The present invention relates to a device especially designed for performing beauty, physiotherapy and hydrotherapy treatments based on contrasting applications on any part of the body, locally or generally and at high speed, wherein the patient does not come into contact with vapours or fluids.
Some of the applications or treatments which can be carried out using the equipment of the invention are:
Facial: moisturisation, oxygenation, nutrition, reaffirmation, facial hygiene, facial exfoliation, facial rejuvenation, anti-wrinkle, among others:
At present, all those treatments essentially based on contrasting applications are performed using:
Some methods use Peltier cells for cold and hot applications, with essential differences with respect to the present invention, among which the following must be highlighted:
1. Contrasting applications are performed by placing the metal blocks that house the Peltier Effect modules directly onto the patient, which implies a difficult and uncomfortable adaptation thereto by the user, to which we must add the fact that the fluid does not circulate at the adequate temperature, i.e. it is not previously treated, but rather directly treated in said blocks.
The use of hot/ice thermal blankets in physiotherapy is known, the application surface of which is either very limited, in the order of 150 cm2, (localised treatments), or up to surfaces in the order of 20,000 cm2 or more (the patient's whole body).
In general, the current methods for performing treatments using contrasting applications have drawbacks such as:
The object of the invention being presented is to overcome the drawbacks of the state of the art by means of equipment capable of performing an unspecified number of treatments, on any part of the body, locally or generally (on surfaces ranging from 12 cm2 to the whole body), at high speed, wherein the patient does not come into contact with vapours and/or water, either manually (the user determines all the work parameters of the equipment: from the area or areas to be treated, to the number of contrasting applications, the temperature of each of the applications, application frequency, etc.), or automatically with pre-programmed treatments loaded into the data base of the equipment, such as beauty, hydrotherapy and physiotherapy treatments, etc., essentially using contrasting applications to this end. The patient receives the contrasting applications by means of so-called contrast modules, which are made of impermeable, flexible and heat-conducting material, are designed to suit each of the areas of the patient to be treated and are disposed by way of wrapping or covering in direct contact therewith: arms, legs, abdomen, back, face, etc.
Fluid circulates through the contrast modules, having previously been heated or cooled to the appropriate temperature using the thermostat control module and, without coming into direct contact with the patient, transmits the different temperatures therethrough (cold and hot applications). The equipment includes, for operation thereof, a thermostat control module with one, two, three or more independent circuits. Each of these circuits has a heat module (heater module) with heating resistors and a cold module (high-performance cooling module) based on Peltier Effect cells. Both the heat and cold module may or may not be common to the different independent circuits. The combination of both systems, together with the control and programming module, enable contrasting (passage from hot application to cold application and vice versa) to take place in an extremely short period of time (seconds), said peculiarity providing a very high level of effectiveness in the treatments.
The invention is capable of controlling the area or areas to be treated with the contrasting applications (contrasting treatments can be performed on different areas, at different temperatures, duration, frequency, etc. and simultaneously). The equipment is capable of controlling the duration of each of the treatments independently, in addition to the duration of each of the contrasting applications (duration of the hot and cold applications). Likewise, it is capable of controlling the frequency between applications, in addition to the temperature of each application, independently in the different areas to be treated and in ranges which can be selected by the user which range, for cold application, from 2° C. to 35° C., depending on the treatment and/or area to be treated and, for hot application, from 35° C. to 50° C., depending on the treatment and/or area to be treated. The equipment is capable of producing the contrast, passing from heat to cold and vice versa in an extremely short period of time (seconds), and is capable of doing so progressively, starting the hot or cold application, for example, on the legs and ascending progressively up the back, abdomen and arms. The invention is also capable of performing localised contrasting treatments and applications: leg or legs, and/or back, and/or abdomen, and/or face, etc.; likewise, it is capable of combining any of these areas based on the user's criteria.
To this end, the device of the invention consists of a casing, housing in its interior:
The temperature ranges for each of the applications can be adjusted according to the treatment, the area to be treated, etc. between margins ranging from:
The complete cold circuit has elements common to the different independent circuits: the cold fluid reservoir, the high-performance cooling module and the pump, incorporating in each of the independent circuits: a heating resistor module, (boiler), which may or may not be the same as that used by the different heat circuits, a discharge pump, which may or may not be common to that used by the different heat circuits, in addition to independent temperature probes per circuit which also may or may not be common to those used by the different heat circuits.
The invention may or may not have one, two, three or more independent temperature circuits, each of which is controlled independently by the control and programming module. They all use the cold/hot water reservoirs, in addition to the cooling module. And each of the three circuits has, independently, in order to control and reach the programmed temperature of a boiler, (heating resistors), and of the corresponding temperature probes, both in the cold and heat circuit, in addition to independent pumps, both filling and discharge, for the cold and heat circuits.
The high-performance cooling module is based on thermoelectric systems, Peltier cells and, while forming part of the equipment being protected as a whole, the use of this module for cooling and/heating fluids for applications in aesthetic, beauty, physiotherapy and/or hydrotherapy treatments in itself represents an innovation aimed at overcoming the drawbacks of the state of the art, by means of a device capable of cooling a circulating fluid, whether air or liquid, for subsequent use thereof in cooling and/or heating any element or device, in this case the so-called contrast modules and their application in beauty, physiotherapy and/or hydrotherapy treatments.
Additionally, a control and programming module (control electronics) is disposed to control the different operating parameters of the equipment: cold and heat temperatures, number of contrasting applications, frequency of the applications, areas to be treated in each treatment, etc. In addition to providing the user with a tool that is flexible, powerful and extraordinarily accurate and safe. Which, by means of a user-friendly touch screen, allows the user, on one hand, to establish and control the different operating parameters and programmes of the equipment and, on the other, to visualise the necessary data to keep track of the real status of the equipment and treatment at all times. The control electronics incorporates the necessary elements to control the different elements of the equipment: pumps, electrovalves, temperature probes, heating resistors, cooling module, etc. Said module is aided by a touch screen, which is the interface between the user and the equipment, containing the on/off switch of the equipment, the controls for the equipment to work in manual or automatic mode, the controls for establishing the type of treatment to be performed, the modifications we want to make thereto to adapt it to the patient, the number of contrasting applications, the temperature of each, the duration of each application, etc. Likewise, through this screen, the user is capable of learning the status of the equipment, the activated alarms, if any, the remaining time in the treatment, the temperature of the fluid we are applying in real time, etc. On the other hand, the touch screen is used by the user by means of a touch keypad displayed thereon to introduce the patient's data in the data base implemented to this end or to access the patient's record, etc.
The device is complemented by a protection and alarms module that provides the equipment with the necessary safety mechanisms in case of possible eventualities, which envisages temperature alarms, heater disconnection system in case of equipment malfunction, pressure drop alarm in any of the contrast modules, low liquid level alarm and end-of-treatment alarm, in addition to an alarm indicating excessive cold or hot application or improper use of the equipment.
With regard to the contrast modules, these modules, which have different dimensions depending on the area or areas to be treated, cover the patient's treatment surface or surfaces and are made of impermeable, flexible and heat-conducting material, wherethrough the fluid circulates at the preset temperature. The contrast modules are in contact with the patient (applied over a disposable plastic film for individual use which is disposed between the contrast modules and the patient's skin for hygiene reasons). The contrast modules are in charge of transmitting the contrasting applications to the patient. Said modules are connected to the thermostat control module and, where applicable, therebetween, by the fluid supply and return pipes. The contrast modules which can be used by the invention have different sizes and shapes and are designed to suit the needs and surface to be treated in each case.
The invention envisages the inclusion of a direct contrasting applicator, consisting of a manual device, especially designed for localised treatments in small areas (no more than 12 cm2). This device may have different shapes and sizes depending on the surface to be treated. With regard to its constituent material, any material having sufficient heat-conducting characteristics may be used.
The equipment may be connected to a mains electricity supply with a voltage comprised between 100 v and 240 v and having a frequency between 47 Hz and 62 Hz, which facilitates use thereof without any type of modification in most countries around the world.
The invention has two basic operating modes: manual and automatic.
In both manual and automatic operating mode, the professional may, among other functions, select one of the standard treatments: beauty (facial and/or body), shape-up, hydrotherapy, etc. and modify it in order to adapt it to the needs of the patient to be treated, retrieve necessary data from the data base and the treatment history of a specific patient, either to verify said information or modify or add to it, or use the “direct contrasting applicator” simultaneously with the treatment being performed.
Automatic operation is aided by control electronics designed to control and provide the professional with a tool that is flexible, powerful and extraordinarily accurate and safe.
Therefore, the following advantages are derived from the previously described structure:
In order to complement the description being made and with the object of helping to better understand the characteristics of the invention, in accordance with a preferred example of embodiment thereof, a set of drawings is attached as an integral part of said description where, in an illustrative and non-limiting manner, the following has been represented:
In light of the preceding figures, particularly
For its part, the thermostat control module (5) includes one, two, three or more independent cold (8)/heat (9) circuits, those shown in detail in
The temperature ranges for each of the applications can be adjusted according to the treatment, the area to be treated, etc., within the following margins:
With regard to the hot fluid circuits corresponding to
For its part, the complete heat circuit (
With regard to the cold fluid circuit, in the chosen example of embodiment it is associated with the heat circuit in order to avoid duplicity of the elements, but it could nevertheless consist of an independent circuit without affecting the essence of the invention, in such a manner that it is formed by a reservoir for cold water (20), a cold pump (14) for impelling the fluid through the cold circuit, a heating resistor (12) or boiler to help control the temperature, coinciding with those previously described, on being common for the two circuits (heat/cold), a high-performance cooling module (13) based on Peltier cells, the operation of which is explained later in detail, an unspecified number of electrovalves (21) and a discharge pump (22a), also common to the two circuits (heat/cold).
Going on to analyse the complete cold circuit, the different independent circuits are its common elements: the cold fluid reservoir (20) the high-performance cooling module (13) and the cold pump (14), and incorporates in each of the independent circuits: a heating resistor module (12) which may or may not be the same as that used by the different heat circuits, a discharge pump (22a) which may or not be common to that used by the different heat circuits, and independent temperature probes per circuit which may or may not be common to those used by the different heat circuits.
Optionally, the high-performance cooling module (13) is substituted for a conventional cold compressor.
The basic heat circuit, that shown in
For its part, the basic cold circuit functions as follows: Once the hot fluid has been emptied, the discharge pump (22a) stops, valve (21c) is closed and valve (21e) is closed to prevent recirculation of the cold fluid. Valves (21a) and (21b) are opened and the cold pump (14) continues working, emptying the fluid from the cold tank into the contrast modules (17) in a matter of seconds. The temperature of the cold fluid is controlled by the heating resistor (12) disposed at the outlet of the cold pump (14), which adapts it to the programmed temperature before reaching the contrast modules (17). The cold fluid that flows through the cooling module and reaches the contrast modules is thus recirculated, passing through the heating resistor (12) that controls the temperature and adapts it to the temperature programmed for cold application. Once the time of the cold application has expired, the cold pump (14) is disconnected and valve (21b) closed to avoid turbulences and recirculations in the contrast module (17) emptying process, and the discharge pump (22a) is activated, which through valve (21a) will empty the cold fluid from the contrast modules into the cold water reservoir (15). Once the contrast modules have been emptied, the discharge pump (22a) is disconnected, valve (21a) is closed, valve (21e) is opened and the cold pump (14) is started up to start recirculating the cold fluid through the cooling module (13), in a closed circuit that will lower the preparation temperature for the next cold application. At this point, two cases can occur: one where a new hot application starts, in which case we would restart the heat circuit operating process, and another where the treatment will have concluded, whereupon the equipment would remain in the indicated state, i.e. recirculating the cold fluid and maintaining its temperature within the programmed margins, waiting for a new treatment to start, unless the equipment is disconnected, in which case all the devices of the equipment are disconnected and go into sleep mode.
As mentioned earlier, the invention may optionally have independent temperature circuits: the invention may have one, two, three or more independent temperature circuits. For descriptive purposes, the invention has been embodied with three temperature circuits, each controlled independently by the control and programming module (2).
Therefore, said circuits may also be associated to the contrast module (17), to a facial module (23) or to a direct contrasting applicator (24).
They all use, as common elements, the cold/hot water reservoirs, in addition to the cooling module. And each of the three circuits has an independent heating resistor (12) to control and reach the programmed temperature, as well as the corresponding temperature probes (16c, 16d, 16e) both in the cold circuit and heat circuit, in addition to independent filling and discharge pumps (22a, 22b and 22c) for the cold circuit and for the heat circuit.
With regard to the high-performance cooling module (13), it is based on thermoelectric systems, Peltier cells and, while forming part of the equipment being protected as a whole, the use of this module for cooling and/or heating fluids for applications in aesthetic, beauty, physiotherapy and/or hydrotherapy treatments represents, in itself, an innovation which has the object of overcoming the drawbacks of the state of the art, by means of a device capable of cooling a circulating fluid, whether air or liquid, for subsequent use thereof in cooling and/or heating any element or device, in this case in the so-called contrast modules and its application in beauty, physiotherapy and/or hydrotherapy treatments.
The objective is achieved by developing a high-performance cold generator based on Peltier Effect cells.
On one hand, the device is composed of a “circulator unit”, that shown in
The cooling module (13) of the invention may have one, two, three, four or more circulator elements (25a, 25b, 25c and 25d), such as those mentioned earlier, joined together as shown in the aforementioned
In order to cool each of the circulator elements,
Peltier cells (27) are used, placed in direct contact therewith and fixed in the manner explained later. Given the characteristic of Peltier cells of generating heat, based on the polarity of the direct current supplied thereto, on one of their sides and cold on the other and vice versa by changing the polarity of the direct current supplied thereto. The invention being presented is only capable of cooling, heating or cooling and heating, using the adequate means that will allow a change in polarity of the current supplied to the Peltier cells (27) incorporated in the control and programming module (2) of the equipment. Each of the circulator elements (25) comprises a diversity of Peltier cell units (27), which may be conventional or double. For descriptive purposes, the assembly has been configured using four double Peltier cells (27) per each of the circulating elements, two on each of its sides, has been used. On their cold side, these are installed two by two on each of the sides of the four circulator modules (25 that form the “circulator unit.” These may be joined to the aforementioned circulators using separators (28) made of heat-conducting material, 42×42 mm in size and 10 mm thick, in such a manner that the Peltier cells (27) are joined to said separators by their cold side using heat-conducting paste and these in turn, also using heat-conducting paste, to their respective circulators, whereon they radiate cold for the purpose of cooling the circulating fluid. In the event of not using the aforementioned separators, the Peltier cells (27) will be joined directly by heat-conducting paste to their respective circulators. On the other hand, the Peltier cells (27) will be joined by their hot side to their respective radiators (19) using heat-conducting paste. The system for fixing the Peltier cells, on one hand, to their corresponding separator, if any, and to the circulator and, on the other, to the heat exchanger, is composed of three screws (29) per circulator, in such a manner that they pass through the corresponding circulator, using isolators that prevent the screws from coming into contact with the circulator, thereby avoiding temperature transfer and cold loss in the unit. They pass through the circulator by means of three holes (31) made therein and are fixed by means of nuts to the base of the respective radiators so that, in a sandwich-like manner, they exert pressure on and fix their respective Peltier cells, separators and the circulator remaining in the centre between one radiator and another, ensuring fixation of the unit and perfect contact between the Peltier cells and the corresponding circulator, on one hand, and with the high-performance heat exchanger (corresponding blade radiator) on the other, guaranteeing maximum cold transfer towards the circulator and adequate cooling of each of the Peltier cells on their hot side by establishing perfect contact with their corresponding radiator.
As explained earlier, the Peltier cells (27), on their hot side, are joined, also using heat-conducting paste, to the high-performance heat exchangers or radiators (19). These are formed by blade radiators and fans (30), one per radiator, which by forcing the circulation of air evacuate the hot air generated by the Peltier cells to the exterior of the unit, which is collected by the blade radiators. The invention contains one, two, three, four or more high-performance heat exchangers, each of which is formed by a radiator (19) and a fan (30). For descriptive purposes, the assembly of the invention has been configured using four of the aforementioned heat exchangers, being interdependent, as shown in
Optionally, the so-called heat exchangers, consisting of radiators (16) and fans (30), may be substituted for a fluid-based cooling system.
The distribution of the unit formed by the sixteen double Peltier cells (27) joined, as explained earlier, back to back on each of the sides of the circulator modules (25a, 25b, 25c and 25d), (four Peltier cells per circulator), which form the “circulator unit”, plus the four high-performance heat exchangers, formed by the blade radiators (19) and their respective fans (30), is the following: as inferred from observation of
Coming back to the cooling of the circulating fluid: on one hand we have the “circulator unit” shown in
When having to refrigerate fluids below 0° C., in the case of air it must previously have been dehydrated or, in the case of liquids, these must be of the “anti-freeze” type and support the temperatures to which they will be subjected without freezing.
In terms of insulation of the unit: the unit formed by the circulators, four in this case, in addition to the connections therebetween, which are made using a joint nut and pipes, and the corresponding heat exchangers, are housed inside a box made of sheet metal or any other material and insulated from the exterior and therebetween using an insulation material such as, for example, polyurethane foam, in such a manner that the cold losses of the unit are practically negligible.
With regard to controlling the temperature of the fluid that flows out of the device: this is achieved using a temperature probe (16b), and the corresponding control module.
For its part, and in terms of the external power supply and electric connections of the high-performance cooling module, the power supplied to the unit, i.e. the Peltier Effect modules (27) and the unit cooling fans (30) is controlled by the control and programming module (1) and a power source (40) incorporated in the unit, which can be 24V, 13 A or 12V, 26 A or 36V, 9a, associated with a power socket (41). The invention is prepared for connection to both an independent power source such as those mentioned earlier and to the control and programming module of the equipment.
The invention incorporates a mechanical heat disconnection system in case of equipment malfunction. This system is totally independent from the operation of the control electronics installed in the equipment. If for any reason the equipment electronics does not react to an increase in temperature with the corresponding alarm and the temperature continues to increase, the equipment incorporates four independent safety thermal limit controllers (42), one for each of the four heat exchangers, automatically resettable, which do not allow the Peltier cells (27) and the unit as a whole to reach temperature levels higher than those preset in-factory as safety levels, opening the feed circuit thereof in the event of an uncontrolled temperature increase. The thermostats recover their work position and re-establish the supply to the Peltier cells as soon as the temperature returns to its normal values.
Going back to the control and programming module (2) again, it is designed to control the different operating parameters of the unit: cold and heat temperatures, number of contrasting applications, frequency of the applications, areas to be treated in each treatment, etc., in addition to providing the user with a tool that is flexible, powerful and extraordinarily accurate and safe which, by means of a user-friendly touch screen (6), allows the user, on one hand, to establish and control the different operating parameters and programmes of the device and, on the other, to visualise the necessary data to keep track of the real status of the equipment and treatment at all times. The control electronics incorporates the necessary elements to control the different elements of the equipment: pumps, electrovalves, temperature probes, heating resistors, cooling module, etc.
The touch screen (6) constitutes the interface between the user and the equipment and contains the start/stop push button of the equipment, the controls for the equipment to work in manual or automatic mode, the controls for establishing the type of treatment to be used, the modifications we wish to make thereto to adapt it to the patient, the number of contrasting applications, the temperature of each, the duration of each application, etc. Likewise, through this screen the user is capable of learning the status of the equipment, the activated alarms, if any, the remaining time in the treatment, the temperature of the fluid we are applying in real time, etc. On the other hand, the touch screen is used by the user by means of a touch keypad displayed thereon, to introduce the patient's data in the data base implemented to this end or to access the patient's record, etc.
The protection and alarms module (3) provides the equipment with the necessary safety mechanisms in case of possible eventualities, such as the over-temperature alarm. If the temperature of the thermostat control module (5) or of the circulating fluid exceeds the established safety parameters, the over-temperature alarm would become activated, whereupon it gives off an intermittent beep, sends a message to the screen and alerts of the incident while cutting off the current to the heating components.
This alarm will remain activated until it is deactivated manually or until the temperature of the module reaches normal values, in which case it will be deactivated on its own.
This alarm, together with the following alarm, has maximum priority, due to which it will prevail over any other alarm.
Likewise, the incorporation of a heat disconnection system due to equipment malfunction has been envisaged, in such a manner that, if for any reason, the equipment electronics does not react to an increase in temperature in the cooling module (13) with the corresponding alarm and the temperature continues to increase, the equipment incorporates four independent safety thermal limit controllers (42), one for each of the four heat exchangers, automatically resettable, which do not allow the heat-generating elements to reach temperature levels higher than those preset in-factory as safety levels, opening the feed circuit thereof in the event of an uncontrolled temperature increase. Operation of these thermostats is totally independent to the equipment electronics. The thermostats recover their work position and re-establish the supply to the heating modules as soon as the temperature returns to its normal values. This eventuality, as in the previous case, would activate the over-temperature alarm, sending a message to the screen with an intermittent beep.
Complementarily, the incorporation of a pressure drop alarm in any of the contrast modules has been envisaged. In the event that the system were to detect a lack of pressure in any of the contrast modules, whether due to loss of fluid or any other eventuality, the unit will activate a “pressure drop” alarm, sending a message to the monitor and giving off an intermittent beep while isolating the supply of the heating modules and disconnecting the equipment.
Another alarm corresponds to a low liquid level. If the equipment detects a low level in any of the fluid-filled reservoirs, it alerts by activating the low liquid level alarm, sending a message to the screen and giving off an intermittent beep, not allowing the treatment to start until the problem has been solved.
Additionally, the inclusion of an end-of-treatment alarm has been envisaged, in such a manner that upon conclusion of the treatment, the equipment sends a message to the screen indicating that the treatment has concluded.
Finally, an alarm indicating excessive cold or hot application or improper use of the equipment has been envisaged, although the equipment automatically controls application duration and does not allow a duration longer than the so-called safety duration to be programmed or operations that could place the treatment at risk to be executed, such as performing cold application without having previously carried out a hot application, etc. Even so, the equipment has an additional protection system that detects incorrect use thereof which could give rise to excessive cold or hot application, or any other action that places the treatment at risk. If this occurs, the equipment sends a message to the screen alerting of the error committed and prevents the programmed action from being carried out.
Going back to the contrast modules (17) again, said modules, the dimensions of which differ depending on the area or areas to be treated, cover the patient's treatment surface or surfaces and are made of impermeable, flexible and heat-conducting material wherethrough the fluid circulates at the preset temperature. The contrast modules are in contact with the patient (they are applied on a disposable plastic film for individual use and disposed between the contrast modules and the patient's skin for hygiene reasons). The contrast modules are in charge of transmitting the contrasting applications to the patient.
The contrast modules are joined to the thermostat control module (5) and, if applicable, therebetween, by means of the fluid supply and return pipes (43).
The contrast modules which can be used by the invention differ in size and shape, and are especially designed to suit the patient's needs and the surface to be treated in each case. For the description of the invention the following contrast modules have been embodied:
Optionally, the channels that line the interior of the contrast modules may or may not house springs made of stainless steel or any other material, formally and dimensionally appropriate, or any other adequate element or device to avoid obstruction thereof.
The inlets/outlets of the module are connected respectively to the fluid inlets/outlets of the equipment (5a, 5a1, 5b, 5b1, 5c, 5c1, 5d, 5d1, 5e and 5e1).
The configuration of the contrast modules may or may not include inlet/outlet (46 and 47), i.e. they may be closed modules wherein the fluid flows into inlet (45) and flows out of outlet (49), without the possibility of interconnection to other contrast modules, or may be like that shown in
Connection between the different modules of the invention admits any configuration. Said interconnection between modules would be carried out in accordance with those areas of the patient's body that will be subjected to treatment. A configuration has been used for the description of the invention wherein, in order to perform a complete treatment, i.e. arms, legs, abdomen and back, in addition to a facial treatment and one with the direct contrasting applicator, the configuration used would be that represented in
For the purpose of balancing the contrasting application times, flow reducers will be installed in the outlet corresponding to the back module (17d), in such a manner that the arm and other body applications have a similar duration.
With regard to the direct contrasting applicator (24), a detailed view of which is shown in
Going back to the fluid inlets/outlets of the equipment again, said equipment incorporates an unspecified number of fluid inlets/outlets. The following inlets/outlets have been used in the description of the invention:
The different fluid inlets/outlets of the equipment, for the purpose of optimising the effect of the contrasting applications, may function sequentially and progressively. This operation is completely automatic and is implemented in the system's programming parameters, which allow adaptation of the equipment, on one hand, to the type of treatment to be performed and, on the other, to the morphology of the patient to be treated.
Both the inlet for facial applications (5d) and the direct contrasting applicator inlet (5e) act independently.
By way of a safety device and for the purpose of making the treatment more pleasant, without reducing the effectiveness of the contrast applications, the equipment, in those procedures where the treatment of legs and/or arms is combined with the treatment of the abdomen, automatically establishes the temperature, duration and frequency parameters, in such a manner that, without losing effectiveness, reduces the impact of cold application in more sensitive areas.
Likewise, the equipment automatically controls the safety margins of both the “initial hot application” and “initial cold application”. These temperature curve, duration and sequence parameters are essential for guaranteeing, on one hand, the effectiveness and safety of the treatments and, on the other, not less importantly, the preparation of the patient for the treatment, with the (initial hot application), and essential for completing the treatment to ensure the patient's feeling of well-being and “energisation” upon concluding the process, with (final cold application).
As can be observed in
Finally, with regard to operating modes, the invention has two basic operating modes:
In manual operating mode the professional can perform, among others, functions such as:
The automatic operating mode is controlled by the control and programming module (2), which includes a microprocessor (58) and a power stage (55) for feeding the heating resistors (12), said control and programming module being designed for controlling purposes and for providing the professional with a flexible and powerful tool that is extraordinarily accurate and safe.
In the automatic operating mode the professional can perform functions such as:
The treatments that can be selected in automatic operating mode include facial, body, shape-up and hydrotherapy, mud therapy with contrasting applications, etc.
Both in manual and automatic operating mode, the equipment provides operating data and parameters such as the following at all times:
Number | Date | Country | Kind |
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P 200803334 | Nov 2008 | ES | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/ES09/00526 | 11/5/2009 | WO | 00 | 8/9/2011 |