PLANT WATER SENSOR
20190187072 ยท 2019-06-20
Inventors
- Rashad Ramzan (Al Ain, AE)
- Omar Farooq Sidiqui (Al Ain, AE)
- Muhammad Amin (Al Ain, AE)
- Nabil Bastaki (Al Ain, AE)
Cpc classification
International classification
G01R27/26
PHYSICS
Abstract
The plant water Anomalous Phase sensor can determine moisture levels in plant leaves, stems and wood. The sensors described include several embodiments of the sensor, all of which estimate moisture levels by determining changes in the phase spectrum of an anomalous-phase resonator. Two embodiments include a planar transmitting antenna array with two slightly detuned patch antennas and a detector. In a first embodiment, the detector is a dipole antenna centered and out of plane with the transmitting antenna array. In a second embodiment, the detector is a singular rectangular patch antenna coplanar with the transmitting antenna array. The third embodiment is similar to the second embodiment, but is formed on a flexible substrate, so that the sensor can be wrapped about a twig, branch or other plant structure, in a non-coplanar arrangement. To compensate for temperature affects, a reference sensor may be integrated with an active sensor.
Claims
1. A plant water sensor that determines moisture through Anomalous phase measurement, comprising: an insulating substrate having a first surface; an input port on the first surface adapted for connection to a signal source; a transmitting antenna array having a first substantially rectangular, conductive transmitting patch antenna on the first surface and a second substantially rectangular, conductive, transmitting patch antenna on the first surface, the first and second transmitting patch antennas being slightly detuned, whereby the first and second transmitting antennas have slightly different dimensions, the insulating substrate and the first and second transmitting patch antennas defining a sample platform for receiving a sample of plant material to be tested for water content; a microstrip input transmission line on the first surface electrically connecting the input port to the first and second transmitting patch antennas, thereby splitting an input signal between the first and second transmitting antennas; a receiving antenna; and an output port electrically connected to the receiving antenna, the output port being adapted for connection to a signal analyzer circuit.
2. The plant water Anomalous Phase sensor as recited in claim 1, wherein the first patch antenna has a first length and a first width, the second patch antenna has a second length and a second width, the first length and the second length being unequal and the first width and the second width being unequal.
3. The plant water Anomalous Phase sensor as recited in claim 1, wherein the receiving antenna comprises a dipole antenna disposed in a plane orthogonal to the first and second transmitting antennas, and is centered with and spaced a distance D from the transmitting antenna array.
4. The plant water Anomalous Phase sensor as recited in claim 3, wherein the distance D is at least 4 cm.
5. The plant water Anomalous Phase sensor as recited in claim 1, wherein the receiving antenna comprises: a substantially rectangular, conductive, receiving patch antenna on the first surface coplanar with the first and second transmitting patch antennas, the receiving patch antenna having a third length and a third width; and a microstrip output transmission line on the first surface electrically connecting the receiving patch antenna to the output port.
6. The plant water Anomalous Phase sensor as recited in claim 1, wherein said first and second transmitting patch antennas and said receiving antenna are positioned and configured so that near field emissions of the same input signal from the slightly detuned first and second transmitting antennas are mixed at said receiving antenna, thereby forming an output signal exhibiting anomalous phase dispersion correlated with water content of the sample of plant material on the sample platform.
7. The plant water Anomalous Phase sensor as recited in claim 1, wherein the insulating substrate, the first transmitting patch antenna, the second transmitting patch antenna and the receiving patch antenna are all formed of flexible material, such that the sensor can be wrapped around itself to form a tube around the sample of plant material.
8. A system for sensing plant water content, comprising: at least one plant water sensor having: an insulating substrate having a first surface; an input port on the first surface; a transmitting antenna array including a first substantially rectangular, conductive transmitting patch antenna on the first surface and a second substantially rectangular, conductive, transmitting patch antenna on the first surface, the first and second transmitting patch antennas being slightly detuned, the substrate and the transmitting antennas being adapted for receiving a sample of plant material to be tested for water content extending across the transmitting antennas; an input transmission line on the first surface electrically connecting the input port to the first and second transmitting patch antennas in order to split an input signal between the first and second transmitting antennas; a receiving antenna disposed for receiving superimposed signals from the first and second slightly detuned transmitting antennas; and an output port electrically connected to the receiving antenna; a sensor source having an RF signal generator electrically connected to the input port for supplying an input RF signal thereto; and a sensor receiver electrically connected to the output port for receiving an output RF signal therefrom.
9. The system for sensing plant water as recited in claim 8, wherein: the at least one plant water sensor comprises a first plant water sensor and a second reference sensor, the first plant water sensor being in close proximity to a plant sample and the second reference sensor being in close proximity to a reference swab; the sensor source further comprises a power divider for connecting the signal generator to the input ports of the first plant water sensor and the second reference sensor, and the sensor receiver comprises: a first mixer connected to the output port of the first plant water sensor a second mixer connected to the output port of the second reference sensor; a frequency synthesizer connected to the first and second mixers; a first amplification and filtering circuit connected to an output of the first mixer; a second amplification and filtering circuit connected to an output of the second mixer; a first analog-to-digital converter connected to an output of the first amplification and filtering circuit; a second analog-to-digital converter connected to an output of the second amplification and filtering circuit; and a processor connected to an output of the first analog-to-digital converter and an output of the second analog-to-digital converter.
10. The system for sensing plant water as recited in claim 9, further comprising a video display connected to the processor.
11. The system for sensing plant water as recited in claim 9, further comprising a wireless communication module connected to the processor.
12. The system for sensing plant water as recited in claim 8, wherein the receiving antenna comprises: a substantially rectangular, conductive, receiving patch antenna on the first surface coplanar with the first and second patch antennas, the receiving patch antenna having a third length and a third width; and an output transmission line on the first surface electrically connecting the receiving patch antenna to the output port.
13. The system for sensing plant water as recited in claim 12, wherein the first surface is planar and the first transmitting patch antenna, the second transmitting patch antenna and the receiving patch antenna are all coplanar on the first surface.
14. The system for sensing plant water as recited in claim 12, wherein the insulating substrate, the first transmitting patch antenna, the second transmitting patch antenna and the receiving patch antenna are all formed of flexible material, such that the sensor can be wrapped around itself to form a tube.
15. A method of sensing water content in plant material, comprising the steps of: extending a sample of plant material across a pair of slightly detuned microstrip patch antennas; inputting a signal split between the pair of slightly detuned microstrip patch antennas for transmission therefrom; receiving superimposed near field signals transmitted from the pair of slightly detuned microstrip patch antennas, the superimposed near field signals exhibiting anomalous phase dispersion; analyzing the received superimposed near field signals to determine the frequencies at which reversal of slope in the phase of the near field signals occurs; computing resonant frequency of the received superimposed near field signals from the frequencies at which reversal of slope in the phase of the near field signals occurs; and comparing the computed resonant frequency with the resonant frequencies of similar calibrated plant samples of known water content to determine the water content of the sample plant material.
16. The method of sensing water content in plant material according to claim 15, further comprising the steps of: continuously monitoring the received superimposed near field signals; and signaling a change in water content when the computed resonant frequency changes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020] Similar reference characters denote corresponding features consistently throughout the attached drawings.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0021] The plant water sensor determines moisture levels in plant leaves, stems and wood. The sensors described include two embodiments of the sensor, both of which estimate moisture levels by determining changes in the phase spectrum of an anomalous phase resonator. The embodiments of the plant water sensor have two unequal patch antennas configured to combine near fields to generate a signal in the terahertz spectrum exhibiting the anomalous phase.
[0022] As described in our pending patent application entitled Dielectric Constant Detection Method and Device Using Anomalous Phase Dispersion, published as U.S. Patent Publication No. 2017/0131334 on May 11, 2017 (two of the present inventors are co-inventors in the '334 application), the phrase anomalous dispersion refers to a phenomenon that has been observed in the scattering parameters of dielectric materials, and particularly in the s.sub.21 parameter, also referred to as the transmission coefficient or transmission phase. In certain media, when used as a transmission line, the transmission phase exhibits a double slope reversal centered around the resonance frequency, which is in the terahertz range. This behavior is referred to as anomalous dispersion, or anomalous phase dispersion. The resulting resonant magnitude and phase spectra are connected through the well-known Kramers-Kronig relations. It has been shown by the present inventors that based on these relations, any material placed under the microstrip or above the microstrip can be completely characterized by the phase measurement in the anomalous dispersion due to the fact that the electric field is above and below the microstrip transmission line. The effect of the electric field on the dielectric constant and other dielectric properties allows monitoring for moisture levels and changes in water content, e.g., by the shift in the resonant frequency at which the double slope reversal occurs. The present plant water sensor shows that this phenomenon is not limited to transmission lines, but extends to signals radiated from an antenna array, permitting the construction of the present plant water sensors, which are relatively immune from the effects of environmental noise levels, since the phenomenon affects the phase of the signal.
[0023] A first embodiment 100 of the plant water sensor is shown in
[0024] The detector or receiving antenna for the first embodiment 100 of the plant water sensor is a dipole antenna 112. The dipole antenna 112 is attached to a support S (which may be part of the plant being sensed) using a bracket 114 or other structure. The antenna 112 is isolated from the bracket using an insulator 116. An output port 118 is electrically connected to one end of the dipole antenna 112. The dipole antenna 112 arranged substantially perpendicular to the top surface 103 and centered with and spaced a distance D from the transmitting antenna array. Preferably the distance D is at least 4 cm, to best detect the radiative anomalous phase, as described further below.
[0025] In
[0026] A second embodiment 300 of the plant water sensor is shown in
[0027] The detector or receiving antenna for the second embodiment 300 of the plant water sensor is a substantially rectangular, conductive, receiving patch antenna 302 on the top surface 103 of the insulating substrate 102 and having a length L.sub.3 and a width W.sub.3. An output transmission line 306 on the top surface 103 electrically connects the receiving patch antenna 302 to an output port 304.
[0028] In
[0029]
[0030]
[0031]
[0032] The second embodiment of the plant water sensor 300 was simulated using the Agilent Momentum full wave simulator.
[0033] In addition to sensing moisture levels in plants, the sensors 100 and 300 may be used to sense moisture levels in a block of wood by placing the block of wood over the transmitting antennas in place of the leaf in
[0034] It is to be understood that the plant water sensor is not limited to the specific embodiments described above, but encompasses any and all embodiments within the scope of the generic language of the following claims enabled by the embodiments described herein, or otherwise shown in the drawings or described above in terms sufficient to enable one of ordinary skill in the art to make and use the claimed subject matter.