The apparatus described below generally relates to a VPD sensor for a horticultural environment. In particular, the VPD sensor can be configured to detect an environmental parameter of a soil substrate to facilitate notification to a user when the environmental parameter is out of range.
When plants are grown in an indoor horticultural environment, such as a greenhouse, the vapor pressure deficit of the surrounding atmosphere can affect the viability and growth of the plants. A vapor pressure deficit sensor can be installed in the indoor horticultural environment that detects the vapor pressure deficit and provides an indicator to a user to allow the user to intervene when the vapor pressure deficit is outside of a desired range.
Various embodiments will become better understood with regard to the following description, appended claims and accompanying drawings wherein:
Embodiments are hereinafter described in detail in connection with the views and examples of
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A cable (not shown) can be provided that houses both the power bus 72 and the CAN bus 74 and is plugged into each of the VPD sensor 10 and the remote controller 70. The electrical connector 22 (
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The VPD sensing module 58 can include a humidity sensing module 84 and a temperature sensing module 86 that are each in signal communication with the onboard controller 82 such that the onboard controller 82 is effectively in signal communication with the VPD sensing module 58 as a whole by way of being in signal communication with each of the humidity sensing module 84 and the temperature sensing module 86. The humidity sensing module 84 can be configured to measure the humidity in the surrounding air and provide the humidity measurement as humidity data (e.g., via a transmitted analog or digital signal). The humidity sensing module 84 can measure the humidity in the surrounding air using any of a variety of techniques that may be currently known or hereafter developed. The temperature sensing module 86 can be configured to measure the temperature in the surrounding air and provide the temperature measurement as temperature data (e.g., via a transmitted analog or digital signal). The temperature sensing module 86 can measure the temperature in the surrounding air using any of a variety of techniques that may be currently known or hereafter developed.
The onboard controller 82 can then use the humidity data and the temperature data from the humidity sensing module 84 and the temperature sensing module 86 to calculate a VPD value of the surrounding air. In one embodiment, the onboard controller 82 can utilize a lookup table that maps different humidity and temperature values to specific VPD values. In some instances, the onboard controller 82 can take average the values of different humidity and temperature measurements that are received during a discrete time period to account for any erroneous measurements that might be present in some of the individual humidity and temperature measurements during that discrete time period.
The onboard controller 82 can be in signal communication with the light ring 26. When the VPD value is within a desired range, the onboard controller 82 can cause the light ring 26 to be illuminated with a colored light, such as a green light, that indicates to a user that the VPD value of the surrounding air is acceptable. When the VPD value is outside of a desired range, the onboard controller 82 can cause the light ring 26 to be illuminated with a different colored light, such as a red light, that indicates to a user that the VPD value is not acceptable. In one embodiment, the light ring 26 can include a plurality of LEDs (not shown) that are distributed throughout the light ring 26 which causes the light ring 26 to effectively glow with the particular color prescribed by the onboard controller 82. It is to be appreciated that the humidity measurement and/or the temperature measurement can additionally or alternatively cause the light ring 26 to be illuminated in different colors as a function of whether those measurements are within a desired range. It is also to be appreciated that although a light ring is described, any of a variety of suitable alternative indicating arrangements are contemplated, such as, for example, a single LED.
The onboard controller 82 can also be in signal communication with the display 32. The onboard controller 82 can cause one or more of the humidity level, the temperature, or the VPD value to be displayed on the display 32 for presentation to the user. In one embodiment, the humidity level, the temperature, and/or the VPD value displayed on the display 32 can be updated in real time. The display 32 can be an LCD screen, a segmented display or any other display type that is capable of presenting a numerical representation of the humidity level, the temperature, and/or the VPD value to a user.
The onboard controller 82 can be in signal communication with a CAN communication module 88 that is communicatively coupled with the CAN bus 74 and is configured to communicate with the remote controller 70 using a CAN architecture. The CAN architecture can facilitate bidirectional communication between the VPD sensor 10 and the remote controller 70 and between the VPD sensors themselves. The remote controller 70 can poll the VPD sensor 10 for humidity data, temperature data, and/or VPD data that might include the humidity level, temperature and/or VPD value and an indication of whether one or more of those values are outside of a predefined range. The onboard controller 82 can respond accordingly with a response message that is transmitted to the remote controller 70 and includes the specific data requested by the remote controller 70. In response, the remote controller 70 can cause the humidity level, the temperature, and/or the VPD value to be displayed on a native screen (not shown) and/or can generate an alarm for a user if the any of those values are outside of their predefined range.
The CAN architecture can also allow the remote controller 70 to detect a problem with the health of the VPD sensor 10. If the remote controller 70 detects a problem with the health of one or more of the VPD sensors 10 (e.g., based on the response message from the VPD sensor 10), such as a communication problem or as a result of a fault code transmitted to the CAN bus 74 by the remote controller 70, the remote controller 70 can notify a user of the problematic VPD sensor by activating an indicator (e.g., a light or an audible sound) on the problematic VPD sensor (e.g., one of LEDs 24), activating an indicator on a surrounding VPD sensor (e.g., intermittently illuminating an indicator on an adjacent VPD sensor to the problematic VPD sensor (e.g., an immediately upstream or downstream sensor)), and/or displaying the unique ID of the problematic VPD sensor on the native display.
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The sidewall 28 of the lower housing 14 can define a pair of openings 96 that are disposed beneath the air gap 94 (e.g., when viewed relative to the centerline C) and that are in fluid communication with the interior 52. Each opening 96 can cooperate with the air gap 94 to allow for the surrounding air to flow through the interior 52 along a fluid pathway F that extends into the interior 52 and between the openings 96 and the air gap 94. The openings 96 can be disposed on opposite sides of the sidewall 28. In one embodiment, each of the openings 96 can extend circumferentially along part of the sidewall 28.
The sidewall 28 of the lower housing 14 can include an upper portion 100 that is disposed adjacent to the upper housing 12 and a lower portion 102 that is disposed adjacent to the bottom wall 30. The upper and lower portions 100, 102 can be spaced from each other and can thus cooperate to define the openings 96 such that the fluid pathway F at the openings 96 is routed between the upper and lower portions 100, 102. The PCB 56 can be positioned with respect to the upper and lower portions 100, 102 such that the VPD sensing module 58 is disposed in the interior 52 adjacent to the lower portion 102.
Because the lower portion 102 is disposed beneath the openings 96, when the surrounding air is introduced through the openings 96 and flows over the lower portion 102, the surrounding air can be at least at least partially diverted into the lower portion 102 before it is exhausted through the air gap 94. This diversion into the lower portion 102 can cause the surrounding air to take a tortuous path through the lower portion 102 which effectively mixes the surrounding air within the interior 52. The mixed air can enhances the cooling of the electrical components air and can mitigate the occurrence of humidity and temperature “hot spots” at the VPD sensing module 58 that might cause erroneous humidity and temperature detections. In addition, by locating the VPD sensing module 58 towards the bottom of the lower portion 102, the mixed air that reaches the VPD module 58 there is more likely to be more thoroughly mixed which can further enhance the accuracy of the VPD sensing module 58.
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The foregoing description of embodiments and examples has been presented for purposes of illustration and description. It is not intended to be exhaustive or limiting to the forms described. Numerous modifications are possible in light of the above teachings. Some of those modifications have been discussed and others will be understood by those skilled in the art. The embodiments were chosen and described for illustration of various embodiments. The scope is, of course, not limited to the examples or embodiments set forth herein but can be employed in any number of applications and equivalent devices by those of ordinary skill in the art. Rather, it is hereby intended that the scope be defined by the claims appended hereto. Also, for any methods claimed and/or described, regardless of whether the method is described in conjunction with a flow diagram, it should be understood that unless otherwise specified or required by context, any explicit or implicit ordering of steps performed in the execution of a method does not imply that those steps must be performed in the order presented and may be performed in a different order or in parallel.
This application claims priority of U.S. provisional patent application Ser. No. 63/424,106 filed Nov. 9, 2022, and hereby incorporates this patent application by reference herein in its entirety.
Number | Date | Country | |
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63424106 | Nov 2022 | US |