The present invention relates to a current switch for monitoring a current level in an electrical circuit and enabling an alarm if the current level is abnormal and, more particularly, to a current switch that is automatically calibrated to the current level of a circuit when it is installed in the circuit.
Many industrial and commercial environments utilize large numbers of devices that are electrically powered. The operation of these devices, for example fans, pumps, compressors and heaters, can be important to the protection of valuable property and successful completion of processes that may involve costly or hazardous equipment, operations or materials. These devices may be stand-alone devices controlled by a local controller, but are often widely dispersed components of an integrated and, commonly, automated system that are monitored and operated by a remotely located controller or building management computer. The operation of a device or load is commonly monitored by a current sensor that is electromagnetically coupled to a cable supplying electrical power to the load. The current sensor outputs a signal that is representative of the level of current flowing in the cable and, if the current changes significantly, an alarm signal is transmitted to the controller which may display a warning or an advisory signal on a control panel for a human operator and/or selectively enable or disable power to the load and/or to other load(s) that may be effected by a malfunction of the monitored load.
Holce et al., U.S. Pat. No. 5,808,846, incorporated herein by reference, disclose a protection device comprising a combination current sensor for monitoring current in a cable supplying power to a load and a relay controlling the operation of the load in response to a signal from a remotely located control panel. The protection device includes a sensing transformer comprising a wire wound core that encircles the power cable. A changing current in the power cable produces a varying electro-magnetic field around the cable which, in turn, induces a magnetic flux in the core of the sensing transformer. The magnetic flux in the core induces a voltage in the wire windings that is representative of the current flowing in the power cable. Thus, the power cable is the primary winding and the wire winding is the secondary winding of the sensing transformer. The wire winding is electrically connected to an input circuit that converts the voltage signal received from the secondary winding of the sensing transformer to an output signal representative of the current flowing in the power cable. The output signal is transmitted to a control panel and analyzed to determine if the controlled device is to be disabled or enabled. The control panel transmits an appropriate signal to a relay or switch circuit, typically comprising a triac or relay, which responds to the signal from the control panel by shorting or isolating electrical terminals in series with the controlled load.
While electric loads, such as motors, are often operated with electric power from sources that have a constant frequency, for example 50 or 60 hertz (Hz.) for the U.S. electrical distribution grid, variable frequency drives are, increasingly, being used to supply power to AC motors and other loads in residential, industrial and commercial systems. The speed of the motor can be varied by varying the frequency of the output of the variable frequency drive enabling improved control over the fan, pump or other mechanical load powered by the motor and an increase in system energy efficiency. However, both the frequency and the voltage of the variable frequency drive's output vary producing a substantial variation in the current to the motor. False alarms are common when a current switch with a single alarm set point current is used in combination with a variable frequency drive.
Cota et al., U.S. Pat. No. 5,705,989, incorporated herein by reference, disclose a current monitor for a load connected to a variable frequency drive. The current monitor comprises a measuring system with a sensor, comprising a current transformer, linked with a power cable supplying power to an electrical load, such as a motor. The measuring circuit includes a plurality of circuit models each comprising a frequency band, a range of frequencies, and a respective reference voltage or current. In the operating mode, the frequency of the signal in the power cable is sensed by a frequency counter and a frequency band selector determines the stored reference power cable voltage or current that corresponds to the frequency band that includes the frequency of the alternating current detected in the power cable. The measuring circuit compares the selected reference voltage or current to the actual voltage or current detected in the power cable by the sensor to determine if an alarm condition exists. By correlating the frequency of the power cable signal with the magnitude of the power cable current or voltage an abnormal current warranting an alarm can be determined accurately. In a preferred embodiment, the measuring circuit automatically learns an amplitude of the reference voltage or current for each of the different frequency bands when a reset control is activated or upon the expiration of an updating interval. Automatically updating the reference voltages or currents for each frequency band enables the measuring system to adapt to a dynamic electrical system.
However, when a system is initially installed or a new current sensor is added to an existing system, the operating range of the current in the power cable must be determined and the sensor calibrated for the expected range of currents. Calibrating large numbers of widely dispersed current sensors or even one sensor that is remotely located from the controller can be time consuming and tedious. What is desired, therefore, is a current sensor that automatically calibrates itself when installed in an electrical circuit.
Referring in detail to the drawings where similar parts are identified by like reference numerals and referring more particularly to
Referring to
When a new current switch is installed, for example as a replacement or as one of a plurality of current switches for a new electrical distribution and control system, the current switch typically must be calibrated for the operating current range of the specific portion of the system that is to be monitored by the switch. The process of determining the expected range of the operating currents in a particular portion of the circuit to be monitored by the current switch and manually calibrating one or more current switches can be lengthy and tedious because the system's power supply, motors or other loads to be monitored and, as a consequence, the current switches, may be remote from the controller and may be dispersed throughout a large area. The present inventors concluded that a current switch that automatically calibrates itself when installed in an electrical circuit could substantially reduce the time and cost of installing and maintaining an electrical distribution and control system.
Referring to
Referring to
The current sensor typically comprises a current transformer 202 which is, preferably, a wire wrapped toroidal core surrounding a power cable that connects the power source to the load. The power cable serves as the primary winding of the transformer and the wire winding of the core as the secondary winding of the transformer. The toroidal core may be an iron core or an air core (a non-magnetically permeable material). A suitable core is disclosed in U.S. Pat. No. 5,502,374, assigned to the same assignee and incorporated herein by reference. The alternating current in the power cable produces an output voltage signal at the terminals 208 and 210 of the current transformer having a frequency corresponding to the frequency of the alternating current in the power cable and a magnitude that is related to the magnitude of the current flowing in the cable.
To determine the frequency of the alternating current in the power cable, the number of repetitions of a cyclically repeating feature of the AC signal, such as a rising edge, are counted over a specific time interval. Variable frequency drives modulate a carrier signal, generally around 2000 Hz, to produce relatively low frequency output signals, typically 0 to 100 Hz, to operate the motor. Modulation of the carrier signal generates significant noise and other stray signals that could interfere with accurate sensing of the primary drive signal to the motor. In addition, the current transformer generates harmonics of the drive signal; for example, a 60 Hz drive signal would generate harmonics at 120 Hz, 180 Hz, 240 Hz, etc. To remove the stray signals, noise, and harmonics and to obtain a signal representative of only the primary drive signal, the AC signal at the terminals of the current transformer is filtered by a low pass filter 212, comprising a resistor 214 and a capacitor 216. A diode 218 clamps the amplitude of the AC voltage signal to an amplitude suitable for input to the microcontroller and a capacitor 220 reduces ripples in the AC input to the microcontroller.
The filtered AC signal (Vfreq) from the current transformer is conducted to the microcontroller 204 which includes a counter that can be triggered by a clock signal. The counter counts cycle distinguishing features, for example a rising edge, of the AC signal until the counter receives the next clock signal. The counter is reset to zero upon receiving each clock signal and the number of rising edges detected between successive clock signals is stored. The total number of rising edges counted during a one second interval is the frequency of the alternating current in the power cable. Alternatively, both the rising and falling edges may be counted to determine the frequency or other cycle distinguishing features such as zero crossings, peak amplitudes, etc. might be used to determine the frequency.
A rectifier 222, also connected to the terminals of the current transformer, rectifies the output voltage signal from the terminals to produce a DC output signal at the rectifier's output terminals 224, 226. The DC signal is substantially proportional to the magnitude of the current flowing in the power cable and, following differential amplification by an operational amplifier (op amp) 228, is the signal sampled by the microcontroller to determine the magnitude of the current flowing in the power cable.
A resonating capacitor 230, also connected to the output terminals of the current transformer, is selected so that it resonates at an operating frequency of the alternating current in the power cable. The resonating capacitor increases the amplitude of the voltage of the output signal of the current transformer at frequencies near the resonate frequency of the circuit comprising the resonate capacitor and the coil of the current transformer. The resonance produces little effect at higher power levels but at low current levels distorts the waveform sufficiently to increase the root mean square (RMS) value of the voltage signal and provide sufficient supply voltage (Vcc) for the operation of the microcontroller when the current level in the power cable is low.
Alternatively, referring to
A filter capacitor 232, connected between the output terminals of the rectifier, filters ripples in the rectifier's output signal induced by fluctuations of the current in the power cable. A diode clamp 234, in parallel with the filter capacitor, limits the magnitude of the output voltage signal from the rectifier to protect the op amp from over voltage. Another diode 236, biased by a voltage divider 238 shunts excess current to ground to prevent excessive voltage at the voltage terminals of the op-amp. A capacitor 239 reduces noise in the supply voltage (Vcc) for the microcontroller.
The output of the op amp 228 is an analog signal having amplitude, varying between 0 volts and 3 volts, which is substantially proportional to the magnitude of the current in the power cable. The output of the op amp is connected to a general purpose input-output pin of the microcontroller which provides sampling of the analog signal and analog-to-digital (A/D) conversion. The microcontroller determines the operating current (Io) in the power cable from the magnitudes of the voltage samples and compares the operating current to the upper and lower alarm and re-entry current values for the frequency band that includes the detected frequency of the current in the power cable to determine whether the operation of the monitored circuit is within normal current limits.
Outputs of the microcontroller control the operation of a pair of light emitting diodes (LED). When the power cable current is within normal limits, a signal from the microcontroller illuminates a green LED 52 and when an alarm condition is indicated, another signal from the microcontroller causes a red LED 54 to illuminate. During the interval of automatic calibration of the current switch, the microcontroller's signals periodically alternate illumination of the red and green LEDs.
The current switch also includes terminals 38 and 40 which may be connected to a remote device, such as a system controller, to signal normal or abnormal operation of the monitored circuit. The terminals are communicatively connected by transistors 240 and 242. When a signal from the microcontroller is applied to the gates of the transistors, the terminals are conductively connected and when the gate signal is removed the connection between the terminals is opened. A conductively open or a conductively closed condition of the terminals can be selected to signal normal operation by selecting one of the output signal states of the microcontroller. When an alarm condition is initiated, the conductive state of the terminals can be toggled by outputting the second state of the microcontroller signal.
Activation of a reset control 244, typically a push button switch, enables the values of the activation currents stored in the microcontroller to be reset to a default value.
Referring to
When the current switch is manufactured, a default value, preferably a value outside of the operating range for the activation current(s) of the current switch, is stored in the memory of the microcontroller for the value(s) of the activation current that is stored for each of the frequency bands. Similarly, when the reset button is actuated 608, the value(s) stored as the activation current for each frequency band will be replaced by the default value. The microcontroller determines if the activation current value(s) stored in the memory for the appropriate frequency band is the default value 610. If the stored value of the current is not the default value, the upper (IALARM-HI) and the lower (IALARM-LO) alarm currents and the upper (IRE-ENTRY-HI) and the lower (IRE-ENTRY-LO) re-entry currents are determined for the appropriate frequency band 614. In a preferred embodiment, the alarm and re-entry currents are functions of the nominal current for the circuit at the detected frequency and can be calculated from the nominal current which is the stored value of the activation current 612. However, other values could be selected for the alarm and re-entry currents.
The microcontroller determines if the operating current is greater than the upper alarm current 616 indicating a possible electrical short or high friction. If not, the microcontroller determines if the operating current is less than the lower alarm current 618, indicating a possible drive belt or coupling failure. If the operating current is within the upper and lower alarm current limits, the microcontroller determines if the alarm has been activated 620. If not, the current switch indicates normal operation by illuminating the green LED and setting the switch contacts to the normal conductive state 622 and the process is repeated.
If, however, the operating current is greater than the appropriate upper alarm current 616 or less than the lower alarm current 618, the microcontroller initiates an internal delay timer 621 and continues to monitor the power cable current. In a preferred embodiment, a one second delay between the detection of a current level warranting an alarm and the initiation of the alarm avoids false alarms caused by momentary current excursions. If the over or under current condition continues for a period longer than the preset delay, the microcontroller changes the conductive state of the current switch contacts and illuminates a red LED to indicate an alarm state 622.
Once an alarm condition has been initiated, it will continue unless the current returns to a level less than the upper re-entry current and greater than the lower re-entry current. If the power cable current is less than the upper alarm current 616 and greater than the lower alarm current 618, the microcontroller determines if the alarm has been activated 620. If so, the magnitude of the power cable current is compared to the upper re-entry current 624 and the lower re-entry current 626. If the power cable current is still greater than the upper re-entry current or less than the lower re-entry current, the alarm is maintained. If, however, the power cable current is less than the upper re-entry current and greater than the lower re-entry current, the microcontroller determines if the power cable current has been at this level for a period of delay 628 before disabling the alarm 630, restoring the current switch terminals to the normal conductive state and illuminating the green LED 622. In a preferred embodiment, a return to the NORMAL state is delayed for 30 seconds to increase confidence that the current draw has returned to normal levels and avoid repeated alarms due to momentary or short lived current fluctuations.
If the current switch is new or if the reset button has been activated, the value(s) of the activation current stored in the memory of the microcontroller will be set to the default value. When the microcontroller determines that the stored value of the activation current corresponding to the frequency band that includes the frequency of the power cable current is the default value 610, the current switch initiates a calibration mode and alternately illuminates the green LED and the red LED to provide a visual indication to a human attendant that the current switch is operating in the calibration mode 632.
A counter is initialized to count the samples taken of the output of the op amp during the calibration mode interval 634. In a preferred embodiment, the calibration mode extends for an interval of 30 seconds from initiation to allow the current to stabilize around a nominal current and avoid transient and in-rush current effects that accompany start up and speed change under load. However, the calibration mode interval can be extended or reduced as desired. As succeeding samples are periodically taken, the magnitudes of the samples are accumulated by the microcontroller 636 and the sample counter is decremented 638. When the number samples of equals the number of sample periods in the calibration interval (n=Nc) 640, the microcontroller determines the appropriate upper (IALARM-HI) and lower (IALARM-LO) alarm currents and the upper (IRE-ENTRY-HI) and the lower (IALARM-LO) currents 614. In the preferred embodiment, the upper and lower alarm currents and the upper and lower re-entry currents are a function of the nominal current draw for the respective frequency band. For example, the alarm currents are respectively 20% greater and 20% less than the nominal operating current for the frequency band and the re-entry currents are 15% greater and 15% less, respectively, than the nominal operating current. In the preferred embodiment, the nominal operating current 612 is determined for the frequency band by averaging the magnitudes of the current samples obtained during the calibration interval and is stored as the activation current for the frequency band that includes the frequency of the power cable current. However, the nominal operating current could be determined by other methods such as the average or mean sample value for a portion of the calibration interval or after a time delay to reduce the effects of transient currents resulting from changes in the power cable current. In the preferred embodiment, the nominal operating current is stored as the activation current for the correlated frequency band and the respective upper and lower alarm and upper and lower re-entry currents are calculated from the nominal operating current. However, to reduce calculation requirements, the upper and lower alarm currents and the upper and lower re-entry currents can be stored as activation currents for a frequency band.
Installation cost is reduced by automatic calibration of the current switch to the current levels of experienced during a period of operation of the monitored circuit.
The detailed description, above, sets forth numerous specific details to provide a thorough understanding of the present invention. However, those skilled in the art will appreciate that the present invention may be practiced without these specific details. In other instances, well known methods, procedures, components, and circuitry have not been described in detail to avoid obscuring the present invention.
All the references cited herein are incorporated by reference.
The terms and expressions that have been employed in the foregoing specification are used as terms of description and not of limitation, and there is no intention, in the use of such terms and expressions, of excluding equivalents of the features shown and described or portions thereof, it being recognized that the scope of the invention is defined and limited only by the claims that follow.
This application claims the benefit of U.S. Provisional App. No. 60/993,312, filed Sep. 10, 2007.
| Number | Name | Date | Kind |
|---|---|---|---|
| 1100171 | Brown | Jun 1914 | A |
| 1455263 | Oberfell | May 1923 | A |
| 1569723 | Dickinson | Jan 1926 | A |
| 1800474 | Scherer | Apr 1931 | A |
| 1830541 | Harris | Nov 1931 | A |
| 1871710 | Lenehan | Aug 1932 | A |
| 2059594 | Massa, Jr. | Nov 1936 | A |
| 2411405 | Yuhas | Nov 1946 | A |
| 2412782 | Palmer | Dec 1946 | A |
| 2428613 | Boyajian | Oct 1947 | A |
| 2428784 | Cole | Oct 1947 | A |
| 2512070 | Nelsen et al. | Jun 1950 | A |
| 2663190 | Ilgenfritz | Dec 1953 | A |
| 2746295 | Lubkin | May 1956 | A |
| 2802182 | Godshalk et al. | Aug 1957 | A |
| 2852739 | Hansen | Sep 1958 | A |
| 2943488 | Strobel et al. | Jul 1960 | A |
| 3190122 | Edwards | Jun 1965 | A |
| 3243674 | Ebert | Mar 1966 | A |
| 3287974 | Ciemonchowski | Nov 1966 | A |
| 3374434 | Perry | Mar 1968 | A |
| 3493760 | Hoadley | Feb 1970 | A |
| 3512045 | Sanger et al. | May 1970 | A |
| 3584294 | Siwko | Jun 1971 | A |
| 3593078 | Domshy et al. | Jul 1971 | A |
| 3696288 | Carman | Oct 1972 | A |
| 3728705 | Atkins | Apr 1973 | A |
| 3769548 | Pardue | Oct 1973 | A |
| 3772625 | Raupach | Nov 1973 | A |
| 3861411 | Mitchell et al. | Jan 1975 | A |
| 3955701 | Fisch | May 1976 | A |
| 3976924 | Vanjani | Aug 1976 | A |
| 4001647 | Klein et al. | Jan 1977 | A |
| 4001758 | Esper et al. | Jan 1977 | A |
| 4007401 | Kimmel | Feb 1977 | A |
| 4030058 | Riffe et al. | Jun 1977 | A |
| 4048605 | McCollum | Sep 1977 | A |
| 4096436 | Cook et al. | Jun 1978 | A |
| 4107519 | Bicek | Aug 1978 | A |
| D249883 | Collins | Oct 1978 | S |
| 4124030 | Roberts | Nov 1978 | A |
| 4151578 | Bell | Apr 1979 | A |
| 4158217 | Bell | Jun 1979 | A |
| 4158810 | Leskovar | Jun 1979 | A |
| 4177496 | Bell et al. | Dec 1979 | A |
| 4198595 | Milkovic | Apr 1980 | A |
| 4207604 | Bell | Jun 1980 | A |
| 4215278 | Barbier et al. | Jul 1980 | A |
| 4227419 | Park | Oct 1980 | A |
| 4241237 | Paraskevakos et al. | Dec 1980 | A |
| 4249264 | Crochet et al. | Feb 1981 | A |
| 4250449 | Shum | Feb 1981 | A |
| 4253336 | Pietzuch | Mar 1981 | A |
| 4258348 | Belfer et al. | Mar 1981 | A |
| 4297741 | Howell | Oct 1981 | A |
| 4328903 | Baars | May 1982 | A |
| 4354155 | Speidel et al. | Oct 1982 | A |
| 4359672 | Hart | Nov 1982 | A |
| 4362580 | Kane et al. | Dec 1982 | A |
| 4363061 | Vaerewyck et al. | Dec 1982 | A |
| 4371814 | Hannas | Feb 1983 | A |
| 4373392 | Nagamoto | Feb 1983 | A |
| 4384289 | Stillwell et al. | May 1983 | A |
| 4386280 | Ricaud et al. | May 1983 | A |
| 4388668 | Bell et al. | Jun 1983 | A |
| 4393714 | Schmidt | Jul 1983 | A |
| 4398426 | Park et al. | Aug 1983 | A |
| 4408175 | Nelson et al. | Oct 1983 | A |
| 4413193 | Crockett | Nov 1983 | A |
| 4413230 | Miller | Nov 1983 | A |
| 4426673 | Bell et al. | Jan 1984 | A |
| 4432238 | Tward | Feb 1984 | A |
| 4491790 | Miller | Jan 1985 | A |
| 4495463 | Milkovic | Jan 1985 | A |
| 4506199 | Asche | Mar 1985 | A |
| 4558310 | McAllise | Dec 1985 | A |
| 4558595 | Kompelien | Dec 1985 | A |
| 4574266 | Valentine | Mar 1986 | A |
| 4605883 | Cockroft | Aug 1986 | A |
| 4621532 | Takagi et al. | Nov 1986 | A |
| 4637020 | Schinabeck | Jan 1987 | A |
| 4660407 | Takami et al. | Apr 1987 | A |
| 4709339 | Fernandes | Nov 1987 | A |
| 4739229 | Heiler, Jr. | Apr 1988 | A |
| 4746809 | Coleman et al. | May 1988 | A |
| 4754365 | Kazahaya | Jun 1988 | A |
| 4757416 | Wilkerson | Jul 1988 | A |
| 4758962 | Fernandes | Jul 1988 | A |
| 4783748 | Swarztrauber et al. | Nov 1988 | A |
| 4794327 | Fernandes | Dec 1988 | A |
| 4808910 | Kessi | Feb 1989 | A |
| D301331 | Rhodin | May 1989 | S |
| 4851803 | Hahn | Jul 1989 | A |
| 4855671 | Fernandes | Aug 1989 | A |
| 4874904 | DeSanti | Oct 1989 | A |
| 4885655 | Springer et al. | Dec 1989 | A |
| 4887018 | Libert | Dec 1989 | A |
| 4890318 | Crane et al. | Dec 1989 | A |
| 4926105 | Mischenko et al. | May 1990 | A |
| 4939451 | Baran et al. | Jul 1990 | A |
| 4944187 | Frick et al. | Jul 1990 | A |
| 4956588 | Ming | Sep 1990 | A |
| 4970476 | Kitagawa | Nov 1990 | A |
| 4972167 | Fujioka | Nov 1990 | A |
| 4991050 | Heberlein, Jr. et al. | Feb 1991 | A |
| 4992709 | Griffin | Feb 1991 | A |
| 4999575 | Germer | Mar 1991 | A |
| 5003278 | May | Mar 1991 | A |
| 5014908 | Cox | May 1991 | A |
| 5039970 | Cox | Aug 1991 | A |
| 5051601 | Atobe et al. | Sep 1991 | A |
| 5066904 | Bullock | Nov 1991 | A |
| 5079510 | Komatsu et al. | Jan 1992 | A |
| D323815 | Bouteiller | Feb 1992 | S |
| 5099193 | Moseley et al. | Mar 1992 | A |
| 5122735 | Porter et al. | Jun 1992 | A |
| 5148348 | White | Sep 1992 | A |
| 5196784 | Estes, Jr. | Mar 1993 | A |
| D335488 | Suzuki et al. | May 1993 | S |
| 5223790 | Baran et al. | Jun 1993 | A |
| 5267122 | Glover et al. | Nov 1993 | A |
| 5296819 | Kuroiwa et al. | Mar 1994 | A |
| 5311138 | Ott et al. | May 1994 | A |
| 5317274 | Nakagawa et al. | May 1994 | A |
| 5323256 | Banks | Jun 1994 | A |
| 5337206 | Kadah et al. | Aug 1994 | A |
| 5359273 | Fluckiger | Oct 1994 | A |
| D354945 | Dellavecchia et al. | Jan 1995 | S |
| 5385060 | Wang | Jan 1995 | A |
| 5391983 | Lusignan et al. | Feb 1995 | A |
| 5397970 | Rowlette et al. | Mar 1995 | A |
| 5410920 | Westwick | May 1995 | A |
| 5426360 | Maraio et al. | Jun 1995 | A |
| 5430438 | Joos et al. | Jul 1995 | A |
| 5444183 | Gehrs et al. | Aug 1995 | A |
| 5450765 | Stover | Sep 1995 | A |
| 5467012 | Nystrom | Nov 1995 | A |
| 5471359 | Simpson et al. | Nov 1995 | A |
| 5473234 | Richardson | Dec 1995 | A |
| 5502374 | Cota | Mar 1996 | A |
| 5548209 | Lusignan et al. | Aug 1996 | A |
| 5557669 | Perry et al. | Sep 1996 | A |
| 5563506 | Fielden et al. | Oct 1996 | A |
| 5572073 | Burgess et al. | Nov 1996 | A |
| 5578927 | Perelle | Nov 1996 | A |
| 5592989 | Lynn et al. | Jan 1997 | A |
| 5596652 | Piatek et al. | Jan 1997 | A |
| 5604315 | Briefer et al. | Feb 1997 | A |
| 5612499 | Andrew et al. | Mar 1997 | A |
| 5677476 | McCarthy et al. | Oct 1997 | A |
| 5705989 | Cota et al. | Jan 1998 | A |
| 5712558 | Saint-Cyr et al. | Jan 1998 | A |
| 5753983 | Dickie et al. | May 1998 | A |
| 5767659 | Farley | Jun 1998 | A |
| 5784249 | Pouliot | Jul 1998 | A |
| 5808846 | Holce et al. | Sep 1998 | A |
| 5844138 | Cota | Dec 1998 | A |
| 5861683 | Engel et al. | Jan 1999 | A |
| 5880677 | Lestician | Mar 1999 | A |
| 5880918 | Horbelt et al. | Mar 1999 | A |
| 5905439 | McIntyre | May 1999 | A |
| 5909087 | Bryde et al. | Jun 1999 | A |
| 5920190 | Peterson et al. | Jul 1999 | A |
| 5920191 | Maniero et al. | Jul 1999 | A |
| 5922939 | Cota | Jul 1999 | A |
| 5995911 | Hart | Nov 1999 | A |
| 6005760 | Holce et al. | Dec 1999 | A |
| D419964 | Holce et al. | Feb 2000 | S |
| 6020702 | Farr | Feb 2000 | A |
| 6029524 | Klauder et al. | Feb 2000 | A |
| 6044430 | MacDonald | Mar 2000 | A |
| 6046550 | Ference et al. | Apr 2000 | A |
| 6064192 | Redmyer | May 2000 | A |
| 6091023 | O'Donnell | Jul 2000 | A |
| 6122972 | Crider | Sep 2000 | A |
| 6124791 | Wolf | Sep 2000 | A |
| D431534 | Holce et al. | Oct 2000 | S |
| 6133709 | Puchianu | Oct 2000 | A |
| 6133723 | Feight | Oct 2000 | A |
| 6137418 | Zuercher et al. | Oct 2000 | A |
| 6146109 | Davis et al. | Nov 2000 | A |
| 6219216 | Holce et al. | Apr 2001 | B1 |
| 6236949 | Hart | May 2001 | B1 |
| 6269317 | Schachner et al. | Jul 2001 | B1 |
| 6308140 | Dowling et al. | Oct 2001 | B1 |
| 6330516 | Kammeter | Dec 2001 | B1 |
| 6331821 | Holce et al. | Dec 2001 | B1 |
| 6344951 | Sato et al. | Feb 2002 | B1 |
| 6351206 | Schweiger et al. | Feb 2002 | B1 |
| 6373238 | Lewis et al. | Apr 2002 | B2 |
| 6380696 | Sembhi et al. | Apr 2002 | B1 |
| 6384946 | Pitsch et al. | May 2002 | B1 |
| 6404166 | Puchianu | Jun 2002 | B1 |
| 6414241 | O'Donnell | Jul 2002 | B1 |
| D466078 | Bowman | Nov 2002 | S |
| 6496378 | Holce et al. | Dec 2002 | B2 |
| 6504357 | Hemminger et al. | Jan 2003 | B1 |
| 6504695 | Holce et al. | Jan 2003 | B1 |
| 6549859 | Ward | Apr 2003 | B1 |
| 6591482 | Fleege et al. | Jul 2003 | B1 |
| D478313 | Bowman | Aug 2003 | S |
| 6615147 | Jonker et al. | Sep 2003 | B1 |
| 6636028 | Lavoie et al. | Oct 2003 | B2 |
| 6657424 | Voisine et al. | Dec 2003 | B1 |
| 6724600 | Holce et al. | Apr 2004 | B2 |
| 6737854 | Bruno et al. | May 2004 | B2 |
| 6756776 | Perkinson et al. | Jun 2004 | B2 |
| 6774803 | Tiffin | Aug 2004 | B1 |
| 6809509 | Bruno et al. | Oct 2004 | B2 |
| 6815942 | Randall et al. | Nov 2004 | B2 |
| 6825771 | Bruno et al. | Nov 2004 | B2 |
| 6856515 | Holce et al. | Feb 2005 | B2 |
| 6861683 | Rissing et al. | Mar 2005 | B2 |
| 6871827 | Petak et al. | Mar 2005 | B2 |
| 6888712 | Holce et al. | May 2005 | B2 |
| 6889271 | Germer et al. | May 2005 | B1 |
| 6937003 | Bowman et al. | Aug 2005 | B2 |
| 6950292 | Holce et al. | Sep 2005 | B2 |
| 6988043 | Randall | Jan 2006 | B1 |
| 7006934 | Jonker et al. | Feb 2006 | B2 |
| 7053497 | Sodemann et al. | May 2006 | B2 |
| 7157899 | Bruno | Jan 2007 | B2 |
| 7161345 | Bruno | Jan 2007 | B2 |
| 7193428 | Baron et al. | Mar 2007 | B1 |
| 7212930 | Bruno | May 2007 | B2 |
| 7221145 | Bowman et al. | May 2007 | B2 |
| 7230414 | Bruno | Jun 2007 | B2 |
| 7239810 | Seely et al. | Jul 2007 | B2 |
| 7310049 | Bowman | Dec 2007 | B2 |
| 7312686 | Bruno | Dec 2007 | B2 |
| 7330022 | Bowman et al. | Feb 2008 | B2 |
| 7333345 | Holce et al. | Feb 2008 | B2 |
| 7352287 | Rupert | Apr 2008 | B2 |
| 7359809 | Bruno | Apr 2008 | B2 |
| 7447603 | Bruno | Nov 2008 | B2 |
| 20040227503 | Bowman et al. | Nov 2004 | A1 |
| 20050240362 | Randall | Oct 2005 | A1 |
| 20060085144 | Slota et al. | Apr 2006 | A1 |
| 20060164096 | Kwon | Jul 2006 | A1 |
| 20090115400 | Hunter | May 2009 | A1 |
| 20090295370 | Parker et al. | Dec 2009 | A1 |
| Number | Date | Country |
|---|---|---|
| 1531334 | May 2005 | EP |
| 5083776 | Apr 1993 | JP |
| Number | Date | Country | |
|---|---|---|---|
| 20090115620 A1 | May 2009 | US |
| Number | Date | Country | |
|---|---|---|---|
| 60993312 | Sep 2007 | US |