Not Applicable.
Not Applicable.
Not Applicable.
The present invention pertains to blower assemblies for use with heaters having burners.
Heat exchangers comprising a burner, such as gas-fueled water heaters or HVAC heaters, typically comprise a blower motor assembly that provides combustion air to the burner (often via induction). The blower motor assembly ensures that the burner has sufficient oxygen to completely combust the fuel and also ensures that the reaction products from combustion are exhausted from the heat exchanger. If insufficient combustion air is supplied to the burner, excessive carbon monoxide is formed (which can result in carbon monoxide poisoning and is detrimental to the atmosphere). However, if the combustion air flow is excessive (i.e., higher than is needed to completely combust the gas fuel), the heated combustion reaction products pass through the heat exchanger faster than is needed, resulting in unnecessarily low efficiency due to higher exhaust temperatures and therefore less heat exchange per fuel burned. Unfortunately, the vent lines connected to the exhaust port of heat exchangers vary in length, size, and complexity as dictated by the location of such heat exchangers within a building or structure and the need to vent the combustion reaction products to the environment external to the building or structure. As such, the back pressures caused by the exhaust gas flow through different vent lines also vary. The back pressure caused by a given vent line impacts how quickly combustion air and reaction products flow through a heat exchanger using a given blower and blower speed. Thus, the installation and operational specifications associated with most gas-fueled heat exchangers or the blower assemblies associated therewith typically dictate an allowable range of exhaust vent line length for the given heat exchanger and blower combination. The output of the blower assembly is therefore configured to provide adequate combustion air for the longest permitted vent line length (maximum back pressure situation). Unfortunately, this means that when the given heat exchanger and blower assembly combination is attached to the shortest permitted vent line length, the combustion air flow is excessive and, as mentioned above, the efficiency of the system will be reduced.
Options to resolve the above-mentioned problem include customizing the blower output for a particular heat exchanger installation or providing a multispeed blower that can be set by a technician for a particular output for the particular heat exchanger installation. However, both options would be costly and the latter would also be risky.
The present invention solves the problems mentioned above by providing a multi-speed blower motor and a control system assembly for a draft inducer blower, preferably housed together, that automatically sets the speed of the blower motor in response to the flow rate of the exhaust output in the vent line downstream of the blower. Preferably, the control system achieves this via a pressure sensor located in a blower housing that is connected to a pressure tap (in the housing or downstream thereof) that is sensitive to/indicative of the exhaust output in the vent line downstream of the blower.
One aspect of the invention pertains to a draft inducer blower assembly for use with a gas-operated heater having a burner and a combustion exhaust port. The blower assembly comprises a blower and a sensor. The blower is configured and adapted to operate at least at a lower speed and a higher speed. The blower is also configured to operatively connect to the heater in a manner to facilitate flow of combustion air into the burner and to facilitate flow of exhaust through the combustion exhaust port. The sensor is configured to be sensitive to pressure of the exhaust downstream of the blower. The sensor is operatively connected to the blower in a manner such that the blower will switch from the lower speed to the higher speed if said pressure exceeds a threshold pressure.
In another aspect of the invention, a heat exchanger assembly comprises a burner, a blower, a combustion exhaust port, and a sensor. The blower is configured and adapted to operate at two or more speeds. The blower is operatively connected to the burner in a manner such that the blower can supply combustion air to the burner and such that exhaust can be vented from the heat exchanger via the exhaust port. The sensor is sensitive to the pressure of exhaust downstream of the blower. The sensor is operatively connected to the blower in a manner such that the blower will change speeds if said pressure exceeds a threshold pressure.
In yet another aspect of the invention, a water heater assembly comprises a water vessel, a burner, a blower, a combustion exhaust port, and a sensor. The blower is configured and adapted to operate at two or more speeds and is connected to the burner in a manner such that the blower can supply combustion air to the burner and such that exhaust can be vented from the water heater via the exhaust port. The water vessel is configured to hold water heated by the burner. The sensor is sensitive to the pressure of exhaust downstream of the blower. The sensor is operatively connected to the blower in a manner such that the blower will change speeds if said pressure exceeds a threshold pressure.
In still another aspect of the invention, a blower assembly is configured for use with a gas-fueled heater having a burner and an exhaust port. The blower assembly comprises a blower and a sensor. The blower is configured and adapted to operate at two or more speeds and is configured to operatively connect to the burner in a manner to facilitate flow of combustion air into the burner and to facilitate flow of exhaust through the exhaust port. The sensor is configured to be sensitive to pressure of exhaust downstream of the blower. The sensor is operatively connected to the blower in a manner such that the blower will change speeds if said pressure exceeds a threshold pressure.
In yet another aspect of the invention, a blower assembly is configured for use with a gas-fueled water heater having a water vessel and a heat exchanger assembly comprising a burner and an exhaust port. The blower assembly comprises a blower and a sensor. The blower is configured and adapted to operate at two or more speeds and is configured to operatively connect to the burner in a manner to facilitate flow of combustion air into the burner and to facilitate flow of exhaust through the exhaust port. The sensor is configured to be sensitive to pressure of exhaust downstream of the blower. The sensor is operatively connected to the blower in a manner such that the blower will change speeds if said pressure exceeds a threshold pressure.
Further features and advantages of the present invention, as well as the operation of the invention, are described in detail below with reference to the accompanying drawings.
Reference numerals in the written specification and in the drawing figures indicate corresponding items.
An embodiment of a control system (32) in accordance with the invention for operating the blower motor (22) is shown in
In this embodiment of the invention, the pressure switch (34) is a single-pole double-throw switch. During operation, electrical power is supplied to the pressure switch (34) by a controller (38). The controller (38) is also connected to a vacuum switch (40) that is upstream of the blower (22) or is communicating with a zone within the blower where the vacuum reading is indicative of whether the burner has adequate flow to support combustion without excessive carbon monoxide.
When the heater (20) is initially activated, the controller (38), which is connected to an electrical source (L2), initially sends power to the pressure switch (34). The pressure switch (34) initially sends power to a lead (L3) on the blower motor (22) that operates the blower at a low speed. The pressure switch will then continue to send that power to the lead (L3) on the blower motor (22) that operates the blower at a low speed, unless the pressure sensor (36) detects pressure at or above a threshold pressure indicative of pressure downstream of the blower (22) (which is indicative of high back pressure in the exhaust vent line (30)). Upon detecting pressure at or above the threshold pressure, the pressure switch (34) will switch power to a lead (L4) on the blower motor (22) that operates the blower at a high speed. Upon operating a higher speed, the sensed pressure will be even greater. This prevents the blower motor (22) from short cycling between speeds. Assuming a sufficient vacuum is being drawn upstream of the blower, the vacuum switch (40) will have been triggered and the controller (38) will activate the igniter and fuel gas valve and will continue to send power to the pressure switch (34). However, if, after a brief delay, the vacuum switch (40) is not triggered by a sufficient drop in pressure upstream of the blower's (22) fan output, the controller (38) will not activate the igniter and fuel gas valve (not shown) of the burner (24) and will discontinue supplying power to the pressure switch (34).
It should be understood that the pressure tap for the pressure sensor (36) could be located at any location where the pressure measurement can be correlated to the back pressure and flow output through the exhaust vent line (30). Thus, the pressure sensed by the pressure sensor (36) needs not necessarily be an actual pressure measurement of pressure downstream of the blower assembly. For example, the pressure tap of the pressure sensor could be adjacent a fan of a blower, in a discharge passage of a blower housing, or in the exhaust vent line itself.
Another embodiment of a control system (32′) in accordance with the invention for operating the blower motor (22′) is shown in
Yet another embodiment of a control system (32″) in accordance with the invention for operating the blower motor (22) is shown in
In view of the foregoing, it should be appreciated that the invention has several advantages over the prior art.
As various modifications could be made in the constructions and methods herein described and illustrated without departing from the scope of the invention, it is intended that all matter contained in the foregoing description or shown in the accompanying drawings shall be interpreted as illustrative rather than limiting. Thus, the breadth and scope of the present invention should not be limited by any of the above-described exemplary embodiments, but should be defined only in accordance with the following claims appended hereto and their equivalents.
It should also be understood that when introducing elements of the present invention in the claims or in the above description of exemplary embodiments of the invention, the terms “comprising,” “including,” and “having” are intended to be open-ended and mean that there may be additional elements other than the listed elements. Additionally, the term “portion” should be construed as meaning some or all of the item or element that it qualifies. Moreover, use of identifiers such as first, second, and third should not be construed in a manner imposing any relative position or time sequence between limitations. Still further, the order in which the steps of any method claim that follows are presented should not be construed in a manner limiting the order in which such steps must be performed, unless such an order is inherent or explicit.
Number | Name | Date | Kind |
---|---|---|---|
4334855 | Nelson | Jun 1982 | A |
5197665 | Jenson | Mar 1993 | A |
20080029081 | Gagas | Feb 2008 | A1 |
20080127962 | Thompson | Jun 2008 | A1 |
20160076768 | Kusachi | Mar 2016 | A1 |
Number | Date | Country | |
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20170356675 A1 | Dec 2017 | US |