ELECTRIC POWER SUPPLY KIT FOR AN IRRIGATION SYSTEM FOR LAND
20220018324 ยท 2022-01-20
Assignee
Inventors
- Anna STIATTI (Milano, IT)
- Alberto STIATTI (Milano, IT)
- Matteo Maria STIATTI (Duno (VA), IT)
- Marc CAPILLA MANZANO (Palafrugell Girona, ES)
Cpc classification
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H02K7/1823
ELECTRICITY
H02K11/0094
ELECTRICITY
B05B12/087
PERFORMING OPERATIONS; TRANSPORTING
International classification
F03B13/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B05B12/08
PERFORMING OPERATIONS; TRANSPORTING
H02K11/00
ELECTRICITY
Abstract
Electric power supply kit (10) for an irrigation system (100) for land, said irrigation system (100) comprising at least one conduit (110, 111) adapted for the passage of an irrigation fluid and at least one electrical device (120) comprising at least one rechargeable power supply battery (130), said electric power supply kit (10) comprising at least one hydroelectric turbine (20) in fluid communication with said irrigation fluid adapted to generate an alternating electric current voltage as said irrigation fluid passes into said at least one conduit (110, 111), at least one voltage regulator (30) adapted to be powered with said alternating electric current, adapted to stabilize said alternating electric current voltage in a direct electric current voltage, and adapted to supply said at least one power supply battery (130) of said at least one electrical device (120) with said direct electric current voltage.
Claims
1. An electric power supply kit adapted to be mounted with an irrigation system, said irrigation system comprising at least one conduit adapted for the passage of an irrigation fluid and at least one electrical device comprising at least one rechargeable power supply battery, said electric power supply kit comprising: at least one hydroelectric turbine in fluid communication with said irrigation fluid adapted to generate an alternating electric current voltage as said irrigation fluid passes into said at least one conduit, wherein said at least one hydroelectric turbine comprises a rotating element comprising a multiplicity of blades; at least one voltage regulator adapted to be powered with said alternating electric current, adapted to stabilize said alternating electric current voltage in a direct electric current voltage, and adapted to supply said at least one power supply battery of said at least one electrical device with said direct electric current voltage; and at least one nozzle which is engaged inside said at least one conduit upstream of said rotating element, wherein said at least one nozzle is adapted to convey said inlet fluid of said at least one conduit towards a portion of said rotating element comprised between two adjacent blades so that at least one portion of said rotating element is in fluid communication with said at least one conduit, wherein said at least one nozzle has a truncated-conical shape and comprises an inlet through opening and an outlet through opening, wherein said inlet through opening has substantially transverse dimensions equal to an internal cross section of said at least one conduit, wherein said transverse dimensions are measured on a transverse plane lying on a geometric plane perpendicular to a rotation axis (R) of said rotating element, wherein said outlet through opening of said nozzle has transverse dimensions equal to or less than an angular distance between two adjacent blades of said rotating element, and wherein said angular distance between two adjacent blades is measured on an arc of a geometric circumference passing through ends of said blades, in which the geometric circumference comprising the arc comprises a geometric centre that is geometrically coincident with a geometric centre of the rotating element.
2. The electric power supply kit according to claim 1, wherein said truncated-conical shape of said at least one nozzle is truncated by a geometric curve which forms said outlet through opening, wherein said geometric curve comprises a cross section that follows the profile of said geometric circumference that passes through the ends of said blades.
3. The electric power supply kit according to claim 1, wherein each blade of said rotating element comprises a cross section comprising a curvilinear portion comprising a concave portion directed to the direction opposite to a direction of rotation of said rotating element around said geometric rotation axis.
4. The electric power supply kit according to claim 1, wherein each blade of said rotating element comprising a convex portion directed to a same direction as the direction of rotation of said rotating element around said rotation axis.
5. The electric power supply kit according to claim 1, wherein said at least one nozzle comprises a curvilinear blockage portion which blocks at least one portion of a cross section of said outlet through opening of said at least one nozzle so as to narrow the opening of said outlet through opening.
6. The electric power supply kit according to claim 5, wherein said curvilinear blockage portion narrows the cross section of the outlet through opening so that said outlet through opening is open for a cross section between 33% and 66% wide with respect to an outlet through opening the transverse dimensions of which are equal to said angular distance between two adjacent blades of said rotating element.
7. The electric power supply kit according to claim 1, wherein axial dimensions of said outlet through opening correspond to a height of said blades of said rotating element, in which said height of the blades and the axial dimensions are measured along a geometric axis parallel to the rotation axis of the rotating element.
8. An irrigation system for land comprising: at least one conduit adapted for the passage of an irrigation fluid at least one electrical device comprising at least one rechargeable power supply battery; and at least one electric power supply kit [[(10)]] according to claim 1.
9. The irrigation system according to claim 8, further comprising a T-shaped conduit engaged in fluid communication with said at least one conduit and with said at least one hydroelectric turbine.
10. The irrigation system according to claim 8, further comprising at least one irrigation fluid dispenser, wherein said at least one hydroelectric turbine is mounted in fluid communication with said at least one irrigation fluid dispenser.
11. The irrigation system according to claim 8, wherein said at least one electrical device powered by said at least one rechargeable power supply battery comprises at least one selected from the group consisting of: at least one solenoid valve, wherein said at least one solenoid valve is adapted to pass from at least an open position for allowing the passage of said irrigation fluid to at least one closed position for preventing the passage of said irrigation fluid; at least one sensor adapted to measure at least one environmental observable; at least one communication antenna adapted to transmit a WI-FI or 3G or radio communication signal; at least one electronic control unit comprising at least one processor and at least one memory, wherein said at least one processor is adapted to control at least one from the group consisting of said at least one solenoid valve, said at least one sensor and said at least one communication antenna; and at least one WI-FI or 3G or radio router comprising at least one processor adapted to actuate said at least one communication antenna.
12. The irrigation system according to claim 8, wherein said at least one hydroelectric turbine is adapted to operate like a flow meter measuring a flow rate of irrigation fluid, wherein said hydroelectric turbine is connected in communication with at least one processor of said irrigation system, wherein said flow rate of irrigation fluid is received by said at least one processor, wherein said at least one processor monitors said flow rate and/or regulates said flow rate by actuating at least one solenoid valve, wherein said at least one solenoid valve is adapted to pass from an open position for allowing the passage of said irrigation fluid to at least a partially open position for reducing the flow rate of irrigation fluid, to a closed position for preventing the passage of said irrigation fluid.
13. The irrigation system (100) according to claim 8, wherein said at least one electronic device is connected in communication with at least one processor of said irrigation system, in that wherein said at least one electronic device sends to said at least one processor a charge measurement of said at least one power supply battery to which said at least one electronic device is electrically connected and wherein said at least one processor controls said charge measurement and interrupts a charge of said at least one power supply battery of said at least one electronic device when said at least one power supply battery is charged at least within a predetermined threshold.
Description
[0010] The features and advantages of the present invention will result more evident from the following description, which is to be understood as exemplifying and not limiting, with reference to the appended schematic drawings, wherein:
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028] With reference to the aforementioned figures, an irrigation system 100 for land comprising a multiplicity of conduits 110 adapted for the passage of an irrigation fluid is shown. The irrigation fluid is water.
[0029] The irrigation system 100 comprises a multiplicity of electrical devices 120, each of which comprises a rechargeable power supply battery 130.
[0030]
[0031] The irrigation system also comprises an electric power supply kit 10 which comprises a hydroelectric turbine 20 in fluid communication with said irrigation fluid. The hydroelectric turbine 20 is mounted with a first conduit 111 of the multiplicity of conduits 110. The hydroelectric turbine 20 generates an alternating electric current voltage as the irrigation fluid passes into the first conduit 111 where the hydroelectric turbine 20 is mounted.
[0032] The hydroelectric turbine 20 comprises a rotating element 40 comprising a multiplicity of blades 41 as shown in
[0033] It is envisaged that the rotating element 40 comprises twelve blades as shown in
[0034] Advantageously, a greater number of blades 41 allows the rotation to be improved even at low flow rates of fluid in the first conduit 111.
[0035] The hydroelectric turbine 20 is mounted with the first conduit 111 as shown in
[0036] As shown in particular in
[0037] As shown in particular in
[0038] As shown in
[0039] As shown in
[0040] As shown in
[0041] As shown in
[0042] Advantageously, the concave portion 46 of each blade 41 of the rotating element 40 allows to better channel the fluid coming from the nozzle 50 allowing a greater rotation thrust in the direction of rotation of the rotating element 40 due to a fluid-dynamic circulation of the fluid, in which the circulation is the value of the circulation of a speed field of a fluid along a closed loop, i.e. the circulation of speed.
[0043] As shown in
[0044] Advantageously, the convex portion 47 of each blade 41 of the rotating element 40 allows the fluid coming from the nozzle 50 to be better channelled, allowing a fluid-dynamic resistance to be reduced due to a fluid-dynamic circulation of the fluid. Moreover, the convex portion 47 of each blade 41 allows the fluid to be pushed towards an outlet of the first conduit 111. Still more advantageously, in order to increase the fluid speed against the blades 41 and to increase the fluid-dynamic circulation, alternative nozzles 50 comprising alternative outlet through openings 52 are provided which are partially blocked as shown in
[0045] In
[0046]
[0047]
[0048] As shown in
[0049] Advantageously, the axial dimension of the outlet through opening 52 of the nozzle 50 corresponds to the height 48 of the blades 41 so as to better fill the space 42, allowing a greater rotating thrust of the rotating element 40 to be obtained. Corresponds means that the axial dimension of the outlet through opening 52 of the nozzle 50 is substantially equal to the height 48 of the blades 41 or slightly lower, in which slightly lower means less than the walls of the truncated-conical geometric shape of the nozzle 50.
[0050] As shown in
[0051] The electric power supply kit 10 comprises a voltage regulator 30 which is powered with the alternating electric current generated by the hydroelectric turbine 20. The voltage regulator 30 stabilizes the alternating electric current voltage in a direct electric current voltage, and supplies the at least one power supply battery 130 of the at least one electrical device 120 with the direct electric current voltage. The direct current voltage of the battery 130 supplies the electrical elements of the electrical device 120.
[0052] As shown in
[0053] As shown in
[0054] As shown in
[0055] The at least one electrical device 120 powered by the at least one rechargeable power supply battery 130 comprises at least one of at least one solenoid valve 123, at least one sensor 121, at least one communication antenna 122, at least one electronic control unit 124 or at least one WI-FI or 3G or radio router.
[0056] As shown in
[0057] As shown in
[0058] As shown in
[0059] The electronic control unit 124 can also be a WI-FI or 3G or radio router comprising at least one processor 125 which actuates said at least one communication antenna 122.
[0060] The hydroelectric turbine 20 is adapted to operate like a flow meter measuring a flow rate of irrigation fluid. The hydroelectric turbine 20 is connected in communication with at least one processor 125 of said irrigation system 100 which may be the processor 125 of the control unit 124 or another processor 125 mounted with another electrical device 120.
[0061] The datum of the flow rate of irrigation fluid is received by said at least one processor 125.
[0062] The datum of the flow rate of irrigation fluid can be sent by the processor 125 for example through the communication antenna 124 or through an electrical signal cable.
[0063] The at least one processor 125 monitors said flow rate and/or regulates said flow rate by actuating at least one solenoid valve 123, where said at least one solenoid valve 123 is adapted to pass from an open position for allowing the passage of said irrigation fluid to at least a partially open position for reducing the flow rate of irrigation fluid, to a closed position for preventing the passage of said irrigation fluid.
[0064] Advantageously, this allows the flow of the irrigation fluid to be monitored, signalling a malfunctioning of the irrigation system 100, for example a danger of lack of water or a flow rate threshold that is previously deemed to be dangerous or negative.
[0065] Advantageously, this allows the water consumption of the irrigation system 100 to be monitored remotely.
[0066] The at least one electronic device 120 is connected in communication with at least one processor 125 of said irrigation system 100. The at least one electronic device 120 sends to the at least one processor 125 a charge measurement of the at least one power supply battery 130 to which the at least one electronic device 120 is electrically connected. The at least one processor 125 controls the charge measurement and interrupts the charge of the at least one power supply battery 130 of the at least one electronic device 20 when the at least one power supply battery 130 is charged at least within a predetermined threshold. The predetermined threshold of the charge of the battery to be reached depends on the technical characteristics of the battery, which can be precharged in the memory 126 or introduced at a later time by an operator through the processor 125.
[0067] Alternatively, it is possible to provide that said irrigation system 100 comprises a single conduit 110 and the first conduit 111 is a portion of the conduit 110 only. The first conduit 111 fits said hydroelectric turbine 20 to generate electric current which powers at least one electrical device 120.
[0068] Alternatively, it is possible to provide that the irrigation system 100 comprises at least one electrical device 120.
[0069] Alternatively, the power supply kit 10 may not be part of the irrigation system 100 and may be provided separately. In said alternative said electric power supply kit 10 is adapted to be mounted with said irrigation system 100.
[0070] Alternatively, the electric power supply kit 10 comprises more than one hydroelectric turbine 20.
[0071] Alternatively, it is provided that the power supply kit 10 comprises a hydroelectric turbine 20 for each element electrically supplied 120 or not 140 of the irrigation system 100, for example that hydroelectric turbines 20 are mounted with each irrigator 140 and supply the electrical devices 120 of the irrigation system 100 with electric power.
[0072] Alternatively, a hydroelectric turbine 20 is provided for each electrical device 120.
[0073] Alternatively, a voltage regulator 30 is provided for each hydroelectric turbine 30.
[0074] Alternatively, as shown in
[0075] The invention thus conceived is susceptible to many modifications and variants, all falling within the same inventive concept; furthermore, all details can be replaced by technically equivalent elements. In practice, the materials used, as well as the dimensions thereof, can be of any type according to the technical requirements.