X-ray generating apparatus and x-ray imaging apparatus
By using an insulating liquid-filled container and insulating components made of specific materials to cover the cathode and anode in the X-ray generating apparatus, the problem of abnormal discharge between the cathode and anode was solved, improving the reliability and lifespan of the apparatus.
Patent Information
- Application Number
- CN202380092277.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Priority Date
- 2023-01-25
- Filing Date
- 2023-09-13
- Publication Date
- 2025-10-28
AI Technical Summary
During prolonged use, X-ray generating devices are prone to abnormal discharge between the cathode and anode, which can lead to device malfunction or shutdown.
By using an insulating liquid-filled container in the X-ray generating apparatus to cover the outer surface of the insulating tube between the cathode and anode, and by using insulating components of specific materials and construction to cover the cathode and anode, the accumulation of charge caused by triboelectric charging is reduced, and the insulation performance is improved.
This effectively reduces abnormal discharge between the cathode and anode, improving the reliability and lifespan of the X-ray generating device.
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Figure CN120858653A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to X-ray generating apparatus and X-ray imaging apparatus. Background Technology
[0002] PTL 1 describes an X-ray generating apparatus including an X-ray generating tube, a tube driving circuit for driving the X-ray generating tube, and a housing container for housing the X-ray generating tube and the tube driving circuit. The housing container is filled with an insulating liquid, and the insulating liquid ensures insulation between the X-ray generating tube and the tube driving circuit.
[0003] Citation List
[0004] Patent Literature
[0005] PTL 1: Japanese Patent Application Publication No. 2016-103451 Summary of the Invention
[0006] When an X-ray generating device is used for extended periods, abnormal discharges sometimes occur within the X-ray generating tube. The inventors' research has revealed that these abnormal discharges occur between the cathode and anode of the X-ray generating tube via the outer surface of the insulating tube. These abnormal discharges can cause the X-ray generating device to stop or malfunction.
[0007] One aspect of the present invention provides an advantageous technique for suppressing the occurrence of abnormal discharges in X-ray generating apparatus.
[0008] A first aspect of the present invention relates to an X-ray generating apparatus, the X-ray generating apparatus comprising: an X-ray generating tube including an insulating tube, a cathode, and an anode, the insulating tube having a first open end and a second open end, the cathode being arranged to close the first open end of the insulating tube and including an electron emitting portion, the anode being arranged to close the second open end and including a target, the target generating X-rays upon collision with electrons from the electron emitting portion; an electronic assembly arranged adjacent to the cathode; a driving circuit configured to drive the X-ray generating tube via the electronic assembly; and a receiving container. A container is configured to house the X-ray generating tube, the electronic components, and the drive circuitry, wherein the container has a third open end, and the X-ray generating tube is arranged to close the third open end. The container is filled with an insulating liquid. The container defines a first space and a second space, the first space storing at least a portion of the drive circuitry, the second space protruding from the first space and storing the X-ray generating tube and the electronic components. The container includes a protruding portion surrounding the second space, and one end of the second space forms the third open end. The outer surface of the cathode and the electronic components are covered by components arranged spaced apart from the container.
[0009] A second aspect of the present invention relates to an X-ray generating apparatus, the X-ray generating apparatus comprising: an X-ray generating tube including an insulating tube, a cathode, and an anode, the insulating tube having a first open end and a second open end, the cathode being arranged to close the first open end of the insulating tube and including an electron emitting portion, the anode being arranged to close the second open end and including a target, the target generating X-rays upon collision with electrons from the electron emitting portion; a driving circuit configured to drive the X-ray generating tube; and a receiving container configured to receive the X-ray generating tube and the driving circuit. The container has a third open end, and the X-ray generating tube is arranged to close the third open end. The container is filled with an insulating liquid. The container defines a first space and a second space. The first space stores a portion of the drive circuit. The second space protrudes from the first space and stores the X-ray generating tube. The container includes a protruding portion surrounding the second space, and one end of the second space forms the third open end. The outer surface of the cathode and the drive circuit are covered by an insulating member arranged spaced apart from the container, and the insulating liquid is present between the insulating member and the container.
[0010] A third aspect of the invention relates to an X-ray imaging apparatus, the X-ray imaging apparatus comprising: an X-ray generating device as defined in the first or second aspect; and an X-ray detector configured to detect X-rays emitted from the X-ray generating device. Attached Figure Description
[0011] Figure 1 This is a schematic diagram illustrating the arrangement of a conventional X-ray generating apparatus to explain the basic arrangement of the X-ray generating apparatus according to this disclosure;
[0012] Figure 2 This is an illustrative and schematic diagram showing the arrangement of the X-ray generating apparatus according to the first embodiment;
[0013] Figure 3 This is an illustrative and schematic diagram showing the arrangement of the X-ray generating apparatus according to the second embodiment;
[0014] Figure 4 This is an illustrative and schematic diagram showing the arrangement of the X-ray generating apparatus according to the third embodiment;
[0015] Figure 5 This is an illustrative and schematic diagram showing the arrangement of the X-ray generating apparatus according to the fourth embodiment;
[0016] Figure 6 It is a schematic diagram illustrating the occurrence of abnormal discharge;
[0017] Figure 7 This is a diagram illustrating the triboelectric series in triboelectric charging with an insulating liquid;
[0018] Figure 8 This is an illustrative and schematic diagram showing the arrangement of the X-ray generating apparatus according to the fifth embodiment;
[0019] Figure 9 This is an illustrative and schematic diagram showing the arrangement of the X-ray generating apparatus according to the sixth embodiment; and
[0020] Figure 10 This is a block diagram illustrating the arrangement of an X-ray imaging apparatus according to an embodiment. Detailed Implementation
[0021] In the following description, embodiments will be illustrated in detail with reference to the accompanying drawings. Note that the following embodiments are not intended to limit the scope of the claimed invention. Several features are described in the embodiments, but the invention is not limited to requiring all such features, and several such features may be suitably combined. Furthermore, in the drawings, the same or similar configurations are given the same reference numerals, and repeated descriptions thereof are omitted.
[0022] First, refer to Figure 1 The basic arrangement of an X-ray generating apparatus 100 according to this disclosure is described. The X-ray generating apparatus 100 may include an X-ray generating tube 1 and a receiving container 50 housing the X-ray generating tube 1. The X-ray generating apparatus 100 may also include a drive circuit 40 for driving the X-ray generating tube 1, and the drive circuit 40 is housed in the receiving container 50 and is connected to the X-ray generating tube 1 via a cable 42. A portion of the X-ray generating tube 1 (the anode 20, described later) may be exposed to the external space of the receiving container 50 (the external space of the X-ray generating apparatus 100). The internal space of the receiving container 50 is filled with an insulating liquid 60. From another perspective, the internal space of the receiving container 50 is filled with the insulating liquid 60, except for the space occupied by the components (X-ray generating tube 1, cable 42, etc.) housed within it. The insulating liquid 60 may be, for example, an insulating oil such as mineral oil or a chemically synthesized oil. Alternatively, the insulating liquid 60 may be a liquid other than an insulating oil, such as a fluorinated inert liquid (e.g., Fluorinert). TM ).
[0023] X-ray generating tube 1 may include an insulating tube 10, a cathode 30, and an anode 20. A vacuum is maintained within the internal space of the X-ray generating tube 1. The insulating tube 10 may have a first open end OP1 and a second open end OP2. The insulating tube 10 may have a tubular shape, such as a cylindrical shape. The insulating tube 10 may be configured to provide vacuum tightness and insulation for the internal space of the insulating tube 10. The insulating tube 10 may be made of a ceramic material, for example, primarily comprising alumina or zirconium oxide. Alternatively, the insulating tube 10 may be made of a glass material such as borosilicate glass.
[0024] The cathode 30 can be arranged to close the first open end OP1 of the insulating tube 10. The cathode 30 includes an electron emitting portion 32. The cathode 30 can be arranged to not contact the insulating liquid 60. The X-ray generating apparatus 100 can be configured such that a component having the same potential as the cathode 30 does not contact the insulating liquid 60. The anode 20 can be arranged to close the second open end OP2 of the insulating tube 10. The anode 20 can include a target 23 that generates X-rays when electrons from the electron emitting portion 32 collide with it. The anode 20 can include a target holding plate 22 that holds the target 23 and an electrode 21 that supports the target holding plate 22. The electrode 21 is formed of a conductor and is electrically connected to the target 23 to apply a potential to the target 23. The anode 20 and the container 50 can be maintained at, for example, ground potential, but can be maintained at another potential. The target 23 can be made of a material with a high melting point and high X-ray generation efficiency, such as tungsten, tantalum, or molybdenum. The target holding plate 22 can be made of, for example, a material that can easily transmit X-rays, such as beryllium or diamond.
[0025] The container 50 may have a third open end OP3. The container 50 may include, for example, a first portion 52, a second portion 53, a third portion 54, a fourth portion 55, and a fifth portion 56. The first portion 52 may have a tubular shape, such as a cylindrical shape. The first portion 52 may define the third open end OP3 of the container 50. In other words, the first portion 52 may include the third open end OP3. The second portion 53 is formed of a conductor and is electrically connected to the anode 20 of the X-ray generating tube 1. It is understood that the second portion 53 forms the anode together with the electrode 21. The second portion 53 may have an annular shape or a frame shape. The second portion 53 may be arranged to contact the insulating liquid 60. Alternatively, a conductive member including the electrode 21 and the second portion 53 may be arranged to contact the insulating liquid 60. The electrode 21 and the second portion 53 may be formed as a single component of the same material. The fourth portion 55 may have a tubular shape, such as a cylindrical shape or a rectangular tubular shape. The third portion 54 is connected to one end of the fourth portion 55 and may have an annular shape or a frame shape. The first part 52 can be connected to the third part 54 to protrude from the third part 54. The fifth part 56 can be connected to the other end of the fourth part 55. Alternatively, except for the joint portion with the first part 52, the third part 54, the fourth part 55 and the fifth part 56 can be integrated into a hollow spherical shape.
[0026] The insulating liquid 60 can induce convection within the internal space of the container 50. When the entire outer surface 14 of the insulating tube 10 comes into contact with the insulating liquid 60, both the insulating tube 10 and the insulating liquid 60 can become charged through friction between the insulating liquid 60 and the outer surface 14 of the insulating tube 10. This charging is called triboelectric charging. Generally, triboelectric charging refers to the phenomenon where friction between two different types of materials causes charges to move between the two types of materials, thus one material becomes positively charged and the other becomes negatively charged. The inventors conducted an experiment measuring the potential of the outer surface of the insulating tube using a surface potentiometer after leaving the insulating tube in convection of insulating oil (insulating liquid). As a result, it was confirmed that the outer surface of the insulating tube was positively charged and that the charge increased proportionally with time. The polarity of the charge induced by friction depends on the properties of the materials rubbed together. Examples of material properties include triboelectric series and relative permittivity. Figure 7 An example of triboelectric series relative to insulating oil is shown. The triboelectric series indicates the order in which the materials being rubbed are charged (positive or negative) and how easily they become charged. In the triboelectric series, materials on the positive side are more likely to become positively charged, and materials on the negative side are more likely to become negatively charged.
[0027] When the outer surface 14 of the insulating tube 10 is positively charged, the insulation performance between the cathode 30 and the anode 20 decreases. The insulation performance between the cathode 30 and the anode 20 depends on the potential difference between them, the resistance between them, and the distance between them. Experiments showed that when the insulating tube 10 is positively charged, as... Figure 6 The thick arrows in the diagram schematically indicate that the cathode 30 and anode 20 are short-circuited via the outer surface 14 of the insulating tube 10. Furthermore, as a result of the experiment, it was found that when the outer surface 14 of the insulating tube 10, the cathode 30, and the insulating liquid 60 form a triple point, abnormal discharge is prone to occur due to electron avalanche.
[0028] The following will be through Figure 2 , Figure 3 , Figure 4 and Figure 5 The various embodiments shown illustratively describe the X-ray generating apparatus 100 of this disclosure. Matters not mentioned below may be followed in the references. Figure 1 The basic layout described.
[0029] Figure 2An arrangement of an X-ray generating apparatus 100 according to a first embodiment is illustrated illustratively and schematically. A container 50 may be filled with an insulating liquid 60 to contact a portion of the anode (e.g., a second portion 53) and cover the outer surface 14 of the insulating tube 10 and the outer surface 34 of the cathode 30. In the X-ray generating apparatus 100 of the first embodiment, at least a portion of the insulating tube 10 is surrounded by a member 72 to reduce abnormal discharge between the cathode 30 and the anode 20 via the insulating tube 10. The member 72 may be made of an insulating material. More specifically, in the X-ray generating apparatus 100 of the first embodiment, the entire area of the outer surface 34 of the insulating tube 10 may be surrounded by the member 72. From another viewpoint, the entire area of the outer surface 14 of the insulating tube 10 may be covered by the member 72. In addition to the entire area of the outer surface 14 of the insulating tube 10, the entire area of the outer surface 34 of the cathode 30 may also be covered by the member 72. The first embodiment is effective in avoiding the formation of a triple point by the outer surface 14 of the insulating tube 10, the cathode 30, and the insulating liquid 60, thereby enabling the reduction of abnormal discharge.
[0030] To reduce abnormal discharge between the cathode 30 and anode 20 via the insulating tube 10, the material of component 72 is determined such that frictional charging between component 72 and the insulating liquid 60 causes component 72 to become negatively charged and the insulating liquid 60 to become positively charged. When insulating oil is used as the insulating liquid 60, for example, it can be determined according to... Figure 7 The triboelectric sequence illustrated in the diagram selects the material of component 72 such that triboelectric charging between component 72 and the insulating oil causes component 72 to become negatively charged. For example, a material for component 72 is polytetrafluoroethylene (PTFE). TM PMMA (polymethyl methacrylate), epoxy resins, and fluororubber (e.g., Viton). TM It is preferred that component 72 is arranged to cover the entire area of the outer surface 14 of the insulating tube 10 and the entire area of the outer surface 34 of the cathode 30, and therefore, methods such as molding, spraying, and dipping can be applied.
[0031] To reduce abnormal discharge between the cathode 30 and anode 20 via the insulating tube 10, the material of component 72 can be determined such that the difference in relative permittivity between component 72 and the insulating liquid 60 is less than the difference in relative permittivity between component 72 and the insulating tube 10. For example, component 72 is made of Viton rubber with a relative permittivity of 3 or polytetrafluoroethylene with a relative permittivity of 2.1, and the insulating tube 10 is made of borosilicate glass with a relative permittivity of 4.9 or alumina with a relative permittivity of 9. The fact that the difference in relative permittivity between component 72 and the insulating liquid 60 is less than the difference in relative permittivity between component 72 and the insulating tube 10 can be evaluated at the temperature at which X-rays are generated or at room temperature (e.g., 25°C). However, there is no significant difference between the former and the latter.
[0032] A preferred molding method for forming component 72 to cover the X-ray generating tube 1 (the outer surface 14 of the insulating tube 10 and the outer surface 34 of the cathode 30) will now be described. The material of component 72 (i.e., the covering material) is obtained by pre-kneading the main agent and curing aid using a kneading device to ensure it is free of air bubbles and can be maintained at a constant temperature to maintain proper flow. In the case of epoxy resins, the temperature is, for example, about 100°C, but can be appropriately determined depending on the material to be used. The covering material can be poured into a container larger than the X-ray generating tube 1 to be covered. At this time, the covering material can be rapidly cooled due to the temperature difference between the container and the covering material, thereby degrading the flowability of the covering material. To prevent this, it is desirable to preheat the container. After the covering material poured into the container overflows, the covering material can be cured at an appropriate cooling rate and temperature distribution to avoid problems such as shrinkage.
[0033] In the X-ray generating tube 1, a high voltage is applied between the anode 20 and the cathode 30. Therefore, if bubbles with a small dielectric constant are present in the component 72 made of the covering material, the electric field concentrates on the bubbles, thereby inducing abnormal discharge. To avoid this, the space in which the filling of the covering material is performed can be pre-emptively vented using a vacuum pump to obtain a vacuum level of approximately several hundred to several thousand Pa. Furthermore, to improve the adhesion between the covering material and the X-ray generating tube 1, the component 72 can be used to cover the X-ray generating tube 1 after applying a primer material to the surface of the X-ray generating tube 1 or after creating an uneven surface through sandblasting. From the viewpoint of heat dissipation of the X-ray generating tube 1, a small thickness of the component 72 is desirable. For example, the thickness of the component 72 is preferably 5 mm or less, and more preferably 3 mm or less. For example, the thickness of the component 72 is preferably 0.3 mm or more, and more preferably 0.5 mm or more.
[0034] Figure 3The arrangement of the X-ray generating apparatus 100 according to the second embodiment is illustrated illustratively and schematically. Matters not mentioned in the second embodiment may be followed in the first embodiment or referred to in the reference. Figure 1 The basic arrangement is described. Component 72 can be arranged to cover the contact portion C between the cathode 30 and the insulating tube 10. Furthermore, component 72 can be arranged to cover the cathode 30. The second embodiment is also effective in preventing the formation of a triple point between the outer surface 14 of the insulating tube 10, the cathode 30, and the insulating liquid 60, thereby reducing the occurrence of abnormal discharges.
[0035] Figure 4 The arrangement of the X-ray generating apparatus 100 according to the third embodiment is illustrated illustratively and schematically. Matters not mentioned in the third embodiment may be followed in the first or second embodiment or referenced. Figure 1 The basic arrangement is described. In the third embodiment, an intermediate layer 75 is provided between the member 72 and the insulating tube 10. The intermediate layer 75 can be made of an insulating material. The intermediate layer 75 can be configured to cover the insulating tube 10. The member 72 can be configured to cover the intermediate layer 75. The intermediate layer 75 can be made of, for example, Kovar glass, nylon, and at least one of a mixture containing a metal oxide with silicon dioxide as the main component. Providing the intermediate layer 75 is advantageous, for example, forming a smooth surface to cover the outer surface 14 of the insulating tube 10. Forming the intermediate layer 75 is advantageous in inhibiting foreign matter from entering between the particles forming the insulating tube 10. As a result, the creepage withstand voltage on the surface of the member 72 arranged to cover the insulating tube 10 can be improved. This can prevent abnormal discharge, thereby increasing the lifespan of the X-ray generating apparatus 100.
[0036] Figure 5 The arrangement of the X-ray generating apparatus 100 according to the fourth embodiment is illustrated illustratively and schematically. Matters not mentioned in the fourth embodiment may be followed in the first to third embodiments or referred to in the following documents. Figure 1The basic arrangement is described. In the fourth embodiment, member 72 may include an annular portion. Alternatively, member 72 may be an annular portion. The annular portion may surround the entire circumference of a portion of the outer surface 14 of the insulating tube 10 in the axial direction (which is the axial direction of the insulating tube 10 and also the direction in which the electron beam is emitted from the electron emitting portion 32). The outer surface 14 of the insulating tube 10 may contact the insulating liquid 60 in the area other than the area surrounded by member 72. The shortest distance between member 72 and cathode 30 is preferably less than the shortest distance between member 72 and anode 20. The insulating tube 10 may be surrounded by a plurality of members 72 (annular portions). The plurality of members 72 may be arranged spaced apart from each other relative to the axial direction of the insulating tube 10. Member 72 may be formed of, for example, Vitronic rubber. Even if the outer surface 14 of the insulating tube 10 is positively charged, when member 72 is negatively charged, the positive charge on the entire outer surface 14 of the insulating tube 10 can be reduced. This can reduce the occurrence of abnormal discharge.
[0037] Figure 8 The arrangement of the X-ray generating apparatus 100 according to the fifth embodiment is illustrated illustratively and schematically. Matters not mentioned in the fifth embodiment can be followed according to the first to fourth embodiments or referred to in the following documents. Figure 1 The basic layout described.
[0038] The receiving container 50 may define a first space SP1 for storing the drive circuit 40, and a second space SP2 protruding from the first space SP1 and storing the X-ray generating tube 1. More specifically, a third portion 54, a fourth portion 55, and a fifth portion 56 of the receiving container 50 may define the first space SP1. On the other hand, a first portion 52 and a second portion 53 of the receiving container 50 may define the second space SP2. One end of the second space SP2 may form a third opening end OP3. The first portion 52 may form a protrusion protruding from the third portion 54.
[0039] X-ray generating apparatus 100 may include an electronic component 70 arranged adjacent to cathode 30. A drive circuit 40 may be configured to drive the X-ray generating tube 1 via the electronic component 70. The drive circuit 40 may be connected to the electronic component 70 via a cable 42. The electronic component 70 may include protective circuitry elements for protecting cathode 30, such as a rheostat (variable resistor). The electronic component 70 may include electrical terminals connected to cathode 30.
[0040] The insulating tube 10 can be arranged such that its entirety is housed within the second space SP2. In other words, in the direction D in which the electron beam is emitted from the electron emitting section 32, the length of the first section 52 is greater than the length of the insulating tube 10. From another perspective, in the direction D in which the electron beam is emitted from the electron emitting section 32, the length of the second space SP2 is greater than the length of the insulating tube 10. In this case, the cable 42 exists at the boundary between the first space SP1 and the second space SP2. The cross-section including the direction D (axis of the X-ray generating tube 1)... Figure 8 In the container 50, the second portion 52 or the third portion 54 may include a protrusion 90 that protrudes toward the interior of the container 50.
[0041] The X-ray generating tube 1 can be arranged such that its entirety is housed in the second space SP2. The cathode 30 can be arranged such that its entirety is housed in the second space SP2. The outer surface 34 of the cathode 30 may include a cylindrical side surface 35 and a circular bottom surface 36. The cylindrical side surface 35 has a non-zero dimension in the axial direction of the insulating tube 10 or in the direction D in which the electron beam is emitted from the electron emitting section 32. The bottom surface 36 of the outer surface 34 of the cathode 30 may face the drive circuit 40. The bottom surface 36 has a non-zero dimension in the radial direction of the insulating tube 10 or in a direction orthogonal to the direction D in which the electron beam is emitted from the electron emitting section 32.
[0042] In the fifth embodiment, the distance between the cathode 30 and the first portion 52 is smaller compared to the first to fourth embodiments. Therefore, an abnormal discharge can occur between the first portion 52, to which a ground potential can be applied, and the cathode 30. To prevent this, at least a portion, or preferably the entirety, of the side surface 35 of the outer surface 34 of the cathode 30 closest to the first portion 52 can be surrounded by a member 72. The member 72 can be made of an insulating material. The member 72 is spaced apart from the receiving container 50. The member 72 can be arranged to surround at least a portion of the outer surface 14 of the insulating tube 10 in addition to surrounding the side surface 35 of the cathode 30, and preferably the entire outer surface 14 of the insulating tube 10. This prevents abnormal discharge between the first portion 52 and the cathode 30.
[0043] Component 72 can be arranged to cover the electronic assembly 70 in addition to covering the outer surface 34 of the cathode 30. The electronic assembly 70 may have a first surface S1 contacting the bottom surface 36 of the cathode 30, a second surface S2 opposite to the first surface S1, and a third surface S3 connecting the first surface S1 and the second surface S2. Component 72 can be arranged to cover the second surface S2 and the third surface S3 of the electronic assembly 70. Component 72 may have holes allowing the cable 42 to pass through. When component 72 covers the entire electronic assembly 70, when component 72 contacts the entire electronic assembly 70 to surround it, or when component 72 covers the second surface S2 and the third surface S3 of the electronic assembly 70, abnormal discharge between the electronic assembly 70 and the first portion 52 can be prevented.
[0044] Component 72 can be arranged to cover at least a portion of the outer surface 14 of the insulating tube 10 in addition to covering the side surface 35 of the cathode 30. Alternatively, component 72 can be arranged to cover the entire outer surface 14 of the insulating tube 10 in addition to covering the side surface 35 of the cathode 30. Here, component 72 can be a continuous component covering both the side surface 35 of the cathode 30 and the outer surface 14 of the insulating tube 10. The arrangement in which component 72 completely or partially covers the outer surface 14 of the insulating tube 10 is advantageous in improving the insulation performance between the cathode 30 and the anode 20.
[0045] In the fifth embodiment, insulation measures may also be taken between the cathode 30 and the anode 20, as in the first and fourth embodiments.
[0046] Figure 9 The arrangement of the X-ray generating apparatus 100 according to the sixth embodiment is illustrated illustratively and schematically. Matters not mentioned in the sixth embodiment may be followed in the first to fourth embodiments or referred to in the following documents. Figure 1 The basic arrangement is described. The sixth embodiment also has aspects that are modifications of the fifth embodiment.
[0047] The receiving container 50 may define a first space SP1 for storing the drive circuit 40 and a second space SP2 protruding from the first space SP1 and storing the X-ray generating tube 1. More specifically, the third portion 54, the fourth portion 55, and the fifth portion 56 of the receiving container 50 may define the first space SP1. On the other hand, the first portion 52 and the second portion 53 of the receiving container 50 may define the second space SP2. One end of the second space SP2 may form a third open end OP3. The first portion 52 may form a protrusion protruding from the third portion 54. The entire drive circuit 40 may be arranged in the first space SP1, or a portion of the drive circuit 40 may be arranged in the first space SP1. If a portion of the drive circuit 40 is arranged in the first space SP1, the other portion of the drive circuit 40 may be arranged in the second space SP2.
[0048] The insulating tube 10 can be arranged such that its entirety is housed within the second space SP2. In other words, in the direction D in which the electron beam is emitted from the electron emitting section 32, the length of the first section 52 is greater than the length of the insulating tube 10. From another perspective, in the direction D in which the electron beam is emitted from the electron emitting section 32, the length of the second space SP2 is greater than the length of the insulating tube 10. In this case, the cable 42 may or may not be present at the boundary between the first space SP1 and the second space SP2. The cross-section including the direction D (axis of the X-ray generating tube 1)... Figure 9 In the container 50, the second portion 52 or the third portion 54 may include a protrusion 90 that protrudes toward the interior of the container 50.
[0049] The X-ray generating tube 1 can be arranged such that its entirety is housed in the second space SP2. The cathode 30 can be arranged such that its entirety is housed in the second space SP2. The outer surface 34 of the cathode 30 may include a cylindrical side surface 35 and a circular bottom surface 36. The cylindrical side surface 35 has a non-zero dimension in the axial direction of the insulating tube 10 or in the direction D in which the electron beam is emitted from the electron emitting section 32. The bottom surface 36 of the outer surface 34 of the cathode 30 may face the drive circuit 40. The bottom surface 36 has a non-zero dimension in the radial direction of the insulating tube 10 or in a direction orthogonal to the direction D in which the electron beam is emitted from the electron emitting section 32.
[0050] The outer surface 34 of the cathode 30 and the drive circuit 40 can be covered by an insulating member 73 arranged spaced apart from the container 50. An insulating liquid 60 is present between the insulating member 73 and the container 50. The cable 42 connecting the drive circuit 40 and the X-ray generating tube 1 can also be covered by the insulating member 73.
[0051] X-ray generating apparatus 100 may include an electronic component 70 arranged adjacent to cathode 30. A drive circuit 40 may be configured to drive the X-ray generating tube 1 via the electronic component 70. The drive circuit 40 may be connected to the electronic component 70 via a cable 42. The electronic component 70 may include protective circuitry elements for protecting cathode 30, such as a rheostat (variable resistor). The electronic component 70 may include electrical terminals connected to cathode 30.
[0052] The insulating member 73 can be arranged to cover the electronic assembly 70 in addition to covering the outer surface 34 of the cathode 30. The electronic assembly 70 may have a first surface S1 that contacts the bottom surface 36 of the cathode 30, a second surface S2 on the opposite side of the first surface S1, and a third surface S3 connecting the first surface S1 and the second surface S2. The insulating member 73 can be arranged such that the insulating member 73 covers the entire electronic assembly 70, the insulating member 73 contacts the entire electronic assembly 70 to surround it, or the insulating member 73 covers the second surface S2 and the third surface S3 of the electronic assembly 70.
[0053] Furthermore, the insulating member 73 can be arranged to cover at least a portion of the outer surface 14 of the insulating tube 10. Alternatively, the insulating member 73 can be arranged to cover the entire outer surface 14 of the insulating tube 10. Here, the insulating member 73 can continuously cover the side surface 35 of the cathode 30 and the outer surface 14 of the insulating tube 10. The arrangement of the member 72 completely or partially covering the outer surface 14 of the insulating tube 10 is advantageous in improving the insulation performance between the cathode 30 and the anode 20.
[0054] In the sixth embodiment, insulation measures may also be taken between the cathode 30 and the anode 20, as in the first and fourth embodiments.
[0055] Figure 10 An arrangement of an X-ray imaging apparatus 200 according to an embodiment is shown. The X-ray imaging apparatus 200 may include an X-ray generating apparatus 100 and an X-ray detection apparatus 110, which detects X-rays 104 emitted from the X-ray generating apparatus 100 and passing through an object 106. The X-ray imaging apparatus 200 may also include a control device 120 and a display device 130. The X-ray detection apparatus 110 may include an X-ray detector 112 and a signal processing unit 114. The control device 120 may control the X-ray generating apparatus 100 and the X-ray detection apparatus 110. The X-ray detector 112 detects or images the X-rays 104 emitted from the X-ray generating apparatus 100 and passing through the object 106. The signal processing unit 114 may process the signal output from the X-ray detector 112 and supply the processed signal to the control device 120. The control device 120 displays an image on the display device 130 based on the signal supplied from the signal processing unit 114.
[0056] This invention is not limited to the above embodiments, and various changes and modifications can be made within the spirit and scope of this invention. Therefore, the appended claims are presented to inform the public of the scope of this invention.
Claims
1. An X-ray generating apparatus, comprising: An X-ray generating tube includes an insulating tube, a cathode, and an anode. The insulating tube has a first open end and a second open end. The cathode is arranged to close the first open end of the insulating tube and includes an electron emitting portion. The anode is arranged to close the second open end and includes a target that generates X-rays upon collision with electrons from the electron emitting portion. Electronic components, the electronic components being arranged adjacent to the cathode; A driving circuit configured to drive the X-ray generating tube via the electronic components; as well as A receiving container configured to receive the X-ray generating tube, the electronic components, and the driving circuitry. The container has a third open end, and the X-ray generating tube is arranged to close the third open end. The container is filled with an insulating liquid. The receiving container defines a first space and a second space, the first space storing at least a portion of the driving circuitry, and the second space protruding from the first space and storing the X-ray generating tube and the electronic components. The container includes a protrusion surrounding the second space, and one end of the second space forms the third opening. The outer surface of the cathode and the electronic components are covered by components arranged spaced apart from the containment container.
2. The X-ray generating apparatus according to claim 1, wherein... The outer surface of the cathode includes a cylindrical side surface and a circular bottom surface. The electronic component has a first surface that contacts the bottom surface, a second surface on the opposite side of the first surface, and a third surface connecting the first surface and the second surface. The component covers the outer surface of the cathode, as well as the second and third surfaces of the electronic assembly.
3. The X-ray generating apparatus according to claim 2, wherein... The second surface of the electronic component and the driving circuit are connected by a cable.
4. The X-ray generating apparatus according to any one of claims 1 to 3, wherein The component covers the outer surface of the cathode and the electronic components, as well as the drive circuit.
5. The X-ray generating apparatus according to any one of claims 1 to 4, wherein The component also covers at least a portion of the outer surface of the insulating tube.
6. The X-ray generating apparatus according to any one of claims 1 to 5, wherein The entire X-ray generating tube is arranged in the second space.
7. The X-ray generating apparatus according to any one of claims 1 to 6, wherein A portion of the drive circuit is arranged in the first space.
8. The X-ray generating apparatus according to claim 7, wherein Another part of the drive circuit is arranged in the second space.
9. The X-ray generating apparatus according to any one of claims 1 to 8, wherein The insulating liquid is present between the component and the container.
10. The X-ray generating apparatus according to any one of claims 1 to 9, wherein The component is made of insulating material.
11. The X-ray generating apparatus according to any one of claims 1 to 10, wherein The electronic components include a rheostat.
12. An X-ray generating apparatus, comprising: An X-ray generating tube includes an insulating tube, a cathode, and an anode. The insulating tube has a first open end and a second open end. The cathode is arranged to close the first open end of the insulating tube and includes an electron emitting portion. The anode is arranged to close the second open end and includes a target that generates X-rays upon collision with electrons from the electron emitting portion. A driving circuit configured to drive the X-ray generating tube; as well as A receiving container configured to receive the X-ray generating tube and the driving circuitry. The container has a third open end, and the X-ray generating tube is arranged to close the third open end. The container is filled with an insulating liquid. The receiving container defines a first space and a second space, the first space storing a portion of the driving circuit, and the second space protruding from the first space and storing the X-ray generating tube. The container includes a protrusion surrounding the second space, and one end of the second space forms the third opening. The outer surface of the cathode and the drive circuit are covered by an insulating member arranged spaced apart from the containment container, and the insulating liquid is present between the insulating member and the containment container.
13. The X-ray generating apparatus according to any one of claims 1 to 12, wherein The insulating liquid is insulating oil.
14. The X-ray generating apparatus according to any one of claims 1 to 12, wherein The insulating liquid is a fluorine-based inert liquid.
15. An X-ray imaging device, comprising: The X-ray generating apparatus as defined in any one of claims 1 to 14; as well as An X-ray detector configured to detect X-rays emitted from the X-ray generating device.
Citation Information
Patent Citations
X-ray generation tube, x-ray generation device, and radiography system
JP2016103451A