The present disclosure relates to systems for control of an appliance incorporating a flame, and more particularly relates to valve control of a fuel to such an appliance.
The statements in this section merely provide background information related to the present disclosure and may not constitute prior art.
Typically, appliances that utilize a fuel such as natural gas (i.e., methane), propane, or similar gaseous hydrocarbons, supply a burner with a pressurized gas input regulated via a main valve. Ordinarily, the burner generates a substantial amount of heat such that the valve supplies fuel for operation of the burner only as needed. Yet, there are occasions when it is desirable to adjust the outlet pressure regulation of the burner supply valve of a gas appliance. These include changes in mode (i.e., changes in the desired intensity of the flame) and changes in the fuel type (e.g., a change from propane to methane). Published International Patent Application PCT/US 1999/028982, published as WO2001/031257 May 3, 2001, to Bauman, suggests a modulating solenoid approach typically used to vary valve positioning of a gas appliance. While such a valve approach has been used for some time with satisfactory results, the introduction of an entirely new valve design is likely to introduce severe regulatory difficulties. Proof of safe operation of a new approach to valve design would require substantial development costs and testing.
Further areas of applicability will become apparent from the description provided herein. It should be understood that the description and specific examples are intended for purposes of illustration only and are not intended to limit the scope of the present disclosure.
According to one aspect of the present disclosure, one or more embodiments of a stepper-motor controlled gas valve control are provided. In one embodiment, the stepper-motor regulated gas valve control is adaptable for a number of different fuel-fired furnace designs, and includes a main diaphragm in a main diaphragm chamber that controllably displaces a valve relative to a valve opening. The main diaphragm displaces the valve in response to changes in pressure in the main diaphragm chamber, to thereby permit adjustment of the flow of fuel through the valve opening. The stepper-motor regulated gas valve control further includes a servo-regulator diaphragm configured to regulate fluid flow to the main diaphragm chamber to thereby control the rate of fuel flow through the valve. A stepper motor is configured to move in a stepwise manner to displace the servo-regulator diaphragm for regulating fluid flow to the diaphragm chamber, to thereby regulate the rate of fuel flow through the valve opening. The stepper-motor regulated gas valve control includes a controller mounted on the stepper-motor regulated gas valve control, which receives an input control signal ranging from 0 to 180 milliamps, and to convert a signal value of between 0 and 180 milliamps to a proportionally corresponding reference value of between 0 and 5 volts. The controller may include a look-up table with a set of motor step values that correspond to a number of reference values between 0 and 5 volts, wherein the control circuit is configured to select a motor step value from the look up table that corresponds to the reference value obtained from the input control signal. The control responsively moves the stepper-motor in a step wise manner to the selected motor step value, to displace the servo-regulator diaphragm and thereby regulate the rate of fuel flow through the valve opening.
The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses. It should be understood that throughout the drawings, corresponding reference numerals indicate like or corresponding parts and features.
In one embodiment, a stepper-motor regulated gas valve control 100 is provided as shown in
The first embodiment accordingly provides for stepper-motor control over the extent of opening of the valve 108, to provide modulated fuel flow operation. The first embodiment of a gas valve control 100 is governed by a stepper motor 120, rather than a voice coil operator that is typically used in modulating controls for modulating the position of a valve. The typical modulating valve employing a voice coil operator is driven by a milliamp signal ranging from 0 to 180 milliamps, which causes the voice coil to move a distance that is proportional to the amount of milliamps conducted in the coil. Modulating furnaces typically have a furnace controller that determines the extent of heating operation required, and generates a milliamp signal corresponding to the desired degree of heating, to provide a corresponding degree of fuel flow. For example, a typical modulating furnace controller may generate a 180 milliamp signal where maximum heating capacity operation is desired, and may generate a 20 milliamp signal where minimum heating operation is desired. However, such a heating demand signal is not applicable to a stepper-motor operator, which is displaced based on a required number of steps.
The stepper-motor regulated gas valve control 100 preferably includes a controller or control circuit 130 configured to receive an input control signal, from which a reference value of between 0 and 5 volts is obtained. The control circuit 130 is configured to determine a select motor step value that corresponds to the obtained reference value, and to move the stepper-motor 120 a number of steps corresponding to the selected motor step value, which displaces the servo-regulator diaphragm 110 and thereby controls the rate of fuel flow through the valve opening 108.
The first embodiment of a stepper-motor regulated gas valve control 100 is preferably configured to employ a control circuit 130 as shown in
The control circuit 130 includes a microprocessor 136 in communication with a current to voltage converter circuitry 134 that converts a milliamp signal provided by a modulating furnace control 230, which signal ranges from 0 to 180 milliamps to a 0 to 5 volt (direct current) reference signal. The reference signal value is used to determine a motor step value, which is used to determine the number of steps the motor must turn or move to set the servo-regulator diaphragm 110 to the requested fuel level. The stepper motor gas valve control 100 uses the select motor step value to drive the stepper-motor 120 in a step-wise manner, to the desired stepper motor position, which causes the stepper-motor 120 to displace the servo-regulator diaphragm 110 the desired distance and thereby regulate the output of the valve. The control circuit 130 also includes a dip switch for adjusting the number of steps taken by the stepper-motor 120. The dip switch may be a linear six position dip switch 140 as depicted in
Accordingly, in the first embodiment of a stepper-motor regulated gas valve control 100, the control receives an input control signal that is a milliamp signal in the range of from 0 to 180 milliamps. The control circuit 130 is configured to convert the received signal from a value of between 0 and 180 milliamps to a corresponding reference value of between 0 and 5 volts. However, the control circuit 130 for the stepper-motor regulated gas valve control 100 may also be configured to convert a pulse width modulated signal to a 0 to 5 volt reference signal, from which a motor step value may be determined.
In the first embodiment of a stepper-motor regulated gas valve control 100, the control circuit 130 may employ a lookup table having a set of motor step values, which are used to determine the appropriate number of steps the stepper motor 120 must move. The look-up table includes a set of motor step values that correspond to a number of reference values spanning the range of between 0 and 5 volts, wherein the control circuit 130 is configured to determine an appropriate motor step amount by selecting a motor step value from the look up table that corresponds to the reference value obtained from the input control signal. This conversion and determination of a step value allows the stepper motor valve to be operated by a furnace control designed for a modulating valve having a voice-coil operated by a 180 milliamp signal.
In use, the stepper-motor regulated gas valve control 100 would be included within a fuel-fired heating system 200 that includes a burner 210 that is supplied with fuel by the stepper-motor regulated gas valve control 100, as shown in
In the above embodiment, a stepper motor gas valve control is provided in which the valve, stepper motor, and control circuit are all part of the valve product, which is designed to be retrofitted into an existing furnace having a furnace control designed for providing signals to a voice coil type modulating valve, or a pulse width modulation driven valve. In these voice coil operated valves, the milliamp signal from the existing furnace controller is converted to the number of steps required for the stepper motor driven valve to operate at the desired fuel flow rate.
It should be understood that the above stepper-motor regulated gas valve control 100 utilizes a set of motor step values that correspond to a plurality of positions of the stepper motor 120 for adjusting the regulator, which positions range between a closed no-flow position to a 100% full capacity position. The above first embodiment of a stepper-motor regulated gas valve control 100 may be employed in combination with a burner 210 that is supplied with fuel by the stepper-motor regulated gas valve control 100, and a system controller 230 in communication with the control circuit 130 for controlling the operation of the stepper-motor regulated gas valve control 100. When combined with a system controller 230, the system controller 230 may be designed to determine the number of steps for moving the stepper-motor valve when the valve is to be opened, to control the opening characteristic of the valve. More particularly, the system controller may be selectively configurable to control the movement of the stepper motor 120 to provide an opening characteristic that is a function of the valve's outlet pressure over time, as explained below.
The above first embodiment of a stepper-motor regulated gas valve 100 is capable of modulating fuel flow based on a milliamp signal communicated by a modulating furnace controller that is designed to operate a typical voice coil operated valve. Accordingly, the above stepper-motor regulated gas valve control 100 is configured to replace a conventional voice-coil operated modulating valve that was originally installed in an existing modulating furnace. In addition to the above aspects, the stepper-motor regulated gas valve control 100 may also be configured to operate with Natural Gas fuel or Liquid Propane fuel as a fuel source, as explained below. The selection of Natural Gas fuel or Liquid Propane is preferably made through a jumper that is part of the control circuit panel. For example, the positioning of the jumper to select Natural Gas establishes an electrical connection of an impedance in the circuit that provides the 0 to 5 volt reference value signal, which impedance causes the reference value to remain at the lower end of the 0 to 5 volt range. The positioning of the jumper to select Liquid Propane removes the impedance from the circuit that provides the 0 to 5 volt reference value signal, which causes the reference value to be shifted towards the upper end of the 0 to 5 volt range where a greater number of “steps” would be provided. In essence, to achieve a given level of heating, the number of motor “steps” for Liquid Propane gas will be greater than the required number of motor “steps” for Natural Gas, to account for the greater density and pressure of Liquid Propane gas, as shown in
The first embodiment of a stepper motor valve control may also be configured to provide for adjustment of the valve's outlet pressure to set the valve for different altitudes. This adjustment is preferably accomplished by a setting on a dip switch. Similar to the manner of shifting the reference voltage value described above, the dip switch setting alters the control circuit to cause the reference voltage to shift within the 0 to 5 volt range, to thereby adjust the required number of motor steps up or down from a nominal value. This adjustment of the valve's outlet pressure by shifting the motor step value permits setting fuel flow for altitude to achieve a near-stoichiometric fuel to air combustion ratio. In addition to adjusting the valve flow, an orifice (not shown) at the burner is also typically changed when switching between Natural gas and Liquid Propane gas.
As shown in
In another embodiment, the linear dip switch in
In another aspect of the present disclosure, various embodiments of a stepper-motor regulated gas valve control 100 that are adaptable for a number of different fuel-fired furnaces are provided. In a second embodiment of a stepper-motor regulated gas valve control shown in
The second embodiment of a stepper-motor regulated gas valve control 100 includes a controller mounted on the stepper-motor regulated gas valve control 100 that receives an input control signal ranging from 0 to 180 milliamps. Such a signal is typically employed by voice-coil operated modulating valves. The controller is configured to convert a signal value of between 0 and 180 milliamps to a proportionally corresponding reference value of between 0 and 5 volts. The controller further includes a look-up table with a set of motor step values that correspond to a number of reference values between 0 and 5 volts. The controller is configured to select a motor step value from the look up table that corresponds to the reference value obtained from the input control signal, and to move the stepper-motor in a step wise manner to the selected motor step value, to displace the servo-regulator diaphragm and thereby regulate the rate of fuel flow through the valve opening. The set of motor step values correspond to a plurality of positions of the stepper motor for adjusting the regulator, with the plurality of positions ranging from a closed no-flow position to a full capacity position. Accordingly, the stepper motor is movable to a plurality of positions for establishing a number of outlet flow levels ranging from a flow of at least 10% capacity to 100% full-flow capacity. The controller is preferably disposed on the stepper-motor regulated gas valve, but could alternatively be incorporated within a system controller 230.
In the second embodiment, the stepper-motor regulated gas valve control 100 is employed in combination with a burner that is supplied with fuel by the stepper-motor regulated gas valve control 100, and a system controller 230 that employs the control circuit 130 for controlling the operation of the stepper-motor regulated gas valve control 100. When combined with a system controller 230, the system controller 230 may be designed to determine the number of steps for moving the stepper-motor valve when the valve is to be opened, to control the opening characteristic of the valve. More particularly, the system controller 230 may be selectively configurable to control the movement of the stepper motor 120 to provide an opening characteristic as a function of the valve's outlet pressure over time.
The system controller 230 is selectively configured such that each time the stepper-motor regulated gas valve is opened, the system controller 230 may incrementally move the stepper-motor 120 to provide an initial low pressure supply of fuel and within a short interval thereafter move the stepper motor 120 to provide an increased higher pressure supply of fuel, to thereby provide a step-opening characteristic. Alternatively, the system controller 230 may be selectively configured to such that each time the stepper-motor regulated gas valve is opened, the system controller 230 gradually moves the stepper-motor 120 from a closed no-flow position to a full-capacity supply of fuel flow over a minimum time interval of at least three seconds, to thereby provide a slow-opening characteristic. Similarly, the system controller 230 may be selectively configured such that each time the stepper-motor 120 regulated gas valve is opened the system controller 230 moves the stepper-motor 120 from a closed no-flow position to a full-capacity supply of fuel flow in less than a three second time interval, to thereby provide a fast-opening characteristic. Accordingly, by employing the stepper-motor gas valve control of the present invention, a system controller 230 may be selectively configurable by a dip switch having a setting for a step-opening characteristic, a slow-opening characteristic, and a fast-opening characteristic.
The above configurable system controller 230 would allow one stepper-motor gas valve control “SKU” to take the place of multiple step-open, slow-open, or fast-open valve types, by obtaining the opening rate and timing from the furnace or system controller 230 each time the gas valve is to be opened. The system controller 230 could provide theses parameter to the stepper motor gas valve control at the beginning of each heating cycle.
Accordingly, a valve is provided that has a stepper motor 120, for which an opening curve as a function of pressure and time can be communicated to the stepper-motor gas valve control via a furnace or system controller 230. The system controller 230 is in turn programmed by the manufacturer of the furnace at the time the system is assembled and tested. In this situation, the control circuit 130 for the stepper-motor gas valve control could be incorporated into the furnace or system controller 230, such that the gas valve only includes a stepper motor 120. Accordingly, at least one embodiment of a system controller is provided that is configured to control the operation of a stepper motor, and that is also selectively configurable to provide at least one opening profile selected from the group consisting of a step-opening profile, a slow open profile, a delayed open profile, and a fast open profile.
According to yet another aspect, various embodiments of a fuel-fired heating system comprising a stepper-motor regulated gas valve control is provided. In one embodiment of a fuel-fired heating system having a stepper-motor regulated gas valve controller, the fuel-fired system includes a burner for receiving the supply of fuel flow for combustion in a fuel-fired heating apparatus. The fuel-fired heating system further comprises a stepper motor regulated gas valve control for supplying fuel flow to the burner, which includes a main diaphragm chamber, and a main diaphragm in the main diaphragm chamber. The main diaphragm controllably displaces a valve relative to a valve opening in response to changes in pressure in the main diaphragm chamber, to thereby permit adjustment of the flow of fuel through the valve opening. The stepper motor regulated gas valve control further includes a servo-regulator diaphragm configured to regulate fluid flow to the main diaphragm chamber to thereby control the rate of fuel flow through the valve opening. The stepper motor regulated gas valve control also includes a stepper motor configured to move in a stepwise manner to displace the servo-regulator diaphragm for regulating fluid flow to the diaphragm chamber, to thereby regulate the rate of fuel flow through the valve opening. The fuel-fired heating system comprises a system controller for controlling the operation of the stepper-motor regulated gas valve control, to controllably initiate and discontinue the flow of fuel to the burner. The system controller is selectively configurable to control the movement of the stepper motor to provide an opening characteristic that is a function of the valve's outlet pressure over time. For example, the system controller may be selectively configured such that each time the stepper-motor regulated gas valve is opened, the system controller incrementally moves the stepper-motor to provide an initial low pressure supply of fuel, and within a short interval thereafter move the stepper motor to provide an increased higher pressure supply of fuel, to thereby provide a step-opening characteristic. Alternatively, the system controller may be selectively configured such that each time the stepper-motor regulated gas valve is opened, the system controller gradually moves the stepper-motor from a closed no-flow position to a full-capacity supply of fuel flow over a minimum time interval of at least three seconds, to thereby provide a slow-opening characteristic. Similarly, the system controller may be selectively configured such that each time the stepper-motor regulated gas valve is opened, the system controller moves the stepper-motor from a closed no-flow position to a full-capacity supply of fuel flow in less than three seconds time, to thereby provide a fast-opening characteristic.
Number | Name | Date | Kind |
---|---|---|---|
2572175 | McPherson | Oct 1951 | A |
3721263 | Banes | Mar 1973 | A |
3800823 | Visos et al. | Apr 1974 | A |
4265270 | Satoh | May 1981 | A |
4298943 | Tompson et al. | Nov 1981 | A |
4574228 | Blue et al. | Mar 1986 | A |
4637429 | Dietiker et al. | Jan 1987 | A |
4684842 | Maruno et al. | Aug 1987 | A |
4906910 | Tanuma et al. | Mar 1990 | A |
4951549 | Olsen et al. | Aug 1990 | A |
4951705 | Carey et al. | Aug 1990 | A |
4976459 | Lynch | Dec 1990 | A |
5118072 | Sakamoto et al. | Jun 1992 | A |
5202951 | Doyle | Apr 1993 | A |
5215115 | Dietiker | Jun 1993 | A |
5234196 | Harris | Aug 1993 | A |
5316263 | Mino | May 1994 | A |
5329966 | Fenimore et al. | Jul 1994 | A |
5359271 | Husher | Oct 1994 | A |
5413141 | Dietiker | May 1995 | A |
5435343 | Buezis | Jul 1995 | A |
5485070 | Tominaga | Jan 1996 | A |
5579743 | Kadowaki | Dec 1996 | A |
5601071 | Carr et al. | Feb 1997 | A |
5632614 | Consadori et al. | May 1997 | A |
5783939 | Lippmann et al. | Jul 1998 | A |
5819721 | Carr et al. | Oct 1998 | A |
5899434 | Nishimura | May 1999 | A |
6000622 | Tonner et al. | Dec 1999 | A |
6060857 | Summerland | May 2000 | A |
6170507 | Dalton et al. | Jan 2001 | B1 |
6283145 | Fenn | Sep 2001 | B1 |
6460567 | Hansen, III et al. | Oct 2002 | B1 |
6655408 | Linthorst | Dec 2003 | B2 |
6658372 | Abraham et al. | Dec 2003 | B2 |
6666676 | Rodriguez-Rodriguez et al. | Dec 2003 | B2 |
6705342 | Santinanavat et al. | Mar 2004 | B2 |
6705533 | Casey et al. | Mar 2004 | B2 |
6748977 | Berto | Jun 2004 | B2 |
6758208 | Giérula et al. | Jul 2004 | B2 |
6853162 | Betts et al. | Feb 2005 | B2 |
7002265 | Potega | Feb 2006 | B2 |
7090486 | Lochschmied | Aug 2006 | B2 |
7101172 | Jaeschke | Sep 2006 | B2 |
7104275 | Dille | Sep 2006 | B2 |
7264223 | Fukano et al. | Sep 2007 | B2 |
20040108829 | Betts et al. | Jun 2004 | A1 |
20050229976 | Kao et al. | Oct 2005 | A1 |
20050254948 | Koch et al. | Nov 2005 | A1 |
20060000509 | Pozniak | Jan 2006 | A1 |
20060183066 | Eichenlaub | Aug 2006 | A1 |
20080153045 | Deng | Jun 2008 | A1 |
Number | Date | Country |
---|---|---|
297 08 361 | Sep 1997 | DE |
0062854 | Oct 1982 | EP |
1798456 | Jun 2007 | EP |
2008012849 | Jan 2008 | WO |
Entry |
---|
Extended European Search Report and Written Opinion dated Sep. 3, 2012 issued in European Application No. 09165412.9 (now published as EP2146145); 5 pgs. |
International Search Report And Written Opinion from PCT International Application No. PCT/US2012/044851 dated Nov. 28, 2012; 7 pgs.; which claims priority to U.S. Appl. No. 13/181,205, filed Jul. 12, 2011 which is a continuation-in-part of the instant application. |
Number | Date | Country | |
---|---|---|---|
20100009303 A1 | Jan 2010 | US |