Laser therapy apparatus
10874872 ยท 2020-12-29
Assignee
Inventors
Cpc classification
G02B6/4292
PHYSICS
A61B18/22
HUMAN NECESSITIES
H01S5/005
ELECTRICITY
A61N2005/063
HUMAN NECESSITIES
International classification
A61B18/22
HUMAN NECESSITIES
Abstract
A laser therapy apparatus having a diode-based continuous emission laser source, a diode-based pulsed emission laser source, and a terminal handpiece. The laser therapy apparatus further includes a bundle of optic fibers for coupling between individual diodes of the diode-based pulsed emission laser source, which is interfaced with a single optic fiber which terminates in the handpiece.
Claims
1. A laser therapy apparatus comprising: a diode-based continuous emission laser source, a diode-based pulsed emission laser source, and a terminal handpiece, and further comprising a bundle of optic fibers for coupling between a plurality of individual diodes of said diode-based pulsed emission laser source, said bundle of fibers is interfaced with a single optic fiber which terminates in said handpiece, wherein said individual diode of said diode-based continuous emission laser source is coupled to an optic fiber by way of a first SMA connector and wherein said optic fiber, by means of a first FC connector, is coupled to a numerical aperture adapter connected, by way of a second FC connector, to an optic fiber that terminates in said bundle.
2. The laser therapy apparatus according to claim 1, further comprising a photodiode, which is coupled by means of an FC connector to an optic fiber that terminates in said bundle.
3. The laser therapy apparatus according to claim 1, wherein said handpiece has a fixed part and an interchangeable terminal.
4. The laser therapy apparatus according to claim 1, wherein said diode-based pulsed laser source comprises a plurality of said individual diodes with a wavelength of 905 nm.
5. The laser therapy apparatus according to claim 4, wherein said plurality of individual diodes are six in number.
6. The laser therapy apparatus according to claim 2, further comprising an optical system which comprises two achromatic doublets positioned in front of each individual diode.
7. The laser therapy apparatus according to claim 6, further comprising a plurality of screws for alignment between said individual diodes and said achromatic doublets.
8. The laser therapy apparatus according to claim 6, wherein each said optical system is coupled to an optic fiber that terminates in said bundle.
9. The laser therapy apparatus according to claim 1, wherein said diode-based continuous laser source has a wavelength of 808 nm.
10. A laser therapy apparatus comprising: a diode-based continuous emission laser source, a diode-based pulsed emission laser source, a terminal handpiece having a fixed part and an interchangeable terminal, and a bundle of optic fibers for coupling between a plurality of individual diodes of said diode-based pulsed emission laser source, said bundle of fibers is interfaced with a single optic fiber which terminates in said handpiece, wherein said interchangeable terminal is provided with a printed circuit for identification, in a section that faces the fixed part with a specific electrical resistance.
11. The laser therapy apparatus according to claim 10, wherein on said printed circuit there are three connection elements, which are arranged at 120 with respect to each other.
12. The laser therapy apparatus according to claim 10, wherein on said fixed part of the handpiece there are electrical contacts on a section that faces the printed circuit of the terminal.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Further characteristics and advantages of the disclosure will become better apparent from the detailed description that follows of a preferred, but not exclusive, embodiment of the laser therapy apparatus according to the disclosure, which is illustrated for the purposes of non-limiting example in the accompanying drawings wherein:
(2)
(3)
(4)
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(6)
DETAILED DESCRIPTION OF THE DRAWINGS
(7) With reference to
(8) The apparatus 10 comprises a pulsed laser source 11. The source 11 is provided with a plurality of conventional diodes 12 with a wavelength of 905 nm. For example, there can be six diodes 12.
(9) In particular, the diode 12 with a wavelength of 905 nm has a peak power of 225 W and a chip with the dimensions 200 m per 240 m.
(10) The laser beam in output from each diode 12, typically rectangular and diverging, is manipulated by an optical system 15, shown in
(11) In particular, with reference to
(12) The numeric aperture NA is defined as the non-dimensional parameter that indicates the maximum angle useful to the system for receiving or emitting light.
(13) The diode 12 of the pulsed source is connected to the body 19 of the optical system 15 through a plate 17 which is fixed by way of locking screws 18.
(14) The alignment between the diode 12 and the achromatic doublets 16 is calibrated with a plurality of alignment screws 20.
(15) The presence of the optical system 15 described above allows, in the event of malfunction of or damage to the diode 12, to replace the laser source alone without needing to replace the entire diode/fiber block, with considerable reduction of costs.
(16) Each optical system 15 is coupled to a respective optic fiber 13, by means of a corresponding conventional first FC connector 14.
(17) The optic fiber 13 has a diameter of 400 m and an NA of 0.48.
(18) The direction of travel of the light is that indicated by the arrows 30.
(19) The electronics and the software of the apparatus enable the synchronized emission of all the diodes 12 at the same time. From this it is possible to obtain, in output, a pulsed emission with peak power equal to 1 kW20%.
(20) The apparatus 10 also comprises a continuous laser source 21, which has a diode 22 with a wavelength of 808 nm. The diode 22 of the continuous source 21 is coupled to an optic fiber 24 with a diameter of 200 m by means of a conventional first SMA connector 23.
(21) The optic fiber 24, by means of a conventional second FC connector 25, is coupled to a numerical aperture adapter 26, which is constituted by a conventional optical system.
(22) The numerical aperture adapter 26 allows to convey the laser beam of the 808 nm diode 22 with an angle of divergence equivalent to that of the pulsed 905 nm diode 12. In this manner, at the output of the adapter 26 the beam is prepared to be coupled to the other fibers.
(23) From the adapter 26, by means of a third FC connector 14, the beam is directed to an optic fiber 13 with a diameter of 400 m and an NA of 0.48.
(24) The direction of travel of the light is that indicated by the arrows 31 and 32.
(25) The optic fibers 13, originating from the pulsed source 11 and from the continuous source 21, are collected in a bundle 34.
(26) The apparatus 10 also comprises a photodiode 27, which is coupled by means of a fourth FC connector 28 to an optic fiber 29.
(27) The optic fiber has a diameter of 200 m and an NA of 0.37 and terminates in the bundle 34.
(28) The function of the 200 m fiber 29 is to collect the reflected light, which is produced by every separation surface along the optical path of the laser beam, and to convey it onto the photodiode 27 which is capable of detecting the emission presence. In the first moments of emission, for a very short period of time, the pulsed diodes 12 are made to operate one after the other in succession, the photodiode 27 is therefore capable of verifying the correct operation of the individual pulsed diodes and of diagnosing any malfunctions.
(29) The direction of travel of the light in the fiber 29 is that indicated by the arrow 33.
(30) The fibers 13 and 29 of the bundle 34 are combined in a second SMA connector 35.
(31) The second SMA connector 35 is connected, by means of a coupling plate 37, to a third SMA connector 36, which in turn is connected to a single optic fiber 38 with a diameter of 1500 m and an NA of 0.37.
(32) In this manner, the bundle 34 of fibers is interfaced with a single, 1500 m fiber by way of the SMA connectors 35 and 36.
(33) The fiber 38 is connected to a handpiece 39 which is used for the laser therapy, by means of a fourth SMA connector 40.
(34) The direction of travel of the light in the fiber 38 is that indicated by the arrow 41.
(35) In particular, the handpiece 39 is provided with an interchangeable terminal 42, shown in
(36) Each interchangeable terminal 42 is provided with a printed circuit for identification 43, in the section that faces the fixed part 46 with a specific electrical resistance.
(37) On the printed circuit 43 there are three connection elements 44, which are arranged at 120 with respect to each other.
(38) On the fixed part 46 of the handpiece 39 there are electrical contacts 45, on the cross-section facing the printed circuit 43 of the terminal 42, which are adapted for electrical connection therewith, by means of one of the three connection elements 44.
(39) Recognition of the optical terminals 42 occurs by means of electrical contact.
(40) The contacts 45, by means of an internal circuit, are capable of detecting different electric resistors by contact.
(41) When a given optic 42 is attached to the handpiece 39, the system is capable of measuring the electric resistance of that optic 42, and the type of optic used, and set appropriate operating parameters.
(42) The connection system between the handpiece and the optics is designed to avoid rubbing and deterioration of the electrical contacts. Rotation is not permitted between the fixed part and the moveable part, when connected, but there are three connection possibilities 44, which are arranged 120 from each other.
(43) It should be noted that the apparatus according to the disclosure improves the efficiency for coupling between high-power pulsed diodes with a wavelength of 905 nm and optic fiber with respect to the pre-fibered diodes available on the market.
(44) Furthermore it should be noted that the apparatus according to the disclosure allows replacement of the diode, in the event of damage, without the need to replace the entire diode/fiber block, with considerable reduction of costs.
(45) It should also be noted that the apparatus according to the disclosure enables the emission of a pulse at a wavelength of 905 nm with a peak power of 1 kW20%, conveying it by means of a 1500 m optic fiber, which is functional and adequately flexible for therapeutic use.
(46) It should be noted that the apparatus according to the disclosure enables the combined and synchronized emission of diode-based continuous wave sources at a wavelength of 808 nm and diode-based pulsed wave sources at a wavelength of 905 nm with a perfect superimposition of the emission components and a homogeneous treatment spot.
(47) Finally it should be noted that the presence of a photodiode allows to verify the emission of the pulsed lasers, identifying any malfunctions.
(48) In practice it has been found that the disclosure fully achieves the intended aims and advantages.
(49) The disclosure thus conceived is susceptible of numerous modifications and variations. Moreover, all the details may be substituted by other, technically equivalent elements.
(50) In practice the materials employed, provided they are compatible with the specific use, and the contingent dimensions and shapes, may be any according to requirements and to the state of the art.