through the fluid circuit can be controlled upon a determination of a change in power consumption and/or associated other performance values (e.g., relative amount of change, comparison of changed values, time elapsed, number of consecutive changes, etc.). The change in power consumption can be determined in various ways. In one example, the change in power consumption can be based upon a measurement of electrical current and electrical voltage provided to the motor 24, 124. Various other factors can also be included, such as the power factor, resistance, and/or friction of the motor 24, 124 components, and/or even physical properties of the swimming pool, such as the temperature of the water. Further, as stated previously, the flow rate of the water can be controlled by a comparison of other performance values. Thus, in another example, the flow rate of the water through the pumping system 10, 110 can be controlled through a determination of a change in a measured flow rate. In still yet another example, the flow rate of water through the fluid circuit can be controlled based solely upon a determination of a change in power consumption of the motor 24, 124 without any other sensors. In such a “sensorless” system, various other variables (e.g., flow rate, flow pressure, motor speed, etc.) can be either supplied by a user, other system elements, and/or determined from the power consumption.


Turning to the block diagram shown in FIG. 3, an example flow control process 200 is shown schematically. It is to be appreciated that the flow control process 200 can be an iterative and/or repeating process, such as a computer program or the like. As such, the process 200 can be contained within a constantly repeating loop, such as a “while” loop, “if-then” loop, or the like, as is well known in the art. In one example, the “while” or “if-then” loop can cycle at predetermined intervals, such as once every 100 milliseconds. Further, it is to be appreciated that the loop can include various methods of breaking out of the loop due to various conditions and/or user inputs. In one example, the loop can be broken (and the program restarted) if a user changes an input value or a blockage or other alarm condition is detected in the fluid circuit.


Thus, the process 200 can be initiated with a determination of a first motor speed 202 (ωs) of the motor 24, 124. In the example embodiment where the motor 24, 124 is a synchronous motor, the first motor speed (ωs) can be referred to as the first synchronous motor speed. It is to be appreciated that, for a given time/iterative cycle, the first motor speed 202 is considered to be the present shaft speed of the motor 24, 124. The first motor speed 202 (ωs) can be determined in various manners. In one example, the first motor speed 202 can be provided by the motor controller 204. The motor controller 204 can determine the first motor speed 202, for example, by way of a sensor configured to measure, directly or indirectly, revolutions per minute (RPM) of the motor 24, 124 shaft speed. It is to be appreciated that the motor controller 204 can provide a direct value of shaft speed (ωs) in RPM, or it can provide it by way of an intermediary, such as, for example, an electrical value (electrical voltage and/or electrical current), power consumption, or even a discrete value (i.e., a value between the range of 1 to 128 or the like). It is also to be appreciated that the first motor speed 202 can be determined in various other manners, such as by way of a sensor (not shown) separate and apart from the motor controller 204.


Next, the process 200 can determine a first performance value of the pumping system 10, 110. In one example, as shown, the process 200 can use a reference estimator 206 to determine a reference power consumption 208 (Pref) of the motor 24, 124. The reference estimator 206 can determine the reference power consumption 208 (Pref) in various manners, such as by calculation or by values stored in memory or found in a look-up table, graph, curve or the like. In one example, the reference estimator 206 can contain a one or more predetermined pump curves 210 or associated tables using various variables (e.g., flow, pressure, speed, power, etc.) The curves or tables can be arranged or converted in various manners, such as into constant flow curves or associated tables. For example, the curves 210 can be arranged as a plurality of power (watts) versus speed (RPM) curves for discrete flow rates (e.g., flow curves for the range of 15 GPM to 130 GPM in 1 GPM increments) and stored in the computer program memory. Thus, for a given flow rate, one can use a known value, such as the first motor speed 202 (ωs) to determine (e.g., calculate or look-up) the first performance value (i.e., the reference power consumption 208 (Pref) of the motor 24, 124). The pump curves 210 can have the data arranged to fit various mathematical models, such as linear or polynomial equations, that can be used to determine the performance value.


Thus, where the pump curves 210 are based upon constant flow values, a reference flow rate 212 (Qref) for the pumping system 10, 110 should also be determined. The reference flow rate 212 (Qref) can be determined in various manners. In one example, the reference flow rate 212 can be retrieved from a program menu, such as through user interface 31, 131, or even from other sources, such as another controller and/or program. In addition or alternatively, the reference flow rate 212 can be calculated or otherwise determined (e.g., stored in memory or found in a look-up table, graph, curve or the like) by the controller 30, 130 based upon various other input values. For example, the reference flow rate 212 can be calculated based upon the size of the swimming pool (i.e., volume), the number of turnovers per day required, and the time range that the pumping system 10, 110 is permitted to operate (e.g., a 15,000 gallon pool size at 1 turnover per day and 5 hours run time equates to 50 GPM). The reference flow rate 212 may take a variety of forms and may have a variety of contents, such as a direct input of flow rate in gallons per minute (GPM).


Next, the flow control process 200 can determine a second performance value of the pumping system 10, 110. In accordance with the current example, the process 200 can determine the present power consumption 214 (Pfeedback) of the motor 24, 124. Thus, for the present time/iterative cycle, the value (Pfeedback) is considered to be the present power consumption of the motor 24, 124. In one example, the present power consumption 214 can be based upon a measurement of electrical current and electrical voltage provided to the motor 24, 124, though various other factors can also be included, such as the power factor, resistance, and/or friction of the motor 24, 124 components. The present power consumption can be measured directly or indirectly, as can be appreciated. For example, the motor controller 204 can determine the present power consumption (Pfeedback), such as by way of a sensor configured to measure, directly or indirectly, the electrical voltage and electrical current consumed by the motor 24, 124. It is to be appreciated that the motor controller 204 can provide a direct value of present power consumption (i.e., watts), or it can provide it by way of an intermediary or the like. It is also to be appreciated that the present power consumption 214 can also be determined in various other manners, such as by way of a sensor (not shown) separate and apart from the motor controller 204.


Next, the flow control process 200 can compare the first performance value to the second performance value. For example, the process 200 can perform a difference calculation 216 to find a difference value (ε) 218 between the first and second performance values. Thus, as shown, the difference calculation 216 can subtract the present power consumption 214 from the reference power consumption 208 (i.e., Pref-Pfeedback) to determine the difference value (ε) 218. Because (Pref) 208 and (Pfeedback) 214 can be measured in watts, the difference value (ε) 218 can also be in terms of watts, though it can also be in terms of other values and/or signals. It is to be appreciated that various other comparisons can also be performed based upon the first and second performance values, and such other comparisons can also include various other values and steps, etc. For example, the reference power consumption 208 can be compared to a previous power consumption (not shown) of a previous program or time cycle that can be stored in memory (i.e., the power consumption determination made during a preceding program or time cycle, such as the cycle of 100 milliseconds prior).


Next, the flow control process 200 can determine an adjustment value based upon the comparison of the first and second comparison values. The adjustment value can be determined by a controller, such as a power 220, in various manners. In one example, the power controller 220 can comprise a computer program, though it can also comprise a hardware-based controller (e.g., analog, analog/digital, or digital). In a more specific embodiment, the power controller 220 can include at least one of the group consisting of a proportional (P) controller, an integral (I) controller, a proportional integral (PI) controller, a proportional derivative controller (PD), and a proportional integral derivative (PID) controller, though various other controller configurations are also contemplated to be within the scope of the invention. For the sake of clarity, the power controller 220 will be described herein in accordance with an integral (I) controller.


Turning now to the example block diagram of FIG. 4, an integral control-based version of the power controller 220 is shown in greater detail. It is to be appreciated that the shown power controller 220 is merely one example of various control methodologies that can be employed, and as such more or less steps, variables, inputs and/or outputs can also be used. As shown, an input to the power controller 220 can be the difference value (ε) 218 from the comparison between the first and second performance values. In one example, the difference value (ε) 218 can first be limited 222 to a predetermined range to help stabilize the control scheme (i.e., to become an error value 224). In one example, the difference value (ε) 218 can be limited to a maximum value of 200 watts to inhibit large swings in control of the motor speed, though various other values are also contemplated to be within the scope of the invention. In addition or alternatively, various other modifications, corrections, or the like can be performed on the difference value (ε) 218.


Next, in accordance with the integral control scheme, the power controller 220 can determine an integration constant (K) 226. The integration constant (K) 226 can be determined in various manners, such as calculated, retrieved from memory, or provided via a look-up table, graph or curve, etc. In one example, the integration constant (K) 226 can be calculated 228 (or retrieved from a look-up table) based upon the error value 224 to thereby modify the response speed of the power controller 220 depending upon the magnitude of the error value 224. As such, the integration constant (K) can be increased when the error value 224 is relatively larger to thereby increase the response of the power controller 220 (i.e., to provide relatively larger speed changes), and correspondingly the integration constant (K) can be decreased when the error value 224 is relatively lesser to thereby decrease the response of the power controller 220 (i.e., to achieve a stable control with relatively small speed changes). It is to be appreciated that the determined integration constant (K) can also be limited to a predetermined range to help to stabilize the power controller 220.


Further still, the determined integration constant (K) 226 can also be used for other purposes, such as to determine a wait time before the next iterative cycle of the process 200. In a pumping system 10, 110 as described herein, power consumption by the pump unit 12, 112 and/or pump motor 24, 124 is dependent upon the speed of the motor. Thus, a change in the motor speed can result in a corresponding change in power consumption by the pump motor 24, 124. Further, during a motor speed change, torque ripple or the like from the motor 24, 124 can influence power consumption determinations and may even cause oscillations in the power consumption during the transition and settling/stabilization stages of the speed change. Thus, for example, when the error value 224 and integration constant (K) 226 are relatively greater (i.e., resulting in a relatively greater motor speed change), the iterative process cycle time can be increased to permit a greater transition and/or stabilization time. Likewise, the iterative process cycle time can stay the same or decrease when the error value 224 and integration constant (K) 226 are relatively lesser.


Next, the power controller 220 can determine an adjustment value 230 based upon the error value 224 (which was based upon the aforementioned comparison between the first and second performance values) and the integration constant (K) 226. In one example, the error value 224 (i.e., watts) can be multiplied 229 with the integration constant (K) 226 to determine the adjustment value 230 (ωsInc), though various other relationships and/or operations can be performed (e.g., other calculations, look-up tables, etc.) to determine the adjustment value 230 (ωsInc).


Next, the power controller 220 can determine a second motor speed 236 (ωsRef*) based upon the adjustment value 230 (ωsInc). In one example, the power controller 220 can perform a summation calculation 232 to add the adjustment value 230 (ωsInc) to the motor speed 234 (ωs[n−1]) of the previous time/iteration cycle. It is to be appreciated that because the error value 224 can be either positive or negative, the adjustment value 230 can also be either positive or negative. As such, the second motor speed 236 (ωsRef*) can be greater than, less than, or the same as the motor speed 234 (ωs[n−1]) of the previous time/iteration cycle. Further, the second motor speed 236 (ωsRef*) can be limited 238 to a predetermined range to help retain the motor speed within a predetermined speed range. In one example, the second motor speed 236 (ωsRef*) can be limited to a minimum value of 800 RPM and maximum value of 3450 RPM to inhibit the motor speed from exceeding its operating range, though various other values are also contemplated to be within the scope of the invention. In another example, the second motor speed 236 (ωsRef*) can be limited based upon a predetermined range of relative change in motor speed as compared to the first motor speed 202 (ωs). In addition or alternatively, various other modifications, corrections, or the like can be performed on the second motor speed 236 (ωsRef*).


Returning now to the block diagram of FIG. 3, the power controller 220 can thereby output the determined second motor speed 240 (ωsRef). The motor controller 204 can use the second motor speed 240 (ωsRef) as an input value and can attempt to drive the pump motor 24, 124 at the new motor speed 240 (ωsRef) until a steady state condition (i.e., synchronous speed) is reached. In one example, the motor controller 204 can have an open loop design (i.e., without feedback sensors, such as position sensors located on the rotor or the like), though other designs (i.e., closed loop) are also contemplated. Further still, it is to be appreciated that the motor controller 204 can insure that the pump motor 24, 124 is running at the speed 240 (ωsRef) provided by the power controller 220 because, at a steady state condition, the speed 240 (ωsRef) will be equal to the determined second motor present motor speed 202 (ωs).


Turning now to the block diagram shown in FIG. 5, another example flow control process 300 is shown in accordance with another aspect of the invention. In contrast to the previous control scheme, the present control process 300 can provide flow control based upon a comparison of water flow rates through the pumping system 10, 100. However, it is to be appreciated that this flow control process 300 shown can include some or all of the features of the aforementioned flow control process 200, and can also include various other features as well. Thus, for the sake of brevity, it is to be appreciated that various details can be shown with reference to the previous control process 200 discussion.


As before, the present control process 300 can be an iterative and/or repeating process, such as a computer program or the like. Thus, the process 300 can be initiated with a determination of a first motor speed 302 (ωs) of the motor 24, 124. As before, the motor 24, 124 can be a synchronous motor, and the first motor speed 302 (ωs) can be referred to as a synchronous motor speed. It is to be appreciated that, for a given time/iterative cycle, the first motor speed 302 is considered to be the present shaft speed of the motor 24, 124. Also, as before, the first motor speed 302 (ωs) can be determined in various manners, such as being provided by the motor controller 304. The motor controller 304 can determine the first motor speed 302, for example, by way of a sensor configured to measure, directly or indirectly, revolutions per minute (RPM) of the motor 24, 124 shaft speed, though it can also be provided by way of an intermediary or the like, or even by way of a sensor (not shown) separate and apart from the motor controller 304.


Next, the process 300 can determine a first performance value. As shown, the first performance value can be a reference flow rate 306 (Qref). The reference flow rate 306 (Qref) can be determined in various manners. In one example, the reference flow rate 306 can be retrieved from a program menu, such as through user interface 31, 131. In addition or alternatively, the reference flow rate 306 can be calculated or otherwise determined (e.g., stored in memory or found in a look-up table, graph, curve or the like) by the controller 30, 130 based upon various other input values (time, turnovers, pool size, etc.). As before, the reference flow rate 306 may take a variety of forms and may have a variety of contents, such as a direct input of flow rate in gallons per minute (GPM).


Next, the process 300 can determine a second performance value of the pumping system 10, 110. As shown, the process 300 can use a feedback estimator 308 (flowestimator) to determine a present water flow rate 310 (Qfeedback) of the pumping system 10, 110. The feedback estimator 308 can determine the present flow rate (Qfeedback) in various manners, such as by calculation or by values stored in memory or found in a look-up table, graph, curve or the like. As before, in one example, the feedback estimator 308 can contain a one or more predetermined pump curves 312 or associated tables using various variables (e.g., flow, pressure, speed, power, etc.). The curves or tables can be arranged or converted in various manners, such as into constant power curves or associated tables. For example, the curves 312 can be arranged as a speed (RPM) versus flow rate (Q) curves for discrete power consumptions of the motor 24, 124 and stored in the computer program memory. Thus, for a given power consumption (Pfeedback), one can use a known value, such as the first motor speed 302 (ωs) to determine (e.g., calculate or look-up) the second performance value (i.e., the present water flow rate 310 (Qfeedback) of the pumping system 10, 110). As before, the pump curves 312 can have the data arranged to fit various mathematical models, such as linear or polynomial equations, that can be used to determine the performance value.


Thus, where the pump curves 312 are based upon constant power values, a present power consumption 314 (Pfeedback) should also be determined. The present power consumption 314 (Pfeedback) can be determined in various manners. In one example, the present power consumption 314 (Pfeedback) can be determined from a measurement of the present electrical voltage and electrical current consumed by the motor 24, 124, though various other factors can also be included, such as the power factor, resistance, and/or friction of the motor 24, 124 components. The present power consumption can be measured directly or indirectly, as can be appreciated, and can even be provided by the motor control 304 or other sources.


Next, the flow control process 300 can compare the first performance value to the second performance value. For example, the process 300 can perform a difference calculation 316 to find a difference value (ε) 318 between the first and second performance values. Thus, as shown, the difference calculation 316 can subtract the present flow rate (Qfeedback) from the reference flow rate 306 (Qref) (i.e., Qref-Qfeedback) to determine the difference value (ε) 318. Because Qref 306 and Qfeedback 310 can be measured in GPM, the difference value (ε) 318 can also be in terms of GPM, though it can also be in terms of other values and/or signals. It is to be appreciated that various other comparisons can also be performed based upon the first and second performance values, and such other comparisons can also include various other values and steps, etc. For example, the reference flow rate 306 can be compared to a previous flow rate (not shown) of a previous program or time cycle stored in memory (i.e., the power consumption determination made during a preceding program or time cycle, such as that of 100 milliseconds prior).


Next, the flow control process 300 can determine an adjustment value based upon the comparison of the first and second comparison values, and can subsequently determine a second motor speed 322 (ωsRef) therefrom. As before, the adjustment value and second motor speed 322 can be determined by a controller 320 in various manners. In one example, the controller 320 can comprise a computer program, though it can also comprise a hardware-based controller. As before, in a more specific embodiment, the power controller 320 can include at least one of the group consisting of a proportional (P) controller, an integral (I) controller, a proportional integral (PI) controller, a proportional derivative controller (PD), and a proportional integral derivative (PID) controller, though various other controller configurations are also contemplated to be within the scope of the invention. For the sake of brevity, an example integral-based controller 320 can function similar to the previously described power controller 220 to determine the second motor speed 322, though more or less steps, inputs, outputs, etc. can be included.


Again, as before, the motor controller 304 can use the second motor speed 322 (ωsRef) as an input value and can attempt to drive the pump motor 24, 124 at the new motor speed 322 (ωsRef) until a steady state condition (i.e., synchronous speed) is reached. Further still, as before, the motor controller 304 can insure that the pump motor 24, 124 is running at the speed 322 (ωsRef) provided by the controller 320 because, at a steady state condition, the speed 322 (ωsRef) will be equal to the present motor speed 302 (ωs).


It is to be appreciated that although two example methods of accomplishing flow control have been discussed herein (e.g., flow control based upon a determination of a change in power consumption or a change in flow rate), various other monitored changes or comparisons of the pumping system 10, 110 can also be used independently or in combination. For example, flow control can be accomplished based upon monitored changes and/or comparisons based upon motor speed, flow pressure, filter loading, or the like.


It is also to be appreciated that the flow control process 200, 300 can be configured to interact with (i.e., send or receive information to or from) a second means for controlling the pump. The second means for controlling the pump can include various other elements, such as a separate controller, a manual control system, and/or even a separate program running within the first controller 30, 130. The second means for controlling the pump can provide information for the various variables described above. For example, the information provided can include motor speed, power consumption, flow rate or flow pressure, or any changes therein, or even any changes in additional features cycles of the pumping system 10, 110 or the like. Thus, for example, though the controller 30, 130 has determined a reference flow rate (Qref) based upon parameters such as pool size, turnovers, and motor run time, the determined flow rate can be caused to change due to a variety of factors. In one example, a user could manually increase the flow rate. In another example, a particular water feature (e.g., filter mode, vacuum mode, backwash mode, or the like) could demand a greater flow rate than the reference flow rate. In such a case, the controller 30, 130 can be configured to monitor a total volume of water moved by the pump during a time period (i.e., a 24 hour time period) and to reduce the reference flow rate accordingly if the total volume of water required to be moved (i.e., the required number of turnovers) has been accomplished ahead of schedule. Thus, the flow control process 200, 300 can be configured to receive updated reference flow rates from a variety of sources and to alter operation of the motor 24, 124 in response thereto.


Further still, in accordance with yet another aspect of the invention, a method of controlling the pumping system 10, 110 described herein is provided. The method can include some or all of the aforementioned features of the control process 200, 300, though more or less steps can also be included to accommodate the various other features described herein. In one example method, of controlling the pumping system 10, 110, the method can comprise the steps of determining a first motor speed of the motor, determining a first performance value based upon the first motor speed, determining a second first performance value, and comparing the first performance value to the second performance value. The method can also comprise the steps of determining an adjustment value based upon the comparison of the first and second performance values, determining a second motor speed based upon the adjustment value, and controlling the motor in response to the second motor speed.


It is also to be appreciated that the controller (e.g., 30 or 130) may have various forms to accomplish the desired functions. In one example, the controller 30 can include a computer processor that operates a program. In the alternative, the program may be considered to be an algorithm. The program may be in the form of macros. Further, the program may be changeable, and the controller 30, 130 is thus programmable.


Also, it is to be appreciated that the physical appearance of the components of the system (e.g., 10 or 110) may vary. As some examples of the components, attention is directed to FIGS. 6-8. FIG. 6 is a perspective view of the pump unit 112 and the controller 130 for the system 110 shown in FIG. 2. FIG. 7 is an exploded perspective view of some of the components of the pump unit 112. FIG. 8 is a perspective view of the controller 130 and/or user interface 131.


It should be evident that this disclosure is by way of example and that various changes may be made by adding, modifying or eliminating details without departing from the scope of the teaching contained in this disclosure. As such it is to be appreciated that the person of ordinary skill in the art will perceive changes, modifications, and improvements to the example disclosed herein. Such changes, modifications, and improvements are intended to be within the scope of the present invention.

Claims
  • 1. A pumping system for at least one aquatic application, the pumping system comprising: a pump;a motor coupled to the pump; anda controller in communication with the motor, the controller determining a first motor speed, the controller obtaining a reference flow rate, the controller determining a present flow rate, the controller accessing curves of speed versus flow rate for discrete power consumptions to determine the present flow rate, the controller determining a present power consumption, the controller calculating a difference value between the reference flow rate and the present flow rate, the controller using at least one of integral, proportional, and derivative control to generate a second motor speed based on the difference value, and the controller attempting to drive the motor at the second motor speed until reaching a steady state condition.
  • 2. The pumping system of claim 1, wherein the first motor speed is determined from a present shaft speed of a synchronous motor.
  • 3. The pumping system of claim 1, wherein the reference flow rate is calculated based on at least one of a volume of the at least one aquatic application, a number of turnovers desired per day, and a time range that the pumping system is permitted to operate.
  • 4. The pumping system of claim 1, wherein the present power consumption is based on at least one of current and voltage provided to the motor.
  • 5. The pumping system of claim 1, wherein the present power consumption is based on at least one of a power factor, resistance, and friction of the motor.
  • 6. A pumping system for at least one aquatic application, the pumping system comprising: a pump;
  • 7. The pumping system of claim 6, wherein the first motor speed is determined from a present shaft speed of a synchronous motor.
  • 8. The pumping system of claim 6, wherein the reference flow rate is calculated based on at least one of a volume of the at least one aquatic application, a number of turnovers desired per day, and a time range that the pumping system is permitted to operate.
  • 9. The pumping system of claim 6, wherein the present power consumption is based on at least one of current and voltage provided to the motor.
  • 10. The pumping system of claim 6, wherein the present power consumption is based on at least one of a power factor, resistance, and friction of the motor.
  • 11. A method of controlling a pumping system, the method comprising: providing a motor coupled to a pump;providing a controller in communication with the motor;determining a first motor speed value;determining a present power consumption value;obtaining a reference flow rate value;determining a present flow rate value using curves of speed versus flow rate for discrete power consumptions;generating a difference value between the reference flow rate and the present flow rate; anddriving the motor at a second motor speed based on the difference value until reaching a steady state condition.
  • 12. The method of claim 11, wherein the first motor speed is determined directly from a sensor reading a present shaft speed.
  • 13. The method of claim 11, wherein the first motor speed is determined from a present shaft speed of a synchronous motor.
  • 14. The method of claim 11, wherein the reference flow rate is calculated based on at least one of a volume of the at least one aquatic application, a number of turnovers desired per day, and a time range that the pumping system is permitted to operate.
  • 15. The method of claim 11, wherein the present power consumption is based on at least one of current and voltage provided to the motor.
  • 16. The method of claim 11, wherein the present power consumption is based on at least one of a power factor, resistance, and friction of the motor.
RELATED APPLICATIONS

This application is a continuation of U.S. application Ser. No. 11/609,101 filed, on Dec. 11, 2006 now U.S. Pat. No. 7,845,913, which is a continuation-in-part application of U.S. application Ser. No. 10/926,513, filed Aug. 26, 2004 now U.S. Pat. No. 7,874,808, and U.S. application Ser. No. 11/286,888, filed Nov. 23, 2005 now U.S. Pat. No. 8,019,479, the entire disclosures of which are hereby incorporated herein by reference.

US Referenced Citations (430)
Number Name Date Kind
1061919 Miller May 1913 A
1993267 Ferguson Mar 1935 A
2238597 Page Apr 1941 A
2458006 Kilgore Jan 1949 A
2488365 Abbott at al. Nov 1949 A
2494200 Ramqvist Jan 1950 A
2615937 Ludwig et al. Oct 1952 A
2716195 Anderson Aug 1955 A
2767277 Wirth Oct 1956 A
2778958 Hamm et al. Jan 1957 A
2881337 Wall Apr 1959 A
3191935 Uecker Jun 1965 A
3204423 Resh, Jr. Sep 1965 A
3213304 Landerg et al. Oct 1965 A
3227808 Morris Jan 1966 A
3291058 McFarlin Dec 1966 A
3481973 Wygant Dec 1969 A
3558910 Dale et al. Jan 1971 A
3559731 Stafford Feb 1971 A
3581895 Howard et al. Jun 1971 A
3613805 Lindstad Oct 1971 A
3737749 Schmit Jun 1973 A
3778804 Adair Dec 1973 A
3787882 Fillmore Jan 1974 A
3838597 Montgomery et al. Oct 1974 A
3902369 Metz Sep 1975 A
3949782 Athey et al. Apr 1976 A
3953777 McKee Apr 1976 A
3963375 Curtis Jun 1976 A
4021700 Ellis-Anwyl May 1977 A
4041470 Slane et al. Aug 1977 A
4123792 Gephart et al. Oct 1978 A
4133058 Baker Jan 1979 A
4151080 Zuckerman et al. Apr 1979 A
4168413 Halpine Sep 1979 A
4225290 Allington Sep 1980 A
4241299 Bertone Dec 1980 A
4263535 Jones Apr 1981 A
4286303 Genheimer et al. Aug 1981 A
4319712 Bar Mar 1982 A
4322297 Bajka Mar 1982 A
4353220 Curwen Oct 1982 A
4370098 McClain et al. Jan 1983 A
4384825 Thomas et al. May 1983 A
4402094 Sanders Sep 1983 A
4419625 Bejot et al. Dec 1983 A
4420787 Tibbits et al. Dec 1983 A
4421643 Frederick Dec 1983 A
4427545 Arguilez Jan 1984 A
4449260 Whitaker May 1984 A
4462758 Speed Jul 1984 A
4470092 Lombardi Sep 1984 A
4473338 Garmong Sep 1984 A
4494180 Streater Jan 1985 A
4504773 Suzuki et al. Mar 1985 A
4505643 Millis et al. Mar 1985 A
D278529 Hoogner Apr 1985 S
4541029 Ohyama Sep 1985 A
4545906 Frederick Oct 1985 A
4610605 Hartley Sep 1986 A
4620835 Bell Nov 1986 A
4635441 Ebbing et al. Jan 1987 A
4647825 Profio et al. Mar 1987 A
4676914 Mills et al. Jun 1987 A
4678404 Lorett et al. Jul 1987 A
4678409 Kurokawa Jul 1987 A
4686439 Cunningham et al. Aug 1987 A
4695779 Yates Sep 1987 A
4703387 Miller Oct 1987 A
4705629 Weir Nov 1987 A
4758697 Jeuneu Jul 1988 A
4767280 Markuson Aug 1988 A
4780050 Caine et al. Oct 1988 A
4795314 Prybella Jan 1989 A
4827197 Giebeler May 1989 A
4834624 Jensen May 1989 A
4837656 Barnes Jun 1989 A
4841404 Marshall et al. Jun 1989 A
4864287 Kierstead Sep 1989 A
4885655 Springer et al. Dec 1989 A
4891569 Light Jan 1990 A
4907610 Meincke Mar 1990 A
4912936 Denpou Apr 1990 A
4913625 Gerlowski Apr 1990 A
4963778 Jensen Oct 1990 A
4971522 Butlin Nov 1990 A
4977394 Manson et al. Dec 1990 A
4985181 Strada et al. Jan 1991 A
4986919 Allington Jan 1991 A
4996646 Farrington Feb 1991 A
D315315 Stairs, Jr. Mar 1991 S
4998097 Noth et al. Mar 1991 A
5026256 Kuwabara Jun 1991 A
5076761 Krohn et al. Dec 1991 A
5076763 Anastos et al. Dec 1991 A
5079784 Rist et al. Jan 1992 A
5099181 Canon Mar 1992 A
5100298 Shibata et al. Mar 1992 A
RE33874 Miller Apr 1992 E
5117233 Hamos et al. May 1992 A
5123080 Gillett Jun 1992 A
5151017 Sears et al. Sep 1992 A
5156535 Budris Oct 1992 A
5158436 Jensen Oct 1992 A
5159713 Gaskill et al. Oct 1992 A
5167041 Burkitt Dec 1992 A
5172089 Wright et al. Dec 1992 A
D334542 Lowe Apr 1993 S
5240380 Mabe Aug 1993 A
5295790 Bossart et al. Mar 1994 A
5324170 Anastos et al. Jun 1994 A
5327036 Carey Jul 1994 A
5342176 Redlich Aug 1994 A
5418984 Livingston et al. May 1995 A
D359458 Pierret Jun 1995 S
D363060 Hunger Oct 1995 S
5471125 Wu Nov 1995 A
5473497 Beatty Dec 1995 A
5499902 Rockwood Mar 1996 A
5511397 Makino et al. Apr 1996 A
5512883 Lane Apr 1996 A
5518371 Wellstein May 1996 A
5519848 Wloka May 1996 A
5520517 Sipin May 1996 A
5540555 Corso et al. Jul 1996 A
D372719 Jensen Aug 1996 S
5545012 Anastos et al. Aug 1996 A
5548854 Bloemer et al. Aug 1996 A
5550753 Tompkins et al. Aug 1996 A
5559762 Sakamoto Sep 1996 A
D375908 Schumaker Nov 1996 S
5570481 Mathis et al. Nov 1996 A
5571000 Zimmermann Nov 1996 A
5577890 Nielsen et al. Nov 1996 A
5580221 Triezenberg Dec 1996 A
5598080 Jensen Jan 1997 A
5604491 Coonley et al. Feb 1997 A
5614812 Wagoner Mar 1997 A
5626464 Schoenmeyr May 1997 A
5628896 Klingenberger May 1997 A
5633540 Moan May 1997 A
5654504 Smith et al. Aug 1997 A
5672050 Webber et al. Sep 1997 A
5682624 Ciochetti Nov 1997 A
5690476 Miller Nov 1997 A
5711483 Hays Jan 1998 A
5713320 Pfaff et al. Feb 1998 A
5727933 Laskaris Mar 1998 A
5730861 Sterghos et al. Mar 1998 A
5731673 Gilmore Mar 1998 A
5739648 Ellis et al. Apr 1998 A
5744921 Makaran Apr 1998 A
5754421 Nystrom May 1998 A
5767606 Bresolin Jun 1998 A
5777833 Romillon Jul 1998 A
5791882 Stucker Aug 1998 A
5804080 Klingenberger Sep 1998 A
5818714 Zou Oct 1998 A
5819848 Rasmusson Oct 1998 A
5820350 Mantey et al. Oct 1998 A
5828200 Ligman et al. Oct 1998 A
5833437 Kurth et al. Nov 1998 A
5836271 Sasaki Nov 1998 A
5863185 Cochimin et al. Jan 1999 A
5883489 Konrad Mar 1999 A
5894609 Barnett Apr 1999 A
5907281 Miller, Jr. et al. May 1999 A
5909352 Klabunde et al. Jun 1999 A
5909372 Thybo Jun 1999 A
5914881 Trachier Jun 1999 A
5920264 Kim et al. Jul 1999 A
5930092 Nystrom Jul 1999 A
5941690 Lin Aug 1999 A
5945802 Konrad Aug 1999 A
5947689 Schick Sep 1999 A
5947700 McKain et al. Sep 1999 A
5959534 Campbell et al. Sep 1999 A
5961291 Sakagami Oct 1999 A
5969958 Nielsen Oct 1999 A
5973465 Rayner Oct 1999 A
5983146 Sarbach Nov 1999 A
5991939 Mulvey Nov 1999 A
6030180 Clarey et al. Feb 2000 A
6037742 Rasmussen Mar 2000 A
6043461 Holling et al. Mar 2000 A
6045331 Gehm et al. Apr 2000 A
6045333 Breit Apr 2000 A
6046492 Machida Apr 2000 A
6048183 Meza Apr 2000 A
6059536 Stingl May 2000 A
6065946 Lathrop May 2000 A
6072291 Pedersen Jun 2000 A
6081751 Luo Jun 2000 A
6091604 Plougsgaard Jul 2000 A
D429699 Davis Aug 2000 S
D429700 Liebig Aug 2000 S
6098654 Cohen et al. Aug 2000 A
6102665 Centers Aug 2000 A
6110322 Teoh et al. Aug 2000 A
6116040 Stark Sep 2000 A
6121746 Fisher et al. Sep 2000 A
6125481 Sicilano Oct 2000 A
6142741 Nishihata Nov 2000 A
6157304 Bennett et al. Dec 2000 A
6171073 McKain et al. Jan 2001 B1
6178393 Irvin Jan 2001 B1
6199224 Versland Mar 2001 B1
6208112 Jensen Mar 2001 B1
6227808 McDonough May 2001 B1
6238188 Lifson May 2001 B1
6249435 Vicente et al. Jun 2001 B1
6253227 Tompkins et al. Jun 2001 B1
D445405 Schneider Jul 2001 S
6254353 Polo Jul 2001 B1
6257304 Jacobs et al. Jul 2001 B1
6259617 Wu Jul 2001 B1
6264431 Triezenberg Jul 2001 B1
6264432 Kilayko et al. Jul 2001 B1
6280611 Henkin et al. Aug 2001 B1
6299414 Schoenmeyr Oct 2001 B1
6299699 Porat et al. Oct 2001 B1
6326752 Jensen Dec 2001 B1
6330525 Hays Dec 2001 B1
6342841 Stingl Jan 2002 B1
6349268 Ketonen et al. Feb 2002 B1
6351359 Jaeger Feb 2002 B1
6354805 Moller Mar 2002 B1
6362591 Moberg Mar 2002 B1
6364621 Yamauchi Apr 2002 B1
6373204 Peterson Apr 2002 B1
6373728 Aarestrup Apr 2002 B1
6380707 Rosholm Apr 2002 B1
6388642 Cotis May 2002 B1
6390781 McDonough May 2002 B1
6406265 Hahn Jun 2002 B1
6415808 Joshi Jul 2002 B2
6416295 Nagai Jul 2002 B1
6426633 Thybo Jul 2002 B1
6447446 Smith et al. Sep 2002 B1
6450771 Centers Sep 2002 B1
6464464 Sabini Oct 2002 B2
6468042 Møller Oct 2002 B2
6468052 McKain et al. Oct 2002 B2
6474949 Arai Nov 2002 B1
6481973 Struthers Nov 2002 B1
6483278 Harvest Nov 2002 B2
6483378 Blodgett Nov 2002 B2
6493227 Nielsen et al. Dec 2002 B2
6501629 Marriott Dec 2002 B1
6504338 Eichorn Jan 2003 B1
6522034 Nakayama Feb 2003 B1
6534940 Bell et al. Mar 2003 B2
6534947 Johnson et al. Mar 2003 B2
6537032 Horiuchi et al. Mar 2003 B1
6548976 Jensen Apr 2003 B2
6564627 Sabini et al. May 2003 B1
6571807 Jones Jun 2003 B2
6591697 Henyan Jul 2003 B2
6604909 Schoenmeyr Aug 2003 B2
6623245 Meza Sep 2003 B2
6628840 Aschenbrenner Sep 2003 B1
6636135 Vetter Oct 2003 B1
D482664 Hunt Nov 2003 S
6651900 Yoshida Nov 2003 B1
6672147 Mazet Jan 2004 B1
6676831 Wolfe Jan 2004 B2
6690250 Moller Feb 2004 B2
6696676 Graves et al. Feb 2004 B1
6709240 Schmalz et al. Mar 2004 B1
6709575 Verdegan Mar 2004 B1
6715996 Moeller Apr 2004 B2
6717318 Mathiassen Apr 2004 B1
6732387 Waldron May 2004 B1
D490726 Eungprabhanth Jun 2004 S
6747367 Cline et al. Jun 2004 B2
6770043 Kahn Aug 2004 B1
6774664 Godbersen Aug 2004 B2
6776584 Sabini et al. Aug 2004 B2
6799950 Meier et al. Oct 2004 B2
6806677 Kelly et al. Oct 2004 B2
6837688 Kimberlin et al. Jan 2005 B2
6842117 Keown Jan 2005 B2
6847854 Discenzo Jan 2005 B2
6863502 Bishop et al. Mar 2005 B2
6875961 Collins Apr 2005 B1
6884022 Albright Apr 2005 B2
D504900 Wang May 2005 S
D505429 Wang May 2005 S
6888537 Benson et al. May 2005 B2
D507243 Miller Jul 2005 S
6925823 Lifson Aug 2005 B2
6933693 Schuchmann Aug 2005 B2
6941785 Haynes et al. Sep 2005 B2
D511530 Wang Nov 2005 S
D512026 Nurmi Nov 2005 S
6965815 Tompkins et al. Nov 2005 B1
6966967 Curry Nov 2005 B2
D512440 Wang Dec 2005 S
6976052 Tompkins et al. Dec 2005 B2
D513737 Riley Jan 2006 S
6981399 Nybo et al. Jan 2006 B1
6984158 Satoh Jan 2006 B2
6989649 Mehlhorn Jan 2006 B2
6993414 Shah Jan 2006 B2
7005818 Jensen Feb 2006 B2
7040107 Lee et al. May 2006 B2
7050278 Poulsen May 2006 B2
7080508 Stavale Jul 2006 B2
7083392 Meza Aug 2006 B2
7112037 Sabini et al. Sep 2006 B2
7114926 Oshita Oct 2006 B2
7117120 Beck et al. Oct 2006 B2
D533512 Nakashima Dec 2006 S
7183741 Mehlhorn Feb 2007 B2
7195462 Nybo et al. Mar 2007 B2
7221121 Skaug May 2007 B2
7244106 Kallman et al. Jul 2007 B2
D562349 Bulter Feb 2008 S
D567189 Stiles, Jr. Apr 2008 S
D582797 Fraser Dec 2008 S
D583828 Li Dec 2008 S
7542251 Ivankovic Jun 2009 B2
7612510 Koehl Nov 2009 B2
7690897 Branecky Apr 2010 B2
7777435 Aguilar Aug 2010 B2
7821215 Koehl Oct 2010 B2
7874808 Stiles Jan 2011 B2
20010041139 Sabini et al. Nov 2001 A1
20020010839 Tirumala et al. Jan 2002 A1
20020018721 Kobayashi Feb 2002 A1
20020032491 Imamura et al. Mar 2002 A1
20020050490 Pittman May 2002 A1
20020070875 Crumb Jun 2002 A1
20020082727 Laflamme et al. Jun 2002 A1
20020131866 Phillips Sep 2002 A1
20020136642 Moller Sep 2002 A1
20020150476 Lucke et al. Oct 2002 A1
20020176783 Moeller Nov 2002 A1
20020190687 Bell et al. Dec 2002 A1
20030017055 Fong Jan 2003 A1
20030034284 Wolfe Feb 2003 A1
20030061004 Discenzo Mar 2003 A1
20030063900 Wang et al. Apr 2003 A1
20030099548 Meza May 2003 A1
20030106147 Cohen et al. Jun 2003 A1
20030174450 Nakajima et al. Sep 2003 A1
20030196942 Jones Oct 2003 A1
20040000525 Hornsby Jan 2004 A1
20040006486 Schmidt et al. Jan 2004 A1
20040009075 Meza Jan 2004 A1
20040013531 Curry et al. Jan 2004 A1
20040016241 Street Jan 2004 A1
20040025244 Loyd et al. Feb 2004 A1
20040055363 Bristol Mar 2004 A1
20040062658 Beck et al. Apr 2004 A1
20040090197 Schuchmann May 2004 A1
20040117330 Ehlers et al. Jun 2004 A1
20040149666 Leaverton Aug 2004 A1
20040265134 Iimura Dec 2004 A1
20050050908 Lee et al. Mar 2005 A1
20050095150 Leone et al. May 2005 A1
20050123408 Koehl Jun 2005 A1
20050137720 Spira et al. Jun 2005 A1
20050170936 Quinn Aug 2005 A1
20050180868 Miller Aug 2005 A1
20050190094 Andersen Sep 2005 A1
20050193485 Wolfe Sep 2005 A1
20050226731 Mehlhorn et al. Oct 2005 A1
20050235732 Rush Oct 2005 A1
20050260079 Allen Nov 2005 A1
20060045750 Stiles Mar 2006 A1
20060045751 Beckman et al. Mar 2006 A1
20060090255 Cohen May 2006 A1
20060127227 Mehlhorn Jun 2006 A1
20060138033 Hoal Jun 2006 A1
20060146462 McMillan, IV Jul 2006 A1
20060169322 Torkelson Aug 2006 A1
20060204367 Meza Sep 2006 A1
20070001635 Ho Jan 2007 A1
20070041845 Freudenberger Feb 2007 A1
20070061051 Maddox Mar 2007 A1
20070113647 Mehlhorn May 2007 A1
20070114162 Stiles May 2007 A1
20070124321 Szydlo May 2007 A1
20070154319 Stiles Jul 2007 A1
20070154320 Stiles Jul 2007 A1
20070154321 Stiles, Jr. Jul 2007 A1
20070154322 Stiles Jul 2007 A1
20070154323 Stiles Jul 2007 A1
20070160480 Ruffo Jul 2007 A1
20070163929 Stiles Jul 2007 A1
20070183902 Stiles Aug 2007 A1
20070187185 Abraham et al. Aug 2007 A1
20070212210 Kernan et al. Sep 2007 A1
20070212229 Stavale et al. Sep 2007 A1
20070212230 Stavale et al. Sep 2007 A1
20080003114 Levin et al. Jan 2008 A1
20080039977 Clark Feb 2008 A1
20080041839 Tran Feb 2008 A1
20080063535 Koehl Mar 2008 A1
20080095638 Branecky Apr 2008 A1
20080095639 Bartos et al. Apr 2008 A1
20080131286 Koehl Jun 2008 A1
20080131289 Koehl Jun 2008 A1
20080131291 Koehl Jun 2008 A1
20080131294 Koehl Jun 2008 A1
20080131295 Koehl Jun 2008 A1
20080131296 Koehl Jun 2008 A1
20080140353 Koehl Jun 2008 A1
20080152508 Meza et al. Jun 2008 A1
20080168599 Caudill Jul 2008 A1
20080181785 Koehl Jul 2008 A1
20080181786 Meza et al. Jul 2008 A1
20080181787 Koehl Jul 2008 A1
20080181788 Meza Jul 2008 A1
20080181789 Koehl Jul 2008 A1
20080181790 Meza Jul 2008 A1
20080189885 Erlich Aug 2008 A1
20080260540 Koehl Oct 2008 A1
20080288115 Rusnak et al. Nov 2008 A1
20090014044 Hartman Jan 2009 A1
20090104044 Koehl Apr 2009 A1
20090204237 Sustaeta Aug 2009 A1
20090204267 Sustaeta Aug 2009 A1
20090210081 Sustaeta Aug 2009 A1
20100306001 Discenzo Dec 2010 A1
20110044823 Stiles Feb 2011 A1
20110052416 Stiles Mar 2011 A1
20120020810 Stiles, Jr. Jan 2012 A1
20120100010 Stiles, Jr. Apr 2012 A1
Foreign Referenced Citations (26)
Number Date Country
3023463 Feb 1981 DE
19736079 Aug 1997 DE
19645129 May 1998 DE
10231773 Feb 2004 DE
19938490 Apr 2005 DE
246769 May 1986 EP
0306814 Mar 1989 EP
0314249 May 1989 EP
0709575 May 1996 EP
833436 Sep 1996 EP
0735273 Oct 1996 EP
0831188 Mar 1998 EP
0978657 Feb 2000 EP
1134421 Sep 2001 EP
2529965 Jun 1983 FR
2703409 Oct 1994 FR
2124304 Jun 1983 GB
5010270 Jan 1993 JP
WO9804835 Feb 1998 WO
WO0042339 Jul 2000 WO
WO 0147099 Jun 2001 WO
WO03099705 Dec 2003 WO
WO 2004006416 Jan 2004 WO
WO2004073772 Sep 2004 WO
WO 2004088694 Oct 2004 WO
WO 2006069568 Jul 2006 WO
Non-Patent Literature Citations (113)
Entry
9PX14—Pentair; “IntelliFlo Installation and User's Guide;” pp. 1-53; Jul. 26, 2011; Sanford, NC; cited in Civil Action 5:11-cv-00459D.
9PX16—Hayward Pool Products; “EcoStar Owner's Manual (Rev. B);” pp. 1-32; Elizabeth, NJ; cited in Civil Action 5:11-cv-00459D; 2010.
9PX17—Hayward Pool Products; “EcoStar & EcoStar SVRS Brochure;” pp. 1-7; Elizabeth, NJ; cited in Civil Action 5:11-cv-00459D; Sep. 30, 2011.
9PX19—Hayward Pool Products; “Hayward Energy Solutions Brochure ;” pp. 1-3; www.haywardnet.com; cited in Civil Action 5:11-cv-00459D; Sep. 2011.
9PX20—Hayward Pool Products; “ProLogic Installation Manual (Rev. G);” pp. 1-25; Elizabeth, NJ; cited in Civil Action 5:11-cv-00459D; Sep. 2011.
9PX21—Hayward Pool Products; “ProLogic Operation Manual (Rev. F);” pp. 1-27; Elizabeth, NJ; cited in Civil Action 5:11-cv-00459D; Sep. 2011.
9PX22—Hayward Pool Products; “Wireless & Wired Remote Controls Brochure;” pp. 1-5; 2010; Elizabeth, NJ; cited in Civil Action 5:11-cv-00459D.
9PX23—Hayward Pool Products; Selected Pages from Hayward's Website:/www.hayward-pool.com; pp. 1-27; cited in Civil Action 5:11-cv-00459D; Sep. 2011.
9PX28—Hayward Pool Products; “Selected Page from Hayward's Website Relating to EcoStar Pumps;” p. 1; cited in Civil Action 5:11-cv-00459D; Sep. 2011.
9PX29—Hayward Pool Products; “Selected Page from Hayward's Website Relating to EcoStar SVRS Pumps;” cited in Civil Action 5:11-cv-00459; Sep. 2011.
9PX30—Hayward Pool Systems; “Selected Pages from Hayward's Website Relating to ProLogic Controllers;” pp. 1-5; Civil Action 5:11-cv-00459D; Sep. 2011.
9PX-42—Hayward Pool Systems; “Hayward EcoStar & EcoStar SVRS Variable Speed Pumps Brochure;” Civil Action 5:11-cv-00459D; 2010.
205-24—Exh23-Plaintiffs Preliminary Disclosure of Asserted Claims and Preliminary Infringement Contentions; cited in Civil Action 5:11-cv-00459; Feb. 21, 2012.
PX-34—Pentair; “IntelliTouch Pool & Spa Control System User's Guide”; pp. 1-129; 2011; cited in Civil Action 5:11-cv-00459; 2011.
PX-138—Deposition of Dr. Douglas C. Hopkins; pp. 1-391; 2011; taken in Civil Action 10-cv-1662.
PX-141-Danfoss; “Whitepaper Automatic Energy Optimization;” pp. 1-4; 2011; cited in Civil Action 5:11-cv-00459.
9PX10—Pentair; “IntelliPro VS+SVRS Intelligent Variable Speed Pump;” 2011; pp. 1-6; cited in Civil Action 5:11-cv-00459D.
9PX11-Pentair; “IntelliTouch Pool & Spa Control Control Systems;” 2011; pp. 1-5; cited in Civil Action 5:11-cv-00459D.
Robert S. Carrow; “Electrician's Technical Reference-Variable Frequency Drives;” 2001; pp. 1-194.
Baldor; “Baldor Motors and Drives Series 14 Vector Drive Control Operating & Technical Manual;” Mar. 22, 1992; pp. 1-92.
Commander; “Commander SE Advanced User Guide;” Nov. 2002; pp. 1-118.
Baldor; “Baldor Series 10 Inverter Control: Installation and Operating Manual”; Feb. 2000; pp. 1-74.
Dinverter; “Dinverter 2B User Guide;” Nov. 1998; pp. 1-94.
Docket Report for Case No. 5:11-cv-00459-D; Nov. 2012.
1—Complaint Filed by Pentair Water Pool & Spa, Inc. and Danfoss Drives A/S with respect to Civil Action No. 5:11-cv-00459-D; Aug. 31, 2011.
7—Motion for Preliminary Injunction by Danfoss Drives A/S & Pentair Water Pool & Spa, Inc. with respect to Civil Action No. 5:11-cv-00459-D; Sep. 30, 2011.
22—Memorandum in Support of Motion for Preliminary Injunction by Plaintiffs with respect to Civil Action 5:11-cv-00459-D; Sep. 2, 2011.
23—Declaration of E. Randolph Collins, Jr. in Support of Motion for Preliminary Injunction with respect to Civil Action 5:11-cv-00459-D; Sep. 30, 2011.
24—Declaration of Zack Picard in Support of Motion for Preliminary Injunction with respect to Civil Action 5:11-cv-00459-D; Sep. 30, 2011.
32—Answer to Complaint with Jury Demand & Counterclaim Against Plaintiffs by Hayward Pool Products & Hayward Industries for Civil Action 5:11-cv-00459D; Oct. 12, 2011.
45—Plaintiffs' Reply to Defendants' Answer to Complaint & Counterclaim for Civil Action 5:11-cv-00459D; Nov. 2, 2011.
50—Amended Answer to Complaint & Counterclaim by Defendants for Civil Action 5:11-cv-00459D; Nov. 23, 2011.
51—Response by Defendants in Opposition to Motion for Preliminary Injunction for Civil Action 5:11-cv-00459D; Dec. 2, 2011.
53—Declaration of Douglas C. Hopkins & Exhibits re Response Opposing Motion for Preliminary Injunction for Civil Action 5:11-cv-00459D; Dec. 2, 2011.
89—Reply to Response to Motion for Preliminary Injunction Filed by Danfoss Drives A/S & Pentair Water Pool & Spa, Inc. for Civil Action 5:11-cv-00459D; Jan. 3, 2012.
105—Declaration re Memorandum in Opposition, Declaration of Lars Hoffmann Berthelsen for Civil Action 5:11-cv-00459D; Jan. 11, 2012.
112—Amended Complaint Against All Defendants, with Exhibits for Civil Action 5:11-cv-00459D; Jan. 17, 2012.
119—Order Denying Motion for Preliminary Injunction for Civil Action 5:11-cv-00459D; Jan. 23, 2012.
123—Answer to Amended Complaint, Counterclaim Against Danfoss Drives A/S, Pentair Water Pool & Spa, Inc. for Civil Action 5:11-cv-00459D; Jan. 27, 2012.
152—Order Denying Motion for Reconsideration for Civil Action 5:11-cv-00459D; Apr. 4, 2012.
168—Amended Motion to Stay Action Pending Reexamination of Asserted Patents by Defendants for Civil Action 5:11-cv-00459D; Jun. 13, 2012.
174—Notice and Attachments re Joint Claim Construction Statement for Civil Action 5:11-cv-00459D; Jun. 5, 2012.
186—Order Setting Hearings—Notice of Markman Hearing Set for Oct. 17, 2012 for Civil Action 5:11-cv-00459D; Jul. 12, 2012.
204—Response by Plaintiffs Opposing Amended Motion to Stay Action Pending Reexamination of Asserted Patents for Civil Action 5:11-cv-00459D; Jul. 2012.
210—Order Granting Joint Motion for Leave to Enlarge Page Limit for Civil Action 5:11-cv-00459D; Jul. 2012.
218—Notice re Plaintiffs re Order on Motion for Leave to File Excess Pages re Amended Joint Claim Construction Statement for Civil Action 5:11-cv-00459D; Aug. 2012.
54DX16—Hayward EcoStar Technical Guide (Version2); 2011; pp. 1-51; cited in Civil Action 5:11-cv-00459D.
54DX17—Hayward ProLogic Automation & Chlorination Operation Manual (Rev. F); pp. 1-27; Elizabeth, NJ; cited in Civil Action 5:11-cv-00459D; Dec. 2, 2011.
54DX18—Stmicroelectronics; “AN1946—Sensorless BLDC Motor Control & BEMF Sampling Methods with ST7MC;” 2007; pp. 1-35; Civil Action 5:11-cv-00459D.
54DX19—Stmicroelectronics; “AN1276 BLDC Motor Start Routine for ST72141 Microcontroller;” 2000; pp. 1-18; cited in Civil Action 5:11-cv-00459D.
54DX21—Danfoss; “VLT 8000 Aqua Instruction Manual;” Apr. 2004; 1-210; Cited in Civil Action 5:11-cv-00459D.
54DX22—Danfoss; “VLT 8000 Aqua Instruction Manual;” pp. 1-35; cited in Civil Action 5:11-cv-00459D; Dec. 2, 2011.
54DX23—Commander; “Commander SE Advanced User Guide;” Nov. 2002; pp. 1-190; cited in Civil Action 5:11-cv-00459D.
54DX30—Sabbagh et al.; “A Model for Optimal . . . Control of Pumping Stations in Irrigation Systems;” Jul. 1988; NL pp. 119-133; Civil Action 5:11-cv-00459D.
54DX31—Danfoss; “VLT 5000 Flux Aqua DeviceNet Instruction Manual;” Apr. 28, 2003; pp. 1-39; cited in Civil Action 5:11-cv-00459D.
54DX32—Danfoss; “VLT 5000 Flux Aqua Profibus Operating Instructions;” May 22, 2003; 1-64; cited in Civil Action 5:11-cv-00459D.
54DX33—Pentair; “IntelliTouch Owner's Manual Set-Up & Programming;” May 22, 2003; Sanford, NC; pp. 1-61; cited in Civil Action 5:11-cv-00459D.
54DX34—Pentair; “Compool 3800 Pool-Spa Control System Installation & Operating Instructions;” Nov. 7, 1997; pp. 1-45; cited in Civil Action 5:11-cv-00459D.
54DX35—Pentair Advertisement in “Pool & Spa News;” Mar. 22, 2002; pp. 1-3; cited in Civil Action 5:11-cv-00459D.
54DX36—Hayward; “Pro-Series High-Rate Sand Filter Owner's Guide;” 2002; Elizabeth, NJ; pp. 1-5; cited in Civil Action 5:11-cv-00459D.
54DX37—Danfoss; “VLT 8000 Aqua Fact Sheet;” Jan. 2002; pp. 1-3; cited in Civil Action 5:11-cv-00459D.
54DX38—Danfoss; “VLT 6000 Series Installation, Operation & Maintenance Manual;” Mar. 2000; pp. 1-118; cited in Civil Action 5:11-cv-00459D.
54DX45—Hopkins; “Synthesis of New Class of Converters that Utilize Energy Recirculation;” pp. 1-7; cited in Civil Action 5:11-cv-00459D; 1994.
54DX46—Hopkins; “High-Temperature, High-Density . . . Embedded Operation;” pp. 1-8; cited in Civil Action 5:11-cv-00459D; Mar. 2006.
54DX47—Hopkins; “Optimally Selecting Packaging Technologies . . . Cost & Performance;” pp. 1-9; cited in Civil Action 5:11-cv-00459D; Jun. 1999.
54DX48—Hopkins; “Partitioning Digitally . . . Applications to Ballasts;” pp. 1-6; cited in Civil Action 5:11-cv-00459D; Mar. 2002.
9PX5—Pentair; Selected Website Pages; pp. 1-29; cited in Civil Action 5:11-cv-00459D; Sep. 2011.
9PX6—Pentair; “IntelliFlo Variable Speed Pump” Brochure; 2011; pp. 1-9; cited in Civil Action 5:11-cv-00459D.
9PX7—Pentair; “IntelliFlo VF Intelligent Variable Flow Pump;” 2011; pp. 1-9; cited in Civil Action 5:11-cv-00459D.
9PX8—Pentair; “IntelliFlo VS+SVRS Intelligent Variable Speed Pump;” 2011; pp. 1-9; cited in Civil Action 5:11-cv-00459D.
9PX9-STA-RITE; “IntelliPro Variable Speed Pump;” 2011; pp. 1-9; cited in Civil Action 5:11-cv-00459D.
Shabnam Mogharabi; “Better, Stronger, Faster;” Pool and Spa News; pp. 1-5; Sep. 3, 2004; www/poolspanews.com.
Pentair Pool Products; “IntelliFlo 4X160 a Breathrough in Energy-Efficiency and Service Life;” pp. 1-4; Nov. 2005; www/pentairpool.com.
Pentair Water Pool and Spa, Inc.; “The Pool Pro's Guide to Breakthrough Efficiency, Convenience & Profitability;” pp. 1-8; Mar. 2006; wwwpentairpool.com.
SJE-Rhombus; “Variable Frequency Drives for Constant Pressure Control;” Aug. 2008; pp. 1-4; Detroit Lakes, MN USA.
SJE-Rhombus; “Constant Pressure Controller for Submersible Well Pumps;” Jan. 2009; pp. 1-4; Detroit Lakes, MN USA.
SJE-Rhombus; “SubCon Variable Frequency Drive;” Dec. 2008; pp. 1-2; Detroit Lakes, MN USA.
Grundfos; “SmartFlo SQE Constant Pressure System;” Mar. 2002; pp. 1-4; Olathe, KS USA.
Grundfos; “Grundfos SmartFlo SQE Constant Pressure System;” Mar. 2003; pp. 1-2; USA.
Grundfos; “CU301 Installation & Operating Instructions;” Sep. 2005; pp. 1-30; Olathe, KS USA.
ITT Corporation; “Goulds Pumps Balanced Flow Submersible Pump Controller;” Jul. 2007; pp. 1-12.
ITT Corporation; “Goulds Pumps Balanced Flow;” Jul. 2006; pp. 1-8.
ITT Corporation; “Goulds Pumps Balanced Flow Constant Pressure Controller for 2 HP Submersible Pumps;” Jun. 2005; pp. 1-4 USA.
ITT Corporation; “Goulds Pumps Balanced Flow Constant Pressure Controller for 3 HP Submersible Pumps;” Jun. 2005; pp. 1-4; USA.
Franklin Electric; Constant Pressure in Just the Right Size; Aug. 2006; pp. 1-4; Bluffton, IN USA.
Franklin Electric; “Franklin Application Installation Data;” vol. 21, No. 5, Sep./Oct. 2003; pp. 1-2; www.franklin-electric.com.
Franklin Electric; “Monodrive MonodriveXT Single-Phase Constant Pressure;” Sep. 2008; pp. 1-2; Bluffton, IN USA.
Grundfos Pumps Corporation; “The New Standard in Submersible Pumps;” Brochure; pp. 1-8; Jun. 1999; Fresno, CA USA.
Grundfos Pumps Corporation; “Grundfos SQ/SQE Data Book;” pp. 1-39; Jun. 1999; Fresno, CA USA.
Goulds Pumps; “Balanced Flow System Brochure;” pp. 1-4; 2001.
Goulds Pumps; “Balanced Flow Submersible System Installation, Operation & Trouble-Shooting Manual;” pp. 1-9; 2000; USA.
Goulds Pumps; “Balanced Flow System Variable Speed Submersible Pump” Specification Sheet; pp. 1-2; Jan. 2000; USA.
Goulds Pumps; Advertisement from “Pumps & Systems Magazine;” Jan. 2002; Seneca Falls, NY.
Goulds Pumps; “Hydro-Pro Water System Tank Installation, Operation & Maintenance Instructions;” pp. 1-30; Mar. 31, 2001; Seneca Falls, NY USA.
Goulds Pumps; “Pumpsmart Control Solutions” Advertisement from Industrial Equipment News; Aug. 2002; New York, NY USA.
Goulds Pumps; “Model BFSS List Price Sheet;” Feb. 5, 2001.
Goulds Pumps; “Balanced Flow System Model BFSS Variable Speed Submersible Pump System” Brochure; pp. 1-4; Jan. 2001; USA.
Goulds Pumps; “Balanced Flow System Model BFSS Variable Speed Submersible Pump” Brochure; pp. 1-3; Jan. 2000; USA.
Amtrol Inc.; “AMTROL Unearths the Facts About Variable Speed Pumps and Constant Pressure Valves;” pp. 1-5; Aug. 2002; West Warwick, RI USA.
Franklin Electric; “CP Water-Subdrive 75 Constant Pressure Controller” Product Data Sheet; May 2001; Bluffton, In USA.
Franklin Electric; “Franklin Aid, Subdrive 75: You Made It Better;” vol. 20, No. 1; pp. 1-2; Jan./Feb. 2002; www.franklin-electric.com.
Email Regarding Grundfos Price Increases/SQ/SQE Curves; pp. 1-7; Dec. 19, 2001.
F.E. Myers; “Featured Product: F.E. Myers Introducts Revolutionary Constant Pressure Water System;” pp. 1-8; Jun. 28, 2000; Ashland, OH USA.
“Water Pressure Problems” Published Article; The American Well Owner; No. 2, Jul. 2000.
“Understanding Constant Pressure Control;” pp. 1-3; Nov. 1, 1999.
“Constant Pressure is the Name of the Game;” Published Article from National Driller; Mar. 2001.
Danfoss; “VLT8000 Aqua Instruction Manual;” Apr. 16, 2004; pp. 1-71.
“Product Focus—New AC Drive Series Targets Water, Wastewater Applications;” WaterWorld Articles; Jul. 2002; pp. 1-2.
Pentair; “Pentair IntelliTouch Operating Manual;” May 22, 2003; pp. 1-60.
Pentair; “Pentair RS-485 Pool Controller Adapter” Published Advertisement; Mar. 22, 2002; pp. 1-2.
Compool; “Compool CP3800 Pool-Spa Control System Installation and Operating Instructions;” Nov. 7, 1997; pp. 1-45.
Hayward; “Hayward Pro-Series High-Rate Sand Filter Owner's Guide;” 2002; pp. 1-4.
Danfoss; “Danfoss VLT 6000 Series Adjustable Frequency Drive Installation, Operation and Maintenance Manual;” Mar. 2000; pp. 1-118.
Related Publications (1)
Number Date Country
20110076156 A1 Mar 2011 US
Continuations (1)
Number Date Country
Parent 11609101 Dec 2006 US
Child 12958228 US
Continuation in Parts (2)
Number Date Country
Parent 11286888 Nov 2005 US
Child 11609101 US
Parent 10926513 Aug 2004 US
Child 11286888 US