The user interface relates to the field of operation of apparatuses for providing to a subject ultrasound and/or RF and/or massage treatment. In particular, the user interface relates to cosmetic and aesthetic treatments.
A user interface for operating aesthetic treatments aids the therapist/caregiver to set up parameters for the specific treatment, body area and patient. The user interface also enables real time monitoring of the on-going treatment, with respect to the patient's real time measured parameters and the equipment functionality.
A user interface is provided for operating non-invasive devices using a combination of bipolar conductive radio frequency (RF) induced current and low frequency ultrasound energy, with or without mechanical manipulation of the skin using gentle vacuum suction.
The user interface and method of operating the applicators are particularly indicated and distinctly claimed in the concluding portion of the specification. The user interface and the method, however, both as to organization and method of operation, may best be understood by reference to the following detailed description when read with the accompanied drawings, in which like reference characters refer to the same parts throughout the different views. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the method.
Non-invasive devices using a combination of bipolar radio frequency (RF) induced current and low frequency ultrasound energy, are designed for use in medical and aesthetic practices and are indicated for a temporary reduction in the appearance of cellulite and for temporary reduction of circumferences. The devices may operate with or without mechanical manipulation of the skin using gentle vacuum suction devices. They are also useful for the relief of minor aches and muscle spasms, as well as for the improvement of local blood circulation. In addition, non-invasive body reshaping via circumference reduction can be achieved.
An exemplary embodiment of the treatment device comprises an applicator for applying the RF and ultrasound energies to a tissue. When a vacuum is applied (such as described in Provisional U.S. Patent Application No. 61/081,110 to the same assignee, said Provisional Application incorporated herein in its entirety), the RF and ultrasound energies are applied to a tissue protrusion which was drawn or sucked into the interior of the applicator by the negative pressure or vacuum.
The user interface may be operated in a touch-screen mode.
A preliminary view (not shown) may be displayed for selecting the appropriate applicator to be used, when more than one applicator may be connected to the system.
The human image in box 130 is super-imposed with one or more circles 140, denoting various body areas suitable for receiving the treatment. Circles 140 serve as a body area selection tool, e.g. by pressing one of the circles.
A tissue flexibility box 150 may serve the therapist or caregiver to define the degree of tissue flexibility in the area to be treated, using arrows 160 and 170 to denote greater or lesser degrees of tissue flexibility (laxity), respectively. In another embodiment, as will be described in detail in conjunction with
Fat thickness box 180 may serve the therapist to define the fat depth in the area to be treated, using arrows 185 and 190 to denote shallower or deeper fat layer, respectively. In another embodiment, as will be described in detail in conjunction with
Arrows 186 and 188 serve for changing the displayed view, by going backwards to the preceding view or forwards to the next view, respectively.
Total treatment time may be defined in box 360, using arrows 362 and 364 to shorten or lengthen the treatment time, respectively.
Buttons P1 through P3 may be used to load previously stored sets of treatment parameters. Button C may be used to create a new set of treatment parameters, which may be saved for later reuse by selecting the Save button.
Arrow 366 serves for returning to the previous view and button 368 serves for indicating that the treatment may be started.
In another embodiment, as will be described in detail in conjunction with
Tissue resistance indicator 460 is used to show a current level of tissue resistance under the current settings. In an exemplary embodiment, the indicator 460 may include a value scale 472 and a current value pointer 464. The current value pointer or arrow 464 points at the current level of tissue resistance and area 472 shows the history of average resistance values. Tissue resistance indicator 460 may comprise extreme areas 461 and 462, indicating that when the current resistant value 464 is pointing in these areas, the tissue resistance level to RF induced current is not suitable for treatment. Additionally, the tissue resistance indicator 460 may comprise a zones 463a and 463b indicating maximum and minimum tissue resistance to RF induced current encountered during the treatment session, respectively. Boxes 473 and 474 may show the RF impedance at the limit of the extreme areas 461, 462 respectively.
An absorption level indicator 480 includes a current level pointer 481 that indicates the percentage of work done. Arrow 481 indicates current absorption level (percentage of work done) and a numeric value is portrayed on the top of the meter (i.e. 60%).
The measured diagnostics parameters may subsequently be used by the treatment process to establish suitable treatment parameters such as described in conjunction with
Thus, one aspect and/or embodiment of the present user interface is a user interface, such as one that can control and monitor the operations of an applicator such as the one described in Appendix A. The physical user interface, in general includes a display, such as a CRT monitor, LCD monitor or the like. The logical user interface includes a series of screens or views with each including various controls, status indicators and/or adjustments. The views can be rendered on the display device in such a manner that a single view occupies the entire display space or only a portion of the display space. Two or more views may be displayed simultaneously or, only one view can be displayed at a time.
Although the views can vary greatly, one or more of the views includes display elements that present data responsive to physiological signals obtained from the applicator, applicator parameter settings and treatment parameter settings. Physiological signals, in general, include signals that are obtained from the applicator device. More specifically, non-limiting examples of physiological signals may include a tissue RF resistance, a tissue firmness or flexibilty, temperature, moisture levels, and/or a fat thickness. Those skilled in the art will appreciate that other signals may also be included.
Applicator parameters, in general, include parameters that can be set by an operator for controlling the operating characteristics of the applicator. As non-limiting examples, the applicator parameters may include a vacuum pressure level, an RF power level, an RF temperature, an RF electrodes temperature, an ultrasound frequency, an ultrasound time-averaged power, an ultrasound peak power and an ultrasound scan depth.
The treatment parameters, in general, may be used to control the overall treatment session. Non-limiting examples of treatment parameters include a total treatment time, a treatment progress and an on-line measurements of said physiological signals. The on-line measurements can then be fed back into the system and heuristically used to determine further treatments, augment the treatment, or otherwise adjust the treatment. In various embodiments, a treatment area definition may be included as a treatment parameter to instruct/control the area to be treated. In other embodiments, the treatment area may be a physiological signal that is received based on the physical location of the applicator. Yet in other embodiments, the treatment area may be defined by applicator parameters.
In some embodiments of the invention, one or more of the parameters, including the applicator parameters and/or the treatment parameters can be manually set, automatically set, a combination of both manually and automatically set, automatically set in response to detected physiological settings and/or automatically set in response to detected physiological settings and/or manual settings.
The views may also include one or more icons that occupy a portion of one or more of the various views. The icons, when actuated, may operate to invoke actions and settings of the system. For instance, the icons can be used to modify various treatment and applicator parameters. In addition, icons may be used simply as indicators or gauges.
As another non-limiting example, a first view may provide parameters setting tools while a second view presents treatment progress. An icon may be included in each of these views and when actuated, causes the display to toggle between these views.
Thus, this aspect of the present invention is a user interface element used in operating a fat reduction applicator that incorporates the use of RF and ultrasound energies and vacuum pressure. The graphical element 600 represents the actual applicator. As vacuum pressure applied to the applicator increases, the user interface element shows a filling of the cavity of element 610 with fat tissue 620 and muscle tissue 630. In the state illustrated in
In addition, the user interface element 600 can provide an indication with regards to the fat depth of the tissue sucked into the cavity. As shown by element 650, the fat tissue 620 can be graphically illustrated as a different color or shading layered over the muscle tissue 630. At the top of the cavity, ultrasound technology can be used to determine the depth of the fat before muscle tissue is encountered. In the illustrated embodiment, this is shown as being 8 mm.
Physiological signals of the defined area to be treated can be obtained or derived 704 and then displayed in a second display view 706. The applicator parameters for the treatment can be displayed, selected, adjusted and set in a third display view 708. Once the system is set up, the treatment can be monitored in the fourth display view 710.
The user interface may operate as a daisy chain between each of these successive views or, the views can be combined in various manners or all displayed such as a card deck onto a display.
A number of embodiments have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the method. Accordingly, other embodiments are within the scope of the following claims.
This is a non-provisional application being filed under 37 CFR 1.53(b) and incorporating by reference United States Provisional Application for patent that was filed on Jul. 16, 2008 and assigned Ser. No. 61/081,110, such application is attached hereto as Appendix A in its entirety.
| Number | Date | Country | |
|---|---|---|---|
| 61081110 | Jul 2008 | US |