Hair cutting device and its attachments
RF energy transmission through electrodes in hair-cutting devices addresses the issue of skin hot spots by providing uniform warmth, enhancing the cutting experience and effectiveness.
Patent Information
- Application Number
- JP2024570511
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-06-24
- Filing Date
- 2023-06-14
- Publication Date
- 2025-10-22
- Estimated Expiration
- 2043-06-14
AI Technical Summary
Existing hair-cutting devices experience hot spots on the skin surface due to direct heating, with limited thermal effect below the skin surface, and there is a need for an alternative method to provide uniform warmth during use.
The use of radio frequency (RF) energy generated by an RF generator unit and transmitted via electrodes on the device or an attachment to increase skin temperature safely and uniformly.
The RF energy delivery provides a comfortable warmth to the skin, enhancing the hair-cutting experience by improving the cutting effectiveness and maintaining user comfort.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to electric hair-cutting devices and attachments for use with electric hair-cutting devices, and more particularly to electric hair-cutting devices and attachments that are capable of increasing the temperature of a user's skin. [Background technology]
[0002] Hair-cutting devices, such as electric shavers, hair trimmers, or clippers, are used to cut or shave hair on parts of a person's body, such as the head or face. By heating the body part where the hair is being cut, an improved hair-cutting experience can be achieved for users of such devices. Summary of the Invention [Problem to be solved by the invention]
[0003] Some existing shaving devices include elements that generate heat during use and transfer the heat to the user's skin. A drawback of such direct heating methods is that the user may experience "hot spots," where the surface of the user's skin feels particularly hot in areas in contact with the shaving device, while other areas experience little or no thermal effect. Furthermore, the heat from such direct heating is concentrated at the skin surface, with little or no thermal effect below the skin surface.
[0004] A further problem to be overcome is to provide an element that can achieve a thermal effect in a handheld device where space is limited.
[0005] Therefore, there is a need for an alternative form of heating the skin of a user of a hair-cutting device that addresses the above-mentioned drawbacks. [Means for solving the problem]
[0006] To provide an improved user experience, there is a need for a hair-cutting device that can safely provide warmth to a user during use. The inventors of the present disclosure have recognized that such a warming experience can be achieved by using a radio frequency (RF) generator unit to generate RF energy and transmitting the RF energy to the user's skin via electrodes. The electrodes can be located on the hair-cutting device itself or on an attachment (e.g., a comb attachment) that can be attached to the hair-cutting device.
[0007] According to a first specific embodiment, an electric hair-cutting device is provided, comprising: a body including an RF generator unit configured to generate radio frequency (RF) energy and a first plurality of electrodes electrically coupled to the RF generator unit; and an attachment assembly removably attached to the body, the attachment assembly including a second plurality of electrodes configured to contact a user's skin during use. The electric hair-cutting device further comprises a cutting element. The attachment assembly is a comb attachment having teeth that serve to separate and / or lift hairs to be cut during use. The first plurality of electrodes are configured to be electrically coupled to the second plurality of electrodes of the attachment assembly when the attachment assembly is attached to the body, such that RF energy generated by the RF generator unit can be delivered to the user's skin to increase the temperature of the user's skin.
[0008] In some embodiments, the RF generator unit may be configured to generate RF energy that is delivered to the user's skin, resulting in an increase in the temperature of the user's skin to a temperature between 38°C and 42°C.
[0009] The RF generator unit may be configured to operate based on at least one of the following parameters: i) RF frequencies between 0.5MHz and 100MHz. ii) RF peak-to-peak voltage between 10Vpp and 100Vpp. and iii) a rated power of 20W.
[0010] The electric hair-cutting device may, in some embodiments, further comprise a processing unit in operative communication with the RF generator unit, said processing unit configured to control operating parameters of said RF generating portion and to control operating parameters of the cutting element of the electric hair-cutting device.
[0011] In some embodiments, the electric hair-cutting device may further comprise a skin impedance measuring unit configured to measure, during use, an impedance of the skin between a pair of electrodes in the second plurality of electrodes, and the processing unit configured to control operating parameters of the RF generator unit based on the measured impedance of the skin.
[0012] The second plurality of electrodes can include a first pair of electrodes of opposite polarity and a second pair of electrodes of opposite polarity. The skin impedance measurement unit can be configured to measure skin impedance between each electrode of the first pair of electrodes and each electrode of the second pair of electrodes. The processing unit can be configured to control parameters of RF energy delivered to each of the first and second pairs of electrodes based on the measured skin impedance.
[0013] In some embodiments, the relative positions of the electrodes of the first plurality of electrodes and / or the second plurality of electrodes are adjustable.
[0014] The electric hair-cutting device may further comprise at least one electrically insulating element located between adjacent electrodes of opposite polarity of the second plurality of electrodes, the at least one electrically insulating element configured to contact the user's skin during use to limit the flow of electrical current between adjacent electrodes of opposite polarity through fluid present on the user's skin.
[0015] The second plurality of electrodes can include a first electrode of a first polarity, a second electrode of a second polarity, and a third electrode of a second polarity, and the second and third electrodes can be disposed on opposite sides of the first electrode.
[0016] In some embodiments, the skin contacting surface area of the first electrode may be between two and four times greater than the skin contacting surface area of each of the second and third electrodes.
[0017] The first electrode can have a width between 2.8 mm and 7 mm, the second electrode can have a width between 1 mm and 3.5 mm, and / or the third electrode can have a width between 1 mm and 3.5 mm.
[0018] In some embodiments, the separation between the first electrode and each of the second and third electrodes may be between 3 mm and 15 mm.
[0019] According to a second specific aspect, there is provided an attachment for an electric hair-cutting device, the attachment configured to be removably attached to a body of the electric hair-cutting device, the attachment having a plurality of electrodes configured to contact a user's skin in use, and a contact element electrically coupled to the plurality of electrodes, the contact element configured to receive RF energy from a radio frequency RF generator unit of the electric hair-cutting device when the attachment is attached to the body of the electric hair-cutting device, and to transmit the RF energy to the user's skin via the plurality of electrodes to increase the temperature of the user's skin. The attachment assembly is a comb attachment having teeth that serve to separate and / or lift hairs to be cut in use.
[0020] According to a third specific embodiment, an electric hair-cutting device is provided, the electric hair-cutting device comprising: a body including an RF generator unit configured to generate radio frequency (RF) energy and a cutting assembly including a cutting element; and a first plurality of electrodes electrically coupled to the RF generator unit, the first plurality of electrodes configured to conduct RF energy from the RF generator unit to a user's skin when the first plurality of electrodes contact the user's skin to increase the temperature of the user's skin. The electric hair-cutting device further comprises an attachment assembly removably attached to the body, the attachment assembly having a second plurality of electrodes configured to contact the user's skin during use. The attachment assembly is a comb attachment having teeth that serve to separate and / or lift cut hair during use. The first plurality of electrodes can be electrically coupled to the second plurality of electrodes of the attachment assembly. As a result, RF energy can be conducted from the RF generator unit to the second plurality of electrodes and conducted to the user's skin during use to increase the temperature of the user's skin.
[0021] These and other aspects will be apparent from and elucidated with reference to the embodiments described hereinafter. [Brief explanation of the drawings]
[0022] [Figure 1] 1 is a schematic diagram of an example of an electric hair-cutting device. [Figure 2] FIG. 1 is a schematic diagram of an example of an electrode arrangement. [Figure 3] 10A-10C are schematic diagrams of further examples of electrode placement. [Figure 4] 10A-10C are schematic diagrams of further examples of electrode placement. [Figure 5] 10A-10C are schematic diagrams of further examples of electrode placement. [Figure 6] 10A-10C are schematic diagrams of further examples of electrode placement. [Figure 7] 10A-10C are schematic diagrams of examples of electrodes whose relative positions can be changed. [Figure 8]10A-10C are schematic diagrams of further examples of electrodes whose relative positions can be changed. [Figure 9] 1A-1C are schematic diagrams of examples of electrode arrangements with electrical insulating elements. [Figure 10] 10A-10C are schematic diagrams of further examples of electrode arrangements with electrically insulating elements. [Figure 11] 1 is a schematic diagram of a further example of an electric hair-cutting device. [Figure 12] 1 is an explanatory diagram of an example of an attachment for an electric hair cutting device. DETAILED DESCRIPTION OF THE INVENTION
[0023] Exemplary embodiments will now be described, by way of example only, with reference to the following drawings, in which:
[0024] According to embodiments disclosed herein, an electric hair-cutting device is provided that can provide a thermal effect to a user's skin while the device is being used to cut or trim hair. The thermal effect is achieved by delivering radio frequency (RF) energy to the user's skin via multiple electrodes. This enhances the user's hair experience. Furthermore, by warming the skin, the cutting effect of the hair-cutting activity can be improved, for example, when a close shave is achieved.
[0025] According to a first aspect, an electric hair-cutting device is provided. Referring to the drawings, Figure 1 is a schematic diagram of an example of an electric hair-cutting device 100. The hair-cutting device 100 may comprise a shaving device (e.g., an electric shaver), a hair-trimming device (e.g., hair clippers), or any other electric device used to cut hair. The shaving device or hair-trimming device is referred to as a cutting element (112). The hair-cutting device 100 may, for example, comprise a handheld device and may be powered by a mains power source, by one or more batteries, and / or by one or more other power sources.
[0026] The electric hair-cutting device 100 has a main body 102 (also referred to as a main body portion or housing) and an attachment assembly 104 that can be removably attached to the main body 102. For example, the attachment assembly 104 can include coupling elements or fasteners that allow it to be attached to and detached from the main body 102. The attachment assembly 104 has an attachment that is configured to engage a user's skin during use to separate the user's skin from the cutting elements (e.g., blades) of the electric hair-cutting device 100. The attachment assembly 104 has a comb attachment with tines 106 that serve to separate and / or lift hairs being cut during use.
[0027] The body 102 of the hair-cutting device 100 includes a radio frequency (RF) generator unit 108 configured to generate RF energy. The body 102 also includes a first plurality of electrodes 110 electrically coupled to the RF generator unit 108. For example, the first plurality of electrodes 110 can receive RF energy from the RF generator unit 108. In some embodiments, the first plurality of electrodes 110 can be disposed on or near a cutting element 112 of the hair-cutting device 100. The cutting element 112 can have one or more blades configured to cut hair during use. The RF generator unit 108 can receive power from a power source (not shown), which can include a mains power supply and / or one or more batteries, as described above. The same power source can be used to provide power to other elements of the electric hair-cutting device 100.
[0028] The attachment assembly 104 has a second plurality of electrodes 114 configured to contact the user's skin during use. For example, when the attachment assembly 104 is attached to the body 102 of the hair-cutting device 100, the second plurality of electrodes 114 may engage the user's skin during a hair-cutting activity (e.g., when the hair-cutting device is used to cut the user's hair).
[0029] The first plurality of electrodes 110 are configured to be electrically coupled to the second plurality of electrodes 114 of the attachment assembly 104 when the attachment assembly is attached to the body 102, such that RF energy generated by the RF generator unit 108 can be transmitted to the user's skin to increase the temperature of the user's skin. Each electrode in the second plurality of electrodes 114 can, for example, include or be electrically coupled to one or more electrical contacts 116 disposed on the attachment assembly 104, which can engage with a corresponding one or more electrodes of the first plurality of electrodes 110 on the body 102 of the hair-cutting device 100. For example, an electrical connection can be formed between the first plurality of electrodes 110 and the second plurality of electrodes 114 when the attachment assembly 104 is attached to the body 102.
[0030] During use, RF energy generated by the RF generator unit 108 can pass through the first plurality of electrodes 110 and the second plurality of electrodes 114 to the user's skin (e.g., between a pair of electrodes of opposite polarity), causing an increase in the temperature of the skin, which results in a warming sensation for the user and improves the effectiveness of the cutting activity. RF energy can be supplied to the user's skin while the electric hair-cutting device 100 is being used to cut hair, or independently of the hair-cutting function, for example when the cutting element 112 is not operated.
[0031] The amount of RF energy generated by RF generator unit 108 can be varied by changing one or more parameters of the RF generator unit. For example, increasing the power supplied to RF generator unit 108 increases the amount of RF energy generated, resulting in a greater increase in the temperature of the user's skin.
[0032] In some embodiments, the RF generator unit 108 may be configured to generate RF energy that is delivered to the user's skin, resulting in an increase in the temperature of the user's skin to a temperature between 38°C and 42°C. In some examples, the RF energy is delivered to cause the temperature of the user's skin to increase to approximately 42°C at the surface, as this temperature can provide a comfortable warmth without causing pain or discomfort to the user and improve the effectiveness of the hair-cutting activity. When the temperature of the skin surface is approximately 42°C, the temperature within the epidermis and dermis of the skin reaches between approximately 38°C and 40°C. This increase in temperature deep within the user's tissue can provide a comfortable warmth.
[0033] A desired temperature increase in the user's skin can be achieved by adjusting one or more parameters of the electric hair-cutting device 100 to vary the amount of RF energy delivered to the user's skin. For example, one or more parameters of the RF generator unit 108 can be varied. The RF generator unit 108 can be configured to operate based on one or more specific parameters, as described below. For example, the RF generator unit 108 can be configured to operate at an RF frequency between 0.5 MHz and 100 MHz, more preferably between 0.5 MHz and 50 MHz, and even more preferably between 0.5 MHz and 10 MHz. In some examples, the RF generator unit 108 can be configured to operate at an RF peak-to-peak voltage between 10 Vpp and 100 Vpp. In some examples, the RF generator unit 108 can be configured to operate at a rated power of 20 W. For a typical user with typical skin characteristics, electrode geometry, and RF parameters (e.g., frequency and voltage), the RF generator unit 108 configured in this manner delivers RF energy to the user's skin with an RF power dissipation between 1 W and 20 W. The RF power dissipation can be varied (e.g., by adjusting parameters of the RF generator unit 108) based on the electrode geometry (e.g., size and placement of the first plurality of electrodes and / or the second plurality of electrodes) and / or the RF voltage input (i.e., the voltage delivered to the user's skin supplied by the RF generator unit 108). In other words, the RF generator unit 108 can be configured to deliver RF energy to the user's skin with an RF power dissipation between 1 W and 20 W. One or more of the above parameters, along with one or more other parameters of the RF generator unit 108, can be adjusted to generate RF energy suitable for raising the temperature of the user's skin to within an intended temperature range.
[0034] The parameters of the RF generator unit 108 may be adjusted and / or controlled by one or more processors or processing units located within the electric hair-cutting device 100 or located remotely relative to the electric hair-cutting device (e.g., in wireless communication with the RF generator unit 108). In some examples, the electric hair-cutting device 100 may further include a processing unit 118 in operative communication with the RF generator unit 108. The processing unit 118 may be configured to control operating parameters of the RF generator unit 108. In some embodiments, the processing unit 118 may further be configured to control operating parameters of the cutting element 112 of the hair-cutting device 100. For example, the processing unit 118 may control a motor to cause one or more blades of the cutting element 112 to rotate or move, and / or the processing unit may adjust the relative position of the blades within the cutting element to change the hair cut length achieved by the hair-cutting device 100. In other examples, the processing unit 118 may be configured to control other elements of the electric hair-cutting device 100.
[0035] Generally, RF energy generated by the RF generator unit 108 is transmitted from a first electrode to a second electrode through the user's skin. In instances where the electric hair-cutting device 100 is used without the attachment assembly 104, RF energy may be transmitted from a first electrode of the first plurality of electrodes through the skin to a second electrode of the first plurality of electrodes, and in instances where the attachment assembly is attached to the body 102 during use, RF energy may be transmitted from a first electrode of the second plurality of electrodes through the skin to a second electrode of the second plurality of electrodes.
[0036] In some embodiments, the amount of RF energy generated by the RF generator unit 108 may remain constant during use. However, in other embodiments, one or more parameters of the RF generator unit 108 may be adjusted during use to vary the amount of RF energy provided to the user's skin, thereby varying the temperature change experienced by the user. As an example, a skin temperature measurement element may be provided to measure the temperature of the skin near the location of contact with one or more electrodes. If the skin temperature is determined to meet or exceed a threshold temperature, one or more parameters of the RF generator unit 108 may be adjusted to reduce the amount of RF energy generated. Thus, one or more parameters of the RF generator unit 108 may be adjusted based on the measured skin temperature.
[0037] According to some embodiments, the electric hair-cutting device 100 may further include a skin impedance measurement unit 120 configured to measure the impedance of the skin between a pair of electrodes during use (e.g., between a pair of electrodes in the first plurality of electrodes if the hair-cutting device is used without the attachment assembly 104, or between a pair of electrodes in the second plurality of electrodes if the attachment assembly is used). The skin impedance of a user's skin may change based on the wetness of the skin or the amount of liquid present on the skin surface. For example, if a user applies gel or liquid (shaving gel or water) to the skin before starting a shaving activity, the impedance of the skin may be different from the impedance of the skin when no gel or liquid is applied. The processing unit 118, which may be in operative communication with the skin impedance measurement unit 120, may be configured to control operating parameters of the RF generator unit 108 based on the measured skin impedance. The power and / or peak-to-peak voltage of the RF generator unit 108 may, for example, be varied based on the measured skin impedance. For example, if the impedance of the skin is determined to be below a threshold impedance, the processing unit 118 may control the RF generator unit 108 to reduce the amount / power of the RF energy generated.
[0038] In some embodiments, the first plurality of electrodes and / or the second plurality of electrodes may include multiple electrode pairs, such as multiple discrete electrode pairs or multiple electrode pairs sharing a common electrode. In such embodiments, the skin impedance measurement unit 120 may be configured to measure the skin impedance between each pair of electrodes, and the operating parameters of the RF generator unit 108 may be adjusted to vary the parameters (e.g., power and / or peak-to-peak voltage) of the RF energy supplied to each electrode or pair of electrodes based on the measured skin impedance at each electrode or pair of electrodes. In this manner, the RF energy supplied to the user's skin may be adjusted to account for different wetness levels of the user's skin over the range of the cutting element 112 or attachment assembly 104 that contacts the user's skin during use. Accordingly, in some embodiments, the second plurality of electrodes 114 (or the first plurality of electrodes when the electric hair-cutting device 100 is used without the attachment assembly 104) may include a first pair of electrodes of opposite polarity and a second pair of electrodes of opposite polarity. The skin impedance measurement unit 120 may be configured to measure the impedance of the skin between each electrode of the first pair of electrodes and between each electrode of the second pair of electrodes. The processing unit 118 may be configured to control parameters of the RF energy supplied to each of the first and second pairs of electrodes (or control parameters of the RF generator unit 108) based on the measured skin impedance.
[0039] In another embodiment, the frequency of RF energy delivered to the user's skin via the electrodes can be varied for each user. While there is an optimal frequency range for achieving a desired target skin temperature of 38°C to 42°C, the optimal frequency may be different for different users. Therefore, before using the electric hair-cutting device 100, the user can perform a calibration or probing step, so that the optimal frequency of RF energy can be determined. During such calibration, the user can position the electric hair-cutting device 100 so that the first plurality of electrodes 110 or the second plurality of electrodes 114 contacts the skin to be cut. The RF generator unit 108 can then generate RF energy having at least three different frequencies, which can be delivered through the user's skin across each of the multiple pairs of electrodes. The skin impedance measurement unit 120 can measure the skin impedance across each pair of electrodes when RF energy of the multiple different frequencies is delivered. The optimal frequency for the user can be determined from the slope of a plot of the measured skin impedance at each frequency of RF energy. Once the optimal frequency for a particular user is determined, the processing unit 118 can control the RF generator unit 108 to generate RF energy at the optimal frequency. In some examples, the optimal frequency for a particular user is stored in memory, for example as part of a user profile, so that it can be used for the same user during future hair-cutting activities.
[0040] In addition to varying the parameters of the RF generator unit 108, different numbers and arrangements (e.g., sizes and relative positions) of electrodes can be used to achieve different thermal effects on the user's skin. A minimum of two electrodes can be provided to deliver RF energy to the user's skin and achieve the intended warming sensation, although alternatively, three or more electrodes can be provided. A greater number of electrodes increases the thermal effect but uses more space in the cutting element 112 or attachment assembly 104. Therefore, a compromise is required to achieve good skin thermal effects while maintaining good cutting capabilities. In a preferred embodiment, three electrodes can be provided.
[0041] 2-6 show various possible arrangements of the electrodes. The electrodes in the first plurality of electrodes 110 and / or the second plurality of electrodes 114 can be arranged according to the arrangements shown in FIGS.
[0042] In some embodiments, the first plurality of electrodes 110 and / or the second plurality of electrodes 114 can be arranged according to the arrangement shown in Figure 2, where the plurality of electrodes includes a first electrode 202 of a first polarity, a second electrode 204 of a second polarity, and a third electrode 206 of a second polarity. In this example, the second electrode 204 and the third electrode 206 are arranged on either side of the first electrode 202.
[0043] In the arrangement shown in Figure 3, the electrodes are arranged in alternating polarity, such that adjacent electrodes have opposite polarities (electrode 302 having a first polarity and electrode 304 having a second polarity). In this example, the electrodes are arranged in a single row. In the arrangement shown in Figure 4, the electrodes are arranged in two rows, with a first row of electrodes 402 having a first polarity and a second row of electrodes 404 having a second, opposite polarity.
[0044] 5, a plurality of electrodes are arranged in a first column 502 and a second column 504, with adjacent electrodes in each column being of opposite polarity, such that an electrode in the first column 502 faces an electrode in the second column 504 of the opposite polarity.
[0045] FIG. 6 shows an arrangement similar to that shown in FIG. 2, in which a first electrode 602 is centrally positioned relative to a second electrode 604 and a third electrode 606. In the arrangement shown in FIG. 6, the first, central electrode 602 has a larger skin contact surface area than the second and third electrodes 604, 606 located on either side of it. In some embodiments, the skin contact surface area of the first electrode 602 is between two and four times larger than the skin contact surface area of each of the second electrode 604 and the third electrode 606. In a preferred embodiment, the skin contact surface area of the first electrode 602 is between 2.5 and 3 times larger than the skin contact surface area of each of the second electrode 604 and the third electrode 606. In one embodiment, the skin contact surface area of the first electrode 602 is 2.8 times larger than the skin contact surface area of each of the second electrode 604 and the third electrode 606. By arranging the electrodes so that the skin contact area ratio is between 2:1 and 4:1, a good balance of current density between the electrodes can be achieved, which results in improved heating performance compared to other surface area ratios and ensures that good heating performance is maintained when smaller electrodes are used.
[0046] The size of each electrode can also affect heating performance and / or the depth of tissue heated by the electrode. In some embodiments, the first plurality of electrodes 110 and / or the second plurality of electrodes 114 includes three electrodes configured as shown in FIG. 6 . The first, central electrode 602 can have a dimension (e.g., width) that is larger than the equivalent dimensions of the second and third electrodes 604, 606 located on either side of the central electrode. For example, all electrodes can have substantially the same length, which can correspond to or be similar to the width of the cutting element 112 and / or the attachment assembly 104. For example, the electrode length is approximately 20 mm. In some embodiments, the first electrode 602 can have a width between 2.8 mm and 7 mm. Generally, better heating performance can be achieved with larger electrodes, but the maximum size (e.g., width) of each electrode is constrained by the area available on the cutting element 112 and / or the attachment assembly 104. Thus, there is a trade-off between providing large electrodes for improved heating performance and leaving the cutting element 112 and / or attachment assembly 104 sufficiently exposed to maintain adequate cutting capabilities. In some embodiments, the second electrode 604 and / or the third electrode 606 can have a width between 1 mm and 3.5 mm. In one particular example, the first electrode 602 has a width of approximately 7 mm, and the second electrode 604 and the third electrode 606 have a width of approximately 2.5 mm. The electrodes may be any shape, such as rectangular or cubic. In some examples, the skin-contacting surface of the electrode is flat (i.e., planar), while in other examples, the skin-contacting surface may be curved. The electrodes may be made of a conductive material capable of conducting RF energy to the user's skin. For example, the electrodes may be formed from a metal.
[0047] The spacing between electrodes can also affect heating performance and / or the depth of tissue heated by the electrodes. Generally, the smaller the gap between adjacent electrodes, the better the steering of RF current between the electrodes, resulting in improved heating performance. However, if the spacing between adjacent electrodes is too close, this can result in current crowding, resulting in hot spots and potentially causing pain to the user. Similar to the selection of electrode size, a larger gap between adjacent electrodes can provide improved hair-cutting capabilities. In some examples, the spacing between the first electrode 602 and each of the second and third electrodes 604, 606 may be between 3 mm and 15 mm. More preferably, in some embodiments, this spacing may be between 3.4 mm and 14.3 mm. In another specific embodiment, this spacing may be between 3 mm and 4 mm.
[0048] In some embodiments, the optimal spacing between adjacent electrodes may depend on the width of the electrodes. Thus, in some examples, the relative positions of the electrodes of the first plurality of electrodes and / or the second plurality of electrodes may be adjustable. Figures 7 and 8 are schematic diagrams of examples of how the relative positions of the electrodes may be adjusted.
[0049] 7 shows a pair of electrodes 702, 704, it should be understood that when any number of electrodes are provided, the relative positions of the electrodes may be adjusted. In the example shown in FIG. 7, one or more of the electrodes 702, 704 may all be attached to a movement mechanism such that at least one electrode can be moved (e.g., slid along a rail) relative to another electrode to adjust the relative positions of the electrodes and adjust the separation between adjacent electrodes.
[0050] In the example shown in FIG. 8 , six electrodes 802-812 are shown, but it should be understood that the following discussion is applicable to any number of electrodes. In this example, the electrodes themselves are stationary and not movable. However, a mechanism is provided that allows different ones of the electrodes 802-812 to be used to deliver RF energy to the user's skin at any particular time. For example, this mechanism may include multiple switches for mechanically connecting and / or disconnecting particular electrodes from the RF generator unit 108 as needed. In some embodiments, the processor 118 may be configured to control which of the electrodes 802-812 are active at any particular time. In this manner, the effective separation between the electrodes may be controlled. In FIG. 8 , the shaded electrodes 804 and 810 are shown as active. For example, if electrodes 806 and 808 are active but the other electrodes are inactive, the effective spacing between the active electrodes is relatively small, whereas if electrodes 802 and 812 are active but the other electrodes are inactive, the effective spacing between the active electrodes is relatively large.
[0051] As described herein, RF energy transmitted between electrodes is intended to pass through the user's skin and tissue. However, in some cases, fluids (e.g., water, sweat, moisturizer, shaving gel, etc.) on the user's skin can create an electrical connection between the electrodes, effectively creating a "short circuit" condition, whereby RF energy is transmitted between the electrodes through the fluid rather than through the user's skin. To reduce the likelihood of RF energy being transmitted through the fluid, in some embodiments, an electrically insulating (i.e., electrically non-conductive) element can be provided to prevent such a short circuit event. The electrically insulating element can be formed of any electrically non-conductive material, such as a plastic material. Figures 9 and 10 are schematic diagrams of examples of how such an insulating element can be implemented.
[0052] 9, a plurality of electrodes (e.g., first or second plurality of electrodes 110, 114) is shown. The plurality of electrodes includes a first subset of electrodes 902 having a first polarity and a second subset of electrodes 904 having a second polarity. An electrical insulating element 906 is disposed between each adjacent pair of electrodes 902, 904. In use, the electrical insulating element 906 engages the user's skin and restricts the flow of current between adjacent electrodes 902, 904 of opposite polarity unless RF energy passes through the user's skin.
[0053] A different arrangement of multiple electrodes 902, 904 is shown in Figure 10. In this example, the electrodes 902, 904 are configured such that the electrodes 902 of a first polarity are arranged in a first row and the electrodes 904 of a second polarity are arranged in a second row. In this example, multiple cutting elements 1002 (e.g., rotating blades) are provided, with electrically insulating elements 906 provided between each cutting element 1002 to limit the direct flow of RF energy from the electrodes 902 of the first polarity to the electrodes 904 of the second polarity unless the RF energy passes through the user's skin.
[0054] Thus, more generally, the electric hair-cutting device 100 may comprise at least one electrically insulating element 906 located between adjacent electrodes 902, 904 of opposite polarity of the second plurality of electrodes 114 (and / or of the first plurality of electrodes 110). The at least one electrically insulating element 906 is configured to contact the user's skin during use to limit the flow of electrical current between adjacent electrodes of opposite polarity through fluid present on the user's skin.
[0055] Without an electrically insulating element between adjacent electrodes, any fluid around the electrodes acts as a conductive material, thus directing current from the sides of the electrodes toward the skin surface. This increases the equivalent contact area between the electrode and the skin compared to the actual skin contact area of the electrode, and therefore more RF current is driven toward the skin surface rather than deeper into the skin than would be the case if there was no fluid on the skin.
[0056] As discussed herein, the electrode-related functionality of the present invention may be realized in electrodes on the cutting element 112 (e.g., the first plurality of electrodes 110) and / or in electrodes on the attachment assembly 104 (e.g., the second plurality of electrodes 114). Thus, while the embodiment shown in Figure 1 includes both the body 102 and the attachment assembly 104 of the electric hair-cutting device 100, further aspects of the present invention relate to electric hair-cutting devices that do not include an attachment assembly.
[0057] 11 is a schematic diagram of an example of an electric hair-cutting device 1100 having a main body 102. The main body 102 has a radio frequency (RF) generator unit 108 configured to generate RF energy and a cutting assembly 1102 including a cutting element 112 and a first plurality of electrodes 110. The first plurality of electrodes 110 are electrically coupled to the RF generator unit 108 and configured such that when the first plurality of electrodes contact the user's skin, RF energy is conducted from the RF generator unit to the user's skin to increase the temperature of the user's skin.
[0058] Thus, the electric hair-cutting device 1100 can provide the benefits of the disclosed invention without the use of an attachment assembly. Optionally, the attachment assembly 104 can be provided to lift and / or separate hair to be cut, for example, to function as a comb, while still providing the benefits of the invention. Thus, the electric hair-cutting device 1100 can further include an attachment assembly 104 removably attached to the main body 102. The attachment assembly 104 can include a second plurality of electrodes 114 configured to contact a user's skin during use. The first plurality of electrodes 110 can be electrically coupled to the second plurality of electrodes 114 of the attachment assembly 104. As a result, during use, RF energy can be conducted from the RF generator unit 108 to the second plurality of electrodes and conducted to the user's skin to increase the temperature of the user's skin. In some examples, the second plurality of electrodes 114 may be electrically coupled to at least one electrical contact 1106 configured to engage with one or more of the first plurality of electrodes 110 when the attachment assembly 104 is attached to the body 102.
[0059] According to a further aspect, the present invention provides an attachment for an electric hair-cutting device. Figure 12 is an illustration of an example of an attachment 1200, which includes or is similar to the attachment assembly 104. The attachment 1200, suitable for use with an electric hair-cutting device such as the device 1100, is configured to be removably attached to the body 102 of the electric hair-cutting device. The attachment 1200 includes a plurality of electrodes 114 configured to contact a user's skin during use. The attachment 1200 further includes a contact element 1106 electrically coupled to the plurality of electrodes 114, such that when the attachment is attached to the body 102 of the electric hair-cutting device 1100, the contact element is configured to receive radio frequency RF energy from the RF generator unit 108 of the electric hair-cutting device and transmit the RF energy to the user's skin via the plurality of electrodes to elevate the temperature of the user's skin. In some examples, multiple contact elements 1106 may be provided. The attachment 1200 can have any number of the features of the attachment assembly 104 disclosed herein.
[0060] Thus, the present disclosure provides a mechanism by which a thermal effect can be provided to a user's skin when performing a hair-cutting activity using an electric hair-cutting device or attachment thereof. Radio frequency energy provides a pleasant thermal experience to human skin, and the electric hair-cutting device and attachment assembly according to the disclosed embodiments allows a user to experience such thermal effect on the skin.
[0061] The processing unit 118 may include one or more processors, processing units, multi-core processors, or modules configured or programmed to control elements of the electric hair-cutting device and / or assembly in the manner described herein. In certain implementations, the processing unit 118 may include multiple software and / or hardware modules, each configured to or intended to perform individual or multiple steps of the methods described herein.
[0062] The term "module" as used herein is intended to include a hardware element, such as a processor or element of a processor configured to perform a particular function, or a software element, such as a set of instruction data that has a particular function when executed by a processor.
[0063] It should be understood that embodiments of the present invention also apply to computer programs, particularly those on or in a carrier, adapted for carrying out the present invention. The program may be in the form of source code, object code, a source and object code intermediate code, such as a partially compiled form, or any other form suitable for use in implementing a method according to embodiments of the present invention. It should also be understood that such programs may have many different architectural designs. For example, program code implementing the functionality of a method or system according to the present invention may be subdivided into one or more subroutines. Many different ways of distributing functionality among these subroutines will be apparent to those skilled in the art. The subroutines may be stored together in an executable file to form a self-contained program. Such an executable file may contain computer-executable instructions, such as processor instructions and / or interpreter instructions (e.g., Java interpreter instructions). Alternatively, one or more or all of the subroutines may be stored in at least one external library file and linked statically or dynamically with the main program, e.g., at run time. The main program includes at least one call to at least one subroutine. The subroutines may also have function calls to one another. An embodiment of a computer program product comprises computer-executable instructions corresponding to each processing step of at least one of the methods defined herein. These instructions may be subdivided into subroutines and / or stored in one or more statically or dynamically linked files. Another embodiment of a computer program product comprises computer-executable instructions corresponding to each means of at least one of the systems and / or products defined herein. These instructions may be subdivided into subroutines and / or stored in one or more statically or dynamically linked files.
[0064] The carrier of a computer program may be any entity or device capable of carrying the program. For example, the carrier may include a data storage device such as a ROM, for example a CD-ROM or a semiconductor ROM, or a magnetic recording medium, for example a hard disk. Furthermore, the carrier may be a transmissible carrier, such as an electric or optical signal, which may be conveyed via an electric or optical cable or by radio or other means. When the program is embodied in such a signal, the carrier may be constituted by such a cable or other device or means. Alternatively, the carrier may be an integrated circuit in which the program is embedded, the integrated circuit being adapted to perform or used for performing the relevant method.
[0065] Variations to the disclosed embodiments can be understood and implemented by those skilled in the art practicing the principles and techniques described herein, from a study of the figures, the disclosure, and the appended claims. In the claims, the word "comprise" does not exclude other elements or steps, and the indefinite article "a" or "an" does not exclude a plurality. A single processor or other unit may fulfill the functions of several items recited in a claim. The mere fact that certain means are recited in mutually different dependent claims does not indicate that a combination of these means cannot be used to advantage. A computer program can be stored or distributed on a suitable medium, such as an optical storage medium or a solid-state medium supplied together with or as part of other hardware, but can also be distributed in other forms, such as via the Internet or other wired or wireless communication systems. Any reference signs in the claims should not be interpreted as limiting the scope of the invention.
Claims
1. An electric hair cutting device comprising: The main body is an RF generator unit for generating radio frequency RF energy; 1. A cutting assembly comprising: a cutting element; a cutting assembly having a first plurality of electrodes electrically coupled to the RF generator unit, wherein when the first plurality of electrodes contact the user's skin, RF energy is conducted from the RF generator unit to the user's skin to increase a temperature of the user's skin; and an attachment assembly removably attached to the body, the attachment assembly comprising: an attachment assembly including a second plurality of electrodes that contacts the user's skin during use; the attachment assembly being a comb attachment having teeth that serve to lift hairs that are cut during use; an electric hair-cutting device, wherein the first plurality of electrodes are electrically coupled to the second plurality of electrodes of the attachment assembly, and wherein, in use, RF energy can be conducted from the RF generator unit to the second plurality of electrodes and then to the user's skin to increase the temperature of the user's skin.
2. 10. The electric hair-cutting device of claim 1, wherein the RF generator unit generates RF energy that is transmitted to the user's skin, causing the temperature of the user's skin to increase to a temperature between 38°C and 42°C.
3. the RF generator unit: i) an RF frequency between 0.5 MHz and 100 MHz; ii) an RF peak-to-peak voltage between 10 Vpp and 100 Vpp; and 3. The electric hair-cutting device according to claim 1 or 2, which operates according to at least one of the following parameters: iii) a rated power of 20 W;
4. and a processing unit in operative communication with the RF generator unit, the processing unit comprising: Controlling the operating parameters of the RF generator unit; Controlling operating parameters of the cutting element of the electric hair-cutting device.
3. An electric hair-cutting device according to claim 1 or 2.
5. a skin impedance measurement unit configured to, in use, measure the impedance of the skin between a pair of electrodes in the second plurality of electrodes; 5. The electric hair-cutting device of claim 4, wherein the processing unit controls operating parameters of the RF generator unit based on the measured skin impedance.
6. the second plurality of electrodes includes a first pair of electrodes of opposite polarity and a second pair of electrodes of opposite polarity; the skin impedance measurement unit measures the skin impedance between each electrode of the first pair of electrodes and each electrode of the second pair of electrodes; 6. The electric hair-cutting device of claim 5, wherein the processing unit controls parameters of the RF energy supplied to each of the first and second pairs of electrodes based on the measured impedance of the skin.
7. 3. An electric hair-cutting device according to claim 1 or 2, wherein the relative positions of the electrodes in the first plurality of electrodes and / or the second plurality of electrodes are adjustable.
8. 3. An electric hair-cutting device according to claim 1 or 2, further comprising at least one electrically insulating element located between adjacent electrodes of opposite polarity of the second plurality of electrodes, the at least one electrically insulating element contacting the skin of the user during use to limit the flow of electrical current between adjacent electrodes of opposite polarity through fluid present on the skin of the user.
9. the second plurality of electrodes includes a first electrode of a first polarity, a second electrode of a second polarity, and a third electrode of a second polarity; 3. The electric hair-cutting device according to claim 1 or 2, wherein the second electrode and the third electrode are disposed on either side of the first electrode.
10. 10. The electric hair-cutting device of claim 9, wherein the skin contact surface area of the first electrode is between two and four times greater than the skin contact surface area of each of the second and third electrodes.
11. the first electrode has a width between 2.8 mm and 7 mm; the second electrode has a width between 1 mm and 3.5 mm; and 10. The electric hair-cutting device of claim 9, wherein the third electrode has a width between 1 mm and 3.5 mm.
12. 10. The electric hair-cutting device of claim 9, wherein the spacing between the first electrode and each of the second and third electrodes is between 3 mm and 15 mm.
13. An attachment for an electric hair-cutting device, the attachment being configured to be removably attached to a main body of the electric hair-cutting device, the attachment comprising: a plurality of electrodes that contact the user's skin during use; a contact element electrically coupled to the plurality of electrodes, a contact element, when the attachment is attached to a body of the electric hair-cutting device, that receives RF energy from a radio frequency RF generator unit of the electric hair-cutting device and transmits the RF energy to the user's skin via the plurality of electrodes to increase the temperature of the user's skin; An attachment wherein the attachment assembly is a comb attachment having teeth that serve to lift hair that is cut during use.
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