Integrated sensor and service port with anti-blowback feature for HVAC equipment or HVAC system
11480486 · 2022-10-25
Assignee
Inventors
- Mario A. Cruz (Miami, FL, US)
- Charles Peter Harland (Waterloo, CA, US)
- Maximilian Alexander Pfeifle (Waterloo, CA)
Cpc classification
F25B2345/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/19
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B45/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2500/221
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B49/005
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2700/21
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F25B2345/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01L19/0023
PHYSICS
International classification
F25B45/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G01L19/00
PHYSICS
F25B49/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An integrated sensor and service port for HVAC (heating, ventilating, and air conditioning) equipment or an HVAC system. The integrated sensor and service port may comprise an anti-blowback mechanism.
Claims
1. An apparatus comprising: a housing, said housing having a first connection portion, a second connection portion and a sensor integrated therein, the first connection portion being configured to connect with and cooperate with a service port of heating, ventilating, and air conditioning (HVAC) equipment, the second connection portion being configured to function as the service port, and the sensor adapted to sense a characteristic of the HVAC equipment, and an anti-blowback mechanism adapted to prevent the service port of the HVAC equipment from being opened until the first connection portion is connected to the service port of the HVAC equipment, wherein the anti-blowback mechanism comprises a depressor adapted to be received by the housing at a depressor region, the depressor comprising a threaded portion adapted to be received by a threaded portion of the depressor region, and rotation of the depressor in a first direction causes movement of the depressor in a first direction and rotation of the depressor in a second direction causes movement of the depressor in a second direction.
2. The apparatus of claim 1, wherein the first connection portion, the second connection portion and the sensor are in communication with a channel formed within the housing and said first connection portion comprises: a brass flare fitting over the channel; a flare nut over the brass flare fitting; and a depressor fitting within the brass flare fitting.
3. The apparatus of claim 2, wherein the depressor is connected to the depressor fitting, and movement of the depressor in the first direction retracts the depressor fitting within the housing, leaving the service port of the HVAC equipment in a closed position, and movement of the depressor in the second direction moves the depressor fitting towards the service port of the HVAC equipment such that the depressor fitting may place the service port of the HVAC equipment in an opened position.
4. The apparatus of claim 3, wherein the anti-blowback mechanism further comprises a depressor seal formed within the channel and around the depressor.
5. The apparatus of claim 3, wherein the second connection portion comprises: a threaded portion to allow a sealed connection to service equipment; and an internal valve core to allow service access to a pressurized system.
6. The apparatus of claim 1, wherein the housing comprises brass.
7. The apparatus of claim 1, wherein the sensor is a pressure sensor.
8. The apparatus of claim 1, wherein the sensor is one of a pressure sensor, temperature sensor or a combined pressure and temperature sensor.
9. The apparatus of claim 1, further comprising a third connection portion coupled to the sensor, the third connection portion adapted to provide a mechanism to communicate readings of the sensor outside of the apparatus.
10. An integrated sensor and service port device comprising: a brass housing, said housing having a service port opening and connection portion, a service port portion and a sensor integrated therein, the service port opening and connection portion configured to connect with and cooperate with a service port of heating, ventilating, and air conditioning (HVAC) equipment, and an anti-blowback mechanism adapted to prevent the service port of the HVAC equipment from being opened until the service port opening and connection portion is connected to the service port of the HVAC equipment, the anti-blowback mechanism comprising a threaded depressor adapted to be received by the housing at a depressor region, the threaded depressor contacting a depressor fitting adapted to form a temporary seal while the depressor fitting is engaging a valve core of the service port and a permanent seal when the service port valve core is fully engaged by the depressor fitting.
11. The integrated sensor and service port device of claim 10, wherein the service port portion is configured to function as the HVAC equipment service port and the sensor is adapted to sense a characteristic of the HVAC equipment.
12. The integrated sensor and service port device of claim 11 wherein the service port opening and connection portion, service port portion and the sensor are in communication with a channel formed within the housing and said service port opening and connection portion comprises: a brass tube flare fitting over the channel; and a flare nut over the brass tube flare fitting; wherein the depressor fitting is within the brass tube flare fitting.
13. The integrated sensor and service port device of claim 12, wherein movement of the depressor in a first direction retracts the depressor fitting within the housing, leaving the service port of the HVAC equipment in a closed position, and movement of the depressor in a second direction moves the depressor fitting towards the service port of the HVAC equipment such that the depressor fitting may place the service port of the HVAC equipment in an opened position.
14. The integrated sensor and service port device of claim 13, wherein the anti-blowback mechanism further comprises a depressor seal formed within the channel and around the depressor.
15. The integrated sensor and service port device of claim 13, wherein the depressor comprises a threaded portion adapted to be received by a threaded portion of the depressor region, and movement of the depressor in the first direction comprises rotation of the depressor in a first direction and movement of the depressor in the second direction comprises rotation of the depressor in a second direction.
16. The integrated sensor and service port device of claim 12, wherein the service port portion comprises: a threaded portion to allow a sealed connection to service equipment; and an internal valve core to allow service access to a pressurized system.
17. The integrated sensor and service port device of claim 10, wherein the housing comprises brass.
18. The integrated sensor and service port device of claim 10, wherein the sensor is a pressure sensor.
19. The integrated sensor and service port device of claim 10, further comprising a communication connection coupled to the sensor, the communication connection adapted to communicate readings of the sensor outside of the device.
Description
DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6) Like reference symbols in the various drawings indicate like elements.
DESCRIPTION
(7) The disclosed embodiments relate to and provide an integrated sensor and service port for HVAC (heating, ventilating, and air conditioning) equipment or an HVAC system. In one embodiment, the sensor may be a pressure sensor. In another embodiment, the sensor may be a temperature sensor or a combined pressure and temperature sensor. In one or more embodiments, the integrated sensor and service port comprises an anti-blowback feature/mechanism.
(8) In one or more embodiments disclosed herein, the integrated sensor and service port may comprise a pressure sensor and may be placed and used to e.g., determine: (1) pressure at the suction line service valve and/or (2) pressure at the liquid line service valve. The integrated sensor and service valve port may be connected to one or both of the Schrader valves (high side and low side).
(9)
(10) The first connection portion 114 is shown in an exploded view in
(11) The second connection portion 116 of the integrated sensor and service port 100, due to its configuration discussed below, may be used as a service port to be connected to the charging line or other service equipment. In essence, the second connection portion 116 is an extension of the equipment's service port, allowing a charging or other line to be connected to the unit through the integrated sensor and service port 100.
(12) As shown in the cross-sectional view of
(13) As shown in the cross-sectional view of
(14) In the illustrated embodiment, and as shown in
(15) The sensor 120 is also connected to the third connection portion 118. As shown in
(16) In one embodiment, the housing 112 may be made of brass or any other material suitable for use in an HVAC environment. The integrated sensor and service port 100 is weather proof and leak proof as all of its components are integrated into the house.
(17) As can be appreciated, the integrated sensor and service port 100 disclosed herein has several advantages over the traditional mechanisms used to check the pressure or temperature of an HVAC unit. For example, there is no need to disconnect charging while testing the pressure or temperature. Moreover, because the components of the disclosed integrated sensor and service port 100 are integrated as one assembly, there are no connections or portions that leak. In addition, because the components of the disclosed integrated sensor and service port 100 are integrated as one assembly, it is compact and has a small size that does not lend itself to physical damage. Furthermore, the disclosed integrated sensor and service port 100 is esthetically pleasing.
(18)
(19) The first connection portion 214 may include a brass tube flare fitting 224, flare nut 222 and a depressor fitting 226 (as e.g., a Schrader depressor fitting) integrated therein. As can be appreciated, the first connection portion 214 may be connected to a service port typically used for HVAC equipment (e.g., Schrader valve or other type of valve) using the flare nut 222. In the illustrated example, the depressor fitting 226 is connected to a depressor 228 that extends through and outside of the housing 212 at depressor region 260.
(20) In one or more embodiments, the depressor 228 may have a threaded portion 229 that may be screwed into a threaded portion 262 formed in region 260 of the housing 212. As such, the depressor 228 may be manipulated (i.e., rotated and or moved in a first direction) by a technician, installer or other personnel to retract the depressor fitting 226 further inside the housing 212 and away from the service port when it is desired to keep the service port closed (e.g., when it is desired that the depressor fitting 226 not depress the Schrader valve, keeping the service port closed or in a closed position). In addition, the depressor 228 may be manipulated (i.e., rotated and or moved in a second direction) by a technician, installer or other personnel to move the depressor fitting 226 towards the service port and activate the service port when it is desired to open up the service port (e.g., when it is desired that the depressor fitting 226 depress and open up the port's valve—i.e., in an opened position).
(21) In the illustrated example, the first connection portion 214 includes a Schrader valve depressor fitting 226 adapted to open a Schrader valve or other type of valve used by the equipment's service port when the depressor 228 is rotated in the second direction. Thus, once the first connection portion 214 is connected to the HVAC equipment, and the depressor 228 is fully rotated in the second direction, the HVAC equipment's service port (e.g., valve) is opened by the depressor fitting 226.
(22) In one or more embodiments, a depressor O-ring 240 may be included as part of the anti-blowback mechanism disclosed herein. The depressor O-ring 240 may be used to seal off refrigerant once the integrated sensor and service port 200 is installed and or during the installation of the integrated sensor and service port 200 on the service port.
(23) The second connection portion 216 of the integrated sensor and service port 200, due to its configuration discussed below, may be used as a service port to be connected to the charging line or other service equipment. In essence, the second connection portion 216 is an extension of the equipment's service port, allowing a charging or other line to be connected to the unit through the integrated sensor and service port 200.
(24) As shown in the cross-sectional view of
(25) As shown in the cross-sectional view of
(26) In the illustrated embodiment, and as shown in
(27) The sensor 220 is also connected to the third connection portion 218. As shown in
(28) In one embodiment, the housing 212 may be made of brass or any other material suitable for use in an HVAC environment. The integrated sensor and service port 200 is weather proof and leak proof as all of its components are integrated into the house.
(29) In one or more embodiments, the integrated sensor and service port 200 comprises the anti-blowback mechanism to obtain advantages over prior assemblies (e.g., assembly 10 of
(30) As such, the disclosed integrated sensor and service port 200 may provide a method of installing the port 200 without leaking fluid by first sealing the sensor 220 housing to the service valve and then engaging the Schrader valve core with a depressor fitting 226 controlled by a threaded depressor 228. The threaded depressor 228 has two seals: a temporary seal while the depressor fitting 226 is engaging the service port valve core and a permanent seal for when the service port valve core is fully engaged. In this way the sensor 220 is exposed to the full pressure from the fluid without allowing that pressure to be exposed to the atmosphere during installation.
(31) The foregoing examples are provided merely for the purpose of explanation and are in no way to be construed as limiting. While reference to various embodiments is made, the words used herein are words of description and illustration, rather than words of limitation. Further, although reference to particular means, materials, and embodiments are shown, there is no limitation to the particulars disclosed herein. Rather, the embodiments extend to all functionally equivalent structures, methods, and uses, such as are within the scope of the appended claims.
(32) Additionally, the purpose of the Abstract is to enable the patent office and the public generally, and especially the scientists, engineers and practitioners in the art who are not familiar with patent or legal terms or phraseology, to determine quickly from a cursory inspection the nature of the technical disclosure of the application. The Abstract is not intended to be limiting as to the scope of the present inventions in any way.