ULTRASONIC SCALER WITH LASER THERAPY CAPABILITY
20180049853 ยท 2018-02-22
Inventors
- Rongguang Liang (Tucson, AZ, US)
- Petra Wilder-Smith (San Juan Capistrano, CA, US)
- Cherie Wink (Yorba Linda, CA, US)
Cpc classification
International classification
A61C1/00
HUMAN NECESSITIES
Abstract
An ultrasonic device with laser therapy capability, and more particularly, but not exclusively, to ultrasonic scaler with laser therapy capability.
Claims
1. A dental scaler system, comprising: an ultrasonic driver having an ultrasonic vibration signal output port, the ultrasonic driver configured to discharge an ultrasonic frequency vibration signal from the ultrasonic vibration signal output port; a laser light source having a laser light output port; the laser light source configured to discharge laser light from the laser light output port; a hand-piece housing having an outer surface configured to be graspable and manipulable with a user's hand, the hand-piece housing having an input assembly connected to the ultrasonic vibration signal output port so as to receive an ultrasonic vibration signal from the ultrasonic driver, the input assembly also connected to the laser light output port so as to receive laser light from the laser light source, the hand-piece also comprising a output assembly configured to output an ultrasonic vibration and laser light; an ultrasonic scaler member having a proximal end and a distal end, the proximal end of the ultrasonic scaler member being connected to the output assembly of the handpiece housing, the ultrasonic scaler member comprising a light guide extending from a light guide input at the proximal end of the ultrasonic scaler member to a light guide output at the distal end of the ultrasonic scaler member, the light guide output configured to discharge laser light from the distal end of the ultrasonic scaler member; and an ultrasonic transducer disposed in the hand-piece and in vibrational communication with the ultrasonic scaler member, the ultrasonic transducer configured to vibrate the ultrasonic scaler member at an ultrasonic frequency.
2. The dental scaler according to claim 1, the light guide is configured to receive laser light having a wavelength in the range of 0.4 m to 3.0 m.
3. The dental scaler according to claim 1, wherein the light guide comprises a hollow passage extending from the proximal end of the ultrasonic scaler member to the distal end of the ultrasonic scaler member, the light guide comprising an inner surface with high reflectivity.
4. The dental scaler according to claim 1, wherein the handpiece housing comprises a light coupling including a reflector connecting the input assembly with the output assembly.
5. The dental scaler according to claim 4, wherein the light coupling comprises a fiber coupler.
6. The dental scaler according to claim 1, wherein the ultrasonic scaler member includes a concave portion, and water outlet port being disposed in the concave portion.
7. The dental scaler according to claim 1, wherein the ultrasonic scaler member comprises a canal extending from the proximal end to the distal end of the ultrasonic scaler member, the canal configured to guide water from the proximal end to the distal end.
8. A dental scaler, comprising a hand-piece housing having an outer surface configured to be graspable and manipulable with a user's hand; an ultrasonic scaler member having a proximal end and a distal end, the proximal end of the ultrasonic scaler member being connected to the hand-piece housing, the proximal end of the ultrasonic scaler member including a light input portion and a light guide extending from the light input portion to a light output portion at a distal end of the ultrasonic scaler member, the light output portion being configured to discharge laser light from the distal end of the ultrasonic scaler member.
9. The dental scaler according claim 8 additionally comprising an ultrasonic transducer disposed in the hand-piece and in vibrational communication with the ultrasonic scaler member, the ultrasonic transducer configured to vibrate the ultrasonic scaler member at an ultrasonic frequency.
10. The dental scaler according to claim 8, in combination with an ultrasonic driver operationally connected to the ultrasonic scaler member and configured to transfer an ultrasonic frequency vibration signal to the ultrasonic scaler member.
11. The dental scaler according to claim 8, in combination with a laser light source operationally connected to the ultrasonic scaler member and configured to provide laser light to the ultrasonic scaler member.
12. The dental scaler according to claim 8 additionally comprising an input device disposed on an outer surface of the hand-piece housing configured to control discharge of light through the ultrasonic scaler member.
13. The dental scaler according to claim 8, wherein the light guide is configured to receive laser light having a wavelength in the range of 0.4 m to 3.0 m.
14. The dental scaler according to claim 8, wherein the light guide has an upstream end and a downstream end, the upstream end being larger than the downstream end.
15. The dental scaler according to claim 8, wherein the light guide has an inner diameter that gradually changes from a larger diameter at the upstream end to a smaller diameter at the downstream end.
16. The dental scaler according to claim 8, wherein the handpiece housing comprises a fiberoptic light coupling including a reflector, connecting the light input portion with the light output portion.
17. A dental scaler tip member comprising a proximal end and a distal end, the proximal end of the dental scaler member being configured to be connectable to an ultrasonic scaler hand-piece housing, the proximal end of the ultrasonic scaler member including a light input portion and a light guide extending from the light input portion to a light output portion at a distal end of the ultrasonic scaler member, the light output portion being configured to discharge laser light from the distal end of the ultrasonic scaler member.
18. The dental scaler according to claim 17, wherein the light guide has an inner surface with a reflectivity of at least 50%.
19. The dental scaler according to claim 17, wherein the light guide is configured to guide laser light having a wavelength in the range of 0.4 m to 3.0 m from the proximal end to the distal end of the dental scaler tip member.
20. The dental scaler according to claim 17, wherein the dental scaler tip member is configured to be vibrated at an ultrasonic frequency during a dental scaling procedure.
21. A dental scaler tip kip comprising at least first and second dental scaler tip members, each of the plurality of dental scaler tip members comprising a proximal end and a distal end, the proximal end of each dental scaler member being configured to be connectable to an ultrasonic scaler hand-piece housing, the distal end of each of the dental scaler tip members having a different dimension, each of the dental scaler tip members having a different color, and all of the plurality of dental scaler tip members being contained in a single container.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0046] These and other features of the inventions disclosed herein are described below with reference to the drawings of various embodiments of dental scaler systems and components which are intended to illustrate, but not to limit, the inventions. The drawings contain the following figures:
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DETAILED DESCRIPTION
[0058] Embodiments of the inventions disclosed herein are described in the context of ultrasonic dental scalers because they have particular utilities in this context. However, the inventions disclosed herein can be used in other contexts as well, such as other types of dental tools, surgical tools, and other medical devices.
[0059] In the following detailed description, terms of orientation such as upper, lower, longitudinal, horizontal, vertical, lateral, distal, proximal, midpoint, and end are used herein to simply the description in the context of the illustrated embodiments. Because other orientations are possible, however, the present inventions should not be limited to the illustrated orientations. Those skilled in the art will appreciate that other orientations of various components described herein are possible.
[0060]
[0061] Such prior art ultrasonic scaler systems can include a foot pedal actuator assembly 34 including a control line 36 and a foot pedal 38. In this type of configuration, the foot pedal actuator assembly 34 includes a switch (not shown) in the foot pedal assembly 38. The switch is actuatable by a moveable pedal member 39 which is pivotably mounted relative to a base of the foot pedal assembly 38. The control line 36 can include one or more electrical wires configured to cooperate with the switch within the foot pedal assembly 38 and for providing an on/off signal and/or functionality for the main unit 10. As such, the main unit 10 is configured to turn or turn off a sonic or ultrasonic signal delivered to the handheld piece 20. In some systems, ultrasonic vibrations are conducted through an air passage to the tip assembly 30. In piezoelectric systems, electrical signals are delivered to a piezo electric transducer in the handheld piece 20. Thus, during use, a user can hold the handheld piece 20 placing the ultrasonic tip assembly 30 into proximity and/or contact with a patient's anatomy and use the foot pedal control assembly 34 for turning on or turning off the delivery of ultrasonic signal to the assembly 30.
[0062] The handheld piece 20 is connected to the main unit 10 with a connector hose 22. The connector hose 22 can include an ultrasonic delivery channel (delivering ultrasonic vibrations conducted by air or in the form of electrical signals to a piezoelectric transducer, and optionally a water delivery channel. The foot pedal assembly 34 can be used to control the actuation of the ultrasonic signal to the tip assembly 30 and/or water delivery to the tip assembly 30.
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[0065] As shown in
[0066] The driver unit 110 can be constructed in accordance with the driver unit 10 of
[0067] Optionally, the foot pedal control assembly 134 can be connected to both the driver unit 110 with a control line 136 as well as an optional light therapy control line 147. In some embodiments, the foot pedal control assembly can include a single pedal 139 operably connected via the control lines 136, 147 to the driver units 110, 140, respectively, for turning on the sonic signal from the driver 110 and the light from the driver 140 through a single operation.
[0068] Optionally, the handheld piece 120 can include an input device 124 accessible on an outer surface of the handheld piece 120. For example, the input device 124 can be in the form of a user actuatable button, or any other type of input device. The input device 124 can be connected to the light therapy driver 140 with a control line 126 extending along and/or through the handheld piece 120 and the connector line 122, into the light therapy device 140, for performing essentially the same function as the foot pedal assembly 142.
[0069] In some configurations, the connector line 122 can be bifurcated, including a common end 127 connected to an input end of the handheld piece 120, and a bifurcated portion 128 at which location the connector line 122 is split into a sonic driver portion 123 and a light therapy connector portion 170. Other configurations can also be used.
[0070] In operation, a sonic signal from the sonic driver unit 110 can be delivered to the handheld piece 120, and then to the ultrasonic scaler tip assembly 30. Light, such as laser light, from the light therapy unit 140 can also be delivered to the handheld piece 120 through the connector portion 170, which can contain an optic fiber.
[0071] As such, ultrasonic signal and light therapy features are integrated and can be simultaneously delivered to the handheld piece 120. Thus, the system 120 can reduce potentially pathogenic microorganisms in the air, providing a safer working environment.
[0072] The ultrasonic tip assembly 130 can be configured to deliver both light and water to a desired target area, as well as ultrasonic energy. For example, the connector 122 can be configured to deliver water from the sonic driver 110, to the handpiece 120, and to the ultrasonic tip assembly 130. The system 100 can also reduce the possible transfer of periodontal pathogenic bacteria from a diseased pocket to healthy sulcus.
[0073] In some embodiments, the ultrasonic tip assembly 130 can be color coded, providing an indicia indicating a size of a referenced dimension of the tip assembly 130. Such a color coding technique can allow a clinician or practitioner to have a convenient means for measuring or estimating a measurement of an area, such as an anatomical structure or defect of a patient. For example, if an anatomical structure such as a pocket, is smaller than an ultrasonic tip assembly 130 then being used by the clinician, the clinician can find a smaller size tip, indicated by color coding of the tip, switch to a smaller size tip by installing onto the handheld piece 120, and continue the procedure.
[0074] Additionally, the system 100 can provide a further advantage in that a dental professional can use a single device to perform both scaling and root planning, remove any remaining soft tissue tags, reduce bacteria levels, and promote wound healing.
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[0076] With reference to
[0077] Optionally, the integrated driver 110A can include a single output port 112 including outputs for both ultrasonic signal and light for delivery to the handheld device 120A. Additionally, the control line 126A can extend from the input device 124A to the integrated driver 110A. As such, the integrated driver unit 110A can be configured to deliver any one or any combination of ultrasonic signal, water, and light for delivery to the tip assembly 130A.
[0078] The integrated driver 110A can receive a control signal from the input 124A through the control line 126A. The driver 110A can be configured to use the signal from the control line 126A to control any one or any combination of delivery of sonic energy and/or light. Similarly, the control assembly 134A can be connected to the integrated driver 110A and can be used to control any one of or any combination of sonic energy and light delivered to the ultrasonic tip assembly 130A.
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[0080] The connector assembly 122A can include a like control line 126A, a light optical fiber 170, a water channel 172, and a sonic energy conduit 174. Additionally, the connector assembly 122A can include an input end 194 and an output end 196. The input end 194 can be configured to connect to the output port 112 of the integrated driver 110A. For example, the input end 194 can include corresponding connectors 186a, 188a, 192a, 190a. As such, the input end 194 of the connector assembly 122A can connect to the connector 112 with the connectors 186a, 188a, 192a, 190a, connecting with the connectors 186o, 188o, 190o, 192o, respectively.
[0081] Similarly, the output end 196 of the connector assembly 122A can include connectors 186b, 188b, 190b, and 192b. Additionally, the handheld piece 120A can include corresponding connectors 186c, 188c, 190c, and 192c. As such, the input end of the handheld piece 120A can connect to the output end 196 of the connector assembly 122A, with the connectors 186c, 188c, 190c, 192c connecting with the connectors 186b, 188b, 190b, 192b, respectively.
[0082] The connector 186c can provide electrical connection to the input device 124A for providing the signal to the light energy source 180.
[0083] The connector 186c can provide an optical connection to the ultrasonic scale or tip assembly 130A, described in more detail below.
[0084] The connector 190c can provide a connection for water from the water source 184 to the ultrasonic tip assembly 130A. Finally, the connector 192c can provide a fork connection and transfer of sonic energy from the sonic energy source 182 to a sonic actuator 194 within the handheld piece 120A.
[0085] The ultrasonic tip assembly 130A can include an optical connector 188d and a water connector 190d. As such, the ultrasonic tip assembly 130A can receive light energy from the light source 180 of the connector, 188d and water from the water source 184 through the water connector 190b. The various connecters described above can be in the form of any known connector, including butt connectors, male-female connectors, or other types of connectors well known in the art for various types of connecting functionalities.
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[0087] With reference to
[0088] In some embodiments, the proximal end 230a of the ultrasonic tip assembly 230 can be engaged to the distal end of the handheld piece 220 with any type of engagement configuration, such as a threaded engagement, butt connector, male-female connector, or any type of connector known in the art. Some prior art devices use threaded connections, and such a connection can be used in the embodiment of
[0089] In some embodiments, the ultrasonic tip assembly 230 includes an internal passage 231 that is configured to guide both light and water to a distal end 230b of the ultrasonic tip assembly 230. The distal end 230b of the ultrasonic tip assembly 230 is configured to be pressed against patient anatomy, such as teeth and/or gums, for scaling in the manner well-known in the art. The distal end 230b, however, can include an aperture 231A configured to allow light and/or water to be discharged from the distal end 230B. Thus, as illustrated in
[0090] Similarly to the passage 271, the passage 231 can include sufficient smoothness and reflectivity to guide light, such as laser light, to the aperture 231A with sufficient efficiency that the light discharged from the aperture 231A has sufficient intensity so as to provide desired bacterial reduction. For example, using a typical power output setting of a known laser curettage device, the passage 231 can have a 50% reflectivity or more and sufficiently guide laser light out of the tip assembly 230 for bacterial load reduction.
[0091] In some embodiments, as illustrated in
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[0093] As shown in
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[0095] As shown in
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[0097] The embodiments of
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[0099] As shown in
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[0101] These and other advantages of the present inventions will be apparent to those skilled in the art from the foregoing specification. Accordingly, it will be recognized by those skilled in the art that changes or modifications may be made to the above-described embodiments without departing from the broad inventive concepts of the inventions disclosed herein. It should therefore be understood that the inventions are not limited to the particular embodiments described herein, but are intended to include all changes and modifications that are within the scope and spirit of the inventions disclosed herein.