A SAFE SKIN TREATMENT APPARATUS FOR PERSONAL USE AND METHOD FOR ITS USE
Disclosed is a method of controlling an applicator coupling skin heating energy to the skin. The skin heating energy is applied to the skin as a function of electrode-to-skin coupling quality. In cases where only partial electrode-to-skin contact is detected the skin heating energy is adjusted accordingly. Disclosed is also an apparatus for implementing this method.
1 . An apparatus for personal skin treatment with skin heating energy, said apparatus comprising:
at least one rigid electrode, mounted on a surface of an applicator facing the skin, said electrode being at least partially in contact with a “bony” segment of a skin of a subject and operative to apply RF voltage to the skin and measure skin impedance and wherein the rigid electrode includes at least two temperature sensors;
an RF energy generator operative to supply said rigid electrode with RF energy; and
a control unit communicating with said RF generator and including a mechanism operative to continuously monitor skin impedance between the electrodes and calculate rate of change of monitored skin impedance and adjust RF energy supplied to said rigid electrode as a function of skin impedance and rate of change of the skin impedance; and
when the at least one rigid electrode is at least partially in contact with a “bony” segment of a skin of a subject the two temperature sensors measure different temperature.
2 . The apparatus according to claim 1 , wherein said control unit includes a mechanism that based on said monitored skin impedance or the rate of change of the skin impedance determines quality of the RF electrode-to-skin contact.
3 . The apparatus according to claim 2 , wherein said control unit adjust supply of the RF energy to the rigid electrode as a function of the quality of the RF electrode-to-skin contact.
4 . The apparatus according to claim 1 , wherein said applicator also includes at least two temperature sensors located on said rigid electrode and when the rigid electrode is at least partially in contact with a “bony” segment at least one of the two temperature sensors measures ambient temperature.
5 . The apparatus according to claim 1 , wherein said applicator also includes at least two temperature sensors each located on a probe.
6 . The apparatus according to claim 1 wherein said controller includes a mechanism operative to monitor the difference in the temperature between said temperature sensors compare said difference with a predetermined protocol and accordingly adjust RF energy supply to said rigid electrode.
7 . The apparatus according to claim 6 , wherein said mechanism operative to monitor the difference in the temperature is operative to calculate rate of temperature change and based on said rate of temperature change adjust RF energy supply to said rigid electrode.
8 . The apparatus according to claim 6 , wherein said controller based on the difference in the temperature provided by the mechanism operative to monitor the difference in the temperature between said temperature sensors displays which segment of the electrode is out of contact with the skin.
9 . The apparatus according to claim 1 further comprising:
at least one source of optical radiation operative to irradiate and heat the skin between the rigid electrodes;
at least one spring loaded or fixedly attached temperature sensor operative to measure skin temperature and provide the measurements to a mechanism operative to monitor temperature differences between said temperature sensors; and
wherein said control unit adjust optical radiation intensity as a function of said temperature differences between the temperature sensors.
10 . The apparatus according to any one of claims 1 and 9 further comprising:
at least one source of ultrasound energy operative to couple said energy and heat the skin between the rigid electrodes;
at least one spring loaded temperature sensor operative to measure skin temperature and provide the measurements to a mechanism operative to monitor temperature differences between said temperature sensors; and
wherein said control unit adjust ultrasound energy intensity as a function of said temperature differences between the temperature sensors.
11 . The apparatus according to claim 1 further comprising:
at least one visual signal indicator operative to signify a user of quality of electrode-to-skin contact and display a map of rigid electrode temperature distribution; and
at least one audio signal indicator operative to signify a user on quality of the electrode-to-skin contact.
12 . A method of user-controlled efficacy of skin heating energy application to skin, said method comprising:
coupling to the skin an applicator having at least one rigid RF electrode, a visual signal indicator, at least one audio signal indicator, and a source of RF energy and wherein the rigid electrode includes at least two temperature sensors and an LED display;
applying said energy to said skin;
displacing the applicator across the skin and monitoring at least skin impedance changes and calculating rate of skin impedance changes; and
based on said skin impedance changes and the rate of skin impedance changes indicating on partial electrode-to-skin contact and wherein the LED display displays which segment of the electrode is out of contact with the skin.
13 . The method according to claim 12 further comprising adjusting the RF energy supplied to said rigid RF electrode as a function of the partial electrode-to-skin contact.
14 . The method according to claim 12 , wherein also
monitoring temperature differences between at least two temperature sensors located on said rigid electrode;
comparing said differences with a predetermined protocol; and
accordingly adjusting RF energy supply to said rigid electrode.
15 . The method according to claim 12 wherein the temperature sensors are paired with temperature sensors located on a second electrode to measure the temperature differences between each pair of temperature sensors.
16 . The apparatus according to any one of claim 1 , further comprising:
at least one source of ultrasound energy operative to couple said energy and heat the skin between the rigid electrodes;
at least one spring loaded temperature sensor operative to measure skin temperature and provide the measurements to a mechanism operative to monitor temperature differences between said temperature sensors; and
wherein said control unit adjust ultrasound energy intensity as a function of said temperature differences between the temperature sensors.