SKIN MEASURING DEVICE AND WRISTWATCH
20170215796 · 2017-08-03
Inventors
Cpc classification
A61B5/0015
HUMAN NECESSITIES
A61B5/0075
HUMAN NECESSITIES
International classification
Abstract
A skin measuring device for spectroscopic measurement of the skin of a body part is provided. The skin measuring device has a press-on frame with a window and a flat face. The skin measuring device has an ATR infrared spectrometer which includes an ATR crystal that is secured to the press-on frame and that has a sample stage which is arranged in the window and faces in the same direction as the flat face of the press-on frame. An encircling means surrounds the body part and thereby supports the skin measuring device on the body part. The surface of the flat face of the press-on frame is pressed against the skin of the body pan by the encircling means in a comfortably wearable manner when the skin measuring device is worn such that the sample stage is in contact with the skin for spectroscopic measurement by the ATR spectrometer.
Claims
1. A skin measuring device for spectroscopically measuring a skin of a body part, the skin measuring device comprising: a press-on frame having a window and a flat face; an ATR infrared spectrometer having an ATR crystal, the ATR crystal including a sample stage and being attached to the press-on frame, wherein the sample stage: is arranged in the window, engages with the press-on frame, faces in the same direction as the flat face of the press-on frame, and is in contact with the skin to allow a spectroscopic measurement of the skin with the ATR spectrometer; and an encircling means configured for surrounding the body part and to support the skin measuring device on the body part, wherein the press-on frame is pressed by the encircling means with the flat face against the skin of the body part when the skin measuring device is worn.
2. The skin measuring device according to claim 1, wherein the body part is an arm of a human being and the encircling means is a wristband.
3. The skin measuring device according to claim 2, wherein the wristband is elastic and is adapted with its length to the body part such that the wristband is elongated when the skin measuring device is worn, and wherein the press-on frame is pressed in a comfortably flat manner with its flat face against the skin of the body part.
4. The skin measuring device according to claim 1, wherein the ATR crystal is arranged in the window in such a way that the sample stage and the flat face of the press-on frame lie in the same plane.
5. The skin measuring device according to claim 1, further comprising a housing with a housing base, wherein the housing base is the press-on frame.
6. The skin measuring device according to claim 1, wherein the ATR crystal is made of a material having a refractive index n.sub.1 greater than 1.5 in a range of infrared radiation.
7. The skin measuring device according to claim 1, wherein the ATR crystal is made of a material having a refractive index n.sub.1 of from 2.3 to 2.8 in a range of infrared radiation.
8. The skin measuring device according to claim 6, wherein: the ATR crystal has two reflection faces, the two reflection faces are inclined relative to the sample stage, inclination angles of the two reflection faces are selected to cause infrared light radiation to be transmitted at an angle θ relative to the sample stage, the angle θ is in a range of from arcsine (1.3/n.sub.1)+5° to arcsine (1.3/n.sub.1)+10°, and the angle θ is formed by the infrared light radiation and a line that is perpendicular to the sample stage.
9. The skin measuring device according to claim 7, wherein: the ATR crystal has two reflection faces, the two reflection faces are inclined relative to the sample stage, inclination angles of the two reflection faces are selected to cause infrared light radiation to be transmitted at an angle θ relative to the sample stage, the angle θ is in a range of from arcsine (1.3/n.sub.1)+5° to arcsine (1.3/n.sub.1)+10°, and the angle θ is formed by the infrared light radiation and a line that is perpendicular to the sample stage.
10. The skin measuring device according to claim 1, further comprising: a device connector configured to provide the spectroscopic data determined by the skin measuring device to be read out, and a transmitting unit configured to transmit the spectroscopic data determined by the skin measuring device wirelessly.
11. The skin measuring device according to claim 1, fluffier comprising: a transmitting unit configured to transmit the spectroscopic data determined by the skin measuring device wirelessly.
12. The skin measuring device according to claim 10, further comprising: an analysis unit configured to: read out the spectroscopic data via the device connector and receive the spectroscopic data transmitted by the transmitting unit wirelessly, and evaluate the spectroscopic data.
13. The skin measuring device according to claim 11, further comprising: an analysis unit configured to: receive the spectroscopic data transmitted by the transmitting unit wirelessly, and evaluate the spectroscopic data.
14. A wristwatch with a skin measuring device according to claim 1.
15. The wristwatch according to claim 14, further comprising a dial arranged facing away from the sample stage.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0015] The invention will now be described with reference to the drawings wherein:
[0016]
[0017]
[0018]
[0019]
[0020]
DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0021]
[0022] As can be seen in
[0023] The ATR crystal 9 has a first reflection face 13 at a first longitudinal end and a second reflection face 14 at a second longitudinal end, which is arranged opposite the first longitudinal end. The reflection faces 13, 14 are inclined relative to the longitudinal sides. As a result, the infrared light that is coupled into the ATR crystal 9 in the region of the first longitudinal end via an entrance face 11, which is arranged on the longitudinal side opposite to the sample stage 10, is interreflected between the two longitudinal sides and arrives at the second longitudinal end where the infrared light is decoupled from the ATR crystal 9 via an exit face 12, which is arranged in the longitudinal side opposite the sample stage 10.
[0024] After exiting the ATR crystal 9, the infrared light strikes an infrared light line detector 18. The infrared light line detector 18 is formed by a plurality of infrared light detectors arranged side by side in a direction perpendicular to the longitudinal axis of the ATR crystal 9. The infrared light detectors can, for example, be pyroelectric detectors, each having a thin layer of lead zirconate titanate. In order to allow a spectrally resolved measurement, a dispersion medium is arranged between the exit face 12 and the infrared light line detector 18. The dispersant medium is, for example, a wavelength filter, whereby the wavelength range in which the wavelength filter allows the infrared light to pass through varies linearly in the direction perpendicular to the longitudinal axis of the ATR crystal 9.
[0025] When using the skin measuring device 1, the sample stage 10 is to be brought into contact with the skin, so that a spectroscopic measurement of the skin can take place. For this purpose, it is necessary for the refractive index of the ATR crystal 9 to be greater than the refractive index of the skin so that a total reflection of the infrared light can take place on the sample stage 10. Because skin mainly consists of water, it is advantageous that the refractive index of the ATR crystal in the range of the infrared light is greater than 1.5. In the skin, by way of total reflection, evanescent waves are formed, which have a range in the order of the wavelength of the infrared light from the sample stage 10 and which interact with the skin. From the spectrum of the infrared light detected by the infrared light detector line 18 spectroscopic properties of the skin can be inferred because of this interaction. A refractive index of 2.3 to 2.8 is advantageous to achieve a long penetration depth of the evanescent waves into the skin and a sufficiently small limiting angle for the total reflection in order to achieve a sufficiently high number of total reflections within the ATR crystal 9. Suitable materials for the ATR crystal 9 are in particular ZnSe, thallium bromide iodide, diamond or AMTIR (“amorphous material transmitting infrared material”), such as Ge.sub.33As.sub.12Se.sub.55, As.sub.xSe.sub.x, Ge.sub.xSb.sub.xSe.sub.x or As.sub.2S.sub.3.
[0026]
[0027] In order to avoid the formation of mechanical stresses in the ATR crystal 9, a resilient O-ring can be provided, by which the ATR crystal is brought into engagement with the press-on frame 3. For this purpose, a circumferential groove into which the O-ring is inserted can be provided in the press-on frame 3. By pressing the ATR crystal 9 with a holding deice against the O-ring, the ATR crystal 9 can be engaged in a stress free manner with the press-on frame 3 while the housing 2 can be sealed with the O-ring.
[0028]
[0029] As shown in
[0030] The encircling means 6 shown in
[0031] In
[0032] It is understood that the foregoing description is that of the exemplary embodiments of the invention and that various changes and modifications may be made thereto without departing ton the spirit and scope of the invention as defined in the appended claims.
LIST OF REFERENCE NUMERALS
[0033] 1 skin measuring device [0034] 2 housing [0035] 3 press-on frame [0036] 4 housing base [0037] 5 window [0038] 6 encircling means [0039] 7 lug [0040] 8 ATR Infrared Spectrometer [0041] 9 ATR crystal [0042] 10 sample stage [0043] 11 entrance face [0044] 12 exit face [0045] 13 first reflection face [0046] 14 second reflection face [0047] 15 first infrared light source [0048] 16 second inflated tight source [0049] 17 exit opening [0050] 18 infrared light line detector [0051] 19 USB device connector [0052] 20 wristwatch [0053] 21 dial [0054] 22 watch hands