Ultrasound diagnostic equipment
The integrated ultrasound diagnostic apparatus addresses the challenge of orientation changes in conventional devices by providing simultaneous short-axis and long-axis image display and a puncture guide, facilitating precise and easy punctures.
Patent Information
- Application Number
- JP2021128379
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-08-04
- Publication Date
- 2025-12-03
- Estimated Expiration
- 2041-08-04
AI Technical Summary
Conventional ultrasound diagnostic devices require operators to change the orientation of the device during puncture procedures, leading to difficulty in maintaining the target blood vessel in the image and making it challenging to perform precise punctures due to the separation of the probe and image display, resulting in a large field of view that complicates the operation.
An ultrasound diagnostic apparatus with integrated ultrasound probes and an image display unit in a single casing, allowing simultaneous display of short-axis and long-axis images without changing the device's orientation, and featuring a puncture guide to align the needle with the target.
Enables easy and precise puncture operations by allowing simultaneous viewing of cross-sectional images and alignment of the needle with the target, enhancing operational ease and accuracy.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to an ultrasonic diagnostic apparatus for obtaining cross-sectional images of a subject. [Background technology]
[0002] Ultrasound diagnostic devices are used to visualize the inside of a patient's body. Conventional ultrasound diagnostic devices have a probe with a row of ultrasound transducers and can image one cross-section of the area to be examined. However, when inserting a needle into a blood vessel inside the body while checking the position using the ultrasound diagnostic device, the previous device required changing its orientation midway. That is, when using a conventional ultrasound diagnostic device, the puncture position in the body width direction must be determined while checking a cross-sectional image (short-axis image) perpendicular to the longitudinal direction of the blood vessel, and then the orientation of the device must be changed 90 degrees to check the depth of the needle from the body surface while looking at a longitudinal cross-sectional image (long-axis image) along the longitudinal direction of the blood vessel, and the needle must be inserted into the blood vessel.
[0003] However, changing the orientation of the device during the puncture procedure can result in losing sight of the target blood vessel. Furthermore, it is difficult to maintain the blood vessel in the image using only long-axis images after the device is turned. Therefore, an ultrasound diagnostic device has been proposed that can simultaneously obtain short-axis and long-axis images by positioning the probe in a T-shape (Patent Document 1). [Prior art documents] [Patent documents]
[0004] [Patent Document 1] Patent No. 6078732 Summary of the Invention [Problem to be solved by the invention]
[0005] In the device of Patent Document 1, the probe and the image display device are separate. Therefore, when attempting to puncture a patient's blood vessel, the operator must place the probe on the patient's body surface while looking at a computer screen on a desk or other device to check the cross-sectional image of the subject, and must also operate the needle separately from the probe. This requires the operator to operate the needle while keeping multiple images on the desk in view. In this case, the amount of information in the field of view is large, making it difficult to perform the puncture operation while imagining the condition at hand.
[0006] Therefore, an object of the present disclosure is to provide an ultrasound diagnostic apparatus that allows easy puncture while checking short-axis and long-axis images of a subject. [Means for solving the problem]
[0007] An ultrasound diagnostic device according to a first aspect of the present disclosure includes an ultrasound probe having a first probe in which a plurality of transducers for transmitting and receiving ultrasound are arranged in a first direction, and a second probe in which a plurality of transducers for transmitting and receiving ultrasound are arranged in a second direction intersecting the first direction; an image display unit that displays a cross-sectional image of a subject; a control unit that controls operation of the ultrasound probe and the image display unit; and a casing that accommodates the ultrasound probe, the image display unit, and the control unit, wherein the control unit simultaneously displays on the image display unit a first cross-sectional image of the subject along the first direction that is generated based on the received waves of the first probe, and a second cross-sectional image of the subject along the second direction that is generated based on the received waves of the second probe.
[0008] As a result, when puncturing a blood vessel using this ultrasound diagnostic device, the first and second cross-sectional images of the subject can be simultaneously viewed without changing the orientation of the device while the ultrasound probe is placed against the subject. Moreover, because the ultrasound probe and image display unit are housed in a single casing, the operator can also view the cross-sectional images of the subject while operating the ultrasound probe. Therefore, the operator can easily puncture a blood vessel while viewing the short-axis and long-axis images of the subject.
[0009] In addition, in the ultrasound diagnostic apparatus according to a second aspect of the present disclosure, in the above-mentioned first aspect, the image display unit displays the first cross-sectional image on the lower side and the second cross-sectional image on the upper side.
[0010] This allows the two cross-sectional images to be aligned vertically. This allows the user to simultaneously check the center of the blood vessel and the depth of the needle inserted into the blood vessel, making the puncture easier. Preferably, the first cross-sectional image is a cross-sectional image, and the second cross-sectional image is a longitudinal cross-sectional image. This allows the user to check the center position of the blood vessel from the cross-sectional image in a field of view close to the insertion point, making the puncture easier.
[0011] Furthermore, an ultrasound diagnostic apparatus according to a third aspect of the present disclosure includes an ultrasound probe having a first probe in which a plurality of transducers for transmitting and receiving ultrasound are arranged in a first direction, and a second probe in which a plurality of transducers for transmitting and receiving ultrasound are arranged in a second direction intersecting the first direction; an image display unit that displays a cross-sectional image of a subject; a control unit that controls operations of the ultrasound probe and the image display unit; and a casing that accommodates the ultrasound probe, the image display unit, and the control unit, wherein the control unit switches between displaying a first cross-sectional image of the subject along the first direction based on the received waves of the first probe and a second cross-sectional image of the subject along the second direction based on the received waves of the second probe on the image display unit.
[0012] As a result, when puncturing a blood vessel using this ultrasound diagnostic device, the operator can switch between viewing the first and second cross-sectional images of the subject without changing the orientation of the device while the ultrasound probe is placed against the subject. Moreover, because the ultrasound probe and image display unit are housed in a single casing, the operator can also view the cross-sectional images of the subject while operating the ultrasound probe. Therefore, the operator can easily puncture the blood vessel while viewing the short-axis and long-axis images of the subject.
[0013] Furthermore, the ultrasound diagnostic apparatus according to a fourth aspect of the present disclosure may be any of the first to third aspects, further comprising a puncture guide for guiding a needle, wherein the image display unit and the puncture guide are arranged side by side in the casing in a third direction that intersects both the first direction and the second direction, and the needle supported by the puncture guide and the image of the needle included in the first cross-sectional image displayed on the image display unit may be positioned in the first direction.
[0014] This causes the needle supported by the puncture guide and the image of the needle in the first cross-sectional image to match in position in the first direction, making it possible to accurately align the needle with respect to a specific location (for example, a blood vessel) within the subject.
[0015] Furthermore, an ultrasound diagnostic device according to a fifth aspect of the present disclosure may be any of the first to fourth aspects, wherein the first probe extends in a direction substantially parallel to the image display unit, while the second probe extends in a direction substantially perpendicular to the image display unit, and a finger placement portion is formed above the second probe.
[0016] This allows the second probe to be stably attached to the patient via the finger rest, preventing unintended shaking of the image display unit. In addition, the load pressing the second probe against the skin can be precisely controlled by the finger placed on the finger rest, making it possible to appropriately adjust the degree of deformation of the blood vessels under the skin. [Effects of the Invention]
[0017] The ultrasound diagnostic device according to the present disclosure can provide an ultrasound diagnostic device that can easily perform puncture while checking short-axis and long-axis images of the subject. [Brief explanation of the drawings]
[0018] [Figure 1] FIG. 1 is a front view of an ultrasonic diagnostic apparatus according to the present embodiment. [Figure 2] FIG. 2 is a right side view of the ultrasonic diagnostic apparatus. [Figure 3] FIG. 3 is a rear view of the ultrasonic diagnostic apparatus. [Figure 4] FIG. 4 is a plan view of the ultrasonic diagnostic device. [Figure 5] FIG. 5 is a bottom view of the ultrasonic diagnostic device. [Figure 6] FIG. 6 is a block diagram of an ultrasonic diagnostic device. [Figure 7] FIG. 7(a) is a schematic diagram showing an example in which two images are simultaneously displayed on a monitor, and FIG. 7(b) is a schematic diagram showing an example in which the two images are switched and displayed on a monitor. DETAILED DESCRIPTION OF THE INVENTION
[0019] An ultrasound diagnostic device according to an embodiment of the present disclosure will be described below with reference to the drawings. Note that the concept of direction used in the following description is used for convenience of explanation and does not limit the orientation of the configuration of the invention to that direction. Furthermore, the ultrasound diagnostic device described below is merely one embodiment of the present invention. Therefore, the present invention is not limited to the following embodiment, and additions, deletions, and modifications to the configuration are possible within the scope of the spirit of the invention.
[0020] (Embodiment) The ultrasound diagnostic device 1 shown in Figure 1 is used to insert a needle or the like into a patient's subcutaneous blood vessels while visually viewing cross-sectional images, and is equipped with a casing 2, an image display unit 3, an ultrasound probe 4, and a control unit 5.
[0021] The casing 2 is made of synthetic resin such as polycarbonate or polypropylene, and has a vertically long rectangular shape when viewed from the front, as shown in Fig. 1. A vertically long rectangular image display unit 3 is provided on the front portion of the casing 2, and a T-shaped ultrasound probe 4 is provided on the bottom surface of the casing 2.
[0022] In the following description, the left-right direction when facing the front portion of the casing 2 is referred to as the "width direction X" (first direction), the direction perpendicular to the paper surface and perpendicular to the width direction is referred to as the "depth direction Y" (second direction), and the direction perpendicular to both the width direction and the depth direction is referred to as the "longitudinal direction Z" (third direction). In this embodiment, the width direction coincides with the left-right direction, the depth direction coincides with the front-rear direction, and the longitudinal direction Z is a direction perpendicular to the bottom surface of the casing 2 and coincides with the up-down direction. As shown in FIG. 2, the front portion of the casing 2 has an inclined surface tilted backward by a predetermined angle α with respect to the longitudinal direction Z. This direction tilted backward by the angle α with respect to the longitudinal direction Z is referred to as the "longitudinal direction Q" (fourth direction).
[0023] 1 and 2, the casing 2 has an upper casing 10 located above the center in the vertical direction Z and mainly housing the image display unit 3, and a lower casing 20 located below the center in the vertical direction Z and mainly housing the ultrasonic probe 4. The upper casing 10 and the lower casing 20 are integrated into a single casing 2.
[0024] Of these, the upper casing 10 has a flat rectangular parallelepiped shape with a depth dimension smaller than a width dimension, and its front surface forms an inclined surface along the longitudinal direction Q that is tilted backward with respect to the vertical direction Z. A monitor 3a of the image display unit 3 is provided on the front surface of the upper casing 10. The monitor 3a is, for example, a liquid crystal panel and has a vertically long rectangular shape, and is arranged so that the front surface of the upper casing 10 and the image display surface of the monitor 3a are flush with each other. Therefore, like the front surface of the upper casing 10, the image display surface of the monitor 3a also forms an inclined surface along the longitudinal direction Q.
[0025] 4, a recess 11 having an oval opening that is long in the width direction X is formed on the top end surface (the surface facing the longitudinal direction Q) of the upper casing 10. Circular switches 6a and 6b that form the operating unit 6 are disposed on the bottom surface of this recess 11.
[0026] 2, the lower casing 20 has a front casing 30 located on the front side in the depth direction Y, and a rear casing 40 located on the rear side. The front casing 30 and the rear casing 40 are integrally formed.
[0027] Of these, the front casing 30 has an upper front portion 31 that has a constant width when viewed from the front, and a lower front portion 35 that decreases in width toward the bottom end. The thickness of the front casing 30 in the depth direction Y is approximately the same as the thickness of the upper front portion 31 and the lower front portion 35.
[0028] The front upper portion 31 has the same width as the upper casing 10 in a front view as shown in Fig. 1, and has a curved surface 32 on its front surface that is curved convexly toward the front side in a side view as shown in Fig. 2. A circular switch 6c that forms the operating unit 6 is disposed in the center in the width direction on this curved surface 32. As shown in Fig. 5, this circular switch 6c has a surface shape that is bowl-shaped with a recessed center.
[0029] As shown in Fig. 1, the front lower portion 35 has a tapered shape in which the width dimension decreases downward when viewed from the front. More specifically, the front lower portion 35 has a contour in which its side surfaces 36 are arc-shaped and convex outward, and its lower end surface 37 is a straight line parallel to the width direction X. In addition, as shown in Fig. 2, the front surface of the front lower portion 35 forms a forward-inclined surface 38 in which the upper portion is positioned further forward than the lower portion.
[0030] As shown in FIGS. 1 and 2, a puncture guide 50 is provided on the forward inclined surface 38, which is the front surface of the front lower portion 35. The puncture guide 50 is made of the same synthetic resin as the casing 2 (although it may be made of a different material), and is, for example, in the shape of a rectangular block. A groove is formed on the front surface of the puncture guide 50, and the needle 51 can be supported by fitting into this groove. By supporting the needle 51 in the groove, the puncture guide 50 guides the needle 51 to maintain the puncture direction in a predetermined direction. The puncture guide may be formed separately from the casing 2 and assembled to the casing 2, or it may be formed directly on the casing 2.
[0031] As shown in FIG. 1, the puncture guide 50 is disposed in the center of the width direction X of the casing 2. The needle 51 supported by the puncture guide 50 extends along the vertical direction Z at the center position of the width direction of the casing 2 when viewed from the front (which coincides with the center position of the width direction X of the monitor 3a in this embodiment). As shown in FIG. 2, the needle 51 supported by the puncture guide 50 is inclined forward at an angle greater than the forward inclined surface 38 of the tapered portion 35, and the needle tip is directed obliquely downward and backward. Note that the puncture guide 50 and the needle 51 are not shown in FIGS. 3 to 5.
[0032] As shown in FIG. 2, the rear casing 40 has a rear upper portion 41 that is held by an operator, and a rear lower portion 45 below the upper portion 41.
[0033] 5, the rear lower portion 45 extends rearward from the widthwise central portion of the back surface of the front lower portion 35, and has a depth dimension greater than its width dimension. The width dimension (thickness dimension) of the rear lower portion 45 is substantially the same as the depth dimension (thickness dimension) of the front lower portion 35. In addition, the lower end surface 47 of the rear lower portion 45 is at the same position in the vertical direction Z as the lower end surface 37 of the front lower portion 35.
[0034] The back surface 46 of the rear lower portion 45 extends upward from the rear end of the lower end surface 47 and forms an outwardly convex arc. Therefore, the depth dimension of the upper portion of the rear lower portion 45 is greater than that of the lower portion. As shown in Figure 5, the left and right side surfaces 48 of the rear lower portion 45 are approximately parallel to each other and form planes along the depth direction Y and the vertical direction Z.
[0035] The rear upper portion 41 has an arc portion 42 and a hole portion 43 formed by this arc portion 42. The arc portion 42 extends upward from the rear portion of the above-mentioned rear lower portion 45, curves forward, and reaches and is connected to the lower back surface of the upper casing 10. The hole portion 43 is defined at its rear and upper sides by the arc portion 42, its front side by the front upper portion 31 of the lower casing 20, and its lower side by the rear lower portion 45, thereby forming a circular hole that penetrates in the width direction X.
[0036] The opening diameter (diameter) of hole 43 is large enough to allow a human finger (typically, the middle finger or ring finger) to be inserted, and can be set, for example, in the range of 20 mm to 25 mm, but may also be large enough to allow multiple fingers to be inserted. Inserting a finger into hole 43 can improve the posture stability of casing 2. Note that, although hole 43 formed by arc portion 42 has been exemplified as the finger placement portion, this is not limiting, and the finger placement portion may also be formed by forming a recessed portion extending rearward on the back surface of casing 2.
[0037] 5, a first probe 60 is provided in the front lower portion 35, and a second probe 65 is provided in the rear lower portion 45. The first probe 60 and the second probe 65 constitute the ultrasound probe 4 of this embodiment.
[0038] The first probe 60 extends in a direction substantially parallel to the image display unit 3. More specifically, the first probe 60 has a plurality of transducers 61 that transmit and receive ultrasound arranged along the width direction X, and has an overall rectangular shape that is long in the width direction X. A rectangular acoustic lens 62 is provided below the plurality of transducers 61 so as to cover them. As shown in FIG. 1 , the center position of the first probe 60 in the width direction X coincides with the center position of the casing 2 in the width direction X, and also coincides with the position in the width direction X of the needle 51 supported by the puncture guide 50.
[0039] The second probe 65 extends in a direction substantially perpendicular to the image display unit 3. More specifically, the second probe 65 has a plurality of transducers 66 that transmit and receive ultrasonic waves arranged along the depth direction Y, and has an overall rectangular shape that is long in the depth direction Y. A rectangular acoustic lens 67 is provided below the plurality of transducers 66 so as to cover them. As shown in FIG. 5 , the center position of the second probe 65 in the width direction X coincides with the center position of the first probe 60 described above in the width direction X.
[0040] That is, the second probe 65 is provided so as to extend rearward from the center position of the first probe 60 in the width direction X, and the ultrasonic probe 4 consisting of the first probe 60 and the second probe 65 forms a T shape as a whole. Such an ultrasonic probe 4 is parallel to a plane including the width direction X and the depth direction Y (a plane perpendicular to the vertical direction Z).
[0041] 2, above such second probe 65 and behind curved surface 32 of casing 2, hole 43, which is an example of the finger placement portion described above, is located in which second probe 65 is located. In this embodiment, the center of the finger placement portion (center of hole 43) is located above the center of second probe 65 in the longitudinal direction (depth direction Y).
[0042] Fig. 6 is a block diagram of the ultrasonic diagnostic device 1. As shown in Fig. 6, the ultrasonic diagnostic device 1 includes an image display unit 3 having a monitor 3a, an ultrasonic probe 4, a control unit 5, an operation unit 6, an ultrasonic transmission / reception unit 7, an image processing unit 8, and a storage unit 9.
[0043] The control unit 5 is composed of a processor such as an MPU, a ROM, a RAM, etc., and controls the operation of each unit according to the program stored in the ROM. The image display unit 3 has a monitor 3a composed of a liquid crystal panel or the like as described above, and is driven by the control unit 5 to display a cross-sectional image of the subject generated from the waves received by the ultrasound probe 4. The operation unit 6 is composed of switches 6a to 6c, etc., which are operated by the operator, and information such as whether or not these switches are operated is input to the control unit 5. If the monitor 3a is composed of a touch panel, the monitor 3a is also included in the operation unit 6.
[0044] The ultrasonic transmission / reception unit 7 has, for example, a pulse generation circuit, and drives the transducers 61, 66 with a predetermined time difference based on the generated pulse signal. The ultrasonic transmission / reception unit 7 also amplifies the reflected waves from the subject received by the transducers 61, 66 in an amplifier circuit, and adjusts the phase difference of the received waves according to the transducers 61, 66 that received them.
[0045] The image processing unit 8 is connected to the ultrasonic transmission / reception unit 7. The image processing unit 8 converts the analog signal from the ultrasonic transmission / reception unit 7 into a digital signal and generates image data (tomographic image) having a brightness corresponding to the intensity of the converted signal. The storage unit 9 is made up of a volatile memory such as a DRAM (Dynamic RAM) or an SRAM (Static RAM), and temporarily stores the image data generated by the image processing unit 8 and transmits the image data to the image display unit 3 based on instructions from the control unit 5. The image display unit 3 displays a tomographic image of the subject on the monitor 3a based on the received image data.
[0046] Such an ultrasound diagnostic apparatus 1 can transmit ultrasound waves simultaneously or selectively from each of the first probe 60 and the second probe 65. The reflected waves reflected from the subject are then received by the first probe 60 and the second probe 65. The ultrasound diagnostic apparatus 1 generates a first cross-sectional image along the width direction (first direction) X of the subject based on the reflected waves received by the first probe 60, and generates a second cross-sectional image along the depth direction (second direction) Y of the subject based on the reflected waves received by the second probe 65.
[0047] The ultrasound diagnostic device 1 can simultaneously or alternately display two images, the first cross-sectional image and the second cross-sectional image, on the monitor 3a of the image display unit 3 provided in the casing 2. This allows the patient to easily perform puncture while checking the short-axis image and long-axis image of the subject.
[0048] Fig. 7(a) shows an example in which two images are displayed simultaneously. As shown in Fig. 7(a), the monitor 3a can display images on two screens, for example, an upper screen 70 and a lower screen 71, which are arranged vertically. By displaying a first cross-sectional image P1 on one screen and a second cross-sectional image P2 on the other screen, two images can be displayed simultaneously.
[0049] Typically, a first cross-sectional image P1 can be displayed on the lower portion 71 of the monitor 3a, and a second cross-sectional image P2 can be displayed on the upper portion 72. In this case, when the ultrasound probe 4 of the ultrasound diagnostic device 1 is placed against the body surface of a patient and the first probe 60 is oriented in the cross-sectional direction of the blood vessel, a short-axis image (transverse cross-sectional image) of the blood vessel is displayed as the first cross-sectional image P1 on the lower portion 72 of the monitor 3a, and a long-axis image (longitudinal cross-sectional image) of the blood vessel is displayed as the second cross-sectional image P2 on the upper portion 71 of the monitor 3a. Figure 7(a) illustrates this case.
[0050] As already explained, in the ultrasound diagnostic apparatus 1 according to this embodiment, the center positions in the width direction X of the first probe 60 and the monitor 3a coincide with each other. Therefore, an image generated from a reflected wave received by the transducer 61 located at the center of the width direction X of the first probe 60 is displayed at the center of the width direction X of the monitor 3a. Furthermore, the center position in the width direction X of the first probe 60 also coincides with the position in the width direction X of the needle 51 supported by the puncture guide 50.
[0051] Therefore, in the first cross-sectional image P1, the needle image P3, which is an image corresponding to the needle 51, is displayed at the center of the width direction X of the monitor 3a. In this case, when the ultrasound diagnostic apparatus 1 is viewed from the front, the position of the needle 51 supported by the puncture guide 50 and the needle image P3 in the first cross-sectional image P1 are positioned one behind the other with their positions in the width direction X coinciding. This makes it easier for the operator to perform the puncture operation, and in particular, displaying a short-axis image as the first cross-sectional image P1 in the lower part 71 of the monitor 3a close to the needle 51 makes the puncture operation even easier.
[0052] Conversely, the first cross-sectional image may be displayed in the upper portion 70 of the monitor 3a, and the second cross-sectional image may be displayed in the lower portion 71. The operator may be able to select and determine the display positions of the first cross-sectional image and the second cross-sectional image by operating the operation unit 6.
[0053] 7(b) shows an example in which two images are switched for display. As shown in this Fig. 7(b), the ultrasound diagnostic device 1 displays one of the first cross-sectional image P1 and the second cross-sectional image P2 on the entire screen of the monitor 3a, and the operator can switch the image to be displayed so as to display the other of the first cross-sectional image P1 and the second cross-sectional image P2 through operation of the operation unit 6.
[0054] In this case as well, in the first cross-sectional image P1, the needle image P3, which is an image corresponding to the needle 51, is displayed at the center of the width direction X of the monitor 3a. Therefore, when the ultrasound diagnostic apparatus 1 is viewed from the front, when the first cross-sectional image P1 is displayed on the monitor 3a, the position of the needle 51 supported by the puncture guide 50 and the needle image P3 in the first cross-sectional image P1 are positioned one behind the other with their positions in the width direction X coinciding. This makes it easier for the operator to perform the puncture operation.
[0055] The ultrasonic diagnostic device 1 also has a hole 43 at its rear. Therefore, the operator can firmly and stably hold the ultrasonic diagnostic device 1 by inserting, for example, the ring finger into the hole, placing the index finger and middle finger on the back surface of the casing 2, and placing the thumb on the front surface of the casing 2. This allows stable adjustment of the position of the ultrasonic probe 4 relative to the subject and stable insertion of the needle 51.
[0056] The above description is merely an embodiment, and application examples of the present invention are not limited to this. For example, the puncture guide 50 may be directly provided on the casing 2, or may be detachably attached to the casing 2 via a bracket or the like. Furthermore, the hole 43 is not limited to being closed in its entire circumferential direction, and may be open by cutting out a portion of the circumferential direction (typically, a portion of the arc portion 42). Furthermore, the ultrasound probe 4 is not limited to being T-shaped, and may be, for example, X-shaped, as long as it includes probes extending in directions that intersect with each other.
[0057] Furthermore, in the present embodiment, a configuration in which a vertically long monitor 3a is divided into an upper section 70 and a lower section 71 has been exemplified as a configuration in which two screens are displayed simultaneously, but this is not limiting. For example, a horizontally long monitor may be used, with the first cross-sectional image P1 and the second cross-sectional image P2 simultaneously displayed on the screen divided into left and right sections when viewed from the front. In this case, too, it is preferable to display the first cross-sectional image P1 so that the needle image P3 in the first cross-sectional image P1 coincides with the position in the width direction X of the needle 51 supported by the puncture guide 50. [Industrial Applicability]
[0058] The present invention can be suitably applied to an ultrasonic diagnostic apparatus that obtains cross-sectional images of a subject. [Explanation of symbols]
[0059] 1. Ultrasound diagnostic equipment 2 Casing 3 Image display section 4 Ultrasound probe 5. Control section 6 Control section 43 Hole (finger rest) 60 First Probe 65 Second Probe P1 First cross-sectional image P2 Second cross-sectional image
Claims
1. an ultrasonic probe having a first probe in which a plurality of transducers for transmitting and receiving ultrasonic waves are arranged in a left-right direction, which is a first direction, and a second probe in which a plurality of transducers for transmitting and receiving ultrasonic waves are arranged in a front-rear direction, which is a second direction intersecting the first direction; an image display unit having a display surface for displaying a cross-sectional image of the subject; a control unit that controls the operation of the ultrasound probe and the image display unit; a casing that houses the ultrasonic probe, the image display unit, and the control unit, the control unit causes the image display unit to simultaneously display a first cross-sectional image of the subject along the left-right direction generated based on the received waves of the first probe and a second cross-sectional image of the subject along the front-back direction generated based on the received waves of the second probe; When a third direction intersecting both the first direction and the second direction is defined as a vertical direction, the casing has an upper casing in which the display screen is located on a front surface that is one surface in the front-rear direction, and a lower casing that houses the ultrasonic probe, the first probe extending in the left-right direction is provided on a front lower portion of the lower casing, and the second probe extending in the front-rear direction is provided on a rear lower portion of the lower casing, a hole portion penetrating in the left-right direction and into which a finger of a human hand is inserted is provided at the rear portion of the lower casing and above the second probe, and the hole portion and the second probe are connected in the up-down direction by a rear lower portion of the lower casing; Ultrasound diagnostic equipment.
2. The ultrasonic diagnostic apparatus according to claim 1 , wherein the image display unit displays the first cross-sectional image on a lower side and the second cross-sectional image on an upper side.
3. an ultrasonic probe having a first probe in which a plurality of transducers for transmitting and receiving ultrasonic waves are arranged in a left-right direction, which is a first direction, and a second probe in which a plurality of transducers for transmitting and receiving ultrasonic waves are arranged in a front-rear direction, which is a second direction intersecting the first direction; an image display unit having a display surface for displaying a cross-sectional image of the subject; a control unit that controls the operation of the ultrasound probe and the image display unit; a casing that houses the ultrasonic probe, the image display unit, and the control unit, the control unit switches between displaying a first cross-sectional image along the left-right direction of the subject generated based on the received wave of the first probe and a second cross-sectional image along the front-back direction of the subject generated based on the received wave of the second probe on the image display unit, and When a third direction intersecting both the first direction and the second direction is defined as a vertical direction, the casing has an upper casing in which the display screen is located on a front surface that is one surface in the front-rear direction, and a lower casing that houses the ultrasonic probe, the first probe extending in the left-right direction is provided on a front lower portion of the lower casing, and the second probe extending in the front-rear direction is provided on a rear lower portion of the lower casing, a hole portion penetrating in the left-right direction and into which a finger of a human hand is inserted is provided at the rear portion of the lower casing and above the second probe, and the hole portion and the second probe are connected in the up-down direction by a rear lower portion of the lower casing; Ultrasound diagnostic equipment.
4. Further provided is a puncture guide for guiding the needle, the image display unit and the puncture guide are arranged side by side in the up-down direction in the casing, the needle supported by the puncture guide and the image of the needle included in the first cross-sectional image displayed on the image display unit are positioned in the same left-right direction; 4. The ultrasonic diagnostic apparatus according to claim 1.
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