Device and method for imprinting an active effect of at least one reference product into a treatment product
Patent Information
- Application Number
- EP2023837989
- Authority / Receiving Office
- EP · EP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2022-12-20
- Filing Date
- 2023-12-20
- Publication Date
- 2025-10-29
AI Technical Summary
Existing methods for capturing and printing electromagnetic fields from living elements and minerals are disrupted by environmental electromagnetic fields, leading to unreliable operation.
A method involving a device that captures a digital signature of a reference product by emitting electromagnetic waves into a medium containing water molecules, structured around salts, and prints an active effect in a neutral solution using an electrical printing signal, with specific frequency and intensity settings to enhance reliability.
The solution improves the reliability and simplicity of capturing and printing electromagnetic fields, reducing interference from environmental electromagnetic fields and enabling the production of a treatment product with a consistent active effect.
Smart Images

Figure 1.1
Abstract
Description
[0001] itive and method of producing an active effect of at least one reference it in a treatment product
[0002] The invention relates to a method for capturing a digital signature of a reference product for the preparation of an active product. The invention also relates to a method for printing an active effect of at least one reference product in a treatment product. The invention further relates to a method for manufacturing a treatment product. The invention also relates to a machine for capturing and / or printing an active effect. The invention also relates to a computer program implementing one of the methods mentioned. The invention finally relates to a recording medium on which such a program is recorded.
[0003] Research has been carried out on the ability of a medium, such as water, a polymeric substrate (like glass or certain plastics) to memorize information, notably via electromagnetic fields emitted by living elements and minerals, including stones. In the continuity of this work, technical solutions have been sought to capture such electromagnetic fields and transfer them onto a medium, in particular printing them in an aqueous solution, to obtain an active product.
[0004] However, the technical solutions resulting from this work have drawbacks. In particular, the operation of existing capture and printing systems can be disrupted by the Earth's electromagnetic field or electromagnetic fields emitted in the environment of the capture systems.
[0005] The aim of the invention is to provide a device and a method for capturing and printing which improve the devices and methods for capturing and printing known from the prior art. In particular, the invention makes it possible to produce a device and a method which are simple and reliable.
[0006] To this end, the invention relates to a method for structuring a medium containing water molecules comprising a step of emitting electromagnetic waves in said medium.
[0007] The invention also relates to a method for printing an active effect of at least one reference product in a treatment product, characterized in that it comprises a second printing phase comprising the following steps:
[0008] Reading the digital signature associated with at least one reference product in a database;
[0009] Creation of an electrical printing signal from the digital signature of the reference product;
[0010] Printing the active effect in a neutral solution comprising at least one salt, by passing the electrical printing signal through one or more electrical wires of a plate of a printing device on which the neutral solution is positioned, for a predetermined printing duration, so as to print the active effect of the at least one reference product in the neutral solution and thus transform it into a treatment product.
[0011] In one embodiment, the medium comprises at least one salt selected from magnesium chloride and sodium chloride, and the water molecules of the medium are structured around the crystals of the at least one salt.
[0012] In one embodiment, the structuring method is for cooling the medium containing the water molecules. In one embodiment, the electromagnetic waves are emitted over a frequency range between 120 and 30,000 Hz, or even between 1,000 and 5,000 Hz.
[0013] In one embodiment, the electromagnetic waves are generated by an electrical structuring signal having a maximum intensity of between 8 and 96 pA, or even between 10 and 20 pA.
[0014] The invention further relates to a method for capturing a digital signature of a reference product for the preparation of an active product comprising the active effect of said reference product.
[0015] The capture process includes the following steps:
[0016] Recording of an electrical signal measured between at least two measuring electrodes of a capture device comprising a plate on which the reference product is positioned, the plate comprising one or more electrical wires capable of generating a virtual coil on a volume containing the reference product;
[0017] Processing the recorded electrical signal to form a digital signature comprising a frequency spectrum of the recorded electrical signal;
[0018] Storing the digital signature in a database.
[0019] The invention further relates to a method of printing an active effect of at least one reference product into a treatment product.
[0020] The capture process includes the following steps:
[0021] Reading the digital signature of at least one reference product in a database;
[0022] Creation of an electrical printing signal from the digital signature of the reference product;
[0023] Printing the active effect in a neutral solution comprising at least one salt, by passing the electrical printing signal through one or more electrical wires of a plate of a printing device on which the neutral solution is positioned, for a predetermined printing duration, so as to print the active effect of the at least one reference product in the neutral solution and thus transform it into a treatment product.
[0024] In one embodiment, at least two wires of the electrical wire assembly are parallel. Alternatively, at least two wires of the electrical wire assembly are arranged in a spiral.
[0025] In one embodiment, the printing method further comprises a step of determining printing parameters comprising a chosen printing duration, and the execution duration of the step of printing the active effect is equal to the chosen printing duration.
[0026] In one embodiment, the step of constituting an electrical printing signal from the digital signature of the reference product comprises:
[0027] - obtaining a first electrical signal by applying an inverse Fourier transform to at least one digital signature of the reference product, and optionally,
[0028] - generating a set of harmonics of the first electrical signal, then adding the set of harmonics to the first electrical signal, the set of harmonics comprising a second and / or third and / or fourth and / or fifth harmonic.
[0029] The invention further relates to a method of manufacturing a treatment product.
[0030] The manufacturing method comprises a first phase of capturing at least one digital signature of a reference product by implementing a capturing method according to the invention, and a second phase of printing at least one active effect in a neutral solution from said digital signature by implementing the printing method according to the invention.
[0031] In one embodiment, the manufacturing method comprises an additional phase of structuring a medium containing water molecules by implementing a structuring method according to the invention, and the additional phase is executed before and / or during the first capture phase, for the structuring of the reference solution, and / or the additional phase is executed before and / or during the second printing phase, for the structuring of the treatment product.
[0032] The invention further relates to a method for cooling a medium containing water molecules, comprising a step of structuring the medium by a structuring method according to the invention.
[0033] The invention further relates to a device for printing an active effect, characterized in that it comprises:
[0034] - A treatment tray comprising one or more electrical wires;
[0035] - Access to a database including the storage of a digital signature of at least one reference product;
[0036] - A control unit comprising hardware and software means configured to implement a printing method as described above, and / or a manufacturing method as described above, the control unit comprising a link on the one hand to said database for storing and / or reading at least one digital signature in said database and on the other hand to the electrical wire(s) of the plate for generating and / or measuring an electrical signal; - A human-machine interface for starting and / or interrupting the structuring and / or capturing and / or printing and / or manufacturing and / or cooling and for entering structuring and / or capturing and / or printing and / or manufacturing and / or cooling parameters.
[0037] The invention also relates to a device for capturing and / or printing an active or structuring effect, comprising:
[0038] A treatment tray comprising one or more electrical wires;
[0039] Access to a database including the storage of a digital signature of at least one reference product;
[0040] A control unit comprising hardware and software means configured to implement a structuring method according to the invention and / or a capturing method according to the invention and / or a printing method according to the invention and / or a manufacturing method according to the invention and / or a cooling method according to the invention, the control unit comprising a connection on the one hand to said local or remote database for storing and / or reading at least one digital signature in said database and on the other hand to one or more electrical wires of the plate for generating and / or measuring an electrical signal;
[0041] A human-machine interface for starting and / or interrupting structuring and / or capturing and / or printing and / or manufacturing and / or cooling and for entering structuring and / or capturing and / or printing and / or manufacturing and / or cooling parameters.
[0042] In one embodiment, the device for capturing and / or printing an active and / or structuring effect according to the invention comprises at least a first and a second measuring and / or injection electrode, and one or more wires are connected to the first and second measuring and / or injection electrodes according to an electrical circuit, so that a first end of each of said wire(s) is connected to the first measuring and / or injection electrode and a second end of each of said wire(s) is connected to the second measuring and / or injection electrode.
[0043] In one embodiment, the tray comprises a set of electrical wires, and the wires of the set of electrical wires are equidistant or unequally spaced from each other. The wires may be substantially straight and parallel. Alternatively, it comprises one or more spiral-shaped wires.
[0044] In one embodiment, the tray includes a plurality of wires and a first and a second zone such that a first distance measured between each pair of contiguous wires of the first zone differs from a second distance measured between each pair of contiguous wires of the second zone.
[0045] In one embodiment, wires of the at least one or at least two zones of the plate are capable of generating equivalent electric fields for printing the same active effect in different volumes of a neutral solution.
[0046] In one embodiment, the capture parameters include:
[0047] - a selection of at least one area of the plateau used for capture, called the capture area, and / or
[0048] - a capture mode, which may be a first capture mode called “without structuring” or a second capture mode called “with structuring”, and / or
[0049] - a range of intensity and frequency values of a current to be injected into the at least one capture zone, and / or
[0050] - a mode of reducing or eliminating noise contained in a captured electrical signal, which may be a first mode of reduction called “without reduction”, a second mode of reduction called “by averaging” or a third mode of reduction called “by phase opposition”, and / or
[0051] - a capture duration.
[0052] Additionally, print settings include:
[0053] - a selection of at least one area of the plate used for printing, called the printing area, and / or
[0054] - a printing mode as being a first printing mode called “without structuring” or a second printing mode called “with structuring”, and / or
[0055] - a range of intensity and frequency values of a current to be injected into the printing zone, and / or
[0056] - a mode of reduction or suppression of noise contained in the signal, such as a first mode of reduction called “without reduction”, or a second mode of reduction called “by averaging” or a third mode of reduction called “by phase opposition”, and / or
[0057] - a type of dilutions applied to the digital signature, such as a so-called “no dilution” mode, or a so-called “harmonic dilutions” mode and / or a so-called “reverse harmonic dilutions” mode, and / or
[0058] - a mode of application of dilutions, such as sequential or simultaneous, and / or
[0059] - a volume of a neutral solution to be printed, for example 25 milliliters, 5 liters, 10 liters, 25 liters, and / or
[0060] - a printing duration.
[0061] The attached drawings represent, by way of example, an embodiment of a capture and printing device according to the invention, an embodiment of a capture method, an embodiment of a printing method and an embodiment of a manufacturing method.
[0062] Figure 1 schematically represents an embodiment of a capture and / or printing device. Figure 2 is a schematic description of the operation of the capture device.
[0063] Figure 3 is a schematic description of the operation of the printing device.
[0064] Figure 4 is an illustration of the treatment tray according to the embodiment of the invention.
[0065] Figure 5 illustrates an example of a virtual coil generated by two electrical wires.
[0066] Figure 6 is a flowchart of a capture method according to one embodiment of the invention.
[0067] Figure 7 is a flowchart of a printing method according to one embodiment of the invention.
[0068] Figure 8 illustrates harmonics of an electrical signal.
[0069] Figure 9 illustrates simultaneous additions of harmonics to an electrical signal.
[0070] Figure 10 is a flowchart of a manufacturing method according to the invention.
[0071] Figure 11 is a flowchart of a structuring method according to one embodiment of the invention.
[0072] Figure 12 represents the measurements of an electrical signal as a function of time, originating from an electromagnetic field, respectively by first electrodes and by second electrodes of a capture device according to an embodiment of the invention in the presence of a low-frequency generator.
[0073] Figure 13 represents the measurements of an electrical signal as a function of time respectively by the first electrodes and by the second electrodes of the capture device according to the embodiment of the invention in the absence of a low-frequency generator.
[0074] An example of an embodiment of a capturing and / or printing and / or structuring device is described below with reference to FIG. 1. In the remainder of the document, the capturing and / or printing and / or structuring device is referred to as device 10.
[0075] Furthermore, in the remainder of the document, the information captured by the device 10 from a reference product is called “digital signature”, the term “digital” referring to the method of recording the information, in a database stored in a digital memory, also called electronic memory in the remainder of the document.
[0076] The device 10 mainly comprises the following elements: a processing tray 1, also called “tray 1” in the remainder of the document, access to a database 2; a control unit 3; a human-machine interface 4.
[0077] The control unit 3 integrates at least one computer 30, and a connection 32 allowing a connection of the computer 30 to electrodes 13, 14 of the device 10, in particular measuring electrodes 13 and injection electrodes 14 arranged on the plate 1. The control unit 3 further comprises a data recording medium or electronic memory 31. It also comprises an electrical source 34, connected to all or part of the injection electrodes 14, thus making it possible to inject electric current into the plate 1 via the electrodes 14. It further comprises at least one voltage sensor 36 making it possible to collect voltage measurements via all or part of the measuring electrodes 13 arranged on the plate 1. The electronic memory 31 makes it possible to store the measurements and / or the data calculated locally in the device 10.In one embodiment, the control unit 3 may also comprise an amplifier 37 making it possible to amplify the signals measured by the voltage sensor 36 at the terminals of all or part of the measuring electrodes 13.
[0078] Furthermore, the control unit 3 comprises means of communication with the human-machine interface 4, and means of processing commands from the human-machine interface 4.
[0079] The control unit 3 comprises a link to the database 2 for storing and / or reading data in the database 2. In the remainder of the document, the term “request” may be used to designate a command addressed by the control unit 3 to the database 2.
[0080] Database 2 contains a record of digital signatures of 100 reference products that have been captured.
[0081] In one embodiment, the database 2 further contains a record of the digital signatures of complex products resulting from re-captures, i.e. signatures of products which result from a printing phase previously carried out via the device 10.
[0082] The database 2 allows the control unit 3 to access its contents in at least two ways:
[0083] - a reading mode, via reading requests sent by the control unit 3, and
[0084] - a writing mode, via writing requests issued by the control unit 3.
[0085] Accesses to the database 2 in reading mode mainly concern a printing phase described in the remainder of the document. Accesses to the database 2 in writing mode mainly concern a capture phase described in the remainder of the document. The data in the electronic memory 31 can be read by the computer 30 on which a computer program is recorded for the operation of the device 10, in particular for the implementation of the capture, printing and manufacturing methods described in the remainder of this document.
[0086] The device 10 has the function of capturing the active effect of a reference product through a digital signature 101 of the reference product, in order to then be able to print the active effect of the reference product 100 in a treatment product 200. In addition or alternatively, the device 10 has the function of structuring the molecules of the reference product 100 or of the treatment product 200.
[0087] Figure 2 is a schematic description of the operation of the device 10 during a processing of capturing a digital signature 101 of a reference product 100.
[0088] During the capture processing, the device 10 has the first function of capturing the digital signature 101 of a reference product 100 and recording it in the database 2.
[0089] A Reference 100 product can take different forms. This can be a molecule, or a solution, for example an aqueous solution, a plant, a mineral or a powder.
[0090] A reference product 100 preferably has an active effect. In other words, the reference product 100 preferably comprises a bioactive compound having a therapeutic or preventive effect.
[0091] A digital signature, previously defined as the information captured by the device 10 from a reference product, is said to be simple when the reference product contains a single component; alternatively, it is said to be complex when the reference product contains several components.
[0092] During the capture processing, a reference product 100 is placed on the tray 1 of the device 10. The control unit 3 then records an electrical signal 102 emitted by the reference product in a set 11 of electrical wires of the tray 1.
[0093] The electrical signal 102 is a superposition of vibrational signals emitted by molecules contained in the reference product, each type of molecule emitting a different vibrational signal. The vibrational signals are not necessarily sinusoidal. Water molecules contained in the reference product organize themselves into “coherence domains,” a coherence domain being a set of water molecules vibrating at the same frequency and with the same phase. The electrical signal 102 may also contain vibrational signals originating from the void between the molecules of the reference product.
[0094] In one embodiment, the electrical signal 102 is captured in the form of a voltage measured between at least two measuring electrodes 13 of the plate 1.
[0095] The voltage measured between the at least two measuring electrodes 13 of the plate 1 is transmitted to the control unit 3 which comprises means for processing the electrical signal 102. The control unit 3 makes it possible in particular to apply a Fourier transform analysis to the electrical signal 102. The frequency spectrum thus obtained is included in the digital signature 101 of the reference product 100. The digital signature 101 is recorded in the database 2. During the capture phase, in particular at the start of the capture phase, the human-machine interface 4 allows a user to configure the progress of the capture, for example to configure the duration of the capture phase. The parameters relating to the capture and configurable via the human-machine interface 4 will be described later in this document.
[0096] The second function of the device 10 is to print an active effect in a treatment product 200, from a digital signature 101 of a reference product 100, the digital signature 101 having been previously recorded in the database 2.
[0097] Figure 3 provides a schematic description of the operation of the device 10 during a printing process of a digital signature 101 in a processing product 200.
[0098] The treatment product 200 is generated from a printing medium 201. The printing medium 201 is preferably a neutral medium, such as an aqueous liquid placed in a container 301. The container may be, for example, a container 301, for example a bottle, or a patch 302.
[0099] Alternatively, the carrier disposed in a container may be an ionic carrier, for example magnesium chloride MgCL
[0100] The printing medium is placed on the plate 1. The control unit 3 retrieves a digital signature 101 from the memory 2 to transform it into an electrical signal 103. The electrical signal 103 is transmitted by the control unit 3 to the plate 1 in the form of a temporal variation in voltage applied between injection electrodes 14 of the plate 1. The electrical signal controlled by the control unit 3 generates an electromagnetic field which will structure the molecules of the printing medium 201 and / or transfer information to them, thus generating a treatment product 200.
[0101] Structured molecules can belong to one or more coherence domains. Structuring can also apply to the void between molecules, to particles, or to protons and / or photons emitted by the atoms of molecules.
[0102] At the end of the printing processing, the processing product 200 emits a digital signature 101 containing the signature of a reference product 100 used during a capture.
[0103] During the printing phase, in particular at the start of the printing phase, the human-machine interface 4 allows a user to configure the printing process, for example to configure the duration of the printing phase. The parameters relating to printing and configurable via the human-machine interface 4 will be described later in this document.
[0104] Thus, the processing tray 1, controlled by the control unit 3, makes it possible on the one hand to collect a digital signature 101 of a reference product 100, and on the other hand to inject a digital signature 101 (more precisely an active effect corresponding to this digital signature) into a printing medium 201 to obtain a processing product 200.
[0105] The processing tray 1, also called “tray 1” in the remainder of the document, comprises a single wire or a set 11 of electrical wires. Depending on the embodiment, the number of electrical wires in the set 11 may vary. In one embodiment, the set 11 of wires passes through a sheet 12 of PCB material. The wires in the set 11 are electrically conductive, for example they are copper wires.
[0106] The treatment tray 1 is intended to receive containers of different sizes, for example cylindrical bottles of 20 milliliters, 5 liters, 10 liters or 25 liters. Advantageously, the number of wires in the set 1 1 and their distribution must be determined in accordance with the dimensions of the containers. Preferably, the distance between two contiguous wires varies in the same set of wires 1 1 . In other words, the space between two contiguous wires in the same treatment tray 1 is variable, in order to enable the generation of an equivalent electromagnetic field for containers of different sizes.
[0107] As illustrated in Figure 4, the tray may comprise at least one or at least two zones 111, 112, 113, 114 such that each of the wires of the zone is entirely included in one of the at least one or at least two zones; further, in each of the at least one or at least two zones, a distance measured between each pair of contiguous wires is fixed, the distance being measured perpendicular to the direction of the wires of the pair of wires.
[0108] Further, the tray may include a first and a second zone such that a first distance measured between each pair of contiguous wires of the first zone differs from a second distance measured between each pair of contiguous wires of the second zone.
[0109] Thus, the wires of at least one or at least two zones of the tray are capable of generating equivalent electromagnetic fields for printing the same active effect in different volumes of a neutral solution. Such a differentiated distribution of the electric wires in distinct zones of the tray 1 makes it possible to generate equivalent electromagnetic fields for containers of different sizes. In one embodiment,
[0110] - for a bottle with a capacity of 20 milliliters, between 10 and 50 threads will be used,
[0111] - for a bottle with a capacity of 5 liters, between 50 and 105 threads will be used,
[0112] - for a bottle with a capacity of 10 liters, between 100 and 120 threads will be used, and
[0113] - for a bottle with a capacity of 25 liters, between 120 and 130 threads will be used.
[0114] Adjusting the number of electrical wires used and adjusting the distance between two adjacent wires allows generating a virtual coil adapted to the size of a bottle.
[0115] Figure 5 illustrates an example of a virtual coil 400 generated by two electric wires respectively traversed by electric currents 401, 402 of the same direction.
[0116] When an area 1 11 , 1 12, 1 13, 1 14 of the board 1 is used for a capture phase, a reference product 100 is placed so as to be contained in a virtual coil generated by the electrical wires of said area. The virtual coil is then used to record the electromagnetic signals emitted by the reference product 100.
[0117] The device 10 can also be used in structuring mode. The structuring mode can be used in isolation or in combination with the capture mode or the printing mode. In the remainder of the document, the terms “structuring zone” or “capture zone” or “printing zone” are respectively used to designate at least one platen zone used for a structuring, capture or printing phase.
[0118] When the device 10 is used in structuring mode of a medium containing water molecules, it implements a step of emitting electromagnetic waves into said medium. In one embodiment, the electromagnetic waves used to structure the medium are emitted by the electrical wires of the structuring zone of the plate. The structuring zone can be defined according to the dimensions of a container in which the medium to be structured is located.
[0119] The electrical wires of the structuring zone may be crossed by an electrical structuring signal generating an electromagnetic field. In particular, the electrical structuring signal may have a maximum intensity of between 8 and 96 pA, or even between 10 and 20 pA.
[0120] In addition, structuring electromagnetic waves can be emitted over a frequency range between 120 and 30,000 Hz, or even between 1,000 and 5,000 Hz.
[0121] Advantageously, the medium to be structured comprises at least one salt taken from magnesium chloride and sodium chloride, and the water molecules of the medium are structured around the crystals of the at least one salt.
[0122] Advantageously, the structuring of the medium leads to the cooling of the structured medium.
[0123] In one embodiment, the human-machine interface 4 provides means enabling a user to configure the structuring phase. In particular, the human-machine interface advantageously makes it possible to specify parameters for implementing the structuring, in particular a range of intensity values (in microamperes) and frequency (in Hertz) of the current injected into the set of wires 11 of the plate 1.
[0124] When the device 10 is used in capture mode, temporal voltage variations are measured between the two ends of at least one electrical wire in the capture zone. This measurement can be carried out at the terminals of several electrical wires in the capture zone.
[0125] The capture can be carried out according to a first mode, called "without structuring", in which the control unit 3 does not inject electric current into the electric wires of the plate 1. The electric current circulating in the wires is only induced by the electromagnetic field created by the reference product placed in the virtual coil. In this capture mode, the voltage induced at the terminals of the wires of the plate 1 being very low, the signal measured by the voltage sensor 36 of the control unit 3 can be advantageously amplified by the amplifier 37. As a note, the electric circuit containing the wires is closed.
[0126] The capture can also be carried out according to a second mode, called “with structuring”, in which the control unit 3, via the electrical source 34, injects different electrical currents into the electrical wires of the plate 1.
[0127] In one embodiment, the injected electric current may have the following characteristics:
[0128] - for a structuring current with a frequency between 125 and 1999 Hertz, the intensity will be 8 microamperes,
[0129] - for a structuring current with a frequency between 2000 and 3999 Hz, the intensity will be 16 microamperes,
[0130] - for a structuring current with a frequency between 4000 and 7999 Hz, the intensity will be 32 microamperes,
[0131] - for a structuring current with a frequency between 8000 and 17999 Hz, the intensity will be, as desired, 48, 64 or 80 microamperes,
[0132] - for a structuring current with a frequency between 18000 and 30000Hz, the intensity will be, at your choice, 80 or 96 microamperes.
[0133] Preferably, structuring frequencies between 120 and 30,000 Hz, or even between 1,000 and 5,000 Hz, will be chosen.
[0134] When the tray 1 is used to print a digital signature in a processing product, the printing medium 201 intended to become a processing product is placed so as to be contained in the virtual coil generated by the electrical wires of the printing area. The virtual coil is then used to transmit electromagnetic signals to the printing medium 201 so that it becomes a processing product 200.
[0135] The human-machine interface 4 provides means for a user to configure the capture phase.
[0136] In one embodiment, a first parameter of the capture phase relates to the definition of the capture zone, i.e. the selection of at least one zone of the board 1 1 1 , 1 12, 1 13, 114 which will be used for the capture.
[0137] In addition or alternatively, a second parameter of the capture phase relates to the capture mode, which can be the first mode called “without structuring” or the second mode “with structuring”. When the second capture mode is selected, the human-machine interface advantageously makes it possible to specify parameters for implementing the structuring, in particular a range of intensity values (in microamperes) and frequency (in Hertz) of the current injected into the set of wires 11 of the plate 1.
[0138] In addition or alternatively, a third parameter of the capture phase relates to a mode of reduction or suppression of noise contained in the voltage signal measured by the control unit 3 via the tensiometer and the measuring electrodes 13. In one embodiment, the human-machine interface 4 makes it possible to
[0139] - disable noise suppression processing, or
[0140] - to select a noise suppression treatment by averaging, or
[0141] - to select phase opposition noise suppression processing.
[0142] Filtering an electrical signal by averaging involves calculating the average value of the signal. A running average can also be calculated. In this case, the signal is averaged over a fixed number of values. For example, an average is calculated over a group of ten consecutive values, then an average is calculated over the group of the next ten values, and the operation is repeated over the entire signal.
[0143] In addition, the human-machine interface provides means for managing digital signature records, including means for
[0144] - define a duration for a recording,
[0145] - start and stop a recording,
[0146] - manually or automatically end a recording,
[0147] - organize the storage in database 2 of a recorded digital signature.
[0148] In addition, the human-machine interface 4 provides means allowing a user to configure the printing phase. In one embodiment, a first parameter of the printing phase relates to the definition of the printing area, i.e. the selection of at least one area of the plate 1 1 1 , 1 12, 1 13, 114 which will be used for printing.
[0149] A second parameter of the printing phase relates to the selection, in the database 2, of at least one digital signature to be printed in a printing medium to obtain a processing product 200.
[0150] In addition or alternatively, a third parameter of the printing phase relates to the choice of a printing mode, which can be the first mode called “without structuring” or the second mode “with structuring”. When the second printing mode is selected, the human-machine interface advantageously makes it possible to specify parameters for implementing the structuring, in particular a range of values of intensity and frequency of the current injected into the set of wires 11 of the plate 1.
[0151] In addition or alternatively, a fourth parameter of the printing phase relates to the choice of a mode of reduction or suppression of noise contained in the digital signature to be printed. In one embodiment, the human-machine interface 4 makes it possible to
[0152] - disable noise suppression processing, or
[0153] - to select a noise suppression treatment by averaging, or
[0154] - to select phase opposition noise suppression processing.
[0155] In addition or alternatively, a fifth parameter of the printing phase relates to the selection of a volume of printing support 201, that is to say the volume of treatment liquid that one wishes to obtain, for example 25 milliliters, 5 liters, 10 liters, 25 liters, etc.
[0156] In addition or alternatively, a sixth parameter of the printing phase relates to a method of constructing the electrical signal 103 which will be injected into the plate 1, in particular in the printing zone. In particular, the sixth parameter of the printing makes it possible to calibrate the processing which will be applied to at least one digital signature 101 selected to generate the electrical signal 103. For example, the sixth parameter may relate to the printing of dilutions of the digital signature. For example, depending on this parameter, the dilutions may be harmonics and / or inverted harmonics of the digital signature. In addition, the sixth parameter may allow a user to determine whether the harmonics can be superimposed, i.e. integrated simultaneously into the electrical signal, or whether the harmonics must be chained, i.e. integrated successively into the electrical signal.
[0157] Advantageously, the human-machine interface 4 also allows a user to configure the printing duration.
[0158] The human-machine interface 4 also allows the printing phase to be started and stopped.
[0159] In the embodiment of the invention, the computer 31 of the control unit 3 makes it possible to execute software comprising the following modules which communicate with each other:
[0160] - a 310 structuring module, which collaborates with platform 1,
[0161] - a module 31 1 for recording an electrical signal 102, which communicates with the plate 1 and the human-machine interface 4,
[0162] - a module 312 for frequency processing of the recorded electrical signal 102, - a module 313 for storing the digital signature 101, which communicates with the database 2,
[0163] - a module 314 for reading the digital signature 101 of a reference product in the database 2, which collaborates with the database 2,
[0164] - a module 315 for determining printing parameters, which collaborates with the human-machine interface 4,
[0165] - a module 316 for constituting an electrical printing signal 103,
[0166] - a module 317 for printing the active effect in a neutral solution 201, which collaborates with the plate 1.
[0167] Figure 11 represents a mode of execution of a structuring method. The structuring method comprises a step E10. The progress of step E10 is described in the remainder of the document, in particular as a sub-step of the capture method.
[0168] A mode of execution of a method for capturing a digital signature is described below with reference to Figure 6.
[0169] In a step E10 which can take place before and / or during and / or after steps E11 and / or E24, the water molecules contained in a product are structured, the product being able to be a reference product or a treatment product.
[0170] Step E10 includes a sub-step E101 for configuring the structuring phase, in particular
[0171] - a setting of a structuring zone,
[0172] - and a setting of an intensity and a frequency of an electrical signal circulating in the structuring zone. The sub-steps of implementing the structuring are described in the rest of the document. In particular, sub-step E1 12 comprises an implementation of a structuring carried out during a capture.
[0173] In a first step E1 1 , an electrical signal 102 measured between at least two measuring electrodes 13 of the device 10 is recorded.
[0174] The first step E11 includes a sub-step E1 1 1 of configuring the signal recording, i.e. configuring the capture phase.
[0175] The parameters of the capture phase include:
[0176] - a capture zone, that is to say at least one zone of the plateau 1 1 1 , 1 12, 1 13, 1 14 used for capture,
[0177] - a capture mode, with or without structuring,
[0178] - where applicable, a range of intensity and frequency values of a current to be injected into the capture zone,
[0179] - a noise reduction or suppression mode,
[0180] - a recording duration.
[0181] In one embodiment, default values for each parameter of the capture phase are stored in the local memory 31 and can be assigned to the parameters at the start of execution of the sub-step E1 1 1 . For example, the default values can correspond to the following setting:
[0182] - all areas of plateau 1 are used for capture,
[0183] - the default capture mode is a mode without structure,
[0184] - no current is injected into tray 1 by control unit 3,
[0185] - no noise suppression processing is applied,
[0186] - the recording duration is indefinite, the recording will be interrupted at the user's request via the human-machine interface 4. During sub-step E1 1 1 , the configuration requests defined by a user are processed. The configuration requests from the human-machine interface 4 may concern each of the parameters previously described for the capture phase.
[0187] Upon receipt of a parameterization request, the parameters of the capture phase are updated in the local memory 31 according to the parameterization defined in the request.
[0188] We thus loop back to the processing of configuration requests until we receive a request to start recording from the human-machine interface 4.
[0189] Advantageously, the request to start recording starts when a product of reference 100 has been placed on the tray 1.
[0190] Upon receipt of a request to start recording, we then proceed to a sub-step of E1 12 of recording an electrical signal between at least two measuring electrodes 13. The electrical signal is materialized by a voltage variation between the at least two measuring electrodes 13.
[0191] We then apply the parameters that were previously defined for capture during sub-step E1 1 1 .
[0192] If a recording duration has been defined by the user, a timer T_ENREG is started with a duration equal to the recording duration defined by the user.
[0193] The at least two measuring electrodes 13 used for the recording are selected according to the zones of the plate 1 chosen by the user for this recording, this information being accessible in the local memory 31.
[0194] If the capture mode is configured with structuring, the recording step E1 1 , and more particularly the sub-step E1 12, comprises a step of structuring the reference product 200 by sending an electrical structuring signal in electrical wires of the tray 1 on which said reference product 200 is placed.
[0195] In this case, injection electrodes 14 are also selected so as to inject a current into the areas of the plate 1 chosen by the user. In addition, in sub-step E112 the intensity and frequency of the structuring current are calibrated as a function of the parameters recorded in the local memory 31, these parameters possibly having been updated during sub-step E111.
[0196] The electrical source 34 is controlled to generate the user-defined structuring current, and to transmit the structuring current to the selected plateau areas, via the selection of injection electrodes 14.
[0197] In one embodiment, the electrical signal or structuring current has a frequency of between 120 and 30,000 Hz, or even between 1,000 and 5,000 Hz. In one embodiment, the electrical signal or structuring current has a maximum intensity of between 8 and 96 pA, or even between 10 and 20 pA.
[0198] Simultaneously with the injection of structuring current into the plate, voltage variations are measured by the voltage sensor 36 between the terminals of the selection of measuring electrodes 13. The measured voltage variations are recorded in the local memory 31. In one embodiment, when the recording is carried out without structuring, the voltage variations measured by the sensor 36 are amplified by the amplifier 37 before being recorded in the local memory 31.
[0199] Depending on the setting of the capture phase, a noise reduction or suppression processing could be selected by the user. The noise reduction method chosen by the user, for example a noise reduction method by averaging or by phase opposition, can then be applied to the voltage variations measured between the at least two measuring electrodes 13. The voltage measurements will then be recorded in the local memory 31 after the noise reduction or suppression processing.
[0200] The E1 1 recording step ends when one of the following conditions is true:
[0201] - the user orders a stop of the recording via the human-machine interface 4, which transmits the stop instruction to the control unit 3, or
[0202] - the T_ENREG timer expires.
[0203] We then move on to step E12 of frequency processing of the recorded electrical signal to form a digital signature.
[0204] In one embodiment, the digital signature 101 of the reference product 100 is obtained by Fourier transform of the electrical signal recorded 102 in step E11.
[0205] The digital signature can be generated from several different processing algorithms from the same initial electromagnetic recording, including by:
[0206] A Fast Fourier Transform or FFT, and / or A time signal (e.g. time variation of a voltage or current)
[0207] We then continue with step E13 of storing the digital signature 101 in the database 2. For this, in step E13, a write request is transmitted to the database 2. The request contains the digital signature 101 of the reference product 100.
[0208] A mode of carrying out a method of printing an active effect is described below with reference to Figure 7.
[0209] In a first step E21, the digital signature of at least one reference product 100 is extracted from the database 2.
[0210] To do this, a request from a user is processed via the human-machine interface 4. The request contains a selection of at least one identifier of a digital signature 101 to be printed.
[0211] The at least one identifier is transmitted to database 2 in the form of a read request.
[0212] A response is received from database 2. The response contains the digital signatures respectively associated with each of the at least one identifier of a digital signature.
[0213] In a second step E22, the printing parameters are determined.
[0214] Print phase parameters include:
[0215] - a printing area, i.e. at least one area of the plate 1 11 , 1 12, 1 13, 1 14 used for printing,
[0216] - a printing mode, with or without structuring,
[0217] - where applicable, a range of intensity and frequency values of a current to be injected into the printing zone,
[0218] - a noise reduction or suppression mode (no noise reduction, noise reduction by averaging or noise reduction by phase opposition),
[0219] - a type of dilutions applied to the digital signature (no dilution, harmonic dilutions or reverse harmonic dilutions), and the mode of application of these dilutions (sequential or simultaneous)
[0220] - a volume of printing medium, i.e. the volume of processing liquid that one wishes to obtain, for example 25 milliliters, 5 liters, 10 liters, 25 liters,
[0221] - a printing duration.
[0222] In one embodiment, default values for each parameter of the printing phase are stored in the local memory 31 and can be assigned to the parameters at the start of execution of step E22. For example, in one execution mode, the default values correspond to the following setting:
[0223] - all areas of tray 1 are used for printing,
[0224] - the default printing mode is a mode without structure,
[0225] - no current is injected into tray 1 by control unit 3,
[0226] - no noise suppression processing is applied,
[0227] - the volume of printing media is 25 liters,
[0228] - no dilution is applied,
[0229] - the printing duration is indefinite, printing will be interrupted at the user's request via the human-machine interface 4.
[0230] During step E22, the parameterization requests defined by a user via the human-machine interface 4 are processed. The parameterization requests from the human-machine interface 4 may concern each of the parameters previously described for the printing phase. Upon receipt of a parameterization request, the parameters of the printing phase are updated in the local memory 31 according to the parameterization defined in the request.
[0231] We thus loop back to the processing of configuration requests until we receive a request to start printing from the human-machine interface 4.
[0232] Advantageously, the request to start recording is received after a print medium has been placed on the tray 1.
[0233] Upon receipt of a request to start printing, we then continue with step E23 in which an electrical printing signal is constituted from the at least one digital signature 101.
[0234] In one embodiment, the at least one digital signature 101 recorded in memory is a time signal from which the electrical signal 103 is generated.
[0235] The electrical signal 103 obtained is then processed in accordance with the parameters which were specified by the user during step E22.
[0236] Depending on the setting of the printing phase, a noise reduction or suppression processing may have been configured by the user. The noise reduction method chosen by the user, for example an averaging or phase opposition noise reduction method, may then be applied to the electrical signal 103.
[0237] Furthermore, if the user has selected a type of dilutions to be applied to the digital signature, then the electrical signal 103 can be modified according to different options. The addition of harmonics has the effect of improving the efficiency of the processing. If these are harmonic dilutions, harmonics of the electrical signal 103 will be added to the original electrical signal 103, according to the setting chosen by the user.
[0238] Figure 8 represents harmonics of an electrical signal 103 over a half-period T / 2:
[0239] - curve 103-2 represents the second harmonic: its frequency is twice that of signal 103,
[0240] - curve 103-3 represents the third harmonic: its frequency is three times that of signal 103,
[0241] - curve 103-4 represents the fourth harmonic: its frequency is four times that of signal 103,
[0242] - curve 103-5 represents the fifth harmonic: its frequency is five times that of signal 103.
[0243] The addition of harmonics can be done simultaneously; in this case the harmonics are superimposed on the original electrical signal 103. Alternatively, the addition of harmonics can be done sequentially; in this case the harmonics are integrated after the original electrical signal 103.
[0244] The principle of simultaneous additions of harmonics to an electrical signal 103 is illustrated by graphs G1 to G4 in Figure 9:
[0245] - graph G2 illustrates an electrical signal 103 which is a sinusoidal signal with a period of 20 milliseconds; signal 103 has a fundamental frequency of 50 Hertz,
[0246] - graph G3 represents the signal 103-3 which is the third harmonic of the signal 103, that is to say whose frequency is three times the fundamental frequency,
[0247] - graph G5 represents signal 103-5 which is the fifth harmonic of signal 103, i.e. whose frequency is five times the fundamental frequency,
[0248] - graph G1 represents signal 103-d, corresponding to a signal 103 integrating the third and fifth harmonics simultaneously, that is to say to signal 103 to which its third and fifth harmonics are added simultaneously.
[0249] In addition or alternatively, the user can choose dilutions by inverted harmonics. Inverted harmonics correspond to dividers of the electrical signal frequency 3. The addition of inverted harmonics can also be done sequentially or simultaneously.
[0250] At the end of step E23, an electrical printing signal 103 has been determined. Depending on the options chosen by the user, the electrical printing signal may be a filtered signal (to eliminate noise); in addition or alternatively, the electrical printing signal may or may not include dilutions, sequentially or simultaneously.
[0251] In a fourth step E24, the active effect of the at least one reference product is printed in a neutral solution comprising at least one salt, by passing the electrical printing signal 103 through a set of electrical wires of a plate of a printing device on which the neutral solution is positioned, for the predetermined printing duration, so as to print the active effect of the at least one reference product in the neutral solution and thus transform it into a treatment product.
[0252] In one embodiment, the at least one salt is taken from sodium chloride and / or magnesium chloride.
[0253] In addition, the neutral solution may be or include sand, sugar beads, glass, or various polymers. The neutral solution comprising at least one salt is a printing medium in which the active effect of the reference product is printed.
[0254] At the beginning of step E24, the print medium must be placed on the platen 1. If the user has selected a print area via the human-machine interface 4, then the print medium must be positioned on the print area selected by the user.
[0255] In one embodiment, the printing area may be determined based on the volume of the printing medium 201 to be printed and / or the size of the container 301.
[0256] If a print duration has been defined by the user, in step E24 a timer TJMP is started with a duration equal to the print duration defined by the user.
[0257] The electrical source 34 is then controlled to generate the electrical printing signal 103, and to transmit the electrical printing signal 103 to the printing zone, via a selection of injection electrodes 14.
[0258] If the printing mode is set with structuring, the printing step E24 comprises a step of structuring the printing medium by sending an electrical structuring signal into electrical wires of the plate 1 on which the printing medium is placed, or into the electrical wires of the printing zone on which the printing medium is placed.
[0259] In this case, injection electrodes 14 are also selected so as to inject a structuring current onto all or part of the plate 1. In addition, the intensity and frequency of the structuring current are calibrated according to the parameters recorded in the local memory 31.
[0260] The electrical source 34 is controlled to generate the user-defined structuring current, and to transmit the structuring current to the selected plateau areas, via a selection of injection electrodes 14.
[0261] In one embodiment, the electrical signal or structuring current has a frequency of between 120 and 30,000 Hz, or even between 1,000 and 5,000 Hz. In one embodiment, the electrical signal or structuring current has a maximum intensity of between 8 and 96 pA, or even between 10 and 20 pA.
[0262] Print step E24 ends when one of the following conditions is true:
[0263] - the user orders a stop of the printing via the human-machine interface 4, which transmits the stop instruction to the control unit 3, or
[0264] - the TJMP time limit expires.
[0265] An embodiment of a method for manufacturing a treatment product is described below with reference to Figure 10.
[0266] In a first step E1, at least one digital signature of a reference product is captured. Step E1 includes the sub-steps E11, E12 and E13 previously described, which are executed successively.
[0267] Then in a second step E2, at least one active effect is printed in a neutral solution. Step E2 comprises the sub-steps E21, E22, E23, E24 previously described, which are executed successively. The method for manufacturing a treatment product may comprise an additional phase EO in which a medium containing atoms or molecules having the capacity to organize themselves is structured, for example a medium containing water molecules. The additional phase EO comprises the sub-step E10 previously described. In addition, the additional phase EO may be executed before and / or during the first capture phase E1, for the structuring of the reference solution, and / or the additional phase EO may be executed before and / or during the second printing phase E2, for the structuring of the treatment product.
[0268] To empirically illustrate certain aspects of the concept of the invention, experiments were carried out.
[0269] According to a first experiment, the existence of a difference between a structured and unstructured solution is highlighted. In this first experiment, twenty flasks each containing 100 ml of deionized and sterilized water, mixed with magnesium chloride MgCI2, were prepared. Measurements were taken five times for each flask, before and after the implementation of a structuring phase as described previously. For these measurements, a photoplethysmograph, applied directly through the flask, was used. This device is composed of a PPG optical sensor equipped with three LEDs (one green of 536 nm, one red of 660 nm and one infrared of 940 nm) and two photodiodes (sampling rate 100 Hz, pulse width 1 15.2 ms).
[0270] Absorbance rates were recorded for these three different wavelengths: 536 nm (green), 660 nm (red) and 940 nm (infrared).
[0271] To ensure repeatability of measurements, we calculated the coefficient of variation for each raw signal, as defined by Equation 1 below: Coefficient of variation (CV) % = (Standard deviation / Mean) x 100 (Equation 1)
[0272] Furthermore, to analyze the significance of absorbance changes before and after structuring, we first checked whether the data followed a normal distribution. Then, we applied Fisher's parametric test, deriving p-values to determine the significance levels: not significant (p > 0.05), first degree of significance (*, p < 0.05), second degree (**, p < 0.01) and third degree (***, p < 0.001).
[0273] An algorithm has been developed to estimate the state of water, based on a binomial distribution presented in equation 2 below:
[0274] Water state (structured level) = 1 / (1 + e A(-(a + bx1 + cx2 + ... + ixn))) (Eq. 2) where, a, b, ..., i are constants and x1 , x2, ..., xn represent experimental variables.
[0275] With fewer variables in this study, we used a simplified logistic binomial distribution. Its density function is given by Equation 3 below: f(x; p, s) = [1 / s(1 + e A (-(xp) / s)) A 2] (Eq. 3) p and s being parameters of the experiment and x the variable (the measured absorbance).
[0276] The corresponding distribution function is expressed by equation 4 below:
[0277] F(x; p, s) = 1 / (1 + e A (-((xp) / s))) (Eq. 4)
[0278] In this study, it was observed that the expected value E(X) = p = 0 and the variance Var(X) = (S 2 TT 2 ) / 3, leading to s = 1. The final distribution function of the water state score is then represented by equation 5:
[0279] F(x) = 1 / (1 + e A (-x)) (Eq. 5) where x corresponds to the measured absorbance.
[0280] The algorithm was initially created based on 25 observations and then validated on an independent subgroup of 15 observations.
[0281] Repeatability of measurements:
[0282] - For unstructured water, the variability was 0.076% at 536 nm, 0.055% at 660 nm and 0.068% at 940 nm.
[0283] - For structured water, the variability was 0.070% at 536 nm, 0.041% at 660 nm and 0.528% at 940 nm.
[0284] Differences in water absorption before and after structuring: Applying Fisher's tests to these data, respectively before and after structuring, gave the results (NS meaning "not significant) presented in Table 1 below.
[0285] A significant difference in absorbance (p = 0.001, ***) was observed only at 536 nm, indicating a change due to dynamization. The calculated Fisher p value is below the significance threshold of p = 0.05, which allows us to retain the hypothesis that the variance ratio is different from 1. Wavelength variation ratio:
[0286] Similar to the phenomena observed in human blood, some changes are not directly visible in the raw wavelength data. By calculating the ratio of the Red / Infrared and Red / Green absorbance changes, significant changes were quantified. The values obtained are summarized in the table below. The Red / Infrared and Red / Green ratios in structured water are significantly higher than in unstructured samples. Even the Infrared / Green ratio showed a significant increase in structured water. Prediction of water condition:
[0287] These observations allow a prediction of the level of structuring of the water tested, as shown in the tables below.
[0288] As shown, the prediction was 100% accurate for structured water. However, there were five false positives in unstructured water samples, leading to an overall prediction accuracy of 66.7%. This performance is based on absorbance measurements at 536 nm, 660 nm, and 940 nm. The five out of nine false positives in the prediction of structured water in unstructured samples suggests the need for a larger sample size to improve the robustness of the algorithm. Additionally, the presence of structured water on the surface of the glass vials may have influenced some wavelength readings, leading to inaccurate predictions.
[0289] We observed acceptable variability (less than 0.1%) at all wavelengths before and after structuring, except at 940 nm after structuring. This anomaly is attributed to photon emission resulting from water restructuring, which potentially affects this wavelength.
[0290] Considering the absorption properties of oxyhemoglobin and deoxyhemoglobin, it appears that free water and structured water absorb differently at different wavelengths. This variance may be related to changes in hydrogen bonding, as indicated by the WAMACS method at longer wavelengths.
[0291] An algorithm developed to predict the presence of structured water achieved an average accuracy of 66.7%, although it also produced five false positives in unstructured water samples. Regardless, this initial work is sufficient to demonstrate the existence of a difference between structured and unstructured water, and the possibility of identifying the state of the water. The points discussed previously show that the accuracy will be able to tend towards 100% prediction. The experiment highlights the difference between structured and unstructured bottles, which do not react in the same way to given wavelengths. The lesson of this experiment is to highlight this phenomenon. It is not necessary to detect the presence of structured or unstructured water for a given solution for the practical implementation of the invention.
[0292] A second experiment is implemented to demonstrate the possibility of capture by a capture device according to an embodiment of the invention. For this, a low voltage generator is positioned at the level of the plate of such a capture device according to an embodiment of the invention, and the generation of a (sinusoidal) signal at 4 kHz is implemented.
[0293] Figure 12 represents the measurements of an electrical signal, originating from an electromagnetic field, as a function of time respectively by first electrodes and by second electrodes of the capture device according to the embodiment of the invention in the presence of the low-frequency generator. The first electrodes, called plateau electrodes, which correspond to the measurement electrodes 13 described previously, measure the electrical values called "val plateau". These values form the first curve of Figure 12, on which a signal of frequency 4 kHz is indeed obtained which corresponds to the signal transmitted to the capture device by the low-voltage generator. This result demonstrates that the capture device is capable of capturing such an electromagnetic electrical signal. As a note, this electrical signal is slightly distorted by the inevitable presence of noise.To better identify the noise, additional electrodes of the capture device, positioned further away from the plate, also measure a received electrical signal (val electrodes), which is reproduced by the second curve in Figure 12. It appears that these electrodes do not receive (or only slightly) the signal from the low-voltage generator, and that the signal obtained ultimately corresponds to the surrounding noise. On this basis, it is possible to reprocess the signal measured by the first electrodes of the plate, removing the noise as captured by the additional electrodes.
[0294] Figure 13 shows the same measurements of an electrical signal as a function of time as in Figure 12, but in the absence of any signal emitted by a low-voltage generator. The electrodes on the plate then measure a signal very different from that in Figure 12, which confirms that they are capable of specifically capturing a signal emitted at the plate, where they are positioned.
[0295] Finally, a third experiment is carried out to validate the manufacturing process of a treatment product, including the capture process and the printing process. For this, eight particular products were manufactured by printing a signal, according to the manufacturing process described. For each product, 20 captures were carried out by the capture device according to an embodiment of the invention, and recorded in a database in the form of reference signals. Alternatively, any other number of captures could be carried out for each product, one, two, or a number greater than two captures. Carrying out several captures makes it possible to obtain a larger initial source of information and to facilitate future processing. In the experiment implemented, the database thus includes 160 records.Then, a large number of measurements are carried out for different products by the capture device according to the embodiment of the invention, these measurements involving in 19 situations randomly distributed among the large number of measurements a certain product among the eight having been initially chosen. For each measurement among this large number of measurements, the capture is compared to the reference signals. This comparison made it possible to accurately identify the 19 measurements of said certain product among the eight. In other words, this experiment made it possible to demonstrate that a certain product does indeed include a reliably identifiable digital signature, which validates both the principle of capturing a signal and the principle of printing a signal.
Claims
CLAIMS 1. Method for printing an active effect of at least one reference product in a treatment product, characterized in that it comprises a second printing phase (E2) comprising the following steps: - Reading (E21) of the digital signature associated with at least one reference product in a database; - Constitution (E23) of an electrical printing signal from the digital signature of the reference product; - Printing (E24) of the active effect in a neutral solution comprising at least one salt, by passing the electrical printing signal through one or more electrical wires of a plate of a printing device on which the neutral solution is positioned, for a predetermined printing duration, so as to print the active effect of the at least one reference product in the neutral solution and thus transform it into a treatment product.
2. Printing method according to the preceding claim, characterized in that said plate comprises at least two substantially rectilinear and parallel wires or in that it comprises at least one spiral-shaped wire.
3. Printing method according to one of claims 1 or 2, characterized in that it further comprises a step of determining (E22) printing parameters comprising a chosen printing duration, and in that the duration of execution of the step (E24) of printing the active effect is equal to the chosen printing duration.
4. Printing method according to one of the preceding claims, characterized in that the step of constituting (E23) a signal electrical printing from the digital signature of the reference product includes: - obtaining a first electrical signal by applying an inverse Fourier transform to at least one digital signature of the reference product, and optionally, - generating a set of harmonics of the first electrical signal, then adding the set of harmonics to the first electrical signal, the set of harmonics comprising a second and / or third and / or fourth and / or fifth harmonic.
5. Printing method according to one of the preceding claims, characterized in that it comprises an additional phase (EO) of structuring said neutral solution, carried out before and / or during the second phase (E2) of printing, by implementing a structuring method comprising a step of emitting electromagnetic waves in said neutral solution.
6. Printing method according to the preceding claim, characterized in that said neutral solution comprises at least one salt taken from magnesium chloride and sodium chloride, and in that the water molecules are structured around the crystals of the at least one salt.
7. Printing method according to one of the preceding claims, characterized in that the electromagnetic waves of the structuring method are emitted over a frequency range between 120 and 30,000 Hz, or even between 1,000 and 5,000 Hz.
8. Printing method according to the preceding claim, characterized in that the electromagnetic waves of the structuring method are generated by an electrical structuring signal having a maximum intensity between 8 and 96 pA, or even between 10 and 20 pA.
9. Method for manufacturing a treatment product, characterized in that it comprises a first phase (E1) of capturing at least one digital signature of a reference product by implementing a capture method comprising the following steps: - Recording (E1 1 ) of an electrical signal measured between at least two measuring electrodes of a capture device comprising a plate on which the reference product is positioned, the plate comprising one or more electrical wires capable of generating a virtual coil on a volume containing the reference product; - Processing (E12) of the recorded electrical signal to form a digital signature comprising a frequency spectrum of the recorded electrical signal; - Storing (E13) the digital signature in a database, and in that it comprises the second phase (E2) of printing at least one active effect in a neutral solution from said digital signature by implementing the printing method according to one of the preceding claims.
10. Device (10) for printing an active effect, characterized in that it comprises: - A treatment tray (1) comprising one or more electrical wires; - Access to a database (2) comprising the storage of a digital signature of at least one reference product; - A control unit (3) comprising hardware and software means configured to implement a printing method according to one of claims 1 to 8, and / or a manufacturing method according to claim 9, the control unit comprising a connection on the one hand to said database for storing and / or reading at least one digital signature in said database (2) and on the other hand to the electrical wire(s) of the plate for the generation and / or measurement of an electrical signal; - A human-machine interface (4) for starting and / or interrupting the structuring and / or capturing and / or printing and / or manufacturing and / or cooling and for entering structuring and / or capturing and / or printing and / or manufacturing and / or cooling parameters. 1 1. Device (10) for printing an active effect according to the preceding claim, characterized in that it comprises at least a first and a second measuring and / or injection electrode, in that the wire(s) of the set of electrical wires of the plate are connected to the first and second measuring and / or injection electrodes according to an electrical circuit, so that a first end of each of said wire(s) is connected to the first measuring and / or injection electrode and a second end of each of said wire(s) is connected to the second measuring and / or injection electrode.
12. Device (10) for printing an active effect according to one of claims 10 or 11, characterized in that the wires of the plate are parallel and equidistant or not from each other or in that the wire(s) have a spiral shape.
13. Device (10) for printing an active effect according to the preceding claim, characterized in that the plate comprises several wires and a first and a second zone such that a first distance measured between each pair of contiguous wires of the first zone differs from a second distance measured between each pair of contiguous wires of the second zone.
14. Device (10) for printing an active effect according to claim 12 or 13, characterized in that wires of the at least one or at least two zones of the plate are capable of generating equivalent electric fields for printing the same active effect in different volumes of a neutral solution.
15. Device (10) for printing an active effect according to one of claims 10 to 14, characterized in that the printing parameters comprise: - a selection of at least one area (1 11 , 1 12, 1 13, 114) of the plate (1 ) used for printing, called the printing area, and / or - a printing mode as being a first printing mode called “without structuring” or a second printing mode called “with structuring”, and / or - a range of intensity and frequency values of a current to be injected into the printing zone, and / or - a mode of reduction or suppression of noise contained in the signal, such as a first mode of reduction called "without reduction", or a second mode of reduction called "by averaging" or a third mode of reduction called "by phase opposition", and / or - a type of dilutions applied to the digital signature, such as a so-called “no dilution” mode, or a so-called “harmonic dilutions” mode and / or a so-called “reverse harmonic dilutions” mode, and / or - a mode of application of dilutions, such as sequential or simultaneous, and / or - a volume of a neutral solution to be printed, for example 25 milliliters, 5 liters, 10 liters, 25 liters, and / or - a printing duration.