Soil Sensor
The soil sensor addresses measurement errors by using separate signal lines and ground lines to reduce interference, enhancing the accuracy of soil moisture content detection.
Patent Information
- Application Number
- JP2022091822
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-06
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2042-06-06
AI Technical Summary
Existing soil sensors inaccurately measure soil moisture content due to the inclusion of moisture in the detection area when switching between high-frequency and low-frequency modes, leading to errors in detection.
A soil sensor design with separate signal lines for high-frequency and low-frequency electromagnetic waves, where the second signal line is positioned inside the first and surrounded by a ground line, reducing interference and enhancing accuracy.
The sensor effectively suppresses electric field interference between signal lines, improving the accuracy of volumetric water content and water potential measurements.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The disclosure herein relates to a soil sensor for detecting soil conditions. [Background technology]
[0002] Patent Document 1 discloses a soil sensor that simultaneously measures the water potential and volumetric water content of soil. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] US Patent No. 7,042,234 Summary of the Invention [Problem to be solved by the invention]
[0004] The soil sensor described above detects volumetric water content and water potential by switching between high-frequency and low-frequency modes using the same probe electrode. For example, when detecting in high-frequency mode, the moisture content of the porous body is also included in the detection area, which can lead to errors in detecting the moisture content of the soil.
[0005] An object of the disclosure in this specification is to provide a soil sensor that can reduce errors in detecting soil moisture content. [Means for solving the problem]
[0006] The multiple aspects disclosed in this specification employ different technical means to achieve their respective objectives. Furthermore, the reference symbols in parentheses in the claims and this section are merely examples showing the correspondence between specific means described in the embodiments below as one aspect, and do not limit the technical scope.
[0007] One of the soil sensors disclosed is , electricA first signal line (51) through which magnetic waves are transmitted and which faces the soil, and a porous body portion (60) having water permeability and water retention properties. , electric The device includes a second signal line (61) through which magnetic waves are transmitted and which faces the soil via a porous body portion, and ground lines (52, 62) which are arranged more inward than the first signal line, and the second signal line is arranged more inward than the first signal line and the ground line.
[0008] This soil sensor , electric Inside the first signal line through which the magnetic waves are transmitted , electric A second signal line is arranged to transmit magnetic waves. Furthermore, a ground line is arranged between the first and second signal lines, Carries the first signal line The influence of the electric field formed by the electromagnetic waves on the second signal line can be suppressed. Carries a second signal line The influence of the electric field formed by the electromagnetic waves on the first signal line can also be suppressed. Therefore, this technology can provide a soil sensor that can reduce detection errors in soil moisture content. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 2 is a control configuration diagram including the soil sensor of the first embodiment. [Figure 2] FIG. 2 is a diagram illustrating a configuration of a soil sensor. [Figure 3] 3 is a schematic cross-sectional view showing the positional relationship between a first detection unit and a second detection unit in the soil sensor. FIG. [Figure 4] FIG. 4 is a diagram showing another example of the porous body portion of the first embodiment. [Figure 5] FIG. 10 is a diagram showing the configuration of a soil sensor according to a second embodiment. [Figure 6] 3 is a schematic cross-sectional view showing the positional relationship between a first detection unit and a second detection unit in the soil sensor. FIG. [Figure 7] FIG. 10 is a partial cross-sectional view of a base portion of the soil sensor of the third embodiment. [Figure 8] FIG. 10 is a diagram showing the configuration of a soil sensor according to a fourth embodiment. [Figure 9]FIG. 10 is a diagram showing a first example of a soil sensor according to a fifth embodiment. [Figure 10] FIG. 10 is a diagram showing a second example of the soil sensor according to the fifth embodiment. [Figure 11] FIG. 13 is a diagram showing a third example of the soil sensor according to the fifth embodiment. [Figure 12] FIG. 10 is a diagram showing a fourth example of the soil sensor according to the fifth embodiment. [Figure 13] FIG. 10 is a diagram showing a fifth example of the soil sensor according to the fifth embodiment. [Figure 14] FIG. 10 is a diagram showing a sixth example of the soil sensor according to the fifth embodiment. [Figure 15] FIG. 13 is a partial cross-sectional view showing the sealing structure between the base and the case according to the sixth embodiment. [Figure 16] FIG. 13 is a cross-sectional view showing a support structure for a porous body according to a seventh embodiment. [Figure 17] FIG. 13 is a cross-sectional view showing a first example of the configuration of a base according to the eighth embodiment. [Figure 18] FIG. 13 is a cross-sectional view showing a second example of the configuration of the base according to the eighth embodiment. [Figure 19] 13A and 13B are diagrams illustrating an abnormality determination process according to the soil sensor of the ninth embodiment. [Figure 20] 13A and 13B are diagrams illustrating an abnormality determination process according to the soil sensor of the tenth embodiment. [Figure 21] 13A and 13B are diagrams illustrating an abnormality determination process according to the soil sensor of the tenth embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, several embodiments for carrying out the present disclosure will be described with reference to the drawings. In each embodiment, parts corresponding to matters described in the preceding embodiment will be assigned the same reference numerals, and duplicate descriptions may be omitted. In each embodiment, when only a part of the configuration is described, other previously described embodiments may be applied to the other parts of the configuration. In addition to combinations of parts that are specifically specified as being combinable in each embodiment, it is also possible to partially combine embodiments even if not specified, as long as there is no particular problem with the combination.
[0011] First embodiment A first embodiment disclosing an example of a soil sensor will be described with reference to FIGS. 1 to 4. The irrigation system includes a water supply device and a control device 100. The water supply device supplies irrigation water to plants in a field. The water supply device includes a pump, a water supply pipe, etc. The pump functions as a water supply source that causes irrigation water to flow down the water supply pipe. The control device 100 controls irrigation based on the supply time and amount of irrigation water supplied from the water supply device to the plants during irrigation. The control device 100 feedback-controls the valve opening of a water supply valve 16 using the detection value of a water pressure sensor 15. The water supply valve 16 controls the flow rate of irrigation water discharged from the water supply pipe by having the valve opening controlled by the control device 100.
[0012] 1, the control device 100 includes an acquisition unit 11, a signal output unit 12, a memory unit 13, and a processing unit 14. In the drawing, the acquisition unit 11 is represented as AD, the signal output unit 12 as SOU, the memory unit 13 as MU, and the processing unit 14 as PU. Environmental values detected by a soil sensor 30 are input to the acquisition unit 11. The water pressure detected by a water pressure sensor 15 and the valve opening of a water supply valve 16 are input to the acquisition unit 11.
[0013] The signal output unit 12 is electrically connected to the water supply valve 16. A control signal for controlling the valve opening degree of the water supply valve 16 is output from the signal output unit 12 to the water supply valve 16.
[0014] The storage unit 13 is a non-transient tangible storage medium that non-temporarily stores programs and data that can be read by a computer or a processor. The storage unit 13 has a volatile memory and a non-volatile memory. The storage unit 13 stores programs that the processing unit 14 uses to execute arithmetic processing. The storage unit 13 temporarily stores data used when the processing unit 14 executes arithmetic processing. The storage unit 13 stores various data input to the acquisition unit 11 and the acquisition times of the various data.
[0015] As shown in FIG. 2, the soil sensor 30 comprises a detection unit 1 and a case unit 2. The detection unit 1 is a part that is buried in the soil of a farm field. The case unit 2 is either buried in the soil or installed outside the soil without being buried in the soil. The case unit 2 houses a circuit unit including a CPU. The circuit unit includes a processing unit 31 that performs calculations using data detected by the detection unit of the soil sensor 30, and a communication unit 32 that communicates with the control device 100. The case unit 2 may also be configured to house a thermistor capable of measuring temperature. An irrigation system that controls irrigation of soil monitors the soil moisture content using the soil sensor 30, and determines whether irrigation is necessary or terminates irrigation depending on the detected value.
[0016] The detection unit 1 includes a first detection unit 5 and a second detection unit 6. The first detection unit 5 includes a first signal line 51 and a ground line 52. The second detection unit 6 includes a second signal line 61, a ground line 62, and a porous body unit 60. The detection unit 1 includes the first signal line 51, the second signal line 61, the porous body unit 60, and a base unit 4.
[0017] The circuit unit built into the case 2 applies a frequency signal corresponding to a predetermined range of high frequency band between the end of the first signal line 51 and the end of the ground line 52. The circuit unit applies a frequency signal corresponding to a predetermined range of low frequency band between the end of the second signal line 61 and the end of the ground line 62. High frequency electromagnetic waves such as microwaves are transmitted through the first signal line 51. Low frequency electromagnetic waves having a frequency lower than that of the electromagnetic waves transmitted through the first signal line 51 are transmitted through the second signal line 61.
[0018] The frequency of the electromagnetic waves transmitted through the first signal line 51 is preferably set to a frequency band that is 100 times or more higher than the frequency of the electromagnetic waves transmitted through the second signal line 61. This frequency relationship significantly contributes to preventing the electric fields generated by one signal line and the electric fields generated by the other signal line from affecting each other.
[0019] The base 4 is preferably formed from, for example, a water-impermeable material, and water does not get inside the base 4. At least the surface of the base 4 is an insulator to prevent short circuits between the first signal lines 51, between the second signal lines 61, and between the first signal lines 51 and the second signal lines 61.
[0020] The base 4 is made of, for example, acrylic or other resin material. The base 4 may be made of a metal such as aluminum or iron, with the surface of the base material being insulated. The base 4 has a plate-like shape with a thickness smaller than its width or length. The base 4 may be what is called a printed circuit board. The base 4 may also have other shapes.
[0021] As shown in FIG. 3, a first signal line 51 and a ground line 52 are provided on one surface of the base 4 in the thickness direction TD. The first signal line 51 and the ground line 52 are provided on the other surface of the base 4 in the thickness direction TD. The first signal line 51 and the ground line 52 are provided in the same configuration on both surfaces of the base 4 in the thickness direction TD. In FIG. 3, the surface on one side in the thickness direction TD is labeled FS, and the back surface on the other side is labeled BS. The first signal line 51 is in direct contact with the soil. The first signal line 51 is provided outside the ground line 52 so as to surround the ground line 52 on the outside. The ground line 52 is provided inside the first signal line 51 and along the first signal line 51 at a certain interval.
[0022] The first signal line 51 and the ground line 52 each include a folded line located at the tip side 4f of the base 4 and a case-side line located at the base side 4r of the base 4. The folded line and the case-side line are connected to form the continuous first signal line 51. The folded line is configured by connecting a portion extending from the case side to the tip side with a portion extending from the case side to the tip side. As shown in FIG. 2, the first signal line 51 includes a pair of folded lines adjacent to each other in the width direction of the base 4. The first signal line 51 includes a pair of case-side lines aligned in the width direction of the base 4. The width direction is perpendicular to both the thickness direction TD and the longitudinal direction LD of the base 4. The first signal line 51 is formed in a loop shape with multiple folded portions on the surface side of the base 4.
[0023] 3, a second signal line 61 and a ground line 62 are provided on the surface of the base 4 on the other side in the thickness direction TD. The second signal line 61 and the ground line 62 are provided on the surface of the base 4 on the other side in the thickness direction TD. The first signal line 51 and the ground line 52 are provided in the same configuration on the front and back surfaces of the base 4 in the thickness direction TD. The second signal line 61 and the ground line 62 are provided so as to be located between a pair of case-side lines.
[0024] The second signal line 61 is located inside the first signal line 51. The second signal line 61 is surrounded by the first signal line 51 on the outside and is located inside the first signal line 51. The ground line 52 and the ground line 62 are located between the second signal line 61 and the first signal line 51. The second signal line 61 is surrounded by the ground line 62 on the outside and is located inside the ground line 62. The second signal line 61 is surrounded by the ground line 52 on the outside and is located inside the ground line 52. The second signal line 61 is located at a position that can avoid the area of the electric field that is formed and spreads by the first signal line 51 and the ground line 52. Therefore, the second signal line 61 and the first signal line 51 can prevent the electric field formed by one of the second signal line 61 and the first signal line 51 from affecting the other signal line.
[0025] The second signal line 61 is covered by a porous body 60 in which a large number of pores are formed. The porous body 60 is made of a material that is water permeable and water retentive. The porous body 60 is made of, for example, resin or ceramics. The second signal line 61 is in contact with the soil via the porous body 60. As shown in FIG. 3 , the porous body 60 has a shape in which surfaces 60a and 60b that face each other in the thickness direction of the base 4 protrude beyond the base 4. The surface 60a on one side in the thickness direction is located in a position that protrudes beyond the surface 4a on one side of the base 4. The surface 60b on the other side in the thickness direction is located in a position that protrudes beyond the surface 4b on the other side of the base 4.
[0026] The first signal line 51 and the second signal line 61 are formed to contain a metal such as gold or copper. The first signal line 51 and the second signal line 61 are ring-shaped and provided along the periphery of the base portion 4. The first signal line 51 and the second signal line 61 are provided in pairs. The shapes and numbers of the first signal line 51 and the second signal line 61 are not limited to the above configuration. The first signal line 51 and the case portion 2 are electrically connected by a conductive wire. The second signal line 61 and the case portion 2 are connected by a conductive wire.
[0027] The porous body 60 preferably has a surface shape exposed to the soil that is a polygon with more than one side. Furthermore, as shown in Fig. 4, the porous body 60 preferably has a surface shape exposed to the soil that is circular or cylindrical. If cylindrical, the porous body 60 has an outer peripheral surface that protrudes beyond the outer peripheral surface of the base 4. Porous body 60 with such a surface shape contributes to improved adhesion to the soil, allowing the ceramic to smoothly absorb moisture from the soil, enabling the appropriate water potential WP to be detected.
[0028] The porous body 60 preferably has a pore distribution that is suitable for the soil used to grow vegetables, etc. The porous body 60 having a pore distribution that is suitable for the soil contributes to measuring the soil water potential WP with high accuracy. For this reason, the pore distribution formed in the porous body 60 is such that pores of various sizes within the range of 0.1 to 100 μm are distributed in uniform numbers.
[0029] The surface 4a and the surface 4b of the base 4 are formed with unevenness having a depth between 0.1 and 500 μm. Unevenness with a depth close to 0.1 μm contributes to improving adhesion between clayey soil and the printed circuit board. Unevenness with a depth close to 500 μm contributes to improving adhesion between sandy soil and the printed circuit board. A base 4 having unevenness of such depth contributes to improving adhesion between the soil and the printed circuit board, and can provide appropriate detection of sensing signals.
[0030] 1, the soil sensor 30 is equipped with a processing unit 31 that functions as a CPU and includes a TDT measurement unit 311 and a capacitance measurement unit 312, and a communication unit 32. The communication unit 32 outputs the processing results by the processing unit 31 to the acquisition unit 11 of the control device 100. The soil sensor 30 may also be configured to include a CPU and measuring devices that function as the TDT measurement unit 311 and the capacitance measurement unit 312 through calculations using a program or the like. The processing unit 31 may perform detection using both the signal line located on one surface 4a and the signal line located on the other surface 4b, or may perform detection using either one of them.
[0031] The TDT measurement unit 311 is connected to the first signal line 51 via a conductive wire. The TDT measurement unit 311 measures the permittivity of the soil using the first signal line 51, which transmits high-frequency electromagnetic waves. The TDT measurement unit 311 measures the relative permittivity of the soil by measuring the transmission time of the electromagnetic waves through the signal line using a time domain transmission (TDT) method, also known as time domain transmission. The TDT measurement unit 311 calculates the volumetric water content VWC using a correlation curve that specifies the relationship between the volumetric water content VWC of the soil and the permittivity or relative permittivity. The correlation curve is a predetermined characteristic curve pre-stored in a memory unit or the like for each soil type. The soil sensor 30 transmits the volumetric water content VWC to the control device 100 via the communication unit 32. For example, the control device 100 controls the irrigation time and amount based on the volumetric water content VWC of the soil.
[0032] The processing unit 31 detects the electrical conductivity EC of the soil based on the slope of the rising edge or the amplitude of the waveform of the transmission signal transmitted by the high-frequency electromagnetic wave through the first signal line 51. The soil sensor 30 transmits the detected electrical conductivity EC to the control device 100 via the communication unit 32. For example, the control device 100 estimates the amount of fertilizer in the soil based on the electrical conductivity EC and uses the estimated amount for controlling irrigation.
[0033] The capacitance measurement unit 312 is connected to the second signal line 61 via a conductive wire. The capacitance measurement unit 312 measures the capacitance of the porous body portion 60 using low-frequency electromagnetic waves transmitted through the second signal line 61. The water potential WP of the soil and the water potential WP of the porous body portion 60 are equivalent due to water adsorption and capillary force. The capacitance measurement unit 312 utilizes this equivalence to measure the water potential WP of the soil using the capacitance of the porous body portion 60. When the soil water potential WP is low, water is held in the soil by a strong force, making it difficult for plants to absorb water from the soil. The soil sensor 30 transmits the measured water potential WP to the control device 100 via the communication unit 32. For example, the control device 100 controls the irrigation time and amount based on the soil water potential WP.
[0034] The control device 100 may control the amount of water or nutrient solution irrigated based on the soil's pF value so that the soil has an appropriate pF value for the cultivated crop. The control device 100 may periodically measure the soil's pF value using a timer and control the amount of water or nutrient solution irrigated based on the measured soil pF value.
[0035] The soil sensor 30 of the first embodiment includes a first signal line 51 that transmits high-frequency electromagnetic waves and faces the soil, and a porous body portion 60 that has water permeability and water retention. The soil sensor 30 also includes a second signal line 61 that transmits low-frequency electromagnetic waves that are lower in frequency than the high-frequency waves and faces the soil via the porous body portion, and a ground line that is located more inward than the first signal line 51. The second signal line 61 is located more inward than the first signal line 51 and the ground line.
[0036] In this soil sensor 30, a second signal line 61, which transmits lower frequency electromagnetic waves, is arranged inside a first signal line 51, which transmits high frequency electromagnetic waves. Furthermore, by placing a ground line between the first signal line 51 and the second signal line 61, it is possible to suppress the influence of the electric field caused by the high frequency electromagnetic waves on the second signal line 61. It is also possible to suppress the influence of the electric field caused by the low frequency electromagnetic waves on the first signal line 51. With this technology, the soil sensor 30 achieves a reduction in errors in detecting soil moisture content.
[0037] The processing unit 31 measures the volumetric water content of the soil using a transmission signal of high-frequency electromagnetic waves transmitted through the first signal line, and measures the water potential of the soil using a low-frequency electromagnetic wave transmitted through the second signal line. This makes it possible to suppress the mutual influence of the electric field generated by one signal line and the electric field generated by the other signal line, thereby providing a sensor that can measure both the volumetric water content and the water potential.
[0038] The processing unit 31 further measures the electrical conductivity of the soil based on the waveform of the transmission signal transmitted through the first signal line by the high-frequency electromagnetic wave. This makes it possible to provide a sensor that can properly measure the volumetric water content, the water potential, and the electrical conductivity.
[0039] Second embodiment The second embodiment will be described with reference to Figures 5 and 6. The soil sensor 130 of the second embodiment differs from the first embodiment in the configuration of the base portion and the porous body portion. The configuration, action, and effect of the second embodiment that are not specifically described are the same as those of the above-mentioned embodiment, and only the differences will be described below.
[0040] The soil sensor 130 shown in FIG. 5 includes a detection unit 101 and a case unit 102. The detection unit 101 is cylindrical and is buried in the soil of a farm field. The case unit 102 may be buried in the soil or installed outside the soil without being buried in the soil. The detection unit 101 includes a first detection unit 5 and a second detection unit 6. The second detection unit 106 includes a second signal line 61, a ground line 62, and a porous body unit 160. The detection unit 101 includes a first signal line 51, a second signal line 61, a porous body unit 160, and a base unit 104.
[0041] The porous body portion 160 corresponds to the porous body portion 60 of the first embodiment. The base portion 104 is formed, for example, from a water-impermeable material, and it is preferable that water does not penetrate into the base portion 104. At least the surface of the base portion 104 is an insulator to prevent short circuits between the first signal lines 51, between the second signal lines 61, and between the first signal lines 51 and the second signal lines 61. The base portion 104 is formed from the same material and with the same surface treatment as the base portion 4 of the first embodiment. The base portion 104 has a longitudinal direction LD that corresponds to the axial direction of the columnar bodies.
[0042] 6, a circular first signal line 51 and a ground line 52 are provided on the circumferential surface of the tip side portion 104f of the base portion 104. A circular first signal line 51 and a ground line 52 are provided on the circumferential surface of the base side portion 104r of the base portion 104. With this configuration, the soil sensor 130 can detect the volumetric water content VWC and the electrical conductivity at two locations spaced apart in the axial direction of the detection unit 101.
[0043] The tip side portion 104f and the root side portion 104r are formed to have the same outer diameter. The first signal line 51 formed on the tip side portion 104f and the first signal line 51 formed on the root side portion 104r are at the same radial position on the base portion 104. The first signal line 51 on the tip side portion 104f and the first signal line 51 on the root side portion 104r are in direct contact with the soil. The ground line 52 is provided on the tip side portion 104f or the root side portion 104r at a position closer to the porous body portion 160 than the first signal line 51. The ground line 52 is provided at a position closer to the porous body portion 160 than the first signal line 51, so as to run along the first signal line 51 at a fixed interval.
[0044] As shown in FIGS. 5 and 6, a second signal line 61 and a ground line 62 are provided on the surface of an intermediate portion 104m of the base portion 104. The intermediate portion 104m is a columnar body formed with an outer diameter smaller than that of the tip side portion 104f and the base side portion 104r. The porous body portion 160 has an outer peripheral surface that is flush with the outer peripheral surface 104a of the base portion 104 and covers the second signal line 61 and the ground line 62. The porous body portion 160 may have an outer peripheral surface that protrudes beyond the outer peripheral surface 104a of the base portion 104. The ground line 62 is provided at a position closer to the tip side portion 104f and a position closer to the base side portion 104r than the second signal line 61.
[0045] The second signal line 61 is located radially inward from the first signal line 51. The second signal line 61 is a circular line that is spaced apart in the axial direction and has a smaller diameter than the first signal line 51. The second signal line 61 is surrounded on the radially outer side RD by the first signal line 51 of the tip side portion 104f spaced apart in the axial direction. The second signal line 61 is surrounded on the radially outer side RD by the ground line 52 of the tip side portion 104f spaced apart in the axial direction. The second signal line 61 is surrounded at the radially outer side RD by the first signal line 51 of the root side portion 104r spaced apart in the axial direction. The second signal line 61 is surrounded at the radially outer side RD by the ground line 52 of the root side portion 104r spaced apart in the axial direction.
[0046] The second signal line 61 and the ground line 62 are covered with a porous body 160 in which a large number of pores are formed. The porous body 160 is a cylindrical body made of a material that is permeable and water-retentive. The porous body 160 is made of, for example, ceramics. The second signal line 61 faces the soil via the porous body 160.
[0047] The first signal line 51 and the second signal line 61 are formed from a material containing a metal such as gold or copper. The first signal line 51 and the second signal line 61 are ring-shaped and provided on the peripheral surface of the base portion 4. The first signal line 51 and the second signal line 61 are provided in pairs. The shapes and numbers of the first signal line 51 and the second signal line 61 are not limited to the above configuration. The first signal line 51 and the case portion 2 are electrically connected by a conductive wire. The second signal line 61 and the case portion 2 are connected by a conductive wire.
[0048] The porous body portion 160 preferably has a pore distribution that is suitable for the soil used to grow vegetables, etc. The porous body portion 160 having a pore distribution that is suitable for the soil contributes to measuring the soil water potential WP with high accuracy. For this reason, the pore distribution formed in the porous body portion 160 is such that pores of various sizes within the range of 0.1 to 100 μm are distributed in uniform numbers.
[0049] The outer peripheral surface 104a of the base 4 is formed with unevenness having a depth between 0.1 and 500 μm. Unevenness with a depth close to 0.1 μm contributes to improving adhesion between clayey soil and the printed circuit board. Unevenness with a depth close to 500 μm contributes to improving adhesion between sandy soil and the printed circuit board. A base 410 having unevenness of such depth contributes to improving adhesion between the soil and the printed circuit board, and can provide appropriate detection of sensing signals.
[0050] Third embodiment The third embodiment will be described with reference to Fig. 7. The soil sensor of the third embodiment differs from the previously described embodiments in the configuration related to the surface of the base. The configuration, action, and effect of the third embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0051] 7, the soil sensor of the third embodiment has a plurality of protrusions 4c that protrude from the surface of the base portion 4, 104. The plurality of protrusions 4c protrude from at least one of the surface 4a on one side and the surface 4b on the other side of the base portion 4, 104. The plurality of protrusions 4c are formed by solidifying molten resin that has been dropped onto the surface 4a on one side or the surface 4b on the other side.
[0052] According to the soil sensor of the third embodiment, the plurality of protrusions 4c contribute to improving the holding ability of the soil sensor in the soil and improving the workability of installing the soil sensor.
[0053] Fourth embodiment The fourth embodiment will be described with reference to Fig. 8. The soil sensor 230 of the fourth embodiment differs from the second embodiment in the configuration of the first detection unit. The configurations, actions, and effects of the fourth embodiment that are not specifically described are the same as those of the above-described embodiments, and only the differences will be described below.
[0054] 8, the soil sensor 230 has a greater number of ring-shaped first signal lines 51 than in the second embodiment. The detection unit 101 of the soil sensor 230 has the first signal lines 51, the second signal line 61, a porous body portion 160, and a base portion 104. The base portion 104 corresponds to the base portion 4 in the first embodiment. The second detection unit 106 includes the second signal lines 61, a ground line 62, and the porous body portion 160.
[0055] The base 104 is provided with a plurality of ring-shaped first signal lines 51 and a plurality of ring-shaped ground lines 52. The first signal lines 51 are arranged at multiple spaced locations on the base 104. The tip side 4f of the base 4 is provided with a plurality of first signal lines 51 spaced apart in the axial direction or longitudinal direction LD. The tip side 4f is provided with a plurality of ground lines 52 spaced apart in the axial direction or longitudinal direction LD. The ground line 52 is provided between two spaced first signal lines 51 on the tip side 4f. The tip side 4f is provided with a temperature sensor 17 that detects the temperature of the soil. This configuration provides a soil sensor 230 that combines a temperature sensor, a water potential detection unit, and multiple TDT detection units. The soil sensor 230's configuration, which integrates multiple detection functions, enables the device to be miniaturized and enables simultaneous detection using multiple methods.
[0056] Fifth embodiment The fifth embodiment will be described with reference to Figures 9 to 14. The soil sensor of the fifth embodiment differs from the previously described embodiments in the shape and configuration of the base and porous body. The configuration, action, and effect of the fifth embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0057] In the soil sensor of the fifth embodiment, the structure forming the porous body portion and the base portion, or the structure forming the first detection portion and the second detection portion, is a regular polyhedron, as shown in Figures 9 to 13. The porous body portion and the base portion shown in Figures 9 to 14 are each made of the same material as in the first embodiment.
[0058] FIG. 9 shows a first example of a soil sensor according to the fifth embodiment. The soil sensor shown in FIG. 9 has a detection unit 201 formed in a regular tetrahedron shape. The detection unit 201 includes a base 204 and a porous body 260. The first signal line 51 and the ground line 62 are arranged over a wide surface area of the base 204 so as to follow the surface. The porous body 260 has a surface that is flush with the surface of the base 204 or that protrudes beyond the surface of the base 204, and covers the second signal line 61. The second signal line 61 is arranged inside the detection unit 201 and more inward than the first signal line 51 and the ground line 62. The soil sensor shown in FIG. 9 has a symmetrical shape, which makes it easier for external stress to be applied evenly, ensuring strength and making it less likely to break.
[0059] FIG. 10 shows a second example of the soil sensor of the fifth embodiment. The soil sensor shown in FIG. 10 has a detection unit 301 formed in a regular hexahedron shape. The detection unit 301 includes a base 304 and a porous body 360. The first signal line 51 and the ground line 62 are arranged over a wide surface area of the base 304 so as to follow the surface. The porous body 360 has a surface that is flush with the surface of the base 304 or that protrudes beyond the surface of the base 304, and covers the second signal line 61. The second signal line 61 is arranged inside the detection unit 301 and the first signal line 51 and the ground line 62. The soil sensor shown in FIG. 10 has a symmetrical shape, which makes it easy for external stress to be applied evenly, ensuring strength and making it less likely to break.
[0060] FIG. 11 shows a third example of the soil sensor of the fifth embodiment. The soil sensor shown in FIG. 11 has a detection unit 401 formed in a regular octahedron shape. The detection unit 401 includes a base 404 and a porous body 460. The first signal line 51 and the ground line 62 are arranged over a wide surface area of the base 404 so as to follow the surface. The porous body 460 has a surface that is flush with the surface of the base 404 or that protrudes beyond the surface of the base 404, and covers the second signal line 61. The second signal line 61 is arranged inside the detection unit 401 and the first signal line 51 and the ground line 62. The soil sensor shown in FIG. 11 has a symmetrical shape, which makes it easy for external stress to be applied evenly, ensuring strength and making it less likely to break.
[0061] FIG. 12 shows a fourth example of the soil sensor of the fifth embodiment. The soil sensor shown in FIG. 12 has a detection unit 501 formed in a regular dodecahedron shape. The detection unit 501 includes a base 504 and a porous body 560. The first signal line 51 and the ground line 62 are arranged on the base 504 over a wide surface area along the surface. The porous body 560 has a surface that is flush with the surface of the base 504 or that protrudes beyond the surface of the base 504, and covers the second signal line 61. The second signal line 61 is arranged inside the detection unit 501 and the ground line 62. The soil sensor shown in FIG. 12 has a symmetrical shape, which makes it easy for external stress to be applied evenly, ensuring strength and making it less likely to break.
[0062] FIG. 13 shows a fifth example of the soil sensor according to the fifth embodiment. The soil sensor shown in FIG. 13 has a detection unit 601 formed in a regular icosahedron shape. The detection unit 601 includes a base 604 and a porous body 660. The first signal line 51 and the ground line 62 are arranged on the base 604 over a wide surface area along the surface. The porous body 660 has a surface that is flush with the surface of the base 604 or protrudes from the surface of the base 604, and covers the second signal line 61. The second signal line 61 is arranged inside the detection unit 601 relative to the first signal line 51 and the ground line 62. The soil sensor shown in FIG. 13 has a symmetrical shape, which allows external stress to be applied uniformly, ensuring strength and preventing breakage. FIG. 14 shows a sixth example of the soil sensor according to the fifth embodiment. As shown in FIG. 14, the soil sensor may have a detection unit 701 formed in a spherical shape. The first signal line 51 and the ground line 62 are arranged over a wide surface area of the base portion 704 so as to follow the surface. The porous body portion 760 has a surface that is flush with the surface of the base portion 704 or that protrudes further than the surface of the base portion 704, and covers the second signal line 61. The second signal line 61 is arranged more inward than the first signal line 51 and the ground line 62 within the detection portion 701. The soil sensor shown in FIG. 14 has a symmetrical shape, so external stress is easily applied evenly, ensuring strength and making it less likely to break.
[0063] Sixth embodiment The sixth embodiment will be described with reference to Fig. 15. The soil sensor of the sixth embodiment differs from the previously described embodiments in the support structure of the base portion 4 relative to the case portion 2. The configurations, actions, and effects of the sixth embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0064] 15, the soil sensor of the sixth embodiment includes a seal support part 25 that supports the base part 4 inserted inside the case part 2 and functions as a seal structure. The base part 4 has a part that is inserted into the opening 2c in the case part 2 and is located inside the case part 2, and a part that protrudes outside the case part 2. The gap between the base part 4 and the opening 2c of the case part 2 is sealed by a seal part 24 such as a packing.
[0065] The case 2 further includes an inner case 2ic inside. In other words, the case 2 has a double structure with the inner case 2ic built in, with the case 2 acting as the outer case. The inner case 2ic houses a circuit board 21 including a circuit section. The board 21 is electrically connected to the patterned board or the like of the base 4 via a cable. When the base 4 is inserted into the opening of the inner case 2ic, the gap between the opening 2c of the case 2 and the base 4 is sealed with a seal such as a packing. This seal and seal 24 function to support the base 4. The interior of the inner case 2ic is filled with a potting section 22 made of urethane resin or the like. A water-absorbing material 23 made of a water-absorbing resin material is filled between the case 2 and the inner case 2ic. The water-absorbing material 23 can be made of, for example, polyacrylate. The water-absorbing material 23 prevents water from seeping into the circuit section even if water penetrates inside the case 2, thereby improving the waterproofness of the circuit.
[0066] The seal support portion 25 is formed in a fillet shape on the outside of the case portion 2, in close contact with the surface of the portion of the base portion 4 that protrudes from the case portion 2 to the outside and the surface of the case portion 2. The seal support portion 25 is made of an elastic material that can be deformed by the action of an external force. The seal support portion 25 is preferably made of a urethane resin with high viscosity. The high viscosity of the seal support portion 25 can improve the close contact between the surface of the base portion 4 and the opening 2c of the case portion 2. In this way, the seal support portion 25 functions to support the base portion 4 relative to the case portion 2 and to prevent water from entering the case portion 2.
[0067] Seventh embodiment The seventh embodiment will be described with reference to Fig. 16. The soil sensor of the seventh embodiment differs from the previously described embodiments in the support structure for the porous body portion and the base portion. The configurations, actions, and effects of the seventh embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0068] As shown in FIG. 16 , the soil sensor of the seventh embodiment has a configuration in which a porous body portion 60, a base portion 4, and an outer support portion 7 are sandwiched together. The outer support portion 7 is a plate-shaped portion that faces the soil and is made of, for example, stainless steel. The shaft portion 80a of the bolt 80 penetrates a stack of the outer support portion 7, porous body portion 60, base portion 4, porous body portion 60, and outer support portion 7, which are stacked in this order. This sandwiching configuration constrains the base portion 4, the porous body portions 60 arranged on both sides of the base portion 4, and the outer support portions 7 arranged outside each porous body portion 60, with the bolt 80 and nut 81. The bolt 80 and nut 81 are an example of a constraining member that constrains the stack to compress it.
[0069] The surface of the outer support part 7 has a flatness such that no gap of more than 2 mm occurs between the outer support part 7 and the porous body part 60. This configuration makes it possible to prevent soil particles from getting between the outer support part 7 and the porous body part 60 when the laminate is placed inside the soil. This makes it possible to avoid cracks occurring in the porous body part 60.
[0070] Eighth embodiment The eighth embodiment will be described with reference to Figures 17 and 18. The soil sensor of the eighth embodiment differs from the previously described embodiments in the configuration related to the surface of the base. The configurations, actions, and effects of the eighth embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0071] As shown in the first example of FIG. 17 , the soil sensor of the eighth embodiment includes a base 4 having multiple layers. The base 4 of the eighth embodiment includes multiple signal layers 41 in which first signal lines 51 and ground lines 52 are arranged, and surface layers 42 laminated on the outside of each signal layer 41. The surface layers 42 are provided to form both surfaces of the base 4 in the thickness direction TD. The surface layers 42 are formed of resin. At least a portion of the signal layer 41 is insulated to prevent short circuits between the first signal lines 51. For example, when the thickness of the base 4 is 1.6 mm, the thickness of the surface layer 42 is set to a value between 200 and 400 μm. According to the first example, it is possible to prevent the pattern formed on the base 4 from being damaged by contact with soil, thereby providing a soil sensor with high robustness against soil.
[0072] As shown in the second example of FIG. 18, the soil sensor of the eighth embodiment includes a surface layer 142 made up of multiple layers laminated on the surface of the base portion 4. The surface layer 142 includes an outermost resin layer 142a, a glass layer 142b located inside the resin layer 142a, and a ceramic layer 142c located inside the glass layer 142b. The resin layer 142a is made of a polymer resin and has a thickness of, for example, about 10 μm. The glass layer 142b is a layer with higher hardness than the resin layer 142a and is formed to a thickness of 0.1 to 0.3 μm. The ceramic layer 142c is a porous layer.
[0073] The surface layer 142 includes multiple layers stacked from the outside to the inside, with the glass layer 142b or ceramic layer 142c located inside the outermost resin layer 142a. With this configuration, the glass layer 142b or the like can prevent the pattern formed on the inside from coming into contact with the soil and being damaged, providing a soil sensor that is highly robust against soil.
[0074] Ninth embodiment The ninth embodiment will be described with reference to Fig. 19. The soil sensor of the ninth embodiment differs from the previously described embodiments in that it performs an abnormality determination process for the soil sensor. The configurations, actions, and effects of the ninth embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0075] The soil sensor of the ninth embodiment performs an abnormality determination process using a characteristic curve of soil volumetric water content VWC and water potential WP, as shown in Figure 19. Figure 19 shows an abnormality determination curve with soil volumetric water content VWC set on the horizontal axis and water potential WP set on the vertical axis. Curve 1ab in Figure 19 is a boundary line indicating an abnormal state in which the soil contains a lot of water but the porous body portion is not able to absorb water, resulting in poor adhesion between the sensor and the soil. Curve 2ab in Figure 19 is a boundary line indicating an abnormal state in which water has accumulated in the gap between the porous body portion and the soil, resulting in waterlogging, resulting in dry soil. This abnormality determination curve is a predetermined characteristic curve stored in advance in the memory unit of the soil sensor, etc.
[0076] The processing unit 31 determines that the state is normal when the measured volumetric water content VWC and water potential WP are at a point between curve 1ab and curve 2ab, and determines that the state is abnormal when the measured VWC and WP are not at a point between curve 1ab and curve 2ab.
[0077] A VWC sensor uses a high-frequency electric field radiated into the soil to measure the VWC over the entire area where the electric field spreads. Therefore, the measurement value does not change significantly even if the sensor is not in good contact with the soil. On the other hand, the measurement value of a WP sensor is greatly affected by the quality of the contact with the soil. When the measurement values from these two sensors are combined to draw a soil water retention curve, poor contact will deviate from normal conditions, making it possible to distinguish this from dry soil. Therefore, by using the above curves 1ab and 2ab, it is possible to distinguish between poor contact between the sensor and soil and dry soil and determine an abnormality.
[0078] The processing unit 31 determines whether an abnormality exists using the measured volumetric water content and water potential and two stored abnormality determination curves showing the relationship between volumetric water content and water potential. This makes it possible to distinguish between poor adhesion between the sensor and the soil and dry soil. This avoids problems caused by mistaking poor adhesion for dry soil and resulting in excessive watering, and contributes to correcting the sensor installation condition.
[0079] Tenth embodiment A tenth embodiment will be described with reference to Fig. 20. The soil sensor of the tenth embodiment differs from the previously described embodiments in that it performs an abnormality determination process based on a comparison of measurement values at two locations. The configurations, actions, and effects of the tenth embodiment that are not specifically described are the same as those of the previously described embodiments, and only the differences will be described below.
[0080] 20, the TDT measurement unit 311 of the tenth embodiment includes a first measurement unit 311a and a second measurement unit 311b. The first measurement unit 311a performs measurement using a signal line arranged at a first position in the detection unit. The second measurement unit 311b performs measurement using a signal line arranged at a second position in the detection unit.
[0081] The capacitance measurement unit 312 of the tenth embodiment includes a first measurement unit 312a and a second measurement unit 312b. The first measurement unit 312a performs measurement using a signal line arranged at a first position in the detection unit. The second measurement unit 311b performs measurement using a signal line arranged at a second position different from the first position. The processing unit 31 determines whether the measurement value is abnormal based on the result of comparing the value measured at the first position with the value measured at a third position. For example, as shown in FIG. 21, the processing unit 31 generates each processed waveform using two measurement values and determines whether the measurement value is abnormal by analyzing the difference between these two output values. An example of the first position is a signal line arranged on the front side of one side in the thickness direction TD of the detection unit 1. An example of the second position is a signal line arranged on the back side of the detection unit 1 on the other side in the thickness direction TD. In this example, the processing unit 31 determines whether the measurement value is abnormal based on the result of comparing values measured independently on both sides of the detection unit.
[0082] The processing unit 31 compares the measured values at the two locations by using the difference between the measured values and the differences in the shape, width, periodic time, etc. of the measured waveform, and determines the degree of deviation of this difference from the standard. This determination is made taking into account the detection accuracy and processing precision. In comparing the measured values at the two locations, the processing unit 31 determines that an abnormality exists in the following example cases.
[0083] An abnormality is determined if the deviation in the measured values at the two locations is too different. An abnormality is determined if one measured value is constant and does not change. An abnormality is determined if one measured value is positive and the other continuous value is negative. An abnormality is determined if the difference between the measured waveforms at the two locations is too large to fall within the expected phase range or fluctuation range. An abnormality is determined if the measured values at two locations during self-inspection deviate from the expected values.
[0084] The processing unit 31 of the tenth embodiment determines whether an abnormality exists based on the results of comparing measurements taken at two different locations. This increases the probability of detecting damage or disconnections caused by the soil, ensuring stable operation with appropriate output values and contributing to improved stability of irrigation systems using soil sensors. Furthermore, it is possible to detect failures caused by self-heating and temperature changes, facilitating failure analysis of soil sensors.
[0085] <Other embodiments> The disclosure of this specification is not limited to the exemplified embodiments. The disclosure encompasses the exemplified embodiments and modifications thereto by those skilled in the art. For example, the disclosure is not limited to the combinations of parts and elements shown in the embodiments, and various modifications can be made. The disclosure can be implemented in various combinations. The disclosure can have additional parts that can be added to the embodiments. The disclosure encompasses the omission of parts and elements from the embodiments. The disclosure encompasses the substitution or combination of parts and elements between one embodiment and another embodiment. The disclosed technical scope is not limited to the description of the embodiments. The disclosed technical scope is defined by the claims, and should be interpreted as including all modifications within the meaning and scope of the claims.
[0086] The apparatus and methods described herein may be implemented by a special-purpose computer comprising a processor programmed to perform one or more functions embodied in a computer program. Alternatively, the apparatus and methods described herein may be implemented by special-purpose hardware logic circuitry. Alternatively, the apparatus and methods described herein may be implemented by one or more special-purpose computers comprising a processor executing a computer program in combination with one or more hardware logic circuits. Furthermore, the computer program may be stored as instructions executed by a computer on a computer-readable non-transitory storage medium.
[0087] Disclosure of technical ideas This specification discloses multiple technical ideas described in the following multiple clauses. Some clauses may be written in a multiple dependent form, where the subsequent clause alternatively refers to the preceding clause. These multiple dependent clauses define multiple technical ideas.
[0088] Technical thought 1 a first signal line (51) through which high-frequency electromagnetic waves are transmitted and which faces the soil; a porous body portion (60) having water permeability and water retention; a second signal line (61) through which a low-frequency electromagnetic wave having a frequency lower than that of the high frequency is transmitted and which faces the soil through the porous body portion; a ground line (52, 62) disposed inside the first signal line; Equipped with The second signal line is disposed inside the first signal line and the ground line.
[0089] Technical thought 2 A soil sensor according to Technical Idea 1, wherein the frequency of the electromagnetic waves transmitted through the first signal line is set to a frequency band that is 100 times or more higher than the frequency of the electromagnetic waves transmitted through the second signal line.
[0090] Technical thought 3 The soil sensor according to Technical Idea 1 or Technical Idea 2 includes a processing unit (31) that measures the volumetric water content of the soil using a transmission signal transmitted through the first signal line by a high-frequency electromagnetic wave, and measures the water potential of the soil using a low-frequency electromagnetic wave transmitted through the second signal line.
[0091] Technical thought 4 The soil sensor according to Technical Idea 3, wherein the processing unit further measures the electrical conductivity of the soil based on the waveform of a transmission signal transmitted through the first signal line by a high-frequency electromagnetic wave.
[0092] Technical thought 5 The soil sensor according to any one of Technical Ideas 1 to 4, wherein the porous body portion has a surface exposed to the soil that has a polygonal shape with more than one side.
[0093] technical thought 6 a base portion (4; 104) on which the first signal line and the ground line are provided, The soil sensor according to any one of Technical Ideas 1 to 5, wherein the surface of the base is formed with irregularities having a depth of 0.1 to 500 μm.
[0094] Technical thought 7 a base portion (4; 104) on which the first signal line and the ground line are provided, The soil sensor according to any one of Technical Ideas 1 to 5, wherein a plurality of protrusions (4c) are provided on the surface of the base portion.
[0095] Technical thought 8 a base portion (104) on which the first signal line and the ground line are provided, The soil sensor according to any one of Technical Ideas 1 to 5, wherein the first signal lines are arranged at a plurality of locations spaced apart from each other on the base portion.
[0096] Technical thought 9 a base portion (104) on which the first signal line and the ground line are provided, The soil sensor according to any one of Technical Ideas 1 to 4, wherein the base portion and the porous body portion are integrally formed in a regular polyhedron shape.
[0097] Technical thought 10 a base portion (4) on which the first signal line and the ground line are provided; a case (2) that houses a circuit unit electrically connected to the first signal line and the second signal line and that houses a part of the base, A soil sensor described in any one of Technical Ideas 1 to 7, further comprising a seal support portion (25) that supports the base portion on the outside of the case portion and is formed in a fillet shape in close contact with the surface of the portion of the base portion that protrudes outward from the case portion and the surface of the case portion.
[0098] Technical thought 11 a base portion (4) on which the first signal line and the ground line are provided; a stacked body in which an outer support portion (7), the porous portion, and the base portion are stacked in this order from the outside to the inside, and which is constrained by constraining members (80, 81), A soil sensor described in any one of technical ideas 1 to 4, wherein the surface of the outer support portion has a flatness such that no gap of more than 2 mm occurs between the outer support portion and the porous body portion.
[0099] Technical thought 12 a base portion (4; 104) on which the first signal line and the ground line are provided, The soil sensor according to any one of Technical Ideas 1 to 5, wherein the base portion has a surface layer (42; 142) covering the first signal line and the ground line.
[0100] Technical thought 13 The soil sensor according to Technical Idea 12, wherein the surface layer includes multiple layers stacked from the outside to the inside, and has a glass or ceramic layer inside the outermost resin layer.
[0101] Technical thought 14 a processing unit (31) that measures the volumetric water content of the soil using a transmission signal transmitted through the first signal line as a high-frequency electromagnetic wave and measures the water potential of the soil using a low-frequency electromagnetic wave transmitted through the second signal line; the processing unit determines whether or not an abnormal state exists using the measured volumetric water content and water potential and two stored abnormality determination curves showing the relationship between the volumetric water content and the water potential; The soil sensor according to any one of Technical Ideas 1 to 13, wherein the two abnormality determination curves are a curve indicating poor adhesion with the soil and a curve indicating dry soil.
[0102] Technical thought 15 a processing unit (31) that measures the volumetric water content of the soil using a transmission signal transmitted through the first signal line as a high-frequency electromagnetic wave and measures the water potential of the soil using a low-frequency electromagnetic wave transmitted through the second signal line; A soil sensor according to any one of technical ideas 1 to 13, wherein the processing unit determines whether or not an abnormal state exists based on the results of comparing measurement values at two different locations. [Explanation of symbols]
[0103] 51...first signal line, 52...ground line, 60...porous body portion 61...First signal line, 62...Ground line
Claims
1. A first signal line (51) that transmits electromagnetic waves and faces the soil and is a conductive line; a porous body portion (60) having water permeability and water retention; a second signal line (61) that is a conductive line through which electromagnetic waves are transmitted and that faces the soil through the porous body portion; a ground line (52, 62) disposed inside the first signal line; Equipped with The soil sensor is configured such that the second signal line is disposed more inward than the first signal line and the ground line.
2. The first signal line transmits microwaves. The soil sensor of claim 1 .
3. The second signal line transmits electromagnetic waves having a lower frequency than the electromagnetic waves transmitted by the first signal line. The soil sensor of claim 1 .
4. The first signal line transmits microwaves, the second signal line transmits an electromagnetic wave having a lower frequency than the electromagnetic wave transmitted by the first signal line; The soil sensor of claim 1 .
5. 5. The soil sensor according to claim 3, wherein the frequency of the electromagnetic wave transmitted through the first signal line is set to a frequency band that is 100 times or more higher than the frequency of the electromagnetic wave transmitted through the second signal line.
6. A soil sensor as described in claim 1 or claim 3, comprising a processing unit (31) that measures the volumetric moisture content of the soil using a transmission signal transmitted through the first signal line and measures the water potential of the soil using electromagnetic waves transmitted through the second signal line.
7. The soil sensor according to claim 6 , wherein the processing unit further measures the electrical conductivity of the soil based on the waveform of the transmission signal transmitted through the first signal line.
8. 2. The soil sensor according to claim 1, wherein the porous body portion has a surface exposed to the soil that has a polygonal shape with more than one side.
9. a base portion (4; 104) on which the first signal line and the ground line are provided, 2. The soil sensor according to claim 1, wherein the surface of the base portion has irregularities with a depth of 0.1 to 500 μm.
10. a base portion (4; 104) on which the first signal line and the ground line are provided, 2. The soil sensor according to claim 1, wherein a plurality of protrusions (4c) are provided on the surface of the base portion.
11. a base portion (104) on which the first signal line and the ground line are provided, The soil sensor according to claim 1 , wherein the first signal lines are arranged at a plurality of spaced apart positions on the base portion.
12. a base portion (104) on which the first signal line and the ground line are provided, 2. The soil sensor according to claim 1, wherein the base portion and the porous body portion are integrally formed in a regular polyhedron shape.
13. a base portion (4) on which the first signal line and the ground line are provided; a case (2) that houses a circuit section electrically connected to the first signal line and the second signal line and that houses a part of the base section; The soil sensor of claim 1 further comprises a seal support portion (25) that supports the base portion on the outside of the case portion and is formed in a fillet shape in close contact with the surface of the portion of the base portion that protrudes outward from the case portion and the surface of the case portion.
14. a base portion (4) on which the first signal line and the ground line are provided; a laminate in which an outer support portion (7), the porous portion, and the base portion are laminated in this order from the outside to the inside, and which is restrained by restraining members (80, 81), 2. The soil sensor according to claim 1, wherein the surface of the outer support portion has a flatness such that no gap of more than 2 mm is formed between the outer support portion and the porous body portion.
15. a base portion (4; 104) on which the first signal line and the ground line are provided, 2. The soil sensor according to claim 1, wherein the base has a surface layer (42; 142) covering the first signal line and the ground line.
16. The soil sensor according to claim 15, wherein the surface layer includes a plurality of layers stacked from the outside to the inside, and a glass layer or a ceramic layer is provided inside an outermost resin layer.
17. A processing unit (31) for measuring the volumetric water content of soil using a transmission signal transmitted through the first signal line by electromagnetic waves, and for measuring the water potential of the soil using electromagnetic waves transmitted through the second signal line; the processing unit determines whether or not an abnormal state exists using the measured volumetric water content and water potential and two stored abnormality determination curves showing the relationship between the volumetric water content and the water potential; 2. The soil sensor according to claim 1, wherein the two abnormality determination curves are a curve indicating poor adhesion with the soil and a curve indicating dry soil.
18. A processing unit (31) is provided which measures the volumetric water content of the soil using a transmission signal transmitted through the first signal line by electromagnetic waves, and measures the water potential of the soil using the electromagnetic waves transmitted through the second signal line; The soil sensor according to claim 1 , wherein the processing unit determines whether or not an abnormal state exists based on a result of comparing measured values at two different positions.
Citation Information
Patent Citations
Irrigation decision-making system based on water balance relation of field
CN105123447A
Pottery clay dielectric capacitance type soil matrix potential measurement method
CN107064243A
A soil moisture status monitoring system
CN108918822A
Device for measuring substrate water flow
CN1441250A
Soil matric potential and salinity measurement
GB2398637A