The present disclosure relates generally to improved climate control systems that include features for detecting a refrigerant leak, particularly for climate control systems that include multi-pose heating, ventilation, or air conditioning (HVAC) units.
Climate control systems may generally be used in residential and/or commercial areas for heating and/or cooling to create comfortable temperatures inside those areas. As part of these systems, refrigerant is used to absorb/discharge heat from conditioned air to provide conditioning to a conditioned space.
While this refrigerant provides various benefits, including allowing for the exchange of thermal energy between the various components within the system, it can also be harmful if not appropriately contained and accounted for. The potential harms vary based on the type of refrigerant utilized in the climate control system, however, in general a refrigerant leak could be hazardous to property and/or occupants.
Existing leak detection concepts struggle to account for the various orientations at which a climate control system may be installed, and thus they are often overdesigned and/or prove ineffective once the overall system is installed. Therefore, there exists a need for an improved leak detection device and method, ideally one which enables efficient installation of a refrigerant leak detection system and its corresponding climate control system.
Examples of the present disclosure relate generally to climate control systems with improved leak detection. In these examples, the climate control system may include one or more of the following components: a heat exchanger, a drain pan, a refrigerant leak sensor, and control circuitry. The heat exchanger may be coupled to a closed circuit of the climate control system, and the closed circuit may route a refrigerant fluid within the climate control system. The heat exchanger may also route different fluids to exchange thermal energy between these fluids. For example, the heat exchanger may be configured to exchange thermal energy between a conditioned airflow and the refrigerant fluid.
In some examples, the drain pan may collect condensate produced at the heat exchanger, and the drain pan may be arranged to collect this condensate. The drain pan may include a bottom surface and one or more drains, which may route the condensate out of the drain pan.
In some examples, the refrigerant leak sensor detects refrigerant located outside the closed circuit, and in some examples, the refrigerant leak sensor is coupled to the drain pan. The refrigerant leak sensor may be positioned at various locations relative to features on the drain pan and/or the climate control system. For example, the refrigerant leak sensor may be located above the one or more drains, potentially by a certain distance. In some examples the refrigerant leak sensor may be located above a spillover wall of the drain pan.
The climate control system may also include control circuitry, which may be in the form of one or more controllers. The control circuitry may be operably coupled to various features associated with the climate control system for receiving information/signals, processing information, and/or operating components associated with the control circuitry. For example, the control circuitry may receive a signal from the refrigerant leak sensor indicative of refrigerant located outside the closed circuit. In some examples, the control circuitry may also determine a refrigerant leak has occurred based on the signal and/or perform additional functionality. These components and others are discussed in greater details herein.
The present disclosure thus includes, without limitation, the following examples.
Some examples provide a climate control system comprising: a heat exchanger coupled to a closed circuit of the climate control system for routing a refrigerant fluid, the heat exchanger being configured to exchange thermal energy between a conditioned airflow and the refrigerant fluid; one or more drain pans, at least one drain arranged to collect condensate produced at the heat exchanger, the at least one drain pan including a bottom surface and one or more drains configured to route condensate out of the at least one drain pan, the bottom surface defining a first plane tangent to a lowest point along the bottom surface, the one or more drains defining a second plane tangent to a highest point along the one or more drains and parallel to the first plane; a refrigerant leak sensor coupled to the at least one drain pan and positioned a first distance along an axis normal to the first and second planes, the first distance measured as the distance from the refrigerant sensor to the first plane and sized such that the first distance is greater than or equal to a second distance measured along the axis from the first plane to the second plane, the refrigerant leak sensor configured to detect refrigerant located outside the closed circuit; and control circuitry operably coupled to the refrigerant leak sensor, the control circuitry configured to: receive a signal from the refrigerant leak sensor indicative of refrigerant located outside the closed circuit, and determine a refrigerant leak has occurred based on the signal.
Some examples provide an air handler unit comprising: a housing, the housing including: a fan configured to circulate a conditioned airflow through a heat exchanger and into a conditioned space; the heat exchanger coupled to a closed circuit of the climate control system for routing a refrigerant fluid, the heat exchanger being configured to exchange thermal energy between the conditioned airflow and the refrigerant fluid; one or more drain pans, at least one drain pan arranged to collect condensate produced at the heat exchanger, the at least one drain pan including a bottom surface and one or more drains configured to route condensate out of the at least one drain pan, the bottom surface defining a first plane tangent to a lowest point along the bottom surface, the one or more drains defining a second plane tangent to a highest point along the one or more drains and parallel to the first plane; and a refrigerant leak sensor coupled to the at least one drain pan and positioned a first distance along an axis normal to the first and second planes, the first distance measured as the distance from the refrigerant leak sensor to the first plane and sized such that the first distance is greater than or equal to a second distance measured along the axis from the first plane to the second plane, the refrigerant leak sensor configured to detect refrigerant located outside the closed circuit.
Some examples provide a method for installing an air handler unit at a location, the air handler unit including a housing including a fan configured to circulate a conditioned airflow through a heat exchanger and into a conditioned space, the heat exchanger coupled to a closed circuit of the climate control system for routing a refrigerant fluid, one or more drain pans configured to collect condensate produced at a heat exchanger, and a refrigerant leak sensor configured to detect refrigerant located outside the closed circuit, the method comprising: orienting the air handler unit at the location in one of a plurality of orientation such that the fan is in fluid communication with a return air path and a supply air path associated with the conditioned space; locating the at least one drain pan to collect condensate produced at the heat exchanger, the at least one drain pan including a bottom surface and one or more drains configured to route condensate out of the at least one drain pan, the bottom surface defining a first plane tangent to a lowest point along the bottom surface, the one or more drains defining a second plane tangent to a highest point along the one or more drains and parallel to the first plane; positioning the refrigerant leak sensor a first distance along an axis normal to the first and second planes, the first distance measured as the distance from the refrigerant leak sensor to the first plane and sized such that the first distance is greater than or equal to a second distance measured along the axis from the first plane to the second plane; coupling the refrigerant leak sensor to the at least one drain pan; and connecting the refrigerant leak sensor to control circuitry.
These and other features, aspects, and advantages of the disclosure will be apparent from a reading of the following detailed description together with the accompanying drawings, which are briefly described below. The disclosure includes any combination of two, three, four, or more of the above-noted examples as well as combinations of any two, three, four, or more features or elements set forth in this disclosure, regardless of whether such features or elements are expressly combined in a specific example description herein. This disclosure is intended to be read holistically such that any separable features or elements of the disclosed disclosure, in any of its various aspects and examples, should be viewed as intended to be combinable unless the context clearly dictates otherwise.
In order to assist the understanding of aspects of the disclosure, reference will now be made to the appended drawings, which are not necessarily drawn to scale. The drawings are provided by way of example to assist in the understanding of aspects of the disclosure, and should not be construed as limiting the disclosure.
Some examples of the present disclosure will now be described more fully hereinafter with reference to the accompanying figures, in which some, but not all examples of the disclosure are shown. Indeed, various examples of the disclosure may be embodied in many different forms and should not be construed as limited to the examples set forth herein; rather, these examples are provided so that this disclosure will be thorough and complete, and will fully convey the scope of the disclosure to those skilled in the art.
For example, unless specified otherwise or clear from context, references to first, second or the like should not be construed to imply a particular order. A feature described as being above another feature (unless specified otherwise or clear from context) may instead be below, and vice versa; and similarly, features described as being to the left of another feature may instead be to the right, and vice versa. Also, while reference may be made herein to quantitative measures, values, geometric relationships or the like, unless otherwise stated, any one or more if not all of these may be absolute or approximate to account for acceptable variations that may occur, such as those due to engineering tolerances or the like.
As used herein, unless specified otherwise, or clear from context, the “or” of a set of operands is the “inclusive or” and thereby true if and only if one or more of the operands is true, as opposed to the “exclusive or” which is false when all of the operands are true. Thus, for example, “[A] or [B]” is true if [A] is true, or if [B] is true, or if both [A] and [B] are true. Further, the articles “a” and “an” mean “one or more,” unless specified otherwise or clear from context to be directed to a singular form. Like reference numerals refer to like elements throughout.
As used herein, the terms “bottom,” “top,” “upper,” “lower,” “upward,” “downward,” “rightward,” “leftward,” “interior,” “exterior,” and/or similar terms are used for ease of explanation and refer generally to the position of certain components or portions of the components of examples of the described disclosure. It is understood that such terms are not used in any absolute sense.
Examples of the present disclosure relate generally to climate control systems with improved leak detection. In these examples, the climate control system may include one or more of the following components: a heat exchanger, a drain pan, a refrigerant leak sensor, and control circuitry. The heat exchanger may be coupled to a closed circuit of the climate control system, and the closed circuit may route a refrigerant fluid within the climate control system. The heat exchanger may also route different fluids to exchange thermal energy between these fluids. For example, the heat exchanger may be configured to exchange thermal energy between a conditioned airflow and the refrigerant fluid.
In some examples, the drain pan may collect condensate produced at the heat exchanger, and the drain pan may be arranged to collect this condensate. The drain pan may include a bottom surface and one or more drains, which may route the condensate out of the drain pan.
In some examples, the refrigerant leak sensor detects refrigerant located outside the closed circuit, and in some examples, the refrigerant leak sensor is coupled to the drain pan. The refrigerant leak sensor may be positioned at various locations relative to features on the drain pan and/or the climate control system. For example, the refrigerant leak sensor may be located above the one or more drains, potentially by a certain distance. In some examples the refrigerant leak sensor may be located above a spillover wall of the drain pan.
The climate control system may also include control circuitry, which may be in the form of one or more controllers. The control circuitry may be operably coupled to various features associated with the climate control system for receiving information/signals, processing information, and/or operating components associated with the control circuitry. For example, the control circuitry may receive a signal from the refrigerant leak sensor indicative of refrigerant located outside the closed circuit. In some examples, the control circuitry may also determine a refrigerant leak has occurred based on the signal and/or perform additional functionality. These components and others are discussed in greater details herein.
As shown in
Indoor unit 102 generally may comprise one or more of the following: an indoor air handling unit comprising an indoor heat exchanger 108, an indoor fan 110, an indoor metering device 112, a reheat unit 114, and an indoor controller 116. The indoor heat exchanger 108 may generally be configured to promote heat exchange between a refrigerant fluid carried within internal passages of the indoor heat exchanger 108 and an airflow that may contact the indoor heat exchanger 108 but that is segregated from the refrigerant. For example, the indoor heat exchanger may be coupled to the closed circuit 101, potentially via the internal passages of the indoor heat exchanger, and it may exchange thermal energy between the refrigerant fluid and the airflow.
The indoor metering device 112 may generally comprise an electronically-controlled motor-driven electronic expansion valve (EEV). In some examples, however, the indoor metering device 112 may comprise a thermostatic expansion valve, a capillary tube assembly, and/or any other suitable metering device.
The reheat unit 114 may comprise a heating element, potentially a gas or electric heating element. In some examples, the reheat unit 114 can heat an airflow to provide heating to a conditioned space. In some examples, the reheat unit 114 operates during defrost mode to reheat an airflow after it has been passed through the indoor heat exchanger 108 in the defrost mode.
Outdoor unit 104 generally comprises an outdoor heat exchanger 118, a compressor 120, an outdoor fan 126, an outdoor metering device 124, a switch over valve 128, and an outdoor controller 130. The outdoor heat exchanger 118 may generally be configured to promote heat transfer between a refrigerant fluid carried within internal passages of the outdoor heat exchanger 118 and an airflow that contacts the outdoor heat exchanger 118 but is segregated from the refrigerant. For example, the outdoor heat exchanger may be coupled to the closed circuit 101, potentially via the internal passages of the outdoor heat exchanger, and it may exchange thermal energy between the refrigerant fluid and the airflow.
The outdoor metering device 124 may generally comprise a thermostatic expansion valve. In some examples, however, the outdoor metering device 124 may comprise an electronically-controlled motor driven EEV similar to indoor metering device 112, a capillary tube assembly, and/or any other suitable metering device.
In some examples, the switch over valve 128 may generally comprise a four-way reversing valve. The switch over valve 128 may also comprise an electrical solenoid, relay, and/or other device configured to selectively move a component of the switch over valve 128 between operational positions to alter the flow path of refrigerant through the switch over valve 128 and consequently the closed circuit 101 in the climate control system 100. Additionally, the switch over valve 128 may also be selectively controlled by the system controller 106, an outdoor controller 130, and/or the indoor controller 116.
The system controller 106 may generally be configured to selectively communicate with the indoor controller 116 of the indoor unit 102, the outdoor controller 130 of the outdoor unit 104, and/or other components of the climate control system 100. In some examples, the system controller 106 may be configured to control operation of the indoor unit 102, and/or the outdoor unit 104. In some examples, the system controller 106 may be configured to monitor and/or communicate with a plurality of temperature sensors associated with components of the indoor unit 102, the outdoor unit 104, and/or the outdoor ambient temperature. Additionally, in some examples, the system controller 106 may comprise a temperature sensor and/or may further be configured to control heating and/or cooling of conditioned spaces or zones associated with the climate control system 100. In other examples, the system controller 106 may be configured as a thermostat for controlling the supply of conditioned air to zones associated with the climate control 100, and in some examples, the thermostat includes a temperature sensor.
The system controller 106 may also generally comprise an input/output (I/O) unit (e.g., a graphical user interface, a touchscreen interface, or the like) for displaying information and for receiving user inputs. The system controller 106 may display information related to the operation of the climate control system 100 and may receive user inputs related to operation of the climate control system 100. However, the system controller 106 may further be operable to display information and receive user inputs tangentially related and/or unrelated to operation of the climate control system 100. In some examples, the system controller 106 may not comprise a display and may derive all information from inputs that come from remote sensors and remote configuration tools.
In some examples, the system controller 106 may be configured for selective bidirectional communication over a communication bus 132, which may utilize any type of communication network (e.g., a controller area network (CAN) messaging, etc.). In some examples, portions of the communication bus 132 may comprise a three-wire connection suitable for communicating messages between the system controller 106 and one or more of the components of the climate control system 100 configured for interfacing with the communication bus 132. Still further, the system controller 106 may be configured to selectively communicate with components of the climate control system 100 and/or any other device 134 via a communication network 136. In some examples, the communication network 136 may comprise a telephone network, and the other device 134 may comprise a telephone. In some examples, the communication network 136 may comprise the Internet, and the other device 134 may comprise a smartphone and/or other Internet-enabled mobile telecommunication device.
The indoor controller 116 may be carried by the indoor unit 102 and may generally be configured to receive information inputs, transmit information outputs, and/or otherwise communicate with the system controller 106, the outdoor controller 130, and/or any other device 134 via the communication bus 132 and/or any other suitable medium of communication. In some examples, the indoor controller 116 may be configured to communicate with an indoor personality module 138 that may comprise information related to the identification and/or operation of the indoor unit 102.
The indoor EEV controller 142 may be configured to receive information regarding temperatures and/or pressures of the refrigerant in the indoor unit 102. More specifically, the indoor EEV controller 142 may be configured to receive information regarding temperatures and pressures of refrigerant entering, exiting, and/or within the indoor heat exchanger 108.
The outdoor controller 130 may be carried by the outdoor unit 104 and may be configured to receive information inputs, transmit information outputs, and/or otherwise communicate with the system controller 106, the indoor controller 116, and/or any other device 134 via the communication bus 132 and/or any other suitable medium of communication. In some examples, the outdoor controller 130 may be configured to communicate with an outdoor personality module 140 that may comprise information related to the identification and/or operation of the outdoor unit 104. In some examples, the outdoor controller 130 may be configured to receive information related to an ambient temperature associated with the outdoor unit 104, information related to a temperature of the outdoor heat exchanger 118, and/or information related to refrigerant temperatures and/or pressures of refrigerant entering, exiting, and/or within the outdoor heat exchanger 118 and/or the compressor 120.
As discussed in more detail below, the control circuitry 212 (see
As shown in these figures the air handler unit 200 may be positioned at multiple different orientations, and these orientations may impact the drain pan 208 location and/or configuration. For example,
In some examples, the fan 204 is the same or substantially the same as the indoor fan 110. The fan 204 may circulate conditioned airflow through the heat exchanger 206 and into the conditioned space. The fan 204 may be any convention fan or blower as described above with respect to the indoor fan 110 or outdoor fan 126. For example, the fan 204 may be a fixed speed fan, a variable speed fan, and/or a staged fan, which may include multiple fans. In some examples, the fan 204 circulates conditioned airflow through the heat exchanger 206 and into the conditioned space. In these examples, the conditioned airflow may be routed to the fan 204 through a return air path 216. The conditioned airflow may also be routed to the conditioned space through a supply air path 218. The return air path and the supply air path may include any conventional structure for routing conditioned air, e.g., a ducted, plenums, registers, etc.
In some examples, heat exchanger 206 is the same or substantially the same as the indoor heat exchanger 108. For example, heat exchanger 206 may be configured to exchange thermal energy between a conditioned airflow and the refrigerant fluid. In these examples, the heat exchanger may be coupled to a closed circuit 101 of the climate control system 100, and the closed circuit may route the refrigerant fluid within the climate control system to various components.
Returning to
As shown in these figures, e.g.,
In some examples, the drain pan 208 is arranged to collect condensate produced at the heat exchanger 206. As shown in
In some examples, the drain pan 208 is coupled to an end 222 of the heat exchanger 206, and in other examples, the drain pan is located a distance below the heat exchanger. The drain pan may also extend along an entire cross-section of the heat exchanger or be otherwise sized to collect condensate. As also shown in
In some examples, the drain pan position 230 defines a location where drain pan 208 may be located such that it is arranged to collect condensate produced at the heat exchanger 206. In some examples, the drain pan positions may include additional features that may assist in locating and/or aligning the drain pan at the drain pan position.
The example shown in
The bottom surface 302 may be the surface that collects condensate. In some examples, the bottom surface defines a first plane 310 tangent to a lowest point 312 along the bottom surface. The lowest point may generally be located at the lowest point on the drain pan 208 where condensate may be collected. In addition, in some examples, the first plane runs tangent to this point such that the first plane is general parallel to the plane defined by the surface on which the air handler unit 200 is installed, e.g., the first surface may be generally parallel with the ground. Thus, in some examples, the bottom surface may be flat, and in other examples, the bottom surface may include nonlinear features, e.g., curves, slants, depressions, etc. In these examples, the first plane is still oriented the same relative to the plane defined by the surface on which the air handler unit 200 is installed, this is because the tangent to the lowest point along the bottom surface is the same orientation regardless of the shape of the bottom surface.
The example drain pan 208 depicted in
In the depicted examples, the primary drain 314 and the secondary drain 316 are each located along a wall 304, and in these examples the drains comprise an opening 318 in the wall. In other examples, the drain(s) may be located in the bottom surface or elsewhere within the drain pan 208.
In some examples, the drains 306 may define a second plane 320. The second plane may be defined as the plane tangent to the highest point 322 along the one or more drains and parallel to the first plane 310. The highest point generally may be located at the highest point associated with the drain(s) that routes the condensate away from the drain pan 208. This point is typically the furthest point from the lowest point of the bottom surface 302. Similar, to the first plane, the second plane runs tangent to this point 322 such that the second plane will run parallel to the first plane, as well as the plane defined by the surface on which the air handler unit 200 is installed, e.g., the second surface is also generally parallel with the ground when the corresponding drain pan is active, regardless of the orientation of the drain(s) relative to the drain pan.
For example, in the examples depicted in
The depicted examples also include wall(s) 304. In the depicted example, the walls extend from the bottom surface 302, and some of these walls 304 extend substantially vertically from the bottom surface. These walls 304 may define a cavity 326 for containing fluid within the drain pan 208. This fluid may be refrigerant leaking out of the circuit, or it some examples it may be condensate, other fluids, or a mixture of fluids. In some examples one of these walls is considered the spillover wall 328, which may be considered the lowest wall associated with the cavity. In these examples, the spillover wall may be the wall in which the fluid, e.g., refrigerant, spills out of the drain pan if the drain(s) 306 are unable to adequately route the fluid out of the drain pan.
In some examples, the spillover wall 328 may define a third plane 330. The third plane may be defined as a closest plane parallel to the first plane 310 that is tangent to the corresponding point 332 along a distal edge 334 of the spillover wall. The point 332 is defined based on the relationship between the third plane and the first plane, and as a result, the height of the spillover wall may not be the only factor that determines the location of the point 332 (and the corresponding third plane). Rather, the point 332 along the distal edge 334 may generally be the lowest point on the spillover wall relative to the bottom surface 302, such that the point 332 may be the first location at which fluid would flow over the spillover wall. In addition, the third plane is tangent to this point 332 such that it runs parallel to the first and second planes (310 and 320) regardless of the orientation of the spillover wall. In addition, the third plane, also like the first and second planes, will typically run parallel to the plane defined by the surface on which the air handler unit 200 is installed, e.g., the third plane is generally parallel with the ground, regardless of the orientation of the spillover wall when the drain pan is in an active position.
In some examples, a refrigerant leak sensor 210 is coupled to the drain pan 208 and it may be positioned relative to features on the drain pan. For example, the refrigerant leak sensor may be positioned such that it is located above drain(s) 306. In these examples the refrigerant leak sensor may be positioned such that it is only a certain distance above the drains. In some examples, the refrigerant leak sensor may be positioned below the spillover wall 328. In these examples the refrigerant leak sensor may be located below the third plane 330, potentially below the point 332 along the distal edge 334. In some examples, the refrigerant leak sensor may be positioned below the spillover wall and above the drains. In some examples, the refrigerant leak sensor is below the spillover wall by a certain distance and/or above the drains by a certain distance. In these examples the refrigerant leak sensor may be only above the drains by a certain distance or less, while still being located below the spillover wall.
For example, the refrigerant leak sensor 210 may be positioned a distance along an axis 336 normal to the first and second planes (310 and 320). In these examples the axis may be used to define the distance of the refrigerant leak sensor to various features of the drain pan vertically. For example, in the depicted example the axis may be used to measure a distance 338, potentially a first distance, from the center of the refrigerant leak sensor to the first plane. This distance may provide a measurement for how far vertically the refrigerant leak sensor is located from the lowest point 312 in the bottom surface 302. Similarly, the axis may also be used to measure a distance 340, potentially a second distance, from the first plane to the second plane. The axis may also be used to measure a distance 342, potentially a third distance, from the first plane to the third plane 330. In other examples, other distances may be used, for example a distance from the center of the refrigerant leak sensor to the second or third planes along the axis. These other distances may be used to determine the refrigerant leak sensors position relative to the drain(s) or the spillover wall.
In some examples, the refrigerant leak sensor 210 is located vertically above the drains 306. In these examples, the reference sensor may be positioned such that the first distance 338 measured as the distance from the refrigerant leak sensor to the first plane 310 is sized such that the first distance is greater than or equal to a second distance 340 measured along the axis 336 from the first plane to the second plane 320.
In some examples, the refrigerant leak sensor 210 is positioned above the drain(s) 306 by a set distance. In some examples, this set distance may define a maximum distance vertically the refrigerant leak sensor may be positioned above the drain. For example, the first distance may be greater than the second distance 340 by an amount, potentially less than or equal to a given length, e.g., 1 inch. In other examples, the set distance may define a minimum distance in a similar manner.
In some examples, the refrigerant leak sensor 210 is positioned below the spillover wall 328. In these examples, the refrigerant leak sensor may be positioned such that the first distance 338 is a given length relative to the third distance 342. In these examples, the first distance may be sized such that it is less than the third distance. In some examples, the first distance is less than the third distance by a minimum or maximum distance. For example, the first distance is sized such that it is less than the third distance by 1 inch or less. In some examples, the first distance is sized such that it is greater than the third distance, and in these examples, the refrigerant leak sensor may be located above the spillover wall. Similarly, in these examples, the first distance may be sized to be greater than the third distance by a set amount, e.g., 1 inch.
In some examples, the first distance 338 is sized such that the refrigerant leak sensor is positioned relative to both the spillover wall and the drain(s) 306. For example, the refrigerant leak sensor may be positions such that it is located below the spillover wall, e.g., below the third plane 330, and above the drains, e.g., above the second plane 320, by a set distance. In these examples, the first distance may be sized such that it is greater than the second distance 340 and less than the third distance 342. In some examples, the first distance is sized relative to both of these planes, e.g., the first distance is greater than the second distance by 1 inch or less and the first distance is also less than the third distance by 1 inch or less. The drain may be also be positioned in other manners relative to these components and defined planes.
The refrigerant leak sensor 210 may be coupled to drain pan 208 in various different ways. For example, the refrigerant leak sensor may be coupled to the drain pan using fasteners, adhesives, clips, or other features. In some examples, the refrigerant leak sensor is coupled to the drain pan using a bracket 344. In some examples, the bracket allows the refrigerant leak sensor to be coupled to two or more different drain pans. In some examples, the bracket allows the refrigerant leak sensor to be coupled to two or more positions within the drain pan. In some examples, the bracket includes features that aligns the refrigerant leak sensor at the appropriate location on the drain pan. In some examples, the bracket includes multiple alignment features that appropriately locate the refrigerant leak sensor on multiple different drain pans and/or appropriately locate the refrigerant leak sensor at multiple different positions on a given drain pan.
In the examples depicted in
The example depicted in
In the examples depicted in
In some examples, the extended arm 406 of the bracket 400 may protrude from the surface of the bracket at a set distance from an edge of the bracket as shown in
In some examples, the bracket 400 includes multiple extended arms 406. In these examples, each of the extended arms may be sized and/or arranged to position the refrigerant leak sensor 210 at a given location. In these examples, the different extended arms may be arranged to position the refrigerant leak sensor at the appropriate position on different drain pans 208, e.g., each extended arm may be designed for one or more drain pans. In some examples, the different extended arms may be arranged to position the refrigerant leak sensor at the appropriate position when the bracket is coupled to different locations on the same drain pan, e.g., each extended arm may be designed for a given location on a drain pan. In some examples, the different extended arms may be designed to locate the refrigerant leak sensor at different positions relative to the drain pan or drain pan features. These different designs may be combined and/or adjusted in additional manners.
In some further examples, the bracket 400 includes fastener alignment openings 408 for attaching the bracket to a wall 304 of a drain pan 208. In these examples, the bracket may also include an extended arm 406 for attaching the bracket to a wall of the drain pan. As shown, in
Returning to
In some examples, the control circuitry 212 includes control circuitry that is coupled to the fan 204, and in these examples, the control circuitry may control the operation of the fan. For example, the control circuitry may increase the operating speed of the fan in response to the determination that a refrigerant leak has occurred. In some examples, this may include turning the fan from an off-state, where the fan is not operating, to an on-state, where the fan is operating. In some examples, increasing the operating speed of the fan may include adjusting the fan from a normal operating speed, potentially based on conditioning controls, to an increased operating speed.
In some examples, the control circuitry 212 includes control circuitry that is coupled to the compressor 120, and in these examples, the control circuitry may control the operation of the compressor. In these examples, the control circuitry may prevent operation of the compressor in response to the determination that the refrigerant leak has occurred. In some examples, this includes shutting off the compressor, and in some examples, the compressor is already off and the compressor is prevented from turning back on. In some examples, prevent operation of the compressor is part of a shut down for the entire climate control system 100. In some examples, the compressor is one of a sub-set of components within the climate control system that is shut off. In some examples, the control circuitry also closes various valves, potentially one or more of the valves associated with the metering device, when the determination has been made that a refrigerant leak has occurred.
In some examples, the climate control system 100 includes an orientation sensor 240 (see
In some examples, the orientation sensor 240 is coupled to the refrigerant leak sensor. In these examples, the orientation sensor may send a signal indicative of the orientation of the refrigerant leak sensors. For example, the orientation sensor may be physically coupled to the refrigerant leak sensor, e.g., located within the same housing, attached to a common bracket, etc. In other examples, the orientation sensor may be coupled in a different manner, e.g., electrically, etc., such that the orientation sensor is able to determine the orientation of the refrigerant leak sensor, e.g., horizontal, vertical, etc.
In some examples, the control circuitry 212 includes control circuitry coupled to the orientation sensor 240. In these examples, the control circuitry may receive signals from the orientation sensor. These signals may be received in any conventional manner, e.g., wired, wireless, digital, analog, etc. In some examples, the orientation of the refrigerant leak sensor is inputted by manual input, e.g., by a technician, installer, etc.
In some examples, the control circuitry 212 includes control circuitry to determine the orientation of the refrigerant leak sensor 210 based on signals from the orientation sensor 240. In these examples, the control circuitry may further include control circuitry that confirms the refrigerant leak sensor is in the proper orientation to detect refrigerant outside the closed circuit. For example, when the refrigerant leak sensor is properly located it may be oriented on the drain pan in a given orientation, e.g., a horizontal orientation, a vertical orientation, or another orientation. The signal provided by the orientation sensor may provide an indication of the refrigerant leak sensors actual orientation, e.g., a horizontal orientation, a vertical orientation, or another orientation. This actual orientation may be compared with the desired or designed orientation of the refrigerant leak sensor to determine if the refrigerant leak sensor is properly located. The control circuitry may make this comparison, e.g., comparing the sensed orientation to the designed orientation, to confirm the refrigerant leak sensor was located on the appropriate drain pan or at the appropriate drain pan location. In some examples, the confirmation may indicate that the drain pan has not been moved to the appropriate location. For example, the refrigerant leak sensor may be designed to be positioned substantially horizontally when properly mounted to an active drain pan. In this example, if the refrigerant leak sensor is determined to be substantially vertical, this may indicate that the refrigerant leak sensor remains attached to an inactive drain pan in the current pose of the HVAC unit and the refrigerant leak sensor can prevent operation of the unit until the sensor is moved to the active drain pan. In some examples, the control circuitry further provides a signal, potentially an alert, that the sensed orientation of the refrigerant leak sensor indicates the refrigerant leak sensor is not properly located. In some examples, the control circuitry will prevent normal operation of the equipment if the sensed orientation of the refrigerant leak sensor indicates the refrigerant leak sensor is not properly located. In some examples, the control circuitry provides a signal that the sensed orientation of the refrigerant leak sensor indicates the refrigerant leak sensor is properly located.
In some examples, locating the drain pan 208 may further include arranging the drain pan and the refrigerant leak sensor 210 at a first drain pan position 230A, as shown in block 512 of
In some examples, coupling the refrigerant leak sensor 210 to the drain pan 208 may further include coupling the refrigerant leak sensor to the first drain pan 208A, as shown in block 518 of
In some examples, coupling the refrigerant leak sensor 210 to the drain pan 208 includes coupling the refrigerant leak sensor to a bracket 400 as shown in block 524 of
In some examples, positioning the refrigerant leak sensor 210 further includes positioning the refrigerant leak sensor such that the first distance 338 is greater than the second distance 340 by 1 inch or less, as shown in block 528 of
In some examples, the method 500 further comprises coupling the fan 204 and a compressor of the climate control system 100 to the control circuitry 212, as shown in block 532 of
In some examples, the method 500 further comprises receiving signals from the orientation sensor at the control circuitry, as shown in block 534 of
The processor 602 may be configured to execute computer programs such as computer-readable program code 606, which may be stored onboard the processor or otherwise stored in the memory 604. In some examples, the processor may be embodied as or otherwise include one or more ASICs, FPGAs or the like. Thus, although the processor may be capable of executing a computer program to perform one or more functions, the processor of various examples may be capable of performing one or more functions without the aid of a computer program.
The memory 604 is generally any piece of computer hardware capable of storing information, such as, for example, data, computer-readable program code 606 or other computer programs, and/or other suitable information either on a temporary basis and/or a permanent basis. The memory may include volatile memory such as random access memory (RAM), and/or non-volatile memory such as a hard drive, flash memory or the like. In various instances, the memory may be referred to as a computer-readable storage medium, which is a non-transitory device capable of storing information. In some examples, then, the computer-readable storage medium is non-transitory and has computer-readable program code stored therein, which, in response to execution by the processor 602, causes the control circuitry 212 to perform various operations as described herein, some of which may in turn cause the climate control system 100 to perform various operations.
In addition to the memory 604, the processor 602 may also be connected to one or more peripherals such as a network adapter 608, one or more input/output (I/O) devices 610, or the like. The network adapter is a hardware component configured to connect the control circuitry 212 to a computer network to enable the control circuitry to transmit and/or receive information via the computer network. The I/O devices may include one or more input devices capable of receiving data or instructions for the control circuitry, and/or one or more output devices capable of providing an output from the control circuitry. Examples of suitable input devices include a keyboard, keypad or the like, and examples of suitable output devices include a display device such as a one or more light-emitting diodes (LEDs), a LED display, a liquid crystal display (LCD), or the like.
As explained above and reiterated below, the present disclosure includes, without limitation, the following example implementations.
Clause 1. A climate control system comprising: a heat exchanger coupled to a closed circuit of the climate control system for routing a refrigerant fluid, the heat exchanger being configured to exchange thermal energy between a conditioned airflow and the refrigerant fluid; one or more drain pans, at least one drain pan arranged to collect condensate produced at the heat exchanger, the at least one drain pan including a bottom surface and one or more drains configured to route condensate out of the at least one drain pan, the bottom surface defining a first plane tangent to a lowest point along the bottom surface, the one or more drains defining a second plane tangent to a highest point along the one or more drains and parallel to the first plane; a refrigerant leak sensor coupled to the drain pan and positioned a first distance along an axis normal to the first and second planes, the first distance measured as the distance from the refrigerant leak sensor to the first plane and sized such that the first distance is greater than or equal to a second distance measured along the axis from the first plane to the second plane, the refrigerant leak sensor configured to detect refrigerant located outside the closed circuit; and control circuitry operably coupled to the refrigerant leak sensor, the control circuitry configured to: receive a signal from the refrigerant leak sensor indicative of refrigerant located outside the closed circuit, and determine a refrigerant leak has occurred based on the signal.
Clause 2. The climate control system in any of the preceding clauses, further comprising a housing, the housing including the heat exchanger, the at least one drain pan, and the refrigerant leak sensor.
Clause 3. The climate control system in any of the preceding clauses, wherein the housing includes a first drain pan position and a second drain pan position, the first and second drain pan positions being on different walls of the housing and each configured to alternatively support the at least one drain pan and the refrigerant leak sensor coupled to the at least one drain pan.
Clause 4. The climate control system in any of the preceding clauses, wherein the at least one drain pan includes a first drain pan and a second drain pan, the first and second drain pans located at different locations within the housing such that the first drain pan is active in a first orientation and inactive in a second orientation and the second drain pan is active in the second orientation and inactive in the first orientation, wherein the refrigerant leak sensor is detachably coupled to the first drain pan such that the refrigerant leak sensor may be detached from the first drain pan and attached to the second drain pan.
Clause 5. The climate control system in any of the preceding clauses, further comprising a bracket for coupling the refrigerant leak sensor to the at least one drain pan.
Clause 6. The climate control system in any of the preceding clauses, wherein the bracket is configured to couple the refrigerant leak sensor to two or more different drain pans.
Clause 7. The climate control system in any of the preceding clauses, wherein the bracket is configured to couple the refrigerant leak sensor to two or more locations on the drain pan.
Clause 8. The climate control system in any of the preceding clauses, wherein the bracket includes an extended arm protruding from a surface of the bracket, the extended arm including a first portion and a second portion, the first portion extending substantially perpendicular to a plane defined by the surface of the bracket, the second portion extending substantially parallel to the plane defined by the surface of the bracket.
Clause 9. The climate control system in any of the preceding clauses, wherein the extended arm protrudes from the surface of the bracket at a set distance from an edge of the bracket, the set distance being sized to locate the refrigerant leak sensor at the first distance.
Clause 10. The climate control system in any of the preceding clauses, wherein the first portion extends from the surface of the bracket a first length, the first length being sized larger than a thickness of a wall of the drain pan, and wherein the second portion extends from the first portion at an angle, such that the second portion extends substantially parallel to the surface of the bracket and at an angle towards the surface of the bracket.
Clause 11. The climate control system in any of the preceding clauses, wherein the extended arm is configured to attach the bracket to a wall of the drain pan, and wherein the bracket further includes fastener alignment openings for attaching the bracket to a wall of a different drain pan.
Clause 12. The climate control system in any of the preceding clauses, wherein the location of the refrigerant leak sensor is such that the first distance is greater than the second distance by 1 inch or less.
Clause 13. The climate control system in any of the preceding clauses, wherein the drain pan further includes a spillover wall, the spillover wall extending substantially vertically relative to the bottom surface of the drain pan and defining a third plane parallel to the first and second planes, the third plane defined as a closest plane parallel to the first plane that is tangent to a point along a distal edge of the spillover wall, the third plane further defining a third distance measured as the distance between the first and third planes along the axis, wherein the first distance is less than the third distance by an amount such that the location for the refrigerant leak sensor is above the point along the distal edge of the spillover wall, the amount being less than or equal to 1 inch.
Clause 14. The climate control system in any of the preceding clauses, further comprising a fan configured to circulate the conditioned airflow through the heat exchanger and into a conditioned space, and a compressor configured to circulate the refrigerant fluid through the closed circuit, wherein the control circuitry is further operably coupled to the fan and the compressor and configured to increase an operating speed of the fan and prevent operation of the compressor in response to the determination that the refrigerant leak has occurred.
Clause 15. further comprising an orientation sensor coupled to the refrigerant leak sensor, the orientation sensor configured to send a signal indicative of the orientation of the refrigerant leak sensors, wherein the control circuitry is further coupled to the orientation sensor and further configured to receive signals from the accelerometer, determine the orientation of the refrigerant leak sensor based on signals from the orientation sensor, and confirm that the refrigerant leak sensor is in the proper orientation to detect refrigerant located outside the closed circuit.
Clause 16. An air handler unit comprising: a housing, the housing including: a fan configured to circulate a conditioned airflow through a heat exchanger and into a conditioned space; the heat exchanger coupled to a closed circuit of the climate control system for routing a refrigerant fluid, the heat exchanger being configured to exchange thermal energy between the conditioned airflow and the refrigerant fluid; one or more drain pans, at least one drain pan arranged to collect condensate produced at the heat exchanger, the at least one drain pan including a bottom surface and one or more drains configured to route condensate out of the at least one drain pan, the bottom surface defining a first plane tangent to a lowest point along the bottom surface, the one or more drains defining a second plane tangent to a highest point along the one or more drains and parallel to the first plane; and a refrigerant leak sensor coupled to the drain pan and positioned a first distance along an axis normal to the first and second planes, the first distance measured as the distance from the refrigerant leak sensor to the first plane and sized such that the first distance is greater than or equal to a second distance measured along the axis from the first plane to the second plane, the refrigerant leak sensor configured to detect refrigerant located outside the closed circuit.
Clause 17. The air handler unit in any of the preceding clauses, wherein the housing includes a first drain pan position and a second drain pan position, the first and second drain pan positions associated with different walls of the housing and each configured to alternatively support the drain pan and the refrigerant leak sensor coupled to the at least one drain pan.
Clause 18. The air handler unit in any of the preceding clauses, wherein the at least one drain pan includes a first drain pan and a second drain pan, the first and second drain pans located at different locations within the housing such that the first drain pan is active in a first orientation and inactive in a second orientation and the second drain pan is active in the second orientation and inactive in the first orientation, wherein the refrigerant leak sensor is detachably coupled to the first drain pan such that the refrigerant leak sensor may be detached from the first drain pan and attached to the second drain pan.
Clause 19. The air handler unit in any of the preceding clauses, further comprising a bracket for coupling the refrigerant leak sensor to the at least one drain pan.
Clause 20. The air handler unit in any of the preceding clauses, wherein the bracket is configured to couple the refrigerant leak sensor to two or more different drain pans.
Clause 21. The air handler unit in any of the preceding clauses, wherein the bracket is configured to couple the refrigerant leak sensor to two or more locations on the drain pan.
Clause 22. The air handler unit in any of the preceding clauses, wherein the bracket includes an extended arm protruding from a surface of the bracket, the extended arm including a first portion and a second portion, the first portion extending substantially perpendicular to a plane defined by the surface of the bracket, the second portion extending substantially parallel to the plane defined by the surface of the bracket.
Clause 23. The air handler unit in any of the preceding clauses, wherein the extended arm protrudes from the surface of the bracket at a set distance from an edge of the bracket, the set distance being sized to locate the refrigerant leak sensor at the first distance.
Clause 24. The air handler unit in any of the preceding clauses, wherein the first portion extends from the surface of the bracket a first length, the first length being sized larger than a thickness of a wall of the drain pan, and wherein the second portion extends from the first portion at an angle, such that the second portion extends substantially parallel to the surface of the bracket and at an angle towards the surface of the bracket.
Clause 25. The air handler unit in any of the preceding clauses, wherein the extended arm is configured to attach the bracket to a wall of the drain pan, and wherein the bracket further includes fastener alignment openings for attaching the bracket to a wall of a different drain pan.
Clause 26. The air handler unit in any of the preceding clauses, wherein the location of the refrigerant leak sensor is such that the first distance is greater than the second distance by 1 inch or less.
Clause 27. The air handler unit in any of the preceding clauses, wherein the drain pan further includes a spillover wall, the spillover wall extending substantially vertically relative to the bottom surface of the drain pan and defining a third plane parallel to the first and second planes, the third plane defined as a closest plane parallel to the first plane that is tangent to a point along a distal edge of the spillover wall, the third plane further defining a third distance measured as the distance between the first and third planes along the axis, wherein the first distance is less than the third distance by an amount such that the location for the refrigerant leak sensor is below the point along the distal edge of the spillover wall, the amount being 1 inch or less.
Clause 28. The air handler unit in any of the preceding clauses, further comprising control circuitry operably coupled to the refrigerant leak sensor, the control circuitry configured to: receive a signal from the refrigerant leak sensor indicative of refrigerant located outside the closed circuit, and determine a refrigerant leak has occurred based on the signal
Clause 29. The air handler unit in any of the preceding clauses, wherein the control circuitry is further operably coupled to the fan and a compressor, the control circuitry further configured to increase an operating speed of the fan and prevent operation of the compressor in response to the determination that the refrigerant leak has occurred.
Clause 30. The air handler unit in any of the preceding clauses, further comprising an orientation sensor coupled to the refrigerant leak sensor, the orientation sensor configured to send a signal indicative of the orientation of refrigerant leak sensors, wherein the control circuitry is further coupled to the orientation sensor and further configured to receive signals from the orientation sensor, determine the orientation of the refrigerant leak sensor based on signals from the orientation sensor, and confirm that the refrigerant leak sensor is in the proper orientation to detect refrigerant located outside the closed circuit.
Clause 31. A method for installing an air handler unit at a location, the air handler unit including a housing including a fan configured to circulate a conditioned airflow through a heat exchanger and into a conditioned space, the heat exchanger coupled to a closed circuit of the climate control system for routing a refrigerant fluid, one or more drain pans configured to collect condensate produced at a heat exchanger, and a refrigerant leak sensor configured to detect refrigerant located outside the closed circuit, the method comprising: orienting the air handler unit at the location in one of a plurality of orientation such that the fan is in fluid communication with a return air path and a supply air path associated with the conditioned space; locating at least one of the one or more drain pans to collect condensate produced at the heat exchanger, the at least one drain pan including a bottom surface and one or more drains configured to route condensate out of the at least one drain pan, the bottom surface defining a first plane tangent to a lowest point along the bottom surface, the one or more drains defining a second plane tangent to a highest point along the one or more drains and parallel to the first plane; positioning the refrigerant leak sensor a first distance along an axis normal to the first and second planes, the first distance measured as the distance from the refrigerant leak sensor to the first plane and sized such that the first distance is greater than or equal to a second distance measured along the axis from the first plane to the second plane; coupling the refrigerant leak sensor to the drain pan; and connecting the refrigerant leak sensor to control circuitry.
Clause 32. The method in any of the preceding clauses, wherein locating the drain pan further includes: arranging the at least one drain pan and the refrigerant leak sensor at a first drain pan position, removing the at least one drain pan and the refrigerant leak sensor from the first drain pan position, and arranging the at least one drain pan and the refrigerant leak sensor in a second drain pan position, the first and second drain pan positions being on different sides of a housing of a climate control system.
Clause 33. The method in any of the preceding clauses, wherein the at least one drain pan includes a first drain pan and a second drain pan, the first and second drain pans located on different sides of the housing, and wherein coupling the refrigerant leak sensor to the at least one drain pan further includes: coupling the refrigerant leak sensor to the first drain pan; detaching the refrigerant leak sensor from the first drain pan; and coupling the refrigerant leak sensor to the second drain pan.
Clause 34. The method in any of the preceding clauses, wherein coupling the refrigerant leak sensor to the drain pan further includes coupling the refrigerant leak sensor to a bracket and coupling the bracket to the at least one drain pan, wherein the bracket is configured to couple the refrigerant leak sensor to two or more different drain pans.
Clause 35. The method in any of the preceding clauses, wherein positioning the refrigerant leak sensor further includes positioning the refrigerant leak sensor such that the first distance is greater than the second distance by 1 inch or less.
Clause 36. The method in any of the preceding clauses, wherein the drain pan further includes a spillover wall, the spillover wall extending substantially vertically from the bottom surface of the drain pan and defining a third plane parallel to the first and second planes, the third plane defined as a closest plane parallel to the first plane that is tangent to a point along a distal edge of the spillover wall, the third plane further defining a third distance measure as the distance between the first and third planes along the axis, wherein positioning the refrigerant leak sensor further includes positioning the refrigerant leak sensor such that the first distance is less than the third distance such that the location for the refrigerant leak sensor is below the point along the distal edge of the spillover wall, the amount being 1 inch or less.
Clause 37. The method in any of the preceding clauses, wherein the control circuitry is further operably coupled to a fan and a compressor of a climate control system, the control circuitry further configured to increase the operating speed of the fan and prevent operation of the compressor in response to the determination that the refrigerant leak has occurred.
Clause 38. The method in any of the preceding clauses, wherein the air handler further comprises an orientation sensor coupled to the refrigerant leak sensor and the control circuitry, the orientation sensor configured to send a signal indicative of the orientation of refrigerant leak sensors, and the method further comprises: receiving signals from the orientation sensor at the control circuitry; determining the orientation of the refrigerant leak sensor based on signals from the orientation sensor; and confirming that the refrigerant leak sensor is in the proper orientation to detect refrigerant located outside the closed circuit.
Many modifications and other examples of the disclosure set forth herein will come to mind to one skilled in the art to which the disclosure pertains having the benefit of the teachings presented in the foregoing description and the associated figures. Therefore, it is to be understood that the disclosure is not to be limited to the specific examples disclosed and that modifications and other examples are intended to be included within the scope of the appended claims. Moreover, although the foregoing description and the associated figures describe examples in the context of certain example combinations of elements and/or functions, it should be appreciated that different combinations of elements and/or functions may be provided by alternative examples without departing from the scope of the appended claims. In this regard, for example, different combinations of elements and/or functions than those explicitly described above are also contemplated as may be set forth in some of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
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20210310678 | Weinert | Oct 2021 | A1 |
20210348820 | Kobayashi et al. | Nov 2021 | A1 |
20210356150 | Green et al. | Nov 2021 | A1 |
20210356154 | Kobayashi | Nov 2021 | A1 |
20210356155 | Yoshimi et al. | Nov 2021 | A1 |
20210364180 | Chen | Nov 2021 | A1 |
20210396413 | Maddox et al. | Dec 2021 | A1 |
20210396696 | Hornung | Dec 2021 | A1 |
20210404685 | Butler et al. | Dec 2021 | A1 |
20220003443 | Kobayashi | Jan 2022 | A1 |
20220003471 | Welch | Jan 2022 | A1 |
20220003472 | Okuda et al. | Jan 2022 | A1 |
20220034535 | Kobayashi | Feb 2022 | A1 |
20220034568 | Satou | Feb 2022 | A1 |
20220042698 | Butler | Feb 2022 | A1 |
20220057100 | Ikeda | Feb 2022 | A1 |
20220065832 | Oggianu | Mar 2022 | A1 |
20220082304 | Welch | Mar 2022 | A1 |
20220090979 | Kester | Mar 2022 | A1 |
20220099346 | Alfano | Mar 2022 | A1 |
20220128253 | Suzuki | Apr 2022 | A1 |
20220128277 | Fukuyama | Apr 2022 | A1 |
20220128278 | Parker | Apr 2022 | A1 |
20220128281 | Tsuji | Apr 2022 | A1 |
20220134844 | Palmisano | May 2022 | A1 |
20220146132 | McQuade | May 2022 | A1 |
20220170654 | Delgoshaei | Jun 2022 | A1 |
20220186960 | Hirai | Jun 2022 | A1 |
20220221184 | Gupta | Jul 2022 | A1 |
20220243938 | Notaro | Aug 2022 | A1 |
20220243939 | Notaro | Aug 2022 | A1 |
20220243940 | Notaro | Aug 2022 | A1 |
20220243941 | Notaro | Aug 2022 | A1 |
20220252291 | Alfano | Aug 2022 | A1 |
20220252304 | Green | Aug 2022 | A1 |
20220297510 | Kondrk | Sep 2022 | A1 |
20220307711 | Lord | Sep 2022 | A1 |
20220307740 | Lord | Sep 2022 | A1 |
20220307937 | Thyssen | Sep 2022 | A1 |
20220341612 | West | Oct 2022 | A1 |
20220341804 | West | Oct 2022 | A1 |
20220349600 | Alfano | Nov 2022 | A1 |
20220397297 | Foster | Dec 2022 | A1 |
20230009291 | Hjortland | Jan 2023 | A1 |
20230032795 | Sunderland | Feb 2023 | A1 |
20230048352 | Wright | Feb 2023 | A1 |
20230058790 | Rumler | Feb 2023 | A1 |
20230085125 | Yamaguchi | Mar 2023 | A1 |
20230107694 | Kawano | Apr 2023 | A1 |
20230109334 | Welch | Apr 2023 | A1 |
20230117306 | Petele | Apr 2023 | A1 |
Number | Date | Country |
---|---|---|
112019010410 | Sep 2019 | BR |
3065728 | Jun 2021 | CA |
110375466 | Oct 2019 | CN |
110375467 | Oct 2019 | CN |
110646362 | Jan 2020 | CN |
109073262 | Aug 2020 | CN |
102019205908 | Oct 2020 | DE |
102017217685 | Oct 2021 | DE |
0783099 | Jul 1997 | EP |
2354724 | Nov 2014 | EP |
3054231 | Jul 2018 | EP |
3374701 | Sep 2018 | EP |
3457044 | May 2019 | EP |
3460347 | May 2019 | EP |
3428554 | Jul 2019 | EP |
3425295 | Sep 2019 | EP |
3321607 | Dec 2019 | EP |
3405629 | Jan 2020 | EP |
3683518 | Jul 2020 | EP |
3693687 | Oct 2020 | EP |
3730854 | Oct 2020 | EP |
3751209 | Dec 2020 | EP |
3534084 | Feb 2021 | EP |
3584522 | Apr 2021 | EP |
3798527 | May 2021 | EP |
3816542 | May 2021 | EP |
3040654 | Jun 2021 | EP |
3875861 | Sep 2021 | EP |
3901526 | Oct 2021 | EP |
3901530 | Oct 2021 | EP |
3859223 | Nov 2021 | EP |
3859249 | Nov 2021 | EP |
3906382 | Nov 2021 | EP |
3911931 | Nov 2021 | EP |
3686520 | Dec 2021 | EP |
3919837 | Dec 2021 | EP |
3943858 | Jan 2022 | EP |
3961119 | Mar 2022 | EP |
3974032 | Mar 2022 | EP |
4033165 | Jul 2022 | EP |
3279580 | Sep 2022 | EP |
3869122 | Nov 2022 | EP |
4160101 | Apr 2023 | EP |
2804267 | Feb 2021 | ES |
3102237 | Apr 2021 | FR |
3111418 | Dec 2021 | FR |
2002092714 | Mar 2002 | JP |
2002263445 | Sep 2002 | JP |
2007127316 | May 2007 | JP |
2010210129 | Sep 2010 | JP |
2014035171 | Nov 2014 | JP |
6466219 | Feb 2019 | JP |
6528446 | Jun 2019 | JP |
WO2019016959 | Jul 2019 | JP |
6557329 | Aug 2019 | JP |
6628833 | Jan 2020 | JP |
6656363 | Mar 2020 | JP |
6701337 | May 2020 | JP |
2020515850 | May 2020 | JP |
6766638 | Oct 2020 | JP |
6766639 | Oct 2020 | JP |
2020169798 | Oct 2020 | JP |
6779355 | Nov 2020 | JP |
2020183829 | Nov 2020 | JP |
2021075076 | May 2021 | JP |
6931093 | Sep 2021 | JP |
2021131182 | Sep 2021 | JP |
2021131194 | Sep 2021 | JP |
2021131200 | Sep 2021 | JP |
WO2020194490 | Nov 2021 | JP |
20190009713 | Jan 2019 | KR |
20190058448 | May 2019 | KR |
20210001769 | Jan 2021 | KR |
20210042970 | Apr 2021 | KR |
2019011319 | Mar 2016 | MX |
2720037 | Apr 2020 | RU |
2010007448 | Jan 2010 | WO |
2014160831 | Oct 2014 | WO |
2017002215 | Jan 2017 | WO |
2021260588 | Dec 2021 | WO |
2022244177 | Nov 2022 | WO |
2022264368 | Dec 2022 | WO |
Entry |
---|
US 11,402,122 B2, 09/2022, Tsuji (withdrawn) |
Number | Date | Country | |
---|---|---|---|
20230417435 A1 | Dec 2023 | US |