EFFICIENT LIMIT SWITCH DESIGN AND ITS LOCATION IN A GAS FURNACE
20210215395 ยท 2021-07-15
Inventors
Cpc classification
F24H3/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05D23/1852
PHYSICS
F24H15/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H15/36
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H15/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F24H9/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24H3/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A limit switch assembly including a shape memory member, a furnace system for incorporating the same, and a method for controlling a furnace are provided. The limit switch assembly includes a switch communicatively connected to a control board of a furnace. The switch is configured to send a signal to the control board when actuated. The shape memory member is configured to actuate the switch. The control board, in certain instances, shuts off the furnace and arrests the supply of combustible gas when receiving the signal from the switch. The shape memory member, in certain instances, actuates the switch as a result of being heated.
Claims
1. A furnace system, comprising: a burner configured to receive and ignite a supply of combustible gas and produce a heated air, the heated air defining a temperature; and a limit switch assembly configured to sense the temperature of the heated air, the limit switch assembly comprising: a switch communicatively connected to a control board of the furnace, the switch configured to send a signal to the control board when actuated; and a shape memory member configured to actuate the switch.
2. The furnace system of claim 1, wherein the signal is sent by the switch to the control board to shut off the furnace and arrest the supply of combustible gas.
3. The furnace system of claim 1, wherein the shape memory member defines an extended position and a retracted position, the shape memory member actuating the switch when in the extended position.
4. The furnace system of claim 3, wherein the shape memory member is in the extended position when the temperature of the heated air is greater than a threshold.
5. The furnace system of claim 4, wherein the threshold is between 150 and 275 F.
6. The furnace system of claim 1, wherein the limit switch assembly is attached to a cell panel of the furnace system.
7. A limit switch assembly configured to sense a temperature, the limit switch assembly comprising: a switch communicatively connected to a control board of a furnace, the switch configured to send a signal to the control board when actuated; and a shape memory member configured to actuate the switch.
8. The limit switch assembly of claim 7, wherein the shape memory member comprises a fixed end and a moveable end, the shape memory member configured to actuate the switch by extending in the direction of the moveable end when the temperature is greater than a threshold.
9. The limit switch assembly of claim 7, wherein the limit switch assembly further comprises a plate, a moveable end of the shape memory member attached to the plate.
10. The limit switch assembly of claim 9, wherein the limit switch assembly further comprises a bracket configured to guide the plate to actuate the switch when the shape memory member is in an extended position.
11. The limit switch assembly of claim 7, wherein the shape memory member is configured in a helical shape.
12. The limit switch assembly of claim 7, wherein the shape memory member comprises a first fixed end and a second fixed end, the shape memory member configured in an arch when the temperature is less than a threshold, the shape memory member configured in an approximately flat state when the temperature is greater than a threshold.
13. The limit switch assembly of claim 12, wherein the shape memory member is configured to actuate the switch when in the approximately flat state.
14. The limit switch assembly of claim 7, wherein the shape memory member is comprised of Nitinol.
15. A method for controlling a furnace, the method comprising: operating a burner, the burner configured to receive and ignite a supply of combustible gas and produce a heated air, the heated air defining a temperature; sensing, with a shape memory member, the temperature of the heated air; and actuating, with the shape memory member, a switch communicatively connected to a control board of a furnace, when the temperature is greater than a threshold.
16. The method of claim 15, further comprising sending a signal from the switch to the control board, when the switch is actuated, to shut off the furnace.
17. The method of claim 15, wherein the actuating of the switch is caused, at least in part, by the shape memory member extending in the direction of a moveable end of the shape memory member.
18. The method of claim 15, wherein the actuating of the switch is caused, at least in part, by the shape memory member changing from an arch to an approximately flat state.
19. The method of claim 15, wherein the actuating of the switch with the shape memory member is caused, at least in part, by the heating of the shape memory member with the heated air.
20. The method of claim 15, wherein the threshold is between 150 and 275 F.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] The subject matter, which is regarded as the disclosure, is particularly pointed out and distinctly claimed in the claims at the conclusion of the specification. The following descriptions of the drawings should not be considered limiting in any way. With reference to the accompanying drawings, like elements are numbered alike:
[0027]
[0028]
[0029]
[0030]
[0031]
[0032]
DETAILED DESCRIPTION
[0033] Choosing where to place a conventional limit switch can be particularly cumbersome and quasi-unique to the particular furnace. To reduce the amount of time for choosing the particular location of the limit switch while also accurately sensing the temperature, a limit switch assembly with a shape memory member is provided. It is envisioned that the limit switch assembly, as provided, can be used to accurately sense temperature for any furnace. By accurately sensing the temperature, the limit switch assembly helps prevent the furnace from overheating, which, if overheated, could cause the heat exchanger in the furnace to crack. Although the limit switch assembly is capable of being used within any furnace, for purposes of clarity and brevity, the limit switch assembly has only been depicted within a gas furnace assembly.
[0034] With reference now to the Figures, an exemplary furnace system 100 using a supply of combustible gas as a fuel source is shown in
[0035] The shape memory member 122 defines an extended position and a retracted position. The change between a retracted position and an extended position may, in certain instances, be described as a mechanical deformation of the shape memory member 122. A shape memory member 122 in an extended position is shown in
[0036] The threshold, in certain instances, is 200 F. For example, at a threshold of 200 F. the shape memory member is in an extended position. In certain instances, the threshold is between 150 F. and 275 F. For example, the threshold may be between 150 F. and 200 F., between 150 F. and 225 F., between 150 F. and 250 F., between 150 F. and 275 F., between 175 F. and 200 F., between 175 F. and 225 F., between 175 F. and 250 F., between 175 F. and 275 F., between 200 F. and 225 F., between 200 F. and 250 F., between 200 F. and 275 F., between 225 F. and 250 F., between 225 F. and 275 F., or between 250 F. and 275 F. To sense the temperature of the heated air, in certain instances, the limit switch assembly 120 is attached to the cell panel 140 of the furnace system 100. For example, the limit switch assembly 120 may be attached to the interior side of the cell panel 140 of the furnace system 100 to sense the temperature of the heated air. In certain instances, the limit switch assembly 120 may be attached to the interior side of the cell panel 140. For example, above or below the burner 110 so as to sense the temperature of the heated air.
[0037] The limit switch assembly 120 is designed and configured to sense the temperature of the heated air, and, in certain instances, actuate the switch 121 when the temperature is greater than a threshold. In one embodiment, as shown in
[0038] In another embodiment, as shown in
[0039] Regardless of the particular configuration of the limit switch assembly 120, in certain instances, the shape memory member 122 is made of a shape memory alloy (SMA), for example, Nitinol. A shape memory alloy is an alloy that can be deformed due to a change in temperature. For example, the SMA may be in one shape when heated, but return to its pre-deformed (remembered) shape when cooled. A SMA may, in certain instances, be described as any material capable of thermoelastic martensitic reversion, also called reversible shape memory. In certain instances, the shape memory alloy is copper-aluminum-nickel or nickel-titanium (NiTi, also known as Nitinol). In certain instances, the SMA is iron-based or copper-based, such as FeMnSi, CuZnAl, or CuAlNi. However, in certain instances, the SMA may be AgCd, AuCd, CoNiAl, CoNiGa, CuAlBeX, CuAlNi, CuAlNiHf, CuSn, FePt, MnCu, NiFeGa, NiTiHf, NiTiPd, NiMnGa, or TiNb. Each of the different potential SMAs may have different temperatures at which they either retract or extend. As such, in certain instances, the SMA is selected based upon the threshold at which the limit switch assembly 120 should actuate the switch 121. For example, when the threshold is 200 F., the shape memory member 122 may be made of Nitinol so as to actuate the switch 121 when the temperature is greater than 200 F.
[0040] The switch 121 of the limit switch assembly 120 may be configured in a plethora of different positions, so as to enable the shape memory member 122 to actuate the switch 121. As shown in
[0041] The method for controlling a furnace may be done, for example, using either exemplary limit switch assembly 120, as shown in
[0042] While the present disclosure has been described with reference to an exemplary embodiment or embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the present disclosure. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the present disclosure without departing from the essential scope thereof. Therefore, it is intended that the present disclosure not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this present disclosure, but that the present disclosure will include all embodiments falling within the scope of the claims.