HVAC actuator with heating apparatus
11530838 · 2022-12-20
Assignee
Inventors
Cpc classification
F24F13/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2221/34
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F24F2140/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
An HVAC actuator (1) comprises a motor (12), a motor controller (13) coupled to the motor (12), and a heating apparatus (14) thermally coupled to the HVAC actuator (1). The HVAC actuator (1) further comprises a condensation controller (15) coupled to the heating apparatus (14). The condensation controller (15) is configured to monitor at least one condensation parameter, and to control the heating apparatus (14) using the at least one condensation parameter.
Claims
1. An HVAC actuator (1), comprising: a motor (12); a motor controller (13) coupled to the motor (12); and a heating apparatus (14) arranged inside the HVAC actuator (1) and thermally coupled to the HVAC actuator (1); wherein the HVAC actuator (1) further comprises a condensation controller (15) coupled to the heating apparatus (14); the condensation controller (15) being configured to monitor at least—two condensation parameters inside the HVAC actuator (1), wherein the HVAC actuator (1) further comprises a sensing device (17) arranged inside the HVAC actuator (1) configured to detect the at least two condensation parameters inside the HVAC actuator (1), wherein the HVAC actuator (1) further comprises a memory unit (16) configured to store a set of condensation thresholds as tables or as functions, wherein the set of condensation thresholds relate to a dew point inside the HVAC actuator (1), wherein the condensation controller (15) is configured to select a condensation threshold, from the set of condensation thresholds stored in the memory unit (16) using at least one of the two detected condensation parameters, and wherein the condensation controller (15) is configured to compare the at least one of the two detected condensation parameters to the selected condensation threshold, and to control the heating apparatus (14) using at least one of the condensation parameters and the selected condensation threshold in accordance with the comparison to avoid condensation inside the HVAC actuator (1).
2. The HVAC actuator (1) according to claim 1, wherein the sensing device (17) comprises a humidity sensor (171) configured to detect humidity as a condensation parameter.
3. The HVAC actuator (1) according to claim 2, wherein the humidity sensor (171) is a capacitive humidity sensor.
4. The HVAC actuator (1) according to claim 1, wherein the sensing device (17) comprises a temperature sensor (172) configured to detect temperature as a condensation parameter.
5. The HVAC actuator (1) according to claim 1, wherein the condensation controller (15) is configured to control the heating apparatus (14) by performing at least one of: turning on the heating apparatus (14), turning off the heating apparatus (14), and increasing a heating power of the heating apparatus (14).
6. The HVAC actuator (1) according to claim 1, wherein the condensation controller (15) is configured to generate the condensation threshold indicating a critical humidity.
7. A method of operating an HVAC actuator (1) comprising a motor (12), a motor controller (13) coupled to the motor (12), and a heating apparatus (14) arranged inside HVAC actuator (1) and thermally coupled to the HVAC actuator (1), the method comprising: monitoring, by a condensation controller (15) of the HVAC actuator (1), of at least two condensation parameters inside the HVAC actuator (1); and wherein the monitoring of at least one condensation parameter includes detecting the condensation parameter by a sensing device (17) arranged inside the HVAC actuator (1), wherein the HVAC actuator (1) further comprises a memory unit (16) configured to store a set of condensation thresholds as tables or as functions, wherein the set of condensation thresholds relate to a dew point inside the HVAC actuator (1), wherein the condensation controller (15) selects a condensation threshold, from the set of condensation thresholds stored in the memory unit (16) using at least one of the two detected condensation parameters, and wherein the condensation controller (15) compares the at least one of the two condensation parameters to the selected condensation threshold and controls the heating apparatus (14) using at least one of the condensation parameters and the selected condensation threshold in accordance with the comparison to avoid condensation inside the HVAC actuator (1).
8. The method according to claim 7, wherein the condensation controller (15) controls the heating apparatus (14) by performing at least one of: turning on the heating apparatus (14), turning off the heating apparatus (14), and increasing a heating power of the heating apparatus (14).
9. The HVAC actuator (1) according to claim 1, wherein the heating apparatus (14) is set to be always on in case a detected temperature as one of the condensation parameters is below a predefined temperature, and wherein the heating apparatus (14) is set to be always off in case the detected temperature as one of the condensation parameters is above a predefined temperature.
10. The method of operating an HVAC actuator (1) according to claim 7, wherein the heating apparatus (14) is set to be always on in case a detected temperature as one of the condensation parameters is below a predefined temperature, and wherein the heating apparatus (14) is set to be always off in case the detected temperature as one of the condensation parameters is above a predefined temperature.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will be explained in more detail, by way of example, with reference to the drawings in which:
(2)
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(4)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(5)
(6) Further thermal couplings to further (not illustrated) components of the HVAC actuator 1 are indicated by two additional double lines. The heater 14 may be a resistive or an inductive heater. Alternatively, the heater 14 may be implemented by exploiting the currents in the coils of the motor. The heater 14 may be coupled to a printed circuit board (PCB) arranged inside the HVAC actuator 1. Additionally, the heater 14 may feature a variable heating power. Optionally, the HVAC actuator 1 may comprise additional heaters, thermally coupled to components of the HVAC actuator 1.
(7) The motor 12 is operatively coupled to the drive unit 11. The motor controller 13 is coupled to the motor 12. The heater 14 is coupled to a condensation controller 15, as indicated by the double arrow. The condensation controller 15 controls the heating apparatus 14, for example for turning the heater 14 on or off, or to increase or decrease the heating power. In a variant, the condensation controller 15 and the motor controller 13 may be integrated in a central controller unit (not illustrated). The condensation controller 15 may comprise electronic circuitry with components such as for example (programmed) microprocessors, microcontrollers, ASICs or discrete electronic components. The condensation controller 15 is configured to monitor at least one condensation parameter and to control the heater 14 using the at least one condensation parameter.
(8) The condensation controller 15 is coupled to a memory unit 16, such that condensation thresholds stored in the memory unit 16 can be accessed by the condensation controller 15. The memory unit 16 may further store other data or signals such as, for example, detected condensation parameters or commands for the heater 14. The memory unit 16 may be integrated into the condensation controller 15. Alternatively, the memory unit 16 may be part of a memory of the motor controller 13.
(9) The condensation controller 15 is further coupled to a sensing device 17 from which the condensation controller 15 obtains (reads out) condensation parameters. The sensing device 17 comprises a humidity sensor 171 and a temperature sensor 172. The condensation parameters read from the sensing device 17 includes the humidity detected by the humidity sensor 171 and/or the temperature detected by the temperature sensor 172. In an embodiment, the sensing device 17 comprises further sensors, as indicated by the dotted line in
(10) The sensing device 17 may be read out by the condensation controller 15 continuously or periodically with a certain rate. The sensing device 17 may be periodically read out by the condensation controller 15 after each heating command sent to the heater 14 by the condensation controller 15. This has the advantage that the HVAC actuator 1 may be adjusted continuously to the environmental conditions, for avoiding the components to be negatively affected by condensation.
(11)
(12)
(13) By using the condensation controller 15 according to the described method, a smart and reliable heating method for adapting to varying environmental conditions, especially for avoiding detrimental condensation inside the housing of the HVAC actuator 1, may be achieved. The method has the particular advantage that an avoidance of condensation may be achieved without requiring a user of the HVAC actuator 1 being active, i.e. without additional external intervention, for example for controlling the heater 14.