Devices for administering medical or cosmetic radiation to the human body or parts of the human body
The device addresses hygiene issues in radiation applications by using separate ventilation flows and UV-C disinfection, ensuring a clean and safe environment for medical and cosmetic treatments.
Patent Information
- Application Number
- JP2022571107
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-05-25
- Filing Date
- 2021-05-21
- Publication Date
- 2025-09-17
- Estimated Expiration
- 2041-05-21
AI Technical Summary
Existing devices for applying medical and cosmetic radiation to the human body face challenges in maintaining hygiene due to heat generation and bacterial loads, particularly in tanning beds and medical treatment applications, which require easy cleaning and ventilation systems that can compromise hygiene.
A device incorporating a ventilation system with separate flows for cooling light emitters and the body, featuring a disinfection chamber with UV-C radiation for air purification, fragrance dispensing, and adjustable vent outlets to ensure a hygienic environment, using UV-C radiation and air conditioning to maintain cleanliness.
The device provides a hygienic and safe environment by reducing bacterial loads and odor, ensuring comfortable cooling, and minimizing the risk of infection, suitable for both medical and cosmetic uses, including patients with compromised immune systems.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a device for applying medical and cosmetic radiation to the human body or parts of the human body.
[0002] The invention further relates to a method for operating such an apparatus and to a disinfection chamber for upgrading such an apparatus, all according to the preambles of the independent claims. [Background technology]
[0003] Apparatus for applying medical / cosmetic radiation to the human body or parts of the human body include, for example, tanning beds in which tanning of the skin is achieved for cosmetic reasons. Furthermore, such apparatus also include apparatus used for medical purposes, in which the human body is applied with medical / cosmetic radiation, for example to treat skin diseases. Furthermore, an apparatus may be understood as an apparatus for producing psychosomatic effects by applying light to the human body or parts of the human body.
[0004] For all these devices, both for cosmetic and medical purposes, a completely hygienic environment is expected by the user. Therefore, cleaning aspects, such as surface accessibility and cleanability, are always taken into consideration in tanning beds. During use, excretions by the human body or parts of the human body can have adverse hygienic effects on the device. Therefore, commercially available devices of the first-mentioned type are designed to be easy to clean.
[0005] In addition to the tanning effect, many of the described devices sometimes generate considerable heat. This is due, on the one hand, to the electrical operating mode of the light emitters used, and, on the other hand, to the action of said light radiation on the skin. While a certain amount of heat generation may be desirable, most devices also include ventilation and / or cooling to cool the user during use. This cooling also raises hygiene concerns regarding possible bacterial loads, both in the field of cosmetic tanning and in the field of medical treatment applications.
[0006] It is desirable for users in the cosmetic and medical fields to be able to rely on a completely hygienic environment and treatment, and therefore there is a need for a device of the type mentioned at the beginning that is able to meet high hygiene demands. Summary of the Invention
[0007] It is therefore an object of the present invention to provide an apparatus for applying medical and cosmetic radiation to the human body or parts of the human body, which has better hygiene properties than known apparatus, and in particular to provide such an apparatus, as well as a method for operating such an apparatus, and means for upgrading existing apparatus, which are easy and safe to use and improve hygiene without further effort on the part of the user.
[0008] The stated object is achieved by means of a device for influencing the human body or parts of the human body by means of medical and cosmetic radiation according to the characterising parts of the independent claims.
[0009] One aspect of the invention relates to an apparatus for affecting the human body or parts of the human body with medical and cosmetic radiation.
[0010] Within the meaning of the present invention, optical radiation encompasses the ultraviolet (UV), visible (VIS) and near-infrared (nIR) radiation spectrums. UV radiation has wavelengths in the spectrum between 100 nm and about 380 nm, VIS radiation has wavelengths in the spectrum between about 380 nm and about 780 nm, and nIR radiation has wavelengths in the spectrum between about 780 nm and about 1400 nm. In all of these spectra, there are transition regions.
[0011] Within the meaning of the present invention, a medical-cosmetic effect may be considered to be achieved when a physiological or subjective emotional effect occurs. This may include, for example, tanning of the skin, as in the case of UV-A and / or UV-B radiation, or a beneficial heating effect, or vasodilation resulting in better blood circulation in the skin, as occurs, for example, with irradiation in the near-infrared range. Such effects from medical-cosmetic radiation may also be achieved by psychosomatic effects, in which certain light spectra may influence emotional states.
[0012] The device according to the invention comprises at least one first light emitter for generating the described medical-cosmetic, in particular medical-cosmetic, radiation.
[0013] The device further comprises at least one first ventilation flow for cooling the at least one light emitter. Depending on the technology used for the light emitter, some other cooling of the light emitter may be required. Conventionally used mercury vapor lamps generate much more heat than, for example, LED light emitters. Therefore, the first ventilation flow for cooling the at least one light emitter can be adapted to the requirements of the light emitter. This ventilation flow is particularly preferably designed to flow essentially through the light emitter.
[0014] In one particular embodiment, a heat exchanger element is provided which protrudes into the first ventilation flow and which facilitates heat dissipation from the first light emitter. Such heat exchangers are basically known to those skilled in the art and can have a surface-enlarged lamellar or lattice structure through which the first ventilation flow can better flow, thus facilitating the dissipation of heat from the light emitter.
[0015] The light emitter is particularly preferably a low-pressure tube.
[0016] Furthermore, the device according to the invention comprises a first ventilation flow for cooling the at least one light emitter.
[0017] Within the meaning of the present invention, a ventilation flow may be understood to mean an arrangement of completely fluidly connected lines and elements functionally arranged in the line path, through which the ventilation stream can be guided and influenced. The ventilation flow is particularly preferably designed to draw in relatively cool air at the inlet and expel relatively heated air at the outlet. Between the inlet and the outlet, this ventilation flow is guided through the elements to be cooled, for example, luminaries. The warm air generated by the elements to be cooled is guided by the ventilation flow to the outlet and expelled.
[0018] Within the meaning of the present invention, the actual fluid flow within the ventilation flow, i.e. the air generally moved by the ventilation flow, may be understood as the ventilation stream.
[0019] The device according to the invention further comprises a second ventilation flow for cooling the body or body part, which may likewise preferably be supplied with air outside the heating area of the device, and which particularly preferably also comprises a nozzle for directing said ventilation stream towards the body or body part to be cooled.
[0020] In one particular embodiment, the second ventilation flow is physically separated from the first ventilation flow, which can mean that there is essentially no fluid connection between the second ventilation flow and the first ventilation flow.
[0021] Furthermore, the device according to the invention comprises at least one disinfection chamber, also in fluid connection with the second ventilation flow and designed for physical disinfection of the second ventilation flow.
[0022] In one particular embodiment, the apparatus according to the invention comprises at least one air conditioner in fluid connection with the second ventilation flow, the air conditioner being designed to treat the ventilation flow in an atmosphere-controlled manner.
[0023] Within the meaning of the present invention, the air conditioning device may be designed to set one or more parameters of the ventilation stream conveyed in the second ventilation flow. The air conditioning device is particularly preferably designed to set the temperature. Thus, in one particularly preferred embodiment, the atmosphere control treatment comprises lowering the temperature.
[0024] In further particular embodiments, the atmospheric control treatment of the ventilation flow also includes a humidification and / or heating function. In one particular embodiment, the device according to the invention includes multiple disinfection chambers. The disinfection chambers are particularly preferably located in series within the second ventilation flow so that the ventilation stream in the second ventilation flow flows through multiple disinfection chambers.
[0025] Within the meaning of the present invention, a disinfection chamber is in fluid connection with a ventilation stream, i.e. a ventilation flow, when the air flowing in the ventilation flow can pass through the disinfection chamber.
[0026] The disinfection chamber is particularly preferably in fluid connection with the second ventilation flow such that the ventilation stream must pass through the disinfection chamber on its way through the second ventilation flow.
[0027] Within the meaning of the present invention, a ventilation stream may be understood to mean an air flow that can be generated by one or more turbomachines. A fan is, for example, a suitable turbomachine.
[0028] In one particular embodiment, the physical disinfection is based on radiation, particularly preferably UV radiation, in particular UV-C radiation.
[0029] In one particular embodiment, the disinfection chamber comprises a second light emitter designed to emit UV radiation suitable for disinfection, particularly preferably in the UV-C radiation range, in particular in the wavelength range between 200 nm and 300 nm, more preferably between 220 nm and 260 nm, in particular between 254 nm and 255 nm.
[0030] In one particular embodiment, the sterilization chamber is designed to define a sterilization volume, which is an area of the sterilization chamber that can be essentially completely acted upon by physical sterilants, and in particular by UV-C radiation.
[0031] In one simple embodiment, the disinfection chamber can include a centrally located second light source, such as a UV-C lamp. The entire space around this light source can be affected by UV-C radiation. UV-C radiation acts as a physical disinfectant and is suitable for reducing the number of potential infectious agents. UV-C radiation is particularly suitable for rendering microorganisms harmless by causing DNA and RNA damage within the microorganisms, thus reducing the likelihood of infection from bacteria, viruses, fungi, and other potential pathogens.
[0032] In one particularly preferred embodiment, the second light emitter is a mercury vapor-based light emitter designed to emit a wavelength having a peak at 253.7 nm. Other suitable light emitters can include, for example, UV-C LEDs designed to emit in the UV-C range between 250 nm and 290 nm. Such light emitters can be designed to emit an entire narrow spectrum with a distinct peak within the recited range.
[0033] In one particular embodiment, a disinfection chamber according to the invention comprises multiple light emitters, such as multiple mercury vapor lamps as described above and / or multiple light-emitting diode arrays, or a combination of the two, to enable adequate physical disinfection. The disinfection chamber is particularly preferably designed so that the ventilation stream passing through the disinfection chamber is exposed to UV-C radiation for as long as possible.
[0034] In one specific embodiment, the disinfection chamber includes a fluid guide having at least one fluid inlet and at least one fluid outlet. The fluid guide is designed to guide the ventilation flow through the physical disinfectant so that essentially the entirety of the guided ventilation flow falls within the effective range of the physical disinfectant. The fluid inlet and / or fluid outlet can be further designed to retain UV-C radiation as completely as possible within the disinfection chamber.
[0035] Thus, in one particular embodiment, the disinfection chamber includes at least one optical trap, in particular, at least one first optical trap at the fluid inlet of the disinfection chamber and / or at least one second optical trap at the fluid outlet of the disinfection chamber.
[0036] In one particular embodiment, a light trap within the meaning of the present invention includes a grid arrangement at the fluid inlet or outlet. The grid arrangement may be a series of alternating recesses made in a metal plate, each covered by the next metal plate in the flow direction. The light trap is particularly preferably formed from two metal plates with offset recesses. The fluid flow is slowed down in the first metal plate, flows into a corresponding recess in the first metal plate, strikes the second metal plate again, and must flow around the second recess. This has several advantages. The light trap can, for example, redirect the ventilation stream at the fluid inlet and outlet to maximize UV-C radiation impact on the air volume, as well as protect sensitive components in the device from UV-C radiation.
[0037] As an alternative to and / or in addition to a grid, corresponding perforations with offset holes in the metal plate can produce the same effect.
[0038] In one particular embodiment, the fluid inlet or fluid outlet comprises a plurality of such metal plates, ie, three or more such metal plates.
[0039] In one particular embodiment, the apparatus according to the invention includes at least one first turbomachine for generating a first ventilation stream within the first ventilation flow and at least one second turbomachine for generating a second ventilation stream within the second ventilation flow. Suitable turbomachines may be, for example, a fan.
[0040] In one particular embodiment, the device according to the invention comprises at least one fragrance, preferably designed to be in fluid communication with the second ventilation stream and to dispense the fragrance into the second ventilation stream.
[0041] In one specific embodiment, the fragrance is located downstream of the disinfection chamber. The fragrance can include, for example, a flow-through area, and the fragrance molecules can be received by convection with the aid of the ventilation stream. For example, volatile organic compounds are suitable as fragrance molecules. These fragrance molecules can be suitable, for example, for conveying a freshness-related scent to the user via the ventilation stream. The distribution of the fragrance can also be suitable for masking undesirable odors or body odors. If the fragrance is distributed downstream of the disinfection chamber, there is no risk that UV-C radiation in the disinfection chamber will adversely affect the fragrance. In particular, ozone can be generated when the air is exposed to UV-C radiation, which can alter organic compounds.
[0042] In contrast, in one alternative embodiment, if a fragrance is fluidly connected upstream of the sterilization chamber, it can be ensured that the fragrance is not adversely affected by collision with UV-C radiation in the fragrance chamber, for example, by selecting a fragrance that is photochemically stable and not damaged by reaction with ozone.
[0043] In one particular embodiment, the device according to the invention includes a supply container for containing a fragrance. The fragrance can be in solid form, in which the fragrance molecules enter the ventilation stream via sublimation, or in liquid form, in which the fragrance molecules are received from the ventilation stream via convection. Depending on the fragrance selected, it may be appropriate to heat it for use.
[0044] Thus, for example, heating means may be provided to bring the fragrance to the required operating temperature.
[0045] In one specific embodiment, the disinfection chamber is located upstream of the air conditioner in the flow direction of the second ventilation stream. This can ensure that the number of active pathogens in the air conditioner is reduced. This can, for example, extend the service life of the air conditioner, shorten the required maintenance intervals, and generally result in more reliable operation of the air conditioner.
[0046] In an alternative and / or complementary embodiment, the disinfection chamber is located downstream of the air conditioner in the flow direction of the second ventilation stream.
[0047] In one specific embodiment, the disinfection chamber includes a fluid guide. The fluid guide is designed to guide the second ventilation stream through the disinfection chamber in a manner that is as long as possible, without tortuous or branching. To this end, the fluid guide must be essentially transparent to UV-C radiation. Suitable Plexiglas materials that are transparent to UV-C radiation are known to those skilled in the art. One possible arrangement may be, for example, a spiral coil that winds toward a midpoint. The light emitter may be located at this midpoint, for example. Parallel to the first bend, a second bend winds outward from this midpoint to the fluid outlet. This ensures that the fluid, i.e., the ventilation stream, must cover the longest possible path through the disinfection chamber, thereby maximizing exposure to UV-C radiation so that a better disinfection level can be achieved.
[0048] In one particular embodiment, the disinfection chamber comprises at least one reflector for reflecting light radiation. At least one, in particular the entire inner surface of the disinfection chamber, or all surfaces facing the light emitter, particularly preferably has a reflective design. Thus, the efficiency of the light emitter is improved.
[0049] In one particular embodiment, the device according to the invention comprises at least one exhaust outlet for discharging a ventilation stream of the first ventilation flow.
[0050] Furthermore, the device according to the invention comprises at least one vent outlet for cooling the body or a part of the body, the at least one vent outlet being particularly suitable for directing a ventilation stream towards said body or part of the body.
[0051] In a further specific embodiment, the vent outlets are adjustably positioned so that the desired ventilation stream can be set by the user. Multiple vent outlets are particularly preferably positioned around the human body or a portion of the human body. If these vent outlets also have a controllable design, the user can set the optimal venting action for themselves by adjusting the vent outlets. For this purpose, for example, the flow rate of individual vent outlets can have a controllable design. Overall, this can result in an overall ventilation stream that is distributed across the multiple vent outlets. If an individual vent outlet is closed or down-regulated, the flow rate of the other vent outlets can be increased. Similarly, the orientation of the vent outlets may be adjustable so that the ventilation flow from these vent outlets can be directed to a desired location.
[0052] In one particular embodiment, the device defines a treatment space in which the human body or a portion of the human body is positioned while being acted upon by medical or cosmetic radiation. For example, in a tanning bed, the treatment space may be formed by a lying surface, a sitting surface, and / or a standing surface with an associated cover. In the open state, the hinged cover is in an open position. When a user lies or positions themselves within the treatment space and closes the cover, a defined treatment space is formed, defined over a specified volume.
[0053] In one particularly preferred embodiment, the treatment space containing the ventilation stream is insulated against the ingress of air not originating from the second ventilation stream. For this purpose, an air cylinder or air curtain may be provided that defines the treatment space, allowing only air originating from the ventilation stream to re-enter the treatment space via a vent outlet. Thus, for example, a vent outlet may be provided that is positioned around the treatment space and, through its flow, forms a barrier against incoming air from the outside. Thus, it can be ensured that only disinfected air enters the treatment space during the treatment period. A suitable air curtain or air cylinder can be easily set up using a nozzle with the aid of a corresponding lamella arrangement. Thus, for example, an air outlet nozzle with a hollow cavity in its outer nozzle profile may be suitable for forming the air curtain and defining the treatment space.
[0054] In one specific embodiment, the device according to the present invention includes at least one third light emitter for using UV radiation in the wavelength range between 207 nm and 222 nm, particularly 222 nm, to affect the treatment space and / or surfaces in which the human body or a portion of the human body is located during the treatment with medical / cosmetic radiation. This wavelength range is suitable for inactivating harmful microorganisms and is inherently safe for human skin. This arrangement further ensures disinfection of surfaces. Examples of suitable third light emitters include excimer light emitters, which electrically excite fluorinated noble gases to produce a light-emitting plasma.
[0055] In one particular embodiment, the treatment space is defined by a capsule suitable for accommodating a human body or a part of a human body. The capsule may be designed to accommodate, in particular, the upper body, and particularly preferably at least the head. In one particular embodiment, the capsule includes noise reduction elements and / or speakers for attenuating ambient noise.
[0056] In one particular embodiment, the device according to the present invention is a relaxation capsule that includes a light source and a light source control unit designed to implement a relaxation program. For this purpose, the light source control can be designed, for example, to generate a relaxation-inducing light program, such as a twilight effect. The capsule can be used to generate safe ambient air using disinfected air from the ventilation stream. Air curtains, as described above, can be provided around the capsule edge for assistance.
[0057] In one specific embodiment of the device according to the present invention, the second ventilation stream includes at least one filter unit for filtering particles from the ventilation stream. This filter unit can be located upstream of the disinfection chamber and / or downstream of the disinfection chamber. The filter unit is particularly preferably a high-efficiency filter for separating airborne particles from the air. In addition to reducing the number of particles, such a filter can also reduce the number of microorganisms in the ventilation stream. Particularly preferably, a filter unit that separates particles smaller than 1 μm is provided. Alternatively or additionally, the filter unit can include an activated carbon filter. Thus, for example, it is possible to bind volatile organic compounds, which can also have a positive effect on odor generation within the device.
[0058] In one specific embodiment, the device according to the present invention includes a disinfection chamber, a filter unit with a high-efficiency filter, such as a HEPA filter, upstream of the disinfection chamber, and a filter unit with an activated carbon filter downstream of the disinfection chamber. Following the activated carbon filter, the device according to the present invention can also provide a fragrance. Using a device designed in this way can provide a completely hygienic treatment space, which is perceived as such by the treatment subject, due to the absence of unpleasant odors or other organic compounds in the ventilation flow for cooling the treatment subject, as well as the reduction of pathogens and the presence of a pleasant fragrance.
[0059] In one particular embodiment, the device according to the present invention includes a device housing containing a light emitter and two ventilation streams. The disinfection chamber is particularly preferably mounted inside the device housing. Similarly, the air conditioning unit is particularly preferably mounted inside the device housing. The housing may be designed to define an outer housing area through which the exhaust air is guided by the first ventilation stream. In one particular embodiment, the device housing may also be formed from a housing shell and a housing treatment surface. The housing treatment surface may be, for example, a lying surface or a transparent surface, behind which the light emitter is located for impingement with medical or cosmetic radiation. A vent outlet is preferably provided, through which the second ventilation stream can be guided into the treatment space, i.e., into the effective area of the treatment subject and the human body or part thereof.
[0060] For example, a diagonal fan or a radial fan may be provided as a turbomachine, depending on the geometry and placement within the device, which may be determined by one skilled in the art based on the design of the device and the positioning of the human body or part thereof within the treatment space of the device, depending on the circumstances.
[0061] A further aspect of the invention relates to a method for operating the described apparatus.
[0062] The method includes an initial step of providing a first ventilation flow for cooling at least one light emitter.
[0063] The method further includes providing a second ventilation flow for cooling the body or a portion of the body.
[0064] The method further includes passing the second ventilation flow through at least one air conditioner for atmosphere-control treatment of the ventilation flow. The treatment may include, for example, cooling. The treatment may also include changing the moisture content of the ventilation flow.
[0065] The method according to the invention comprises means for physical disinfection of the second ventilation flow. have The method further provides for passing a second ventilation flow through at least one disinfection chamber. It can thus be guaranteed that the treatment subject is always treated with completely hygienic air. The cooling is perceived as comfortable, and the risk of contamination with potentially harmful pathogens and / or infectious agents is reduced. In operation, the device according to the invention is suitable for medical treatment purposes, for example, for patients with compromised immune systems, while also preventing the risk of infection from potentially harmful pathogens and / or infectious agents, such as those commonly found in tanning beds, which are frequently used. factor It is therefore possible to provide an apparatus for applying medical and cosmetic radiation to a human being or a part of a human being, which can be operated in a completely hygienic and safe manner.
[0066] The disinfection chamber is positioned so that the critical ventilation flow, i.e. the ventilation flow from the outside, i.e. from the outside of the device, into the treatment space, i.e. the space in which the treatment subject is housed, is disinfected. The disinfection chamber is positioned so as not to damage the internal structure of the device.
[0067] In one particular embodiment of the method according to the present invention, a step of impinging UV-C radiation on the disinfection volume within the disinfection chamber is further provided. The impingement is performed so that the ventilation stream guided through the disinfection chamber is within the effective range of the UV-C radiation. By using suitable plates and suitable fluid guides, for example, it can be ensured that the ventilation stream is guided through the disinfectant.
[0068] In one specific embodiment, the disinfectant is at least one second light emitter designed to emit in the UV-C waveband. Therefore, a plate and guide unit can be provided to ensure that the ventilation flow is guided through this light emitter so that the ventilation flow is guided completely within the effective range of UV-C radiation. An appropriate plate can also be provided to maximize the residence time in the disinfection chamber. The appropriate geometric configuration for guiding the ventilation flow through the disinfection chamber can be adaptively designed by those skilled in the art depending on the volume present.
[0069] A further aspect of the invention provides a disinfection chamber for upgrading an apparatus for affecting the human body or parts of the human body with medical or cosmetic radiation, in particular the disinfection chamber includes upgrading an apparatus for affecting the body with optical radiation.
[0070] The disinfection chamber includes at least one secondary light emitter relative to the device's light emitter, which is designed to emit UV radiation suitable for disinfection. The light emitter is preferably designed to emit UV-C radiation. The disinfection chamber preferably includes a fluid guide having at least one fluid inlet and at least one fluid outlet. The fluid guide is designed to guide the ventilation flow through the physical disinfectant so that essentially the entire ventilation flow is within the effective range of the physical disinfectant. In one specific example where the light emitter emits UV-C radiation, this can be achieved, for example, by including a light emitter in the center and on all surfaces adjacent to the reflector provided in the disinfection chamber. As a result, a space is formed that is completely within the effective range of the UV-C radiation emitted by the light emitter. A corresponding fluid inlet is used to blow fluid conveyed by a fan into the disinfection chamber. Such a fluid outlet is used to exhaust the blow-in fluid from the disinfection chamber. The disinfection chamber according to the present invention further comprises at least one light trap, in particular at least one first light trap at the disinfection chamber fluid inlet and / or at least one second light trap at the disinfection chamber fluid outlet. This light trap can be ensured, for example, by offsetting the metal plate provided with the ventilation slits so that the ventilation slit recesses of the first metal plate are not covered by the ventilation slit recesses of the second metal plate. If the disinfection chamber further comprises a reflector, this arrangement can further increase the efficiency of the light emitter on the fluid guided through the disinfection chamber.
[0071] The disinfection chamber according to the invention can be positioned in the ventilation flow so that a ventilation stream carried by the ventilation flow is guided through the disinfection chamber.
[0072] The disinfection chamber according to the invention is suitable for retrofitting existing devices, for example of the type mentioned at the outset, to improve their hygiene properties, which has several positive effects not only with regard to the overall hygiene of the device but also with regard to the service life of, for example, an air conditioning unit.
[0073] As a result of the fact that no UV light leaves the disinfection chamber, the disinfection chamber can be placed virtually anywhere in the ventilation stream, with particular preference being placed in the area of an air conditioning unit where the air is treated in an atmospherically controlled manner.
[0074] It is obvious to those skilled in the art that in the implementation of the present invention, all of the described embodiments can occur in any combination with each other, unless they are mutually exclusive.
[0075] The present invention will now be explained in more detail based on certain exemplary embodiments and drawings, without being limited thereto, as a study of these specific exemplary embodiments will also reveal to those skilled in the art further advantageous embodiments and configurations of the present invention.
[0076] Exemplary embodiments of the present invention will now be described with reference to the following figures, in which: For simplicity, identical parts are designated by the same reference numerals in the figures.
[0077] The figure shows, in outline: [Brief explanation of the drawings]
[0078] [Figure 1] 1 shows an apparatus according to the invention; [Figure 2] FIG. 2 shows a further device according to the invention. [Figure 3] FIG. 1 shows the configuration of a disinfection chamber. [Figure 4] FIG. 4 is a top view of the disinfection chamber from FIG. 3. [Figure 5] 1A and 1B show suitable light emitter configurations. [Figure 6] 10A-10C show alternative designs of disinfection chambers. [Figure 7] FIG. 1 shows a device according to the invention with additional surface disinfection. DETAILED DESCRIPTION OF THE INVENTION
[0079] FIG. 1 shows an example of an apparatus 1 according to the present invention. In this case, the apparatus 1 according to the present invention is a tanning bed suitable for influencing humans with UV radiation, thereby producing a tanning effect desired for cosmetic purposes. The illustrated apparatus 1 therefore includes two light emitters 2 suitable for emitting UV radiation in a wavelength range harmless to health, e.g., UV light having wavelengths in the UV-A and UV-B ranges. Low-pressure lamps suitable for emitting the corresponding tanning radiation are particularly suitable for the illustrated apparatus. The apparatus 1 may be subdivided into two housing halves 13, 14. The components related to environmental control are located in the lower housing half 14, while the upper housing half 13 includes the light emitter 2 and, on the other hand, an appropriate ventilation supply line for cooling the light emitter and the exhaust air discharge unit 3. The upper housing half 13 also includes two vent inlets 20, 21 for drawing in cooling air and discharging it via the exhaust air discharge unit 3. The cooled air thus drawn is directed through the light emitter 2 and used to cool it. The upper housing half 13 also includes a second ventilation stream unit 18, which includes multiple nozzles that open into the treatment space (indicated by the arrows) and can affect the patient with a cooling airflow. This second ventilation stream 18 is supplied by a corresponding air conditioning unit in the lower housing half 14. For this purpose, the second ventilation stream has a flow connection 12 with the first fan 8 in the lower housing half 14. The second flow connection 11 is connected to the second fan 9 and is used to operate the head region separately. This can be advantageous, for example, when a different ventilation stream is desired for the face region than for the body region. Furthermore, cooler cooling air may be desired for the face region than for the body region. Temperature is perceived differently on the face and body. A further main fan 5 is also provided in the lower housing half 14. This main fan directs the air drawn into the lower housing half and directed through the light source 2 via the exhaust outlet 4 and discharges it into the light source cooling space 17.
[0080] The lower housing half 14 also contains an air conditioning unit 6. Downstream of the air conditioning unit 6 is a disinfection chamber 7, as well as a first fan 10, which draws in fresh air from the area outside the lower housing half for the second ventilation stream. The purified air from the air conditioning unit and the disinfection chambers 6, 7 is used by a first fan 8 and a second fan 9 to act on the user. A further fan 15 is located in the base area of the device 1 according to the invention, which is connected to the disinfection chamber 7 via a fluid connection 16 and to the air conditioning unit 6, which likewise directs a disinfected ventilation stream 19 to the patient.
[0081] In contrast to the embodiment of FIG. 1, the device of FIG. 2 comprises a second disinfection chamber 7. In addition to the first fan 10, the device has a second fan 22 that guides the fluid flow in the lower housing half and in the base region by means of a deflection baffle 24. In this example, the device can also include a third ventilation flow separate from the second ventilation flow. For this purpose, the additional fan 22 can be designed to draw air from the external space. In this example, no air conditioner is provided in fluid connection with this ventilation flow. However, it is also possible for an additional fan to draw air from the external space and to be fluidly connected to the configuration shown in FIG. 1. In this example of FIG. 2, this is indicated by arrows pointing from right to left that extend above the luminaire 2. These arrows represent the air that has been treated and disinfected in an atmosphere-controlled manner, as already described for FIG. 1, and that is transported by the first fan across the first disinfection chamber and the air conditioner.
[0082] The device of Figure 2 comprises two disinfection chambers. Naturally, further disinfection chambers may be provided, for example in the upper housing half. The disinfection chambers may have a fluid connection with the same ventilation flow, i.e., the second ventilation flow in this example, or may be assigned their own ventilation flow, i.e., the third, fourth, etc. ventilation flow, on the fluid side. Similarly, multiple turbomachines may be provided.
[0083] FIG. 3 shows how such a disinfection chamber can be implemented in a device according to the invention. In this example, the ventilation stream passes through the disinfection chamber, generally from left to right. That is, air enters the disinfection chamber through a perforated plate 55 by a ventilation stream 56, by suction intake via a fan 54. The air passes through a fragrance 57, designed as a fragrance container 57, and delivers the odorous substances corresponding to the ventilation stream 56 via convection. The fragrance container 57 is located on a holding plate 58, which supports the entire fragrance container arrangement 50. Via a fan 54, which may be designed as an axial fan, the ventilation stream enters the interior of the disinfection chamber, in the center of which a light emitter 52 is provided. In this example, the light emitter 52 is a UV-C lamp, for example, a UV-C lamp suitable for emitting UV-C radiation with a peak at 254 nm. The UV-C lamp 52 is inserted into an E17 lamp socket 51. During operation, the UV-C lamp emits 450 UW / cm². 3 The disinfection chamber is designed as a light trap in the fluid outlet area by providing appropriately offset metal plates. Thus, the metal plate components 58.1 are located on opposite sides of the recesses, and the recesses 59 of the first metal plate are located on opposite sides of the plate wall 58.
[0084] The principle of operation is further explained in Figure 4, which shows the embodiment from Figure 3 in a top view. Ventilation flow 56 passes through fragrance 57 and is drawn via fan 54 into disinfection space 53 and within the effective range of UV-C lamps 52. A substantially disinfected ventilation flow 60 therefore exits the disinfection chamber. Located within region 62 is a sensitive electronic system 61, which is largely protected from UV-C radiation by an arrangement of metal plates designed as light traps (see Figure 3 above).
[0085] A suitable second light emitter is shown in FIG. 5. A UV-C bulb 52 with a power of 3 W in an E17 thread 51.1 with an operating voltage of 10 to 11 V can emit a UV wavelength of 254 nm. A socket base 51.2 can be optionally positioned within the sterilization chamber. Thus, for example, multiple such light emitters may be positioned within the sterilization chamber.
[0086] An alternative design of a disinfection chamber 7 according to the invention is shown in FIG. 6. The disinfection chamber 7 has a disinfection chamber housing 76 defining a disinfection volume 53 therein. For this purpose, the disinfection chamber housing may consist of two continuous flat metal plates, one of which is provided with recesses and which can be fluidly connected, preferably in the direction of the ventilation stream flow. In this illustrated example, the recessed metal plates are indicated by the incoming ventilation stream 56 and the outgoing disinfected ventilation stream 60. These metal plates are also provided with deflection elements 75 which, on the one hand, deflect the ventilation streams 56, 60 and, on the other hand, serve as light traps, i.e., essentially obstruct or prevent the escape of light radiation emitted into the interior of the disinfection chamber.
[0087] A total of two light emitters 52 are provided to emit light radiation, each housed in a compact socket 72. In this example, the light emitters 52 are designed as two miniature lamps 52. During operation, the air to be disinfected flows downward into the disinfection chamber 7 as an incoming ventilation flow 56 and is acted upon by UV-C radiation in the 254 nm wavelength range in the disinfection volume 53. The disinfected air, forming a ventilation flow 60, leaves the chamber and can be used, for example, to cool the user. The chamber can be designed so that electrical contacts can be provided above or below the observer plane to connect the lamp sockets to the electronic system of the housing device. Both light emitters 52 are inserted into the compact lamp sockets 72 and can extend essentially over the entire chamber height, i.e., the entire extension of the disinfection chamber in the observer plane, to maximize UV-C radiation impact.
[0088] 7 shows a schematic diagram of a further device according to the invention for influencing the human body or parts of the human body with medical-cosmetic radiation. In this case, the device is designed as a tanning bed and therefore has a first light emitter 2 comprising a low-pressure tube suitable for tanning the body and a further first light emitter 2' comprising a UV LED array suitable for tanning the face. Furthermore, infrared lamps, red light lamps or nIR lamps, which are not shown separately in this example, may be provided.
[0089] The device essentially comprises two housing halves 13, 14, a lower housing half 14 and an upper housing half 13. For complete tanning, light emitters 2, 2' are located in both housing halves 13, 14. In operation, the user lies on the lying surface 78, which is acted upon by tanning radiation on all sides by light emitters 2, 2' as a transparent window, i.e., a window transparent to UV radiation and preferably made of Plexiglas. A combined UV-A / UV-B radiation source is preferably used as the light emitter, for example in the wavelength range between 280 nm and 400 nm.
[0090] The lower housing half 14 also contains means for cooling the user. In this example, a first fan 10 is provided as a turbomachine in fluid connection with a ventilation inlet 20 that draws in cooling air. Also within the fluid connection is a disinfection chamber 7 through which the drawn-in cooling air must flow before being directed to the user as a disinfected ventilation flow 19.
[0091] In addition to air disinfection, this device also includes surface disinfection. In this regard, it is particularly important that surfaces that come into physical contact with the user be disinfectable. For this purpose, the device includes a third light emitter 80, which is used to apply UV radiation in the wavelength range between 207 nm and 222 nm, particularly in the 222 nm range, to the treatment space in which the human body or a portion of the human body is located during the impact with the medical / cosmetic radiation. The lying surface 78 is particularly preferably affected by this third light emitter 80. One particular advantage of the 222 nm light emitter is that UV-C radiation in this wavelength range is essentially harmless to humans, while still achieving a disinfecting effect, i.e., inactivating potential pathogens. Suitable third light emitters 80 include krypton chloride excimer lamps. Appropriate band filters can be used to filter out most undesired wavelengths. Thus, the third light emitter 80 assists in disinfecting the treatment space as the radiation emitted by this light emitter provides a pathogen reducing effect to the air within the treatment space in addition to the ventilation stream through the disinfection chamber.
[0092] The approach according to the invention provides for a completely hygienic use of a device for influencing the human body or parts thereof with medical and cosmetic radiation. This approach increases the safety of the treatment subject for both medical and cosmetic use. The approach according to the invention can also be installed in existing facilities as a retrofit option.
[0093] Further advantages will become apparent to those skilled in the art upon study of the specific embodiments.
Claims
1. A device (1) for influencing the human body or parts of the human body with medical and cosmetic radiation, in particular optical radiation, comprising: a. at least one first light emitter (2) for generating medical / cosmetic radiation, in particular light radiation; b. a first ventilation flow for cooling the at least one light emitter; c. a second ventilation flow for cooling the body or a portion of the body; An apparatus comprising:
10. The apparatus, characterized in that the apparatus further comprises at least one disinfection chamber in fluid connection with the second ventilation flow and designed for physical disinfection of the second ventilation flow.
2. 10. The apparatus of claim 1, comprising at least one first turbomachine for generating a first ventilation stream within the first ventilation flow and / or at least one second turbomachine for generating a second ventilation stream within the second ventilation flow.
3. 3. The device according to claim 1 or 2, wherein the disinfection chamber comprises a second light emitter designed to emit UV radiation suitable for disinfection, in particular UV-C radiation.
4. 4. Apparatus according to any one of claims 1 to 3, wherein the disinfection chamber is designed to define a disinfection volume, the disinfection volume being essentially completely actable by a physical disinfectant, in particular UV-C radiation.
5. 5. The apparatus of claim 1, wherein the disinfection chamber includes a fluid guide having at least one fluid inlet and at least one fluid outlet, the fluid guide being designed to direct the ventilation flow through a physical disinfectant such that essentially the entirety of the ventilation flow directed therethrough falls within the effective range of the physical disinfectant.
6. 6. Apparatus according to any one of claims 1 to 5, wherein the disinfection chamber comprises at least one optical trap, in particular at least one first optical trap at a fluid inlet of the disinfection chamber and / or at least one second optical trap at a fluid outlet of the disinfection chamber.
7. 7. The apparatus according to any one of claims 1 to 6, further comprising at least one air conditioning unit (6) in fluid connection with said second ventilation flow and designed to treat said ventilation flow in an atmospherically controlled manner.
8. 8. The device of claim 1, further comprising at least one fragrance in fluid communication with the second ventilation flow and configured to dispense a fragrance into the second ventilation flow.
9. 8. The device according to claim 7, wherein the disinfection chamber is located upstream of the air conditioner in a flow direction of the second ventilation flow.
10. 8. The device of claim 7, wherein the disinfection chamber is located downstream of the air conditioner in a flow direction of the second ventilation flow.
11. 11. The apparatus of claim 1, wherein the disinfection chamber comprises a fluid guide designed to direct the second ventilation flow through the disinfection chamber in a branch-free manner, the fluid guide being essentially transparent to UV-C radiation.
12. Apparatus according to any one of the preceding claims, wherein the disinfection chamber comprises at least one reflector for reflecting optical radiation.
13. 13. The apparatus of any one of claims 1 to 12, comprising at least one exhaust outlet for discharging the first ventilation flow and at least one vent outlet for cooling the body or a part of the body.
14. 14. The apparatus of any one of claims 1 to 13, wherein the apparatus defines a treatment space in which the body or a portion of the body is located while being acted on by medical / cosmetic radiation, the treatment space having a ventilation stream being insulated against the ingress of air not originating from the second ventilation stream.
15. 15. Apparatus according to any one of claims 1 to 14, further comprising at least one third light emitter for influencing a treatment space in which the human body or a part of the human body is located while being acted on by medical / cosmetic radiation using UV radiation in the wavelength range between 207 nm and 222 nm, in particular at 222 nm.
16. 16. Apparatus according to any one of the preceding claims, wherein the second ventilation flow comprises at least one filter unit for filtering particles from the ventilation stream.
17. 10. A method for operating the apparatus of claim 1, comprising: providing a first ventilation flow for cooling the at least one light emitter; b) providing a second ventilation flow for cooling the body or a portion of the body; c) passing said ventilation flow through at least one air conditioning device, in particular for atmosphere control treatment of said second ventilation flow; d. passing said second ventilation flow through at least one disinfection chamber having means for physical disinfection of said second ventilation flow; A method comprising:
18. e. affecting a disinfection volume within the disinfection chamber with UV-C radiation such that a ventilation stream directed through the disinfection chamber is within the range of the UV-C radiation.
20. The method of claim 17, further comprising:
19. 19. The method of claim 17 or 18, wherein the atmospheric control treatment of the ventilation stream comprises cooling.
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