Curved Ultrasound Probe
Patent Information
- Application Number
- JP2024510532
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-08-17
- Filing Date
- 2022-08-17
- Publication Date
- 2025-08-22
AI Technical Summary
Existing ultrasound probes are impractical for medical and surgical procedures as they require the physician to hold the probe with one hand, limiting the use of the other hand, and often cause finger fatigue due to improper force application and ergonomics.
A curved ultrasound probe designed to fit the curvature of a physician's fingertip, allowing for ergonomic use and enabling the attachment of various accessories for enhanced functionality and ease of use during procedures.
The curved design reduces finger fatigue and enhances the precision of ultrasound application, freeing up the physician's hand for other tasks and improving the overall ergonomics and efficiency of medical procedures.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to the field of ultrasound probes, more precisely to the field of ultrasound probes, in particular ultrasound hand or finger probes, for applications in surgical and medical environments. [Background technology]
[0002] The use of ultrasound probes to monitor medical and surgical procedures is extremely well known by medical doctors and physicians.
[0003] The ultrasound probe emits sound waves of a field ultrasound in order to obtain an image of the area of interest of the patient's face and / or body. More precisely, the ultrasound emitted by the probe is reflected by the boundaries between different layers of tissue in the body or by irregularities in the acoustic impedance in the tissue, and the ultrasound device measures the time between the initial signal and the reflected signal. Knowing the speed of sound in the human tissue and the time of flight of the pulse, the software of the ultrasound device reconstructs a two-dimensional image of the tissue structure. For example, a significant amount of reflection occurs when the wave crosses an interface between different types of tissue or lesions. These measured reflections make it possible to obtain an image of the tissue inside the patient's face and / or body in the image plane of the probe. More precisely, the probe measures the time of arrival of the reflection and calculates the distance between the reflection point and the probe. As a result, an image of the area traversed by the ultrasound is obtained.
[0004] It is known to use an ultrasound probe to visualize the fetus inside the uterus of a pregnant woman and check the health of said fetus. In this type of device, the doctor holds an ultrasound hand probe in his hand and places it on the skin of the patient's abdomen. In this type of procedure, the doctor's hand is occupied by the hand probe and the doctor cannot use the hand holding the probe for anything else.
[0005] It is also known to use ultrasonic hand probes to assist the physician during injection procedures. For example, hand probes of this kind are used to visualize the patient's skin tissue and to detect and avoid veins and arteries when injecting a solution into the patient's skin. An inconvenience of known devices for injecting fluids under the patient's skin is that the physician must hold the ultrasonic probe in one hand while injecting the fluid with the other. Since the procedure of injecting a fluid usually requires the use of both hands, one hand to hold the syringe and the other to press or pinch the patient's skin, the known ultrasonic probes are not as practical as they might seem.
[0006] It is also known to use an ultrasound hand probe with a finger clip arranged to be attached to the physician's finger. The finger clip makes it possible to maintain the ultrasound probe during the operation. However, this device is not practical for the physician, since it maintains the probe in a position on the finger where it is difficult for the physician to apply pressure to the probe against the skin. With this probe, when the physician applies pressure to the patient's skin with the probe, the resulting force on the physician's finger is perpendicular to the major axis of the finger. As a result, the position is inconvenient for the physician and involves fatigue of the fingers and knuckles.
[0007] It is also known to use hand probes with a "hockey stick" shape to perform this type of injection, which facilitates the act of pressing against the skin but does not free the physician's second hand to work on the skin. Summary of the Invention [Problem to be solved by the invention]
[0008] The object of the present invention is to overcome the shortcomings of known ultrasonic probes. The present invention relates to an ultrasonic probe or ultrasonic hand probe adapted to emit and receive ultrasonic waves and intended to be placed on the pad side of a finger, said ultrasonic hand probe comprising: - a curved ultrasonic transducer; - a housing attached to a curved transducer, the curved transducer being disposed at a distal end of the housing, the housing comprising: a curved finger base having a curvature along a longitudinal axis of the ultrasound hand probe; Electrical connection, Powering a curved transducer; an electrical connection for transmitting a signal generated by a curved ultrasonic transducer signal; and a housing comprising at least one accessory device having at least one first attachment for fastening the accessory device to an ultrasound hand probe. [Means for solving the problem]
[0009] The ultrasonic hand probe according to the invention provides a more convenient device for injection procedures than known devices. The curved finger base of the housing is adapted to follow the curvature of the doctor's fingertips. When the doctor presses the probe against the patient's skin, he can bend his fingers against the skin surface. Thus, the doctor's fingers are in the correct position to apply the pressure required by the probe. As a result, the doctor can place his hand in the correct position and the injection procedure can be performed more easily with less finger fatigue for the doctor.
[0010] Furthermore, the ultrasound hand probe according to the present invention includes an attachment device such that multiple attachments, such as finger clips, can be attached to the probe. As a result, the device is modular and can be attached to the physician's finger to facilitate the injection procedure, or to other attachments such as a stick depending on the physician's preference. Finally, other types of attachments can be attached to the probe to provide other functions to the device.
[0011] According to one embodiment, the ultrasound probe is configured to perform ultrasound examinations in two dimensions. According to one embodiment, the ultrasound probe is configured to perform ultrasound examinations in three dimensions.
[0012] According to one embodiment, the ultrasound probe is configured to perform a Doppler examination. The ultrasound probe is a Doppler probe. Using the Doppler probe, a user visualizes, for example, the flow of blood in a blood vessel. According to one embodiment, the Doppler probe emits ultrasonic pulse waves.
[0013] According to one embodiment, the ultrasound probe is configured to perform elastography measurements.
[0014] According to one embodiment, the ultrasound probe is configured to perform color flow mapping.
[0015] In one embodiment, the curved finger base has a curvature along the longitudinal axis that is complementary to the curvature of the user's fingertip. In other words, the shape of the curved finger base matches the shape of the user's finger pad. This characteristic allows the user to press the probe against the patient by applying a force that is sensibly aligned with the longitudinal axis of the user's finger. This reduces user fatigue, as the applied force is in the direction of the finger, which can lead to symptoms such as tendonitis for clinicians. It also increases the precision of application of the probe on the patient's skin surface.
[0016] In one embodiment, the curved finger base forms contact with the distal phalanx of a finger, preferably the distal phalanx of a user's index finger.In one embodiment, the curved finger base forms contact with the distal phalanx of a user's finger, preferably the distal phalanx of a user's index finger.
[0017] In one embodiment, the curved finger contacts the skin from about the middle of the distal phalanx to the tip of the finger. According to one embodiment, a transducer aligns with the curved finger base and the portion of the user's finger in contact with the finger base. According to one embodiment, a transducer aligns with the curved finger base and the portion of the user's finger extending from about the middle of the distal phalanx to the tip of the finger.
[0018] In one embodiment, the electrical connection is a wire, hi one embodiment, the electrical connection is a cable, and / or a coaxial cable, and / or a flex cable, and / or a flat flex cable.
[0019] In one embodiment, the at least one accessory device is a first accessory device that includes a finger clip, which feature allows a user to attach the ultrasound hand probe to their finger by simply inserting the finger into the finger clip.
[0020] In one embodiment, the at least one accessory device is a second accessory device having a distal opening configured to guide a needle that facilitates placement of the needle in a zone scanned by the ultrasound hand probe.
[0021] In one embodiment, the distal opening is rotatable relative to the ultrasound hand probe to adapt the angle of needle injection, allowing the guided needle to be moved relative to the probe to move the area of injection.
[0022] In one embodiment, at least one of the accessory devices is a third accessory device having a hockey stick shape, which provides other techniques for handling the probe and gives the physician the ability to choose their preferred technique for using the probe.
[0023] In one embodiment, the at least one accessory device is a fourth accessory device shaped to form a "T" so that the ultrasound hand probe can be held between two fingers, which is a practical way to use a finger hand probe.
[0024] In one embodiment, the at least one accessory device includes a rotating accessory fastener that allows the orientation of the housing relative to the at least one accessory device to be variable along an axis of rotation. This feature provides the possibility to rotate the probe relative to the physician's finger during application, so that the physician can change the angle of view of the probe to adapt it to different situations.
[0025] In one embodiment, the rotating attachment fastener comprises a return element that allows the rotating attachment fastener to automatically return to its initial position.
[0026] In one embodiment, the attachment device includes retaining wings for maintaining a finger between the retaining wings, thereby allowing the attachment device to be attached to a physician's finger.
[0027] In one embodiment, the housing has an oval cross-section, an elliptical shaped cross-section.
[0028] In one embodiment, the housing is moulded around a curved ultrasound transducer.
[0029] In one embodiment, the curved finger base has a radius of curvature comprised between 2 centimeters and 5 centimeters in the longitudinal plane of the ultrasound hand probe, which corresponds to the curvature of the fingertip, thus enhancing the ergonomics of the probe.
[0030] In one embodiment, the curved finger base has a radius of curvature comprised between 1 cm and 5 cm in the transverse plane of the ultrasound hand probe, which enhances the ergonomics of the probe and facilitates integration with accessory devices.
[0031] In one embodiment, the curved transducer has a sector-shaped field of view that covers an angle of more than 20 degrees. This angle of view provides the physician with a good view when using the probe.
[0032] In one embodiment, the frequency of the ultrasound emitted by the curved transducer 30 is between 10 Mhz and 30 Mhz, preferably between 18 Mhz and 20 Mhz. These frequency values allow for scanning different depths of the patient's skin.
[0033] In one embodiment, the ultrasound hand probe can transmit data acquired by the ultrasound probe wirelessly, preferably via a wifi connection and / or a Bluetooth® connection, thereby allowing data acquired by the probe to be transmitted wirelessly, thereby facilitating the physician's actions when using the probe.
[0034] The above and other objects, features, and advantages of the present invention will become more apparent from the following detailed description taken in conjunction with the accompanying drawings. [Brief description of the drawings]
[0035] [Figure 1] FIG. 1 is a side view of an ultrasonic hand probe placed on a finger according to a first embodiment of the present invention. [Diagram 2] FIG. 2 is a cross-sectional view of the ultrasonic hand probe of FIG. 1. [Diagram 3] FIG. 2 is a perspective view of an attachment device, according to one embodiment of the present invention. [Figure 4]FIG. 2 is a side view of the ultrasound hand probe of FIG. 1 being pressed against the surface of a patient's skin. [Diagram 5] FIG. 1 is a side view of an ultrasound hand probe according to the present invention including a needle guide. [Figure 6] FIG. 1 illustrates a perspective view of an attachment device, according to one embodiment. [Figure 7] FIG. 7 is a perspective view of an ultrasound hand probe with the attachment device of FIG. 6 placed on a physician's finger. [Figure 8] FIG. 1 is a perspective view of an ultrasonic hand probe according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0036] 1 and 4 depict an exemplary ultrasound hand probe 10 in accordance with the present invention.
[0037] The ultrasound probe 10 or ultrasound hand probe 10 comprises a housing 20 , a transducer 30 , and at least one accessory device 40 .
[0038] Chassis The housing 20 has an elongated shape as seen in Fig. 2. By elongated shape, it is understood that the housing 20 has a dimension along one axis that is substantially larger than the dimensions along the other two axes. For example, in Fig. 2, y 0 The dimension of the housing 20 along the axis is x 0 The width of the housing 20 along the axis and z 0 Substantially longer than the height of the housing along the axis.
[0039] The ultrasonic hand probe 10 according to the present invention includes a curved finger base 22. The curved finger base 22 is aligned along the longitudinal axis L of the ultrasonic hand probe 10. A The curved finger base 22 is curved along the longitudinal axis L of the ultrasonic hand probe 10. A By curvature, we mean the curvature of the outer surface of the curved finger base 22.
[0040] In other words, the curved finger base has a curvature that approximates the curvature of the tip of a human finger along the major axis of the finger. As a result, the curved finger base 22 matches the shape of the physician's fingertip. This characteristic makes the finger hand probe 10 ergonomic to use. Because the curved base 22 matches the shape of the fingertip, the ultrasound waves are therefore more stable at the fingertip compared to a standard straight hand probe.
[0041] The curved finger base 22 has a radius of curvature comprised between 2 and 5 centimeters. This radius is the radius of curvature along the longitudinal axis of the finger hand probe 10. This radius corresponds to the radius that can be found on the majority of a physician's fingertips. As a result, the curved finger base 22 fits the shape of the finger, making the finger hand probe easier to use.
[0042] According to one embodiment of the present invention, the radius of curvature of the first curvature 220 of the curved finger base 22 is constant or substantially constant. In other words, the radius of curvature of the first curvature of the curved finger base 22 remains the same curvature along its longitudinal axis.
[0043] According to another embodiment of the present invention, the radius of curvature of the first curvature 220 of the curved finger base 22 is aligned with the longitudinal axis L of the ultrasonic hand probe. A For example, the radius of curvature at the proximal end 23 of the housing 20 is greater than the radius of curvature at the distal end 24 of said housing 20. This characteristic allows the shape of the housing to conform to the shape of a fingertip, where the curvature at its proximal end is less than the curvature at its distal end.
[0044] Furthermore, the curved finger base 22 comprises a second curvature 222. The second curvature 222 is contained in a plane perpendicular to the plane comprising the first curvature 220. In other words, the second curvature 222 is perpendicular to the first curvature 220. This second curvature makes it easier to interact with the accessory device presented below. Furthermore, the second curvature 222 advantageously does not present a cutting edge. This is particularly good, since there is no risk of tearing the sterile glove when the housing is inserted into the sterile glove.
[0045] Preferentially, the housing 20 has an oval cross section. The cross section is defined by the longitudinal axis L of the ultrasonic finger probe 10. A By oval cross section is meant a cross section of the housing 20 in a plane perpendicular or substantially perpendicular to the longitudinal axis L of the ultrasonic hand probe 10. By oval cross section is meant an egg shape of said cross section. By oval is meant a shape that is both round and elongated at the same time. The rounded part of this cross section is located on the side of the cross section and the elongation of the shape is aligned with the longitudinal axis L of the ultrasonic hand probe 10. A According to one embodiment, the housing 20 has an elliptical cross-section. By elliptical cross-section is meant a cross-section having the shape of an ellipse, meaning that the contour of the cross-section follows a curve that can be obtained by intersecting a cone with a slanted plane that does not intersect the base of the cone.
[0046] The housing 20 has a length comprised between 0.5 centimeters and 5 centimeters. Preferably, the length of the housing 20 is comprised between 1 centimeter and 3 centimeters. More preferably, the housing 20 has a length comprised between 2 centimeters and 2.5 centimeters. These length values are those which result in the most convenient size of the housing 20 to use.
[0047] The housing 20 has a width comprised between 0.5 centimeters and 2 centimeters. Preferably, the width of the housing 20 is comprised between 0.7 centimeters and 1.5 centimeters. More preferably, the housing 20 has a length comprised between 0.8 centimeters and 1 centimeter. These length values are those which result in the most convenient size of the housing 20 to use.
[0048] Preferably, the curved transducer 30 is integral with the housing 20. By integral with the housing 20, it is meant that the curved transducer 30 is completely inside the housing 20 or that the curved transducer does not protrude from the housing 20. As a result, the assembly of the housing 20 and the transducer 30 forms a single surface with no cut edges in the assembly.
[0049] Preferably, the housing 20 is manufactured by an injection molding process. Injection molding is a convenient and inexpensive way to manufacture the housing 20. Preferably, the curved transducer 30 is integral with the housing 20. Preferably, the housing 20 is bonded to the curved transducer 30. Alternatively or additionally, the housing 20 is assembled with the curved transducer 30 by potting. Alternatively, the housing 20 is 3D printed or machined to the size of the curved transducer 30.
[0050] Curved Ultrasonic Transducer In one embodiment, the curved ultrasonic array transducer 30 is aligned along the longitudinal axis L of the ultrasonic hand probe 30. AIn one embodiment, the curved ultrasonic array transducer 30 is a curved linear array ultrasonic transducer. The ultrasonic transducer 30 is configured to receive ultrasonic waves. More precisely, it receives all kinds of ultrasonic waves, and in particular receives the reflection of the ultrasonic pulses emitted by the transducer 30. The curved ultrasonic transducer 30 generates a signal that is converted into an image of the ultrasonic waves received by the transducer. This signal allows the tissue beneath the skin of the patient to be visualized.
[0051] The curved ultrasonic transducer 30 has preferentially an elongated shape, as can be seen in Fig. 1. By elongated shape, a shape having a dimension along one axis that is substantially larger than the dimensions along the other two axes of the curved ultrasonic transducer 30 is understood. For example, in Fig. 2, y 0 The dimension of the curved ultrasonic transducer 30 along the axis is x 0 The width of the curved ultrasonic transducer 30 along the axis and z 0 Substantially longer than the height of the housing along the axis.
[0052] The curved ultrasonic transducer 30 is aligned along the longitudinal axis L of the ultrasonic hand probe 10. A The curved ultrasonic transducer 30 is curved along the longitudinal axis L of the ultrasonic hand probe 10. A By curvature, we mean the curvature of the outer surface of the curved ultrasonic transducer 30.
[0053] In other words, the curved ultrasound transducer 30 has a curvature 320 that approximates the curvature of the tip of a human finger along the major axis of the finger. As a result, the curved ultrasound transducer 30 fits the shape of the physician's fingertip. This characteristic makes the finger-hand probe 10 ergonomic to use. Because the curved base 22 fits the shape of the fingertip, the physician can press the curved ultrasound transducer 30 against the patient's skin as if it were the physician's own fingertip. Furthermore, the physician may roll the curved transducer 30 on the patient's skin surface to change the orientation of the curved transducer 30.
[0054] The curved ultrasound transducer 30 has a radius of curvature comprised between 2 and 5 centimeters along the longitudinal axis of the finger-hand probe 10. This radius corresponds to the radius that can be found on the majority of a physician's fingertips.
[0055] According to one embodiment of the present invention, the radius of curvature of the primary curvature 320 of the curved ultrasonic transducer 30 is constant or substantially constant. In other words, the radius of curvature of the primary curvature 320 of the curved ultrasonic transducer 30 remains the same curvature along its longitudinal axis.
[0056] According to another embodiment of the present invention, the radius of curvature of the main curvature 320 of the curved ultrasonic transducer 30 is aligned with the longitudinal axis L of the ultrasonic hand probe. A For example, the radius of curvature at the proximal end 33 of the curved ultrasound transducer 30 is greater than the radius of curvature at the distal end 34 of the curved ultrasound transducer 30. This characteristic makes it easier for a physician to orient the curved ultrasound transducer 30.
[0057] According to one embodiment of the present invention, a curved ultrasonic transducer 30 is integrated into the housing 20 of the ultrasonic hand probe 10.
[0058] By integral with the housing 20, it is meant that the outer surface of the curved ultrasonic transducer is contained within the outer surface of the housing 20. In other words, the curved ultrasonic transducer does not protrude from the housing 20.
[0059] Preferably, the curved transducer 30 includes a contact surface 32. The contact surface 32 of the curved transducer 30 is configured to be placed in contact with a skin surface of a patient. Preferably, the curved transducer contact surface 32 and the exterior surface of the housing 20 form a continuous surface.
[0060] Preferably, the housing 20 encompasses all of the exterior surfaces of the curved transducer 30 except for the contact surface 32 .
[0061] Preferably, the curved ultrasonic transducer 30 has a length comprised between 10 mm and 30 mm.
[0062] The curved transducer 30 defines a field of view of the ultrasonic hand probe 10. The field of view of the ultrasonic hand probe refers to the area in which the transducer 30 transmits ultrasonic waves and in which the transducer 30 receives ultrasonic waves. According to one embodiment, the field of view of the ultrasonic hand probe 30 is contained in a plane perpendicular to the contact surface 32. Preferably, the field of view of the ultrasonic hand probe 10 is contained within a plane perpendicular to the longitudinal axis L of the ultrasonic hand probe 10. A Preferably, the curved ultrasound transducer 30 has a sector-shaped field of view. Preferably, the angle between the lines forming the two sides of the sector-shaped field of view is comprised between 0.1 degrees and 0.5 degrees. More preferably, the angle between the lines forming the two sides of the sector-shaped field of view is comprised between 0.2 degrees and 0.4 degrees.
[0063] The curved ultrasonic transducer 30 emits and receives sound waves in the ultrasonic range. Preferably, the wavelengths of the emitted and received sound waves are comprised between 10 MHz and 30 MHz. This range of wavelengths is adapted to visualize body tissues at different depths. More preferably, the wavelengths of the emitted and received sound waves are comprised between 18 MHz and 20 MHz. This range of wavelengths is particularly adapted to visualize the superficial layers of human skin, which is very advantageous for assisting the physician during injection procedures of said tissues. In particular, it makes it possible to visualize blood vessels in these tissues and to avoid them during injection.
[0064] The curved ultrasonic transducer 30 is linked to at least one electrical connection, which may be a wire, cable, coaxial cable, flex cable, or flat flex cable.
[0065] The curved ultrasonic transducer 30 is coupled to at least one wire 25. The wire 25 powers the transducer by providing electrical energy to the transducer. The wire is also used to acquire signals generated by the ultrasonic curved transducer 30. Thus, signals of the transducer 30 in response to receiving ultrasonic waves may be transmitted by the wire to an external visualization device.
[0066] Attached Devices The ultrasonic hand probe 10 includes at least one accessory device 40. The accessory device 40 includes at least one first attachment 41. The first attachment 41 is configured to attach the accessory device 40 to the housing 20 of the ultrasonic hand probe 10.
[0067] According to one embodiment, the first attachment 41 has a shape that can be clipped onto the housing. Preferably, the first attachment 41 has a shape that is complementary to the shape of the housing 20. According to one embodiment, the first attachment 41 forms a rail into which the housing 20 can be inserted. This rail is well shaped to easily fix the housing 20 to the first attachment. According to one embodiment, the first attachment 41 comprises a clip. This clip is configured to fasten the housing 20 of the ultrasound hand probe to the accessory device 40. The clip 41 comprises at least one flexible part. The flexible part is deformable when subjected to a load. When inserting the housing 20 into the first attachment 41, the flexible part is deformed and retracts when the housing 20 is in its fastening position. To remove the housing 20 from the first attachment 41, the flexible part is deformed again until the housing 20 is released. According to one embodiment, the flexible part comprises two flexible parts. The two flexible parts form a clip. The two flexible sections act as clamps to keep the housing 20 fixed to the attached device.
[0068] FIG. 3 shows an accessory device according to one embodiment. The first attachment 41 is in the form of a rail into which the housing 20 can be inserted. The accessory device 40 comprises a finger clip 42. The finger clip 42 has a size adapted to the finger to be inserted. During use of the ultrasound hand probe 10, the housing 20 is inserted into the first attachment 41. As a result, the housing 20 and the curved transducer 30 are fixed to the accessory device 40. The physician then inserts his finger, preferably the index finger, into the finger clip 42. As a result, the ultrasound hand probe 10 is attached to the physician's finger. This approach leaves the physician both hands free. This feature facilitates the injection procedure.
[0069] The accessory device 40 comprises a retaining wing 420. Preferably, the accessory device 40 comprises two retaining wings 420. The two retaining wings 420 are arranged on the sides of the accessory device. As a result, the retaining wings 420 act as a clamp for the physician's finger. As a result, the accessory device 40 and the ultrasound hand probe are well maintained on the physician's finger. Alternatively, the accessory device 40 comprises a finger hole. The finger hole has a radius adapted for introducing a finger therein. As a result, when the finger is inserted into the finger hole, the accessory device is fixed on said finger of the physician.
[0070] FIG. 4 shows the finger hand probe 10 and the accessory device 40 of FIG. 3 placed on a physician's finger. This figure also shows the surface 50 of the patient's skin. The curved transducer 30 contacts the surface of the patient's skin 50 to scan the skin and subcutaneous tissue. The physician applies a force to the finger hand probe 10 in the direction of the patient's skin to scan the skin. As a result, the hand probe 10 exerts a reciprocal force F on the physician's finger. 1 As shown in Figure 4, a counter force F 1 is tilted with respect to the finger's principal axis, which means that a large amount of force is transmitted in alignment with the finger's principal axis. In prior art devices, the reciprocal force F 1 tend to be perpendicular to the major axis of the finger, which entails more stress and fatigue on the fingers and their joints. As a result, the finger hand probe 10 of the present invention causes less fatigue for the physician than known devices, making it easier to apply force to the probe 10.
[0071] According to one embodiment, the accessory device 40 comprises a rotating accessory fastener. The rotating accessory fastener is disposed between the first attachment 41 and the finger clip and / or retaining wing 420. The rotating accessory fastener allows rotation between the first attachment 41 and the remainder of the accessory device 40. This rotation between the first attachment 41 and the finger clip and / or retaining wing 420 is indicated by an arrow in FIG. 3, the axis of rotation being indicated by a vertical dotted line in this figure. As a result, the housing 20 and the curved ultrasound transducer 30 can rotate relative to the physician's finger when the accessory device 40 is secured to the physician's finger. As a result, it is possible to adjust the orientation of the transducer without moving the physician's finger. This characteristic enhances the ergonomics of the ultrasound hand probe 10.
[0072] Furthermore, the rotating attachment fastener comprises a return element, which applies a return torque to the first attachment 41 when the first attachment 41 is not in its rest position. As a result, when the rotating attachment fastener is not in its rest position, the return element rotates it back to its initial position. This property allows the physician to rotate his / her finger without rotating the curved transducer 30 when the curved transducer 30 is in contact with the patient's skin, which returns to its predetermined position when it is no longer in contact with the patient's skin.
[0073] The rotating attachment fastener is also compatible with the embodiments of attachment device 40 described below.
[0074] A second embodiment of an accessory device 40 according to the present invention is shown below.
[0075] The accessory device 40 has the usual shape of a hockey stick. The accessory device 40 comprises a shaft 43. A first attachment of the accessory device 40 is arranged at the end of the shaft 43. Preferably, the main axis of the hand probe 10 is angled to the main axis of the shaft 43. As a result, the housing 20 and the transducer 30 can be fastened to the end of the shaft. The hockey stick shape of the accessory device 40 allows the physician to hold the ultrasound hand probe 10 between two fingers during the operation. Preferably, the physician holds the shaft 43 between his index finger and thumb. The hockey stick shape is a convenient shape for injection procedures, since it allows the physician to apply force to the patient's skin.
[0076] A third embodiment of the accessory device 40 is shown below. The accessory device 40 includes a shaper that forms a "T". Preferably, the "T" of the "T" shape is located at the top of the first attachment 41. The "T" has a height close to that of a finger. In use, the doctor places two of his / her fingers around the vertical bar of the "T". As a result, the fingers are maintained between the horizontal bar at the top of the "T" and the first attachment 41. As a result, the ultrasound hand probe 10 is fixed to the doctor's finger, and the doctor can freely operate the ultrasound hand probe 10.
[0077] 6 and 7 represent an accessory device according to a fourth embodiment. The accessory device 40 comprises a finger hole 44. The finger hole 44 has a size adapted for a human finger to be inserted. Preferably, the finger hole 44 has a size adapted for the passage of an index finger. The accessory device 40 comprises a shaft 43. The shaft 43 is arranged at the top of the finger hole 44. The shaft 43 advantageously allows the user to manipulate the accessory device 40. The shaft 43 has the advantage of allowing the force applied to the ultrasound hand probe 10 to be transmitted to the back of the user's hand. The shaft 43 is optional and it is possible to have an accessory device 40 without a shaft 43. The accessory device 40 comprises a mounting shaft 45. The mounting shaft 45 comprises a first attachment 41. Advantageously, the first attachment 41 is a gutter. The gutter has a size adapted for receiving the housing 20 and maintaining it on the accessory device 40. In use, the housing 20 is inserted into the gutter and secured to the accessory device 40. When the accessory device 40 is inserted into the physician's finger, the housing 20 and the curved ultrasound transducer 30 are positioned against the tip of the physician's finger. In this position, the physician applies force F to the housing 20 with his or her finger to properly position the curved transducer 30 against the patient's skin. 1 When applying force to the physician's hand, the force applied to the physician's hand is then spread across the physician's fingers, the joints connecting the fingers, and between the physician's hand and the back of the physician's hand. This results in less fatigue for the physician as he or she manipulates the probe.
[0078] According to one embodiment, the accessory device 40 comprises a needle guide. A finger hand probe 10 with an accessory device 40 with a needle guide 47 is depicted in FIG. 5. This figure also depicts a needle 49 inserted into the needle guide 47. The accessory device 40 of all the above-mentioned embodiments may comprise a needle guide. In one embodiment, the axis of the needle guide may be oriented differently. The orientation of the needle guide may be adjustable with respect to the main axis of the ultrasound probe 30 or the main axis of the housing 20. The orientation of the needle guide may be sensorily parallel to the main axis of the physician's finger.
[0079] The needle guide 47 is preferably arranged at the distal end of the accessory device 40. The needle guide 47 comprises at least one needle hole 48 or at least one needle groove. The needle hole 48 or groove has a diameter and size adapted for the passage of the needle 49. Preferably, the diameter and size are adjusted to the size of the needle 49. The needle guide 47 forms a straight path that guides the needle when it is inserted inside the needle hole 48 or groove. Preferentially, the needle guide 47 comprises an element that protrudes from the accessory device 40. The needle hole 48 or groove passes through a protruding part of the needle guide 47. The end of the needle hole 48 or groove is in contact with or close to the patient's skin surface when the curved ultrasound transducer 30 contacts the patient's skin surface. As a result, the needle guide 47 is adapted to guide the needle 49 during the injection procedure. This characteristic facilitates the injection procedure. Furthermore, the accessory device 40 comprises one, two, three or more needle guides or needle grooves. This characteristic allows the site at which the needle penetrates the patient's skin to be varied. The various needle guides or channels may have different spatial orientations, which allows the needle to be guided at different angles relative to the patient's skin during an injection procedure.
[0080] According to one embodiment, the needle guide 47 is rotatable relative to the main body of the attachment device 40. This feature allows the physician to adjust the injection point relative to the ultrasound hand probe 10. This feature also allows the physician to adjust the angle at which the needle penetrates the patient's skin.
[0081] According to one embodiment, the housing 20 comprises at least one needle guide 47. The needle guide is preferably arranged at the distal end of the housing 40. The needle guide 47 comprises at least one needle hole or at least one needle groove. The needle hole 48 or groove has a diameter and size adapted for the passage of the needle 49. Preferably, the diameter and size are adjusted to the size of the needle. The needle guide 47 forms a straight path that guides the needle when it is inserted inside the needle hole or groove. Preferentially, the needle guide 47 comprises an element that protrudes from the housing 20. The needle hole 48 or groove passes through a protruding part of the needle guide 47. The needle hole 48 or the end of the finger contacts or approaches the vicinity of the patient's skin surface when the curved ultrasound transducer 30 contacts the surface of the patient's skin. As a result, the needle guide 47 is adapted to guide the needle during the injection procedure. This characteristic facilitates the injection procedure. Furthermore, the housing 20 comprises one, two, three or more needle holes 48 or needle grooves. This feature allows for the needle to vary the site at which it penetrates the patient's skin. Various needle guides or needle channels may have different spatial orientations. This feature allows for the needle to be guided at different angles relative to the patient's skin during an injection procedure.
[0082] According to one embodiment, the needle guide of the housing 20 is rotatable relative to the main body of the housing 20. This feature allows the physician to adjust the injection point relative to the ultrasound hand probe 10.
[0083] Visualization Devices According to one embodiment, the ultrasonic hand probe 10 is coupled to a visualization device. The visualization device is configured to display on a screen an image representative of the subcutaneous tissue of the patient. The image is obtained from an ultrasonic signal acquired by an ultrasonic curved transducer 30. The image displayed on the visualization device allows the physician to be assisted during the injection procedure and to avoid blood vessels during the injection procedure, making the procedure safer for the patient.
[0084] In one embodiment, the housing 20 includes electrical wiring for supplying electrical energy to the curved transducer 30. Alternatively or additionally, the housing 20 includes a battery for supplying electrical energy to the ultrasonic curved transducer 30.
[0085] In one embodiment, the housing 20 comprises at least one wire configured to transmit a signal acquired by the ultrasonic bending transducer 30. The ultrasonic bending transducer 30 signal is an image of the tissue scanned by the ultrasonic hand probe 10. Alternatively or additionally, the ultrasonic hand probe 10 is configured to wirelessly transmit the signal generated by the ultrasonic bending transducer 30. The wireless configuration of the ultrasonic hand probe 10 allows the physician freedom of movement when manipulating the probe 10 due to the absence of wires. According to one embodiment, the signal is transferred via radio frequency communication. According to one embodiment, the signal is transferred via a Wi-Fi or Bluetooth connection.
[0086] Device with String According to one embodiment, the ultrasonic probe 10 comprises a first portion 201 and a second portion 202. The first portion 201 is aligned along the longitudinal axis L of the ultrasonic hand probe 10. A The second portion extends longitudinally or sensibly longitudinally along the longitudinal axis L of the hand probe 10. A It extends longitudinally or sensibly longitudinally along.
[0087] According to an embodiment, the ultrasonic hand probe 10 comprises a flexible distal portion 203. The flexible distal portion advantageously connects the first portion 201 and the second portion 202. The term flexible portion 203 means a portion made of a material that can be twisted or twisted. Being twisted or twisted means the ability of the flexible portion to bend or bent and then return to its initial position. In other words, the flexible portion is deformable such that the orientation of the first portion relative to the second portion can be adjusted. As a result, the angle between the first portion 201 and the second portion 202 can be adjusted. As a result, the distance between the tip 204 of the first portion 201 and the second portion 202 can be reduced by twisting the flexible portion 203. During use of the hand probe 10, the user inserts his or her finger between the first portion 201 and the second portion 202. In this position, the user's fingertip is in direct contact with the curved finger base 22. By twisting the flexible portion 203, the user can reduce the distance between the first portion 201 and the second portion 202. As a result, the first and second portions 201, 202 encircle the user's finger and keep the hand probe 10 on said finger. Furthermore, this feature makes the probe adjustable to the size of the user's finger.
[0088] This structure of the probe 10 allows the probe to be secured around a user's finger. The presence of the two portions and the positioning of the probe allows the probe to remain in place on the user's fingertip when the user applies force to the probe to apply a force to the patient's skin surface. This is particularly beneficial because normally the probe is typically placed under the user's glove, and as a result, when the probe slides over the fingertip it is difficult to return it to its original position. The probe according to the present invention does not slide over the fingertip and is easier to use.
[0089] According to one embodiment, the curved finger base 22 extends partially along the distal portion 2021 of the second portion 202. Advantageously, the distal portion 2021 of the second portion 202 has an inwardly curved shape relative to the longitudinal axis of the probe. This property allows the curved finger base 22 to be oriented such that the normal vector of its surface is normal to the surface of the user's fingertip when the ultrasound probe is worn by a user. According to one embodiment, the curved finger base 22 extends partially into the flexible portion 203.
[0090] According to one embodiment, the hand probe 10 comprises a string 41. The string 41 is configured to hold the first portion 201 and the second portion 202 together. In other words, the string 41 is configured to maintain the first portion 201 and the second portion 202 in a tightly fitted position around a user's finger.
[0091] In addition to or as an alternative to the string 41, the probe 10 comprises at least fastening means arranged to attach the first part 201 and the second part 202. In other words, the fastening means holds the first part 201 and the second part 202 together. According to one embodiment, the fastening means is a holder. The fastening means may comprise a hook arranged to attach the first part 201 and the second part 202 together. The fastening means may comprise at least an elastic that exerts a pressure to bring the first part closer to the second part. All these kinds of means allow the probe to be attached to the finger of the user.
[0092] Additionally or alternatively, the fastening means comprises at least a hook and loop fastener configured to attach the first part with the second part. Preferably, the first part comprises a textile band comprising a loop or hook of the hook and loop fastener and the second part comprises the loop or hook.
[0093] Additionally or alternatively, the fixing means comprises at least a magnet in the first or second part and a piece of ferromagnetic material in the first and / or second part. According to this embodiment, the magnet allows a user to attach the first and second parts together to maintain the probe on a user's finger. Additionally or alternatively, the first and second parts each comprise at least a magnet.
[0094] According to one embodiment, the first part 201 comprises a first element 401. The first element comprises a first opening 4011. The first opening 4011 has a size adapted to the string 41 to be inserted. In one embodiment, the size of the opening 4011 is adjusted to the diameter of the string. As a result, the string is kept in a predetermined position relative to the first opening when inserted in the first opening and is therefore movable within the first opening when sufficient force is applied to the string. In one embodiment, the first opening 4011 is formed completely in the first element 401. In other words, the first opening 4011 has the shape of a hole. In one embodiment, the first opening 4011 is formed by a space between the first element 401 and the first part 201.
[0095] According to one embodiment, the second part 402 comprises a second element 402. The second element 402 comprises a second opening 4022. The second opening 4022 has a size adapted to the string 41 to be inserted. In one embodiment, the size of the opening 4022 is adjusted to the diameter of the string. As a result, the string is kept in a predetermined position relative to the second opening when inserted in the second opening and is therefore movable within the second opening when sufficient force is applied to the string. In one embodiment, the second opening 4022 is formed completely within the second element 402. In other words, the second opening 4022 has the shape of a hole. In one embodiment, the second opening 4022 is formed by a space between the second element 402 and the second part 202.
[0096] According to one embodiment, the first part 201 comprises a third opening 2013. The third opening 2013 forms a hole in the first part 201. The third opening 2013 has a size adapted to the string 41 to be inserted. In one embodiment, the size of the opening 2013 is adjusted to the diameter of the string. As a result, the string is maintained in a predetermined position relative to the first opening when inserted therein and is therefore movable within the first opening when sufficient force is applied to the string. In one embodiment, the second opening 4022 is formed completely in the second element 402. According to one embodiment, the opening is aligned with the longitudinal axis L of the hand probe 10. A The third opening 2013 has a main axis that is nominally perpendicular or perpendicular to the first part 201. According to one embodiment, the third opening 2013 comprises two holes each having a main axis. The sections around the main axes of the two holes intersect. Furthermore, one of the two holes has a diameter larger than the diameter of the other. The smaller diameter of the two holes is adjusted so that its diameter is nominally smaller than the diameter of the string 41. This allows the string 41 to be adjusted in the third opening 2013 when it is inserted in the larger hole and to be blocked in position relative to the first part 201 when it is inserted in the hole with the smaller diameter. Advantageously, the third opening 2013 comprises a narrow section between the two holes. The narrow section allows the string 41 to be blocked in position when it is inserted in the hole with the smaller diameter.
[0097] According to one embodiment, the second element 402 comprises a fourth opening 4024. The second opening 4022 has a size adapted to the string 41 to be inserted. In one embodiment, the size of the fourth opening 4024 is adjusted to the diameter of the string. As a result, the string, when inserted in the fourth opening, is kept in a predetermined position relative to the fourth opening and is therefore movable within the fourth opening when sufficient force is applied to the string. In one embodiment, the fourth opening 4024 is formed completely within the second element 402. In other words, the fourth opening 4024 has the shape of a hole. In one embodiment, the fourth opening 4024 is formed by a space between the second element 402 and the second part 202.
[0098] According to one embodiment, the first element 401 comprises a fifth opening 4015. The fifth opening 4015 has a size adapted to the string 41 to be inserted. In one embodiment, the size of the opening 4015 is adjusted to the diameter of the string. As a result, the string is kept in a predetermined position relative to the fifth opening when inserted in the fifth opening and is therefore movable in the fifth opening when a sufficient force is applied to the string. In one embodiment, the fifth opening 4015 is formed completely in the first element 401. In other words, the fifth opening 4015 has the shape of a hole. In one embodiment, the fifth opening 4015 is formed by a space between the first element 401 and the first part 201.
[0099] According to one embodiment, the string 41 comprises a first blocking element 46a. The first blocking element 46a is fixed to the end of the string 41. The first blocking element 46a blocks the movement of the string 41 when it contacts the first opening 4011. In other words, it cannot pass through the first opening because it has a size larger than the size of the first opening. This property prevents the end of the string 41 from passing through the first opening 4011, so that the string 41 remains in place within the opening.
[0100] According to one embodiment, the string 41 comprises a second blocking element 46b. The second blocking element 46b is fixed to the other end of the string 41. The second blocking element 46b blocks the movement of the string 41 when it contacts the fifth opening 4015. In other words, it cannot pass through the fifth opening 4015 because it has a size larger than the size of the fifth opening 4015. This property prevents the other end of the string 41 from passing through the fifth opening 4015, so that the string 41 remains in place within the opening.
[0101] According to one embodiment, the first opening 4011 and the fifth opening 4015 are aligned along the longitudinal axis L of the hand probe 10. A The first portion 202 is disposed on the two opposite sides of the first portion 201. This feature strengthens the clamping of the probe to the user's finger on both sides, thereby providing a more stable fixation of the finger.
[0102] According to one embodiment, the second opening 4022 and the fourth opening 4024 are aligned along the longitudinal axis L of the hand probe 10. A 2 and 3. The first and second portions 20 and 21 are disposed on opposite sides of the first portion 20 relative to the first portion 20. This feature increases the clamping of the probe to the user's finger on both sides, thereby providing a more stable fixation of the finger.
[0103] According to one embodiment, the first element 401 is clipped to the first part 201. Advantageously, the second element 402 is clipped to the second part 202. According to one embodiment, the first element 401 is integral with or integrated into the first part 201. According to one embodiment, the second element 402 is integral with or integrated into the second part 402.
[0104] According to one embodiment, the curved finger base 22 comprises a second curvature. The second curvature is aligned with the primary axis L of the hand probe 10. AThe two curvatures are oriented in a plane perpendicular or slightly perpendicular to the surface of the probe. In other words, the two curvatures make it possible to form a bowl with the shape of a fingertip. This characteristic makes it possible to obtain a probe that is very comfortable to use and adapted to the fingertip of the user.
[0105] Injection procedure The present invention also relates to a method for injecting a substance and / or a medical device under the skin of a patient. The substance to be injected may be a fluid, such as a therapeutic fluid. The substance may also be any possible filler, whether the filler is in the form of a fluid or gel or in any other form. The method also relates to the injection of any medical device under the skin, such as the placement of a thread.
[0106] Preferentially, the method for injecting a substance and / or a medical device is realized with an ultrasound hand probe according to the invention.
[0107] A method for injecting a substance and / or a medical device under the skin of a patient comprises: - fastening a first attachment 41 of the accessory device 40 to the housing 20 of the ultrasound hand probe 10; - inserting a finger into the accessory device 40 to fasten the accessory device to the finger, with the finger base 22 of the housing 20 being placed in contact with the fingertip; - placing a curved ultrasound transducer 30, carried by a housing 20, in contact with the patient's skin, the curved ultrasound transducer 30 being configured to acquire ultrasound signals and transmit said ultrasound signals to an external visualization device, such that the curved ultrasound transducer 30 scans the subcutaneous tissue of the patient's skin; - visualizing an image of the patient's subcutaneous tissue with an external visualization device, said image being extracted from the ultrasound signals by said external visualization device; - inserting a needle of a syringe into the patient's skin at the skin area scanned by the ultrasonic curved transducer 30; - injecting a therapeutic liquid under the patient's skin with a syringe.
[0108] All the characteristics described above for the ultrasonic hand probe 10 also relate to the method according to the invention.
[0109] According to one embodiment, the ultrasound probe is oriented to assist a physician during an anesthesiological procedure. For example, the ultrasound probe can help a physician visualize the injection site of an anesthetic drug.
[0110] According to one embodiment, the ultrasound probe is oriented to assist a physician during a vascular procedure. For example, the ultrasound probe can help a physician visualize the vascular pathways in any part of a patient's body.
[0111] According to one embodiment, the ultrasound probe can assist physicians during emergency medical procedures, whereby the ultrasound probe can help physicians visualize hidden parts of a patient's body during such procedures.
[0112] According to one embodiment, an ultrasound probe assists the physician in visualizing hemodynamics.
[0113] According to one embodiment, the ultrasound probe assists physicians in visualizing the female and male urinary tract during urological procedures.
[0114] According to one embodiment, the ultrasound probe can assist a physician during medical procedures or interventions on a patient's penis and scrotum.
[0115] According to one embodiment, the ultrasound probe assists physicians during rheumatological procedures. According to one embodiment, the ultrasound probe can help physicians visualize joints to assist them in treating musculoskeletal disorders.
[0116] According to one embodiment, an ultrasound probe assists physicians during sports medicine and orthopedic procedures. The advantage is to obtain precise images of a patient's body parts to assist the physician in performing the procedure.
[0117] According to one embodiment, the ultrasound probe assists a physician during an endocrinological procedure by providing the physician with ultrasound images of the patient's body.
[0118] According to one embodiment, an ultrasound probe assists a physician during a gynecological procedure by providing the physician with ultrasound images of the patient's body, and in particular, images of the patient's cavities.
[0119] According to one embodiment, the ultrasound probe is used in veterinary medicine to help physicians obtain images of an animal's body to assist them during these procedures.
[0120] According to one embodiment, the ultrasound probe assists a physician during a neurosurgical procedure by providing the physician with ultrasound images of the patient's body.
[0121] According to one embodiment, the ultrasound probe assists a physician during ophthalmological procedures and / or treatments. [Explanation of symbols]
[0122] 10 Ultrasonic Hand Probe 20 Ultrasonic hand probe housing 201 First Part 2013 The Third Opening 202 Second Part 2021 Distal part of the second part 203 Flexible distal section 22 Curved finger base 220 First curve of finger base 222 Second curve of curved finger base 23 Proximal end of housing 24 Distal end of housing 25 Electric wire L ALongitudinal axis of the ultrasound hand probe 30 Curved Ultrasonic Transducer 320 Principal Curvature of Curved Ultrasonic Transducer 32 Curved ultrasonic transducer contact surface 33 Curved transducer proximal end 34 Curved transducer distal end 40 Attached Devices 401 First element of attached device 4011 First opening 4015 Fifth Opening 402 Second element of attached device 4022 Second Opening 4024 Fourth Opening 41 First attachment of accessory device 42 Finger Clip 420 Baoding wing 43 Shaft of accessory device 44 Finger holes on accessory devices 45 Mounting shaft 46a First block element 46b Second block element 47 Needle Guide 48 Needle hole 49 needles
Claims
1. An ultrasound probe (10) configured to emit and receive ultrasound waves and intended to be placed on the pad of a finger, said ultrasound probe comprising: a curved ultrasonic transducer (30), a housing (20) attached to said transducer (30), said transducer being located at the distal end of said housing (20), said housing (20) comprising: The longitudinal axis (L A a curved finger base (22) having a curvature (220) along the - an electrical connection (25), - powering the transducer; a housing (20) comprising an electrical connection (25) for transmitting a signal generated by the signal of said transducer (30); an ultrasonic probe (10) comprising at least one attachment device (40) comprising at least one first attachment (41) for fastening said attachment device (40) to said ultrasonic probe (10).
2. 2. The ultrasonic probe of claim 1, wherein the housing comprises a first portion and a second portion extending along a finger axis, the first portion and the second portion being connected by a flexible distal portion.
3. 3. The ultrasonic probe of claim 2, wherein the at least one attachment device comprises a string configured to pull the first portion and the second portion closer together.
4. 4. The ultrasonic probe (10) of claim 3, wherein a first element (401) having at least a first opening is attached to the first portion (201) of the housing (20), and a second element (402) having at least a second opening is attached to the second portion (202) of the housing, the string passing through at least the first opening and the second opening of the first element (401) and the second element (402), and the string being movable within the second opening.
5. 5. The ultrasonic probe (10) of claim 4, wherein the first portion (201) comprises at least a third opening, and the string passes through the third opening.
6. 6. The ultrasonic probe (10) of claim 5, wherein the first element includes a fourth opening, the second element includes a fifth opening, and the string passes through the fourth opening and the fifth opening.
7. 7. The ultrasonic probe (10) of claim 6, wherein the first opening is configured to hold the string in place, and when sufficient force is applied to the string, the string is movable within the first opening.
8. The curved finger base is aligned with the longitudinal axis (L A 8. The ultrasonic probe (10) of claim 1, further comprising a second curvature in a plane perpendicular to the first curvature.
9. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the at least one attachment device (40) is a first attachment device comprising a finger clip (42).
10. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the at least one attachment device (40) is a second attachment device comprising a distal opening configured to guide a needle.
11. 11. The ultrasonic probe (10) of claim 10, wherein the distal opening is rotatable relative to the ultrasonic probe (10) to accommodate the angle of injection of the needle.
12. The ultrasound probe (10) of any one of claims 1 to 7, wherein the at least one attachment device (40) is a third attachment device having a hockey stick shape.
13. 8. The ultrasonic probe (10) of claim 1, wherein the at least one attachment device (40) is a fourth attachment device having a shape that forms a "T" so that the ultrasonic probe can be held between two fingers.
14. 8. The ultrasonic probe (10) of claim 1, wherein the at least one attachment device (40) comprises a rotatable attachment fastener that allows for variable orientation of the housing relative to the at least one attachment device along an axis of rotation.
15. 15. The ultrasonic probe (10) of claim 14, wherein the rotary attachment fastener comprises a return element that allows the rotary attachment fastener to automatically return to its initial position.
16. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the accessory device comprises retention wings (420) for maintaining a finger between the retention wings (420).
17. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the housing (20) has an oval or elliptical cross section.
18. 8. The ultrasonic probe (10) of claim 1, wherein the curved finger base has a radius of curvature in a longitudinal plane of the ultrasonic probe (10) comprised between 2 centimeters and 5 centimeters.
19. 8. The ultrasonic probe (10) of claim 1, wherein the curved finger base (22) has a radius of curvature in a transverse plane of the ultrasonic probe (10) comprised between 1 centimeter and 5 centimeters.
20. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the transducer (30) has a sector-shaped field of view, the field of view covering an angle greater than 20 degrees.
21. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the frequency of the ultrasonic waves emitted by the transducer (30) is between 10 Mhz and 30 Mhz.
22. The ultrasonic probe (10) of any one of claims 1 to 7, wherein the ultrasonic probe (10) is capable of wirelessly transmitting data acquired by the ultrasonic probe (10).