Device for monitoring the stability of a dental implant

The device provides a magnetic and mechanically stable electrical connection for dental implant stability monitoring, addressing ergonomic challenges of wired connections by ensuring easy alignment and secure contact, enhancing monitoring efficiency.

FR3165774A1Active Publication Date: 2026-03-06WAVEIMPLANT +3
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Patent Information

Authority / Receiving Office
FR · FR
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-08-27
Publication Date
2026-03-06

AI Technical Summary

Technical Problem

Existing dental implant stability monitoring devices require a permanent wired electrical connection, which is ergonomically cumbersome and complicates probe installation, necessitating a more ergonomic and easily established temporary connection.

Method used

A device with a magnetic and mechanically stable electrical connection between the ultrasonic probe and handpiece, allowing for easy alignment and secure contact through a connector system with central and eccentric pins and magnets, ensuring a stable connection regardless of orientation.

Benefits of technology

Enables a stable, ergonomic, and easily established electrical connection for dental implant stability monitoring, facilitating efficient data acquisition without compromising the implant's stability.

✦ Generated by Eureka AI based on patent content.

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Abstract

A device for monitoring the stability of a dental implant includes an ultrasonic probe (100) adapted for mechanical coupling to the implant and a handpiece (10) connectable to the probe (100). The handpiece (10) includes a connector (30) with a cavity adapted to receive a connection head (110) of the probe (100). The cavity has rotational symmetry. The connector (30) includes, on its bottom wall, a central pin, an eccentric pin, and at least one magnet. The connection head (110) includes a central connection surface and an annular connection surface such that, when the probe (100) is coaxially engaged in the connector (30), the electrical connection is ensured by contact between the pins and the connection surfaces, the magnet attracting the connection head (110) toward the bottom of the cavity to maintain contact. (Figure 1)
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Description

Title of the invention: Device for monitoring the stability of a dental implant technical field

[0001] The present description relates to a device for controlling the stability of a dental implant. Background

[0002] A dental implant typically takes the form of an artificial tooth root, usually made of titanium alloy, placed inside the bone of the upper or lower jaw. A dental prosthesis element is then screwed into the implant. Often, after the placement of the dental implant, a healing period is necessary for bone cells to colonize the buried surface of the implant and for it to become "osseointegrated," that is, integrated into the bone, without the interposition of fibrous tissue at the bone-implant interface, or boundary, between the bone and the implant.

[0003] Since the dental implant acts as an intermediary between the prosthetic element and the jawbone, transmitting forces to the supporting bone, it must be well integrated into the bone. The term "stability" of the implant refers to its integration within the bone. The better the integration, the better the implant's stability.

[0004] During the aforementioned healing period, the implant is left to rest to allow it to integrate with the bone, so that it can subsequently bear the loads exerted upon it. After the healing period, the practitioner places the prosthetic component into the dental implant. Monitoring the stability of the implant in the bone, that is, verifying proper osseointegration of the implant, is therefore essential for the success of the treatment, particularly for determining precisely when to end the healing period and load the implant with the prosthetic component.

[0005] Patent documents EP 2503954 and EP3781040 describe devices for controlling the stability of a dental implant.

[0006] The operating principle of these devices consists of screwing an ultrasonic probe into the dental implant after it has been anchored in the bone. An electrical pulse is then sent to the probe, causing the propagation of an ultrasonic wave within the implant. The probe, which operates in transmit / receive mode, collects the reflected ultrasonic waves and emits an electrical measurement signal representing the reflected ultrasonic wave. A signal processing unit, located away from the probe, allows the stability of the implant to be evaluated based on the measurement signal received from the probe via an electrical connection.

[0007] In order to acquire the measurement signal, it is essential to maintain the electrical connection between the processing unit and the probe for a certain period, estimated to be between 50 milliseconds and one second. Therefore, a stable electrical connection is necessary.

[0008] However, a permanent wired electrical connection between the treatment unit and the probe does not satisfy practitioners because, in particular, of its lack of ergonomics and the fact that it complicates the installation of the probe on the implant.

[0009] There is therefore a need for a solution enabling a temporary but stable electrical connection between the treatment unit and the probe. Such a connection must be easily established regardless of the probe's position inside the patient's mouth. General presentation

[0010] The present description relates to a device for checking the stability of a dental implant inserted into bone, the dental implant having one free end emerging on the surface of the bone and one end embedded in the bone. The device comprises a handpiece, i.e., an instrument adapted to be held in the hand, and an ultrasonic probe. The probe and the handpiece are adapted to cooperate and, in particular, to be electrically connected together.

[0011] The ultrasonic probe is adapted to be mechanically coupled to the implant, for example by screwing the probe into the implant. The probe includes an ultrasonic transducer adapted to emit an ultrasonic wave propagating inside the implant towards the buried end, to collect reflected ultrasonic waves, and to emit an electrical measurement signal representing the reflected ultrasonic wave.

[0012] The dental handpiece includes an electronic circuit adapted to be connected to the ultrasonic transducer by means of an electrical connection. The electronic circuit includes a processing unit configured to evaluate the stability of the dental implant based on the measurement signal received from the ultrasonic transducer via the electrical connection.

[0013] The ultrasonic probe includes a connecting head. The dental handpiece includes a shaft and a connector located at one end of the shaft. The connecting head cooperates with the connector to establish the electrical connection between the probe and the handpiece.

[0014] The connector has a cavity adapted to receive the connection head. The cavity has rotational symmetry about a principal axis and is delimited by a bottom wall and a side wall. The connector includes, on its bottom wall, a central pin, an eccentric pin, and at least one magnet. The pins allow the electrical connection to be established.

[0015] The connector head has a central axis, a central connection surface centered on the central axis, and an annular connection surface around the central axis. When the connector head is coaxially engaged in the connector cavity, the electrical connection is ensured by contact between the central pin and the central connection surface, and by contact between the eccentric pin and the annular connection surface. The magnet(s) attract the connector head toward the bottom wall to maintain contact between the central pin and the central connection surface, and between the eccentric pin and the annular connection surface. In other words, the connector's magnet(s) attract the connector head by magnetic attraction to hold it pressed into the cavity and thus ensure stable contact between the pins and the connection surfaces.

[0016] The rotational symmetry of the cavity and the arrangement of the pins and connection surfaces allow for easy electrical connection regardless of the orientation of the handpiece shaft relative to the central axis of the ultrasound probe. In other words, the practitioner does not need to position the shaft at a specific angle to make the connection. Furthermore, once the connector is brought over the connection head, the magnetic attraction exerted by the magnet can help bring the pins and connection surfaces into contact. Finally, this magnetic attraction ensures a stable electrical connection for the time required for the processing unit to acquire the measurement signal.

[0017] The aforementioned features and advantages, as well as others, will become apparent upon reading the following detailed description of embodiments of the proposed device. This detailed description refers to the accompanying drawings, which represent an example of the device. Brief description of the drawings

[0018] The accompanying drawings are schematic and not necessarily to scale; their primary purpose is to illustrate the principles of the invention. In these drawings, identical elements (or parts of elements) are identified by the same reference numerals from one figure (fig.) to another. [Fig. 1] This figure represents an example of a device according to the invention. This device comprises an ultrasonic probe and a handpiece. The handpiece comprises a housing and a rod. One end of the rod is connected to the housing. The rod has a connector at its other end for attaching to the ultrasonic probe. [Fig. 2] This figure is a bird's-eye view of the connector and probe of [Fig. 1]. [Fig. 3] This figure is a worm's-eye view of the connector and probe of [Fig. 1]. [Fig. 4] This figure is a bottom view of the connector in [Fig. 1]. [Fig. 5] This figure is a longitudinal cross-sectional view of the connector in [Fig. 1]. Detailed description

[0019] Embodiments of the proposed device are described in detail below. Some embodiments are described with reference to the example shown in the accompanying drawings. These embodiments illustrate the features and advantages of the invention. However, it should be noted that the invention is not limited to the embodiments described or to the example shown.

[0020] Generally and with reference to the example in the figures, the proposed device comprises an ultrasonic probe 100 and a handpiece 10. The handpiece 10 is adapted to be held in the hand by a practitioner, in particular a dentist, or any other user wishing to check the stability of a dental implant previously inserted into a patient's jawbone.

[0021] The dental implant is not shown in the figures. Typically, such an implant has a tapered shape and an external thread so that it can be screwed into the bone. For example, the implant has an outside diameter of 3 to 6 mm and a length of 4 to 16 mm. Once anchored in the bone, the implant has a free end emerging at the bone surface, as opposed to an end embedded in the bone, so that the free end is accessible in vivo. The free end of the implant is used as the receiving site for the probe 100. In other words, the probe 100 can be mechanically coupled to the implant at this free end. For example, the free end of the implant is hollow and has an internal thread, while the distal end 102 of the probe 100 is elongated and has an external thread 104 so that it can be screwed into the internal thread of the implant.

[0022] The probe 100 includes a piezoelectric ultrasonic transducer capable of emitting an ultrasonic wave. When the probe 100 is coupled to the implant, the emitted ultrasonic wave propagates inside the implant towards the end embedded in the bone. The ultrasonic transducer is capable of collecting the reflected ultrasonic wave and emitting an electrical measurement signal representing the reflected ultrasonic wave. In other words, the ultrasonic transducer allows the ultrasonic wave to be emitted, the echoes resulting from the reflection of the ultrasonic wave at a contact interface between the implant and the bone to be transmitted to the handpiece 10.

[0023] The handpiece 10 includes a housing 12 containing an electronic circuit (not shown) connectable to the ultrasonic transducer via an electrical connection. In some embodiments, the electronic circuit includes a control circuit for controlling the ultrasonic transducer, i.e., for sending an electrical pulse to the transducer to cause the emission of an ultrasonic wave. The The electronic circuit also includes a processing unit configured to receive the measurement signal from the transducer and process this signal to assess the stability of the dental implant. Various methods for processing the measurement signal are known (see, in particular, patent documents EP2503954 and EP3781040) and will not be described in further detail here. The housing 12 may include control buttons 16 for controlling the electronic circuit and a display device 14 for displaying, in particular, an indicator (calculated by the processing unit) reflecting the stability of the dental implant and thus informing the practitioner.

[0024] The handpiece 10 also includes a shaft 20 having two opposing ends 21, 22. The proximal end 21 of the shaft is connected to the housing 10. In some embodiments, as in the example in [Fig. 1], the shaft 20 is detachably connected to the housing 12. This allows the shaft 20 to be sterilized independently and / or replaced easily. The shaft 20 is shown in the detached position in [Fig. 1]. Various fastening systems for connecting the shaft 20 to the housing 10 can be considered. The elongated shape of the shaft, inspired by contra-angles commonly used in dental handpieces, allows access to all (or at least most) locations where dental implants can be placed. For this same purpose, a fixing system allowing the rotation of the rod 20 around an X engagement axis of the rod 20 in the housing 12 can be envisaged.

[0025] At its distal end 22, the rod 20 includes a connector 30. At its proximal end, the ultrasonic probe 100 includes a connecting head 110. The connecting head 110 cooperates with the connector 30 to establish an electrical connection between the probe 100 and the handpiece 10. In some embodiments, the connecting head 110 has an end face 115 and a lateral face 116. The lateral face 116 may have several facets. In the example shown, the connecting head 110 is a hexagonal head and therefore has six lateral facets. These lateral facets allow the probe 100 to be screwed into the implant by means of a suitable tool that engages with the facets. The lateral face 116 fits within a cylinder of revolution of diameter DI shown in dashed lines in [Fig. 3]. The connecting head has a central axis A (see [Fig. 3].2]) and, on its end face 115, a central connection surface 112 centered on the axis A and an annular connection surface 114 around the axis A. In other words, the annular connection surface 114 encircles the central connection surface 112. The annular connection surface 114 can be formed by a ferromagnetic ring embedded in the end face 115. The annular and central connection surfaces 114, 112, are at the same level so that the end face 115 is planar.

[0026] The connector 30 has a cavity 40 adapted to receive the connection head 110. The cavity 40 has rotational symmetry about a principal axis B and is delimited by a bottom wall 41 and a side wall 42. The connector 30 includes, on its bottom wall 41, a central pin 31, an eccentric pin 32, and at least one magnet 33. In the example shown in the figures, the bottom wall 41 is flat and perpendicular to the principal axis B. The pins 31 and 32 protrude from the bottom wall 41, while each magnet 33 is embedded in this wall 41, such that the free face of each magnet 33 is recessed relative to the free end of the pins 31 and 32. The pins 31 and 32 are of the same height.

[0027] When the connecting head 110 is coaxially engaged (i.e., with axes A and B aligned) in the cavity 40 of the connector 30, the electrical connection is ensured by contact between the central pin 31 and the central connection surface 112 and by contact between the eccentric pin 32 and the annular connection surface 114. The magnet(s) 33 attract the connecting head towards the base wall 41 to maintain the connection surfaces 112, 114 in contact with the pins 31, 32. The electrical connection can be broken by detaching the connector 30 from the connecting head 110. To do this, the practitioner manually applies a pulling force to the handpiece 10 that is greater than the magnetic attraction force. The magnitude of the magnetic attraction force exerted by the magnet(s) 33 is determined by finding a compromise.The attractive force must be high enough to maintain a stable electrical connection between the connecting surfaces 112, 114 and the pins 31, 32, but low enough to limit the mechanical stresses exerted on the probe 100 (and therefore on the implant) when the connector 30 is detached, as these stresses could compromise the stability of the implant. In some embodiments, the magnitude of the attractive force exerted by the magnet(s) 33 is between 0.2 and 2 Newtons (N), in particular between 0.5 and 1 N. This attractive force, or magnetization force, corresponds to the normal force required to separate the connecting head 110 from the connector 30 (i.e., to separate the ferromagnetic part of the connecting head 110 from the magnet(s) 33 of the connector 30). This force can be measured, for example, using a dynamometer.

[0028] The magnet(s) 33 can be arranged around the central pin 31 so as to face the ferromagnetic ring when the connecting head 110 is coaxially engaged in the cavity 40. In some embodiments, the connecting head 110 comprises at least two magnets 33 distributed around the central pin 31.

[0029] The magnet or magnets 33 can be arranged symmetrically around the central spindle 31 so that the magnetic attraction force exerted by the magnet or magnets 33 is parallel, or substantially parallel, to the main axis B of the cavity 40. This keeps the connecting head 110 aligned with the cavity 40. In particular, when the connecting head 110 is pressed against the central pin 31, this prevents it from pivoting around the central pin 31 due to the attractive force. Thus, in embodiments with one magnet, the magnet can have an annular shape centered on the central pin 31. In embodiments with two magnets, the magnets can be diametrically opposed with respect to the central pin 31. In embodiments with three or more magnets, the magnets can be evenly distributed around the central pin 31. For example, three magnets 33 can be angularly spaced every 120° around the central pin 31. In the example shown in the figures, the connecting head 110 comprises three magnets 33.The three magnets 33 and the eccentric pin 32 are angularly distributed every 90° around the central pin 31. Although such a distribution of the magnets 33 is not symmetrical around the central pin 31, it gives satisfactory results.

[0030] In certain embodiments, the central pin 31 and the eccentric pin 32 are spring-loaded pins. In particular, each pin 31, 32 consists of a plunger, a barrel, and a spring. When a force is applied to the plunger, the spring is compressed, and the plunger moves inside the barrel. The shape of the barrel retains the plunger, preventing the spring from pushing it outward. This type of pin makes it possible to obtain an electrical connection resistant to small relative movements between the connector 30 and the connection head 110, and thus enhances the stability of the electrical connection. Furthermore, the combination of the attractive force of the magnets 33 and the spring-loaded pins 31, 32 proves to be particularly effective.

[0031] The geometry of the cavity 40, the connecting head 30, and their connectors (i.e., the pins and connection surfaces) allows for an electrical connection regardless of the orientation of the rod 20 around the central axis A of the probe 100. Furthermore, the action of the magnets 33 helps maintain this electrical connection for the time required for the processing unit to acquire the measurement signal. Finally, the shape of the rod 20 and the compact connectors overcome the space constraints encountered in the device's environment of use, namely the patient's mouth.

[0032] In certain embodiments, the connection head 110 fits within a cylinder of revolution of diameter DI, and the cylindrical side wall 42 of the cavity 40 has a diameter D2. The clearance between DI and D2 is denoted E, where E = D2 - D1. The clearance E results from finding a compromise. The clearance E is small enough to ensure proper centering of the connection head 110 in the connector 30 and therefore correct relative positioning of the pins 31, 32, and the connection surfaces 112. 114, but large enough not to exert mechanical stress on probe 100 (and therefore on the implant) when positioning connector 30 on probe 100 or when detaching it, as this could compromise the stability of the implant.

[0033] In some embodiments, the height P (illustrated in [Fig. 5]) of the cylindrical side wall 42 of the cavity 40 also results from the search for a compromise. The height P is large enough to ensure good guidance of the connecting head 110 in the connector 30, but small enough not to exert torque on the probe 100 (and therefore on the implant) when the connector 30 is connected to the probe 100, as this could compromise the stability of the implant.

[0034] In certain embodiments, to facilitate handling and placement of the probe 100 and due to anatomical constraints, the diameter DI of the connecting head 110 is between 3 and 12 mm, in particular between 6 and 7.5 mm. For example, the diameter DI measures 6.7 mm. In this case, the clearance E can be between 0.01 and 0.8 mm, in particular between 0.05 and 0.6 mm and, preferably, between 0.1 and 0.4 mm. A clearance E of 0.2 mm gives good results. The height P of the cylindrical lateral wall of the cavity can be between 1.5 and 4.5 mm, in particular between 2.5 and 3.5 mm. A height P of 3.1 mm gives good results.

[0035] The embodiments described in this presentation and the example shown in the figures are given by way of illustration and not limitation, a person skilled in the art being able to easily, in view of this presentation, modify these embodiments, or consider others, while remaining within the scope of the invention.

[0036] In particular, a person skilled in the art will readily be able to consider variations comprising only some of the features of the embodiments described above, if those features alone are sufficient to provide one of the advantages of the invention. Furthermore, the various features of these embodiments can be used individually or combined. When combined, these features can be used as described above or otherwise, the invention not being limited to the specific combinations described herein. In particular, unless otherwise specified, a feature described in relation to one embodiment can be applied analogously to another embodiment.

Claims

1. Demands A device for monitoring the stability of a dental implant inserted into bone, the dental implant having one free end emerging on the surface of the bone and one end embedded in the bone, the device comprising: an ultrasonic probe (100) adapted to be mechanically coupled to the implant and comprising an ultrasonic transducer adapted to emit an ultrasonic wave propagating inside the implant towards the buried end, to collect reflected ultrasonic waves and to emit an electrical measurement signal representing the reflected ultrasonic wave, and a handpiece (10) adapted to cooperate with the probe (100), the handpiece (10) comprising an electronic circuit connectable to the ultrasonic transducer via an electrical connection, the electronic circuit comprising a processing unit configured to evaluate the stability of the dental implant based on the measurement signal received from the ultrasonic transducer (100) via the electrical connection, wherein: the probe (100) includes a connection head (110); the handpiece (10) includes a rod (20) and a connector (30) located at one end of the rod (20); the connector (30) has a cavity (40) adapted to receive the connection head (110), the cavity (40) having a rotational symmetry about a principal axis (B) and being delimited by a bottom wall (41) and a cylindrical side wall (42), the connector (30) comprising, on the bottom wall (41), a central pin (31), an eccentric pin (32) and at least one magnet (33); The connecting head has a central axis (A), a central connecting surface (112) centered on the central axis (A), and an annular connecting surface (115) around the central axis (A), such that, when the connecting head (110) is coaxially engaged in the cavity (40), the electrical connection is ensured by contact between the central pin (31) and the central connecting surface (112) and by contact between the eccentric pin (32) and the annular connecting surface (115), said magnet (33) attracting the head of connection (110) to the bottom wall (41) to maintain said contacts.

2. Device according to claim 1, wherein the connecting head (110) fits into a cylinder of revolution of diameter DI between 3 and 12 mm.

3. Device according to claim 2, and in which the diameter D2 of the cylindrical side wall (42) of the cavity (40) is such that the clearance E between the diameters DI and D2 is between 0.01 and 0.8 mm, in particular between 0.1 and 0.4 mm.

4. Device according to any one of claims 1 to 3, wherein the height P of the cylindrical side wall (42) of the cavity (40) is between 1.5 and 4.5 mm, in particular between 2.5 and 3.5 mm.

5. Device according to any one of claims 1 to 4, wherein the connecting head (110) comprises a ferromagnetic ring disposed around the central axis (A) and wherein said at least one magnet (33) is disposed around the central pin (31) so as to face the ferromagnetic ring when the connecting head (110) is coaxially engaged in the cavity (40).

6. Device according to claim 5 in which the annular connection surface (115) corresponds to a face of the ferromagnetic ring.

7. Device according to any one of claims 1 to 6, wherein the connecting head (110) comprises at least two magnets (33) distributed around the central pin (31).

8. Device according to any one of claims 1 to 7, wherein the intensity of the magnetic attraction force exerted by said at least one magnet is between 0.2 and 2 N, in particular between 0.5 and 1 N.

9. Device according to any one of claims 1 to 8, wherein the central pin (31) and the eccentric pin (32) are spring-loaded pins.

Citation Information

Patent Citations

  • Method and device for ultrasound testing of the mechanical strength of a part inserted in a body, in particular of a dental implant

    EP2503954A1

  • Device and method for controlling the stability of a dental implant

    EP3781040A1

  • Method and device for ultrasound testing of the mechanical strength of a part inserted in a body, in particular of a dental implant

    EP2503954B1

  • Apparatus and Method of Irregular Bone Defect Detection of Dental Implant

    US20090148811A1