Background of the Invention
[0001] The present invention pertains to the vacuum tube arts, and in particular to an x-ray
tube cathode cup structure for deflecting a focal spot of a beam of electrons. It
finds particular application in conjunction with rotating anode x-ray tubes for CT
scanners and will be described with particular reference thereto. However, it is to
be appreciated that the present invention will also find application in the generation
of radiation and in vacuum tubes for other applications.
[0002] Conventional x-ray tubes include a vacuum enclosure and a source of a beam of electrons
in the form of a cathode. The cathode includes a heated filament which emits electrons.
The impact of the electron beam on the anode causes a beam of x-radiation to be emitted
from the x-ray tube, typically through a beryllium window. A trend toward shorter
x-ray exposure times in radiography has placed an emphasis on having a greater intensity
of radiation and hence higher electron currents. Increasing the intensity can cause
overheating of the x-ray tube anode. An electrical bias voltage is applied to the
beam of electrons in order to control, to some extent, the size of the focal spot.
[0003] One way to control the size of the focal spot of the electrons on the anode more
closely is to mount the cathode filament within a cathode focusing or support cup
member. Such a system is shown in
U.S. Patent No. 4,689,809. A cathode cup is split into two portions, surrounding the filament. The portions
are biased equal to or negative with respect to the filament. The biased cup reduces
unwanted "wings" or diffused areas appearing as part of the x-ray focal spot.
[0004] Other cathode cup and filament arrangements for controlling the size and shape of
the electron focal spot on the tube anode are discussed in
U.S. Patent Nos. 4,685,118,
5,224,143,
5,065,420, and
5,125,019.
[0005] To minimize the power requirements of the focusing system and to maintain accurate
positioning of the filament relative to the deflectors, it is desirable to mount both
the deflectors and the filament to the same support. Cathode cups thus typically include
a base or arm portion which supports the filament and a pair of deflectors. The deflectors
are mechanically mounted to the base, but are electrically insulated from it. This
is achieved through the use of ceramic insulators which are brazed to both the base
and the deflectors in the form of a sandwich. The ceramic insulators include central
bores through which a bolt is received for maintaining alignment of the components
during brazing. To avoid shorting, the bolt is electrically isolated from the base.
Such a cathode cup design is difficult to assemble, difficult to align, and is susceptible
to shorting. This can occur if the material used to braze the ceramic insulator to
the base or the deflector flows into the insulator bore that receives the bolt. Shorting
can also occur due to natural plating of the ceramic insulator with metal vapor from
the filament.
[0006] The present invention provides a new and improved x-ray tube and method which overcomes
the above-referenced problems and others.
Summary of the Invention
[0007] In accordance with one aspect of the present invention, a cathode assembly is provided.
The assembly includes a base. A filament is mounted to the base for delivering a stream
of electrons. A deflector is carried by the base for deflecting the electrons and/or
focusing the electrons into a beam. An insulator electrically insulates the deflector
from the base. The insulator defines a bore. A rod is connected with the deflector
adjacent a first end of the rod. The rod is received within the insulator bore.
[0008] In accordance with another aspect of the present invention, an x-ray tube is provided.
The x-ray tube includes an envelope which encloses an evacuated chamber. A cathode
assembly is disposed within then chamber for providing a source of electrons. The
cathode assembly includes a base supported in the envelope. A filament is mounted
to the base for providing the electrons. A deflector is carried by the base for deflecting
the electrons and/or focusing the electrons into a beam. An insulator electrically
insulates the deflector from the base. The insulator defines a bore. A rod is connected
with the deflector adjacent a first end of the rod, the rod being received within
the insulator bore. An anode is disposed within the chamber and positioned to be struck
by the electrons and generate x-rays.
[0009] In accordance with another aspect of the present invention, a method of assembling
a cathode assembly is provided. The method includes attaching at least one rod to
at least one deflector and attaching a metal tube in an insulator to define a bore
for receiving the rod. The insulator is attached to a base. A filament assembly is
attached to the base. The method further includes sliding the rod into the tube to
mount the deflector to the base and attaching the rod to the tube.
[0010] One advantage of at least one embodiment of the present invention is that a cathode
cup is electrically isolated from a filament.
[0011] Another advantage of at least one embodiment of the present invention is that deflectors
of a cathode cup are readily aligned with a filament.
[0012] Another advantage of at least one embodiment of the present invention is that components
of a cathode cup are accurately aligned.
[0013] Another advantage of at least one embodiment of the present invention is that deposition
of vaporized filament material on to insulators which space the deflectors from a
base assembly is minimized by reducing the line of sight between the filament and
the insulators.
[0014] Still further advantages of the present invention will become apparent to those of
ordinary skill in the art upon reading and understanding the following detailed description
of the preferred embodiments.
Brief Description of the Drawings
[0015] The invention may take form in various components and arrangements of components,
and in various steps and arrangements of steps. The drawings are only for purposes
of illustrating a preferred embodiment and are not to be construed as limiting the
invention.
FIGURE 1 is a schematic sectional view of a rotating anode x-ray tube according to
the present invention;
FIGURE 2 is a side view of a cathode assembly of the x-ray tube of FIGURE 1;
FIGURE 3 is a front perspective view of the cathode assembly of FIGURE 2;
FIGURE 4 is a top view of the cathode assembly of FIGURE 2;
FIGURE 5 is a sectional view of the cathode assembly through line B-B of FIGURE 4;
FIGURE 6 is an exploded perspective view of the cathode assembly of FIGURE 2;
FIGURE 7 is an enlarged perspective view of a cathode assembly according to an alternative
embodiment of the invention; and
FIGURE 8 is a sectional view of the cathode assembly of FIGURE 7.
Detailed Description of the Preferred Embodiments
[0016] With reference to
FIGURE 1, a rotating anode x-ray tube
1 of the type used in medical diagnostic systems for providing a beam of x-ray radiation
is shown. The tube includes an anode
10 which is rotatably mounted in an evacuated chamber
12, defined by an envelope or frame
14. A heated element cathode assembly
18 supplies and focuses an electron beam
A. The cathode is biased, relative to the anode
10 such that the electron beam flows to the anode and strikes a target area
20 of the anode. A portion of the beam striking the target area is converted to x-rays
B, which are emitted from the x-ray tube through a window
22 in the envelope. The cathode assembly includes a cathode cup or head
24, which is supported in the envelope by an arm
26 of the cathode assembly
18, which is connected at its other end to a central support structure
28.
[0017] The target
20 of the anode is connected to a shaft
40, which is supported by bearings
42 in a neck portion
46 of the evacuated envelope
14 and driven by an induction motor
48. The induction motor includes a stator
50, outside the envelope, which rotates a rotor
52 connected to the shaft relative to a stationary bearing housing
54. The anode is rotated at high speed during operation of the tube. It is to be appreciated
that the invention is also applicable to stationary anode x-ray tubes, rotating cathode
tubes, and other electrode vacuum tubes.
[0018] With reference now to
FIGURES 2-6, the cathode head
24 includes a base
60, which may be integrally formed with the arm
26 or mounted thereto, for example, by brazing or welding, or by affixing the arm to
the base with bolts
62 or other suitable attachment members threaded through holes
64 in the base
(FIGURE 4). A filament assembly
66 is supported by the base. As shown in
FIGURE 2, two insulative filament supports or posts
67, 67' are provided for supporting respective ends of the filament. Alternatively, as shown
in
FIGURE 3, one of the insulative filament supports is omitted, and the filament is grounded
through the base
60. The support or supports
67, 67' are received through corresponding bores
68, 68', which extend axially through the base such that an electron-emitting portion or tip
70 of the filament assembly is spaced from the base. The filament supports may be fixed
in this position by brazing the filament supports
67, 67' to the respective bore or by other means, such as threading a threaded portion of
the filament supports
67, 67' to corresponding threads in the respective bore. It will be appreciated that two
or more filament assemblies may be used in place of the single filament assembly shown,
if desired. The filament supports
67, 67' may be formed from ceramic, or other suitable insulative material. Preferably, each
support has a tube
71, 71' of nickel and/or Kovar
™ brazed into an interior bore thereof (not shown). In the case of the embodiment of
FIGURE 3, the tube
71 is received through corresponding bore
68, and is preferably brazed directly thereto. Niobium shanks
73, 73' at ends of the tungsten filament are received through respective bores in the tubes
71 after the tubes have been mounted in the respective filament support or supports
67, 67' (FIGURE 5). When it is time to position the filament
66, the two niobium shanks at the ends of the filament are inserted into the respective
tubes
71. A microscope is used to adjust the height of the filament tip
70. When the filament tip is correctly positioned relative to the base
60, the tubes
71, 71' are crimped around the respective shanks
73, 73' to maintain the position of the filament until welding takes place, for example,
by laser welding the shanks to the tubes
71, 71'. Prior to welding, the tungsten filament is preferably annealed to grow the filament
into a single crystal tungsten structure, for example, by flashing a high current
through the filament in a hydrogen atmosphere.
[0019] The filament assembly
66 is connected by conductors
74 to a suitable power source
76 outside the envelope
(FIGURE 3). Although a wire filament is illustrated, it is to be understood that other electron
sources are also contemplated, including thin film filaments, and the like.
[0020] Deflectors
80, 82 are carried by the base
60 in a manner which electrically insulates the deflectors from the base. Two deflectors
are shown in
FIGURE 3, although a single deflector, or more than two deflectors, could alternatively be
used. The deflectors are positioned in close proximity to the filament tip
70 for deflecting and/or focusing the beam of electrons emitted by the filament. This
allows the size and location of a focal spot
86 on the target
(FIGURE 1) to be controlled and adjusted.
[0021] As shown in
FIGURE 3, the deflectors
80, 82 are generally mirror images of each other and are positioned on opposite sides of
the filament tip
70. Each deflector has an upper surface
90 and lower surface
92 (the terms "upper" and "lower" being used with reference to the orientation shown
in
FIGURE 3, the upper surface being closer to the base
60). A side wall
94 of the deflector projects inwardly, towards the filament, in the region of the filament
tip
70, thus providing a relatively narrow gap
96 between respective projecting portions
97, 97' of the two deflectors in the region of the filament tip.
[0022] The deflectors
80, 82 may be formed from molybdenum, or other suitable temperature resistant, electrically
conductive material. The base
60 may also be formed from molybdenum, or may be formed from less expensive, easier
to machine materials, such as nickel, since it does not need to withstand as high
temperatures as the deflector.
[0023] With particular reference to
FIGURES 4 and
6, the deflectors
80, 82 are spaced and insulated from the base by insulators
98, 100, 98', 100'. As shown in
FIGURE 4, four insulators are employed, two for each deflector. For stability, it is preferable
to use two (or more) insulators for each deflector, spaced longitudinally from each
other, although it will be appreciated that a single insulator may be used. For ease
of reference, the cathode will be described with reference to two deflectors, each
having two insulators. As shown in phantom in
FIGURE 4, the filament tip
70 extends between the forward and rear shanks
73, 73' along a line which is generally coincident with the longitudinal axis of the base
60 and perpendicular to a line B-B between the forward pair of insulators
98, 100 and is equally spaced from each insulator
98, 100, 98', 100' at its closest point thereto.
[0024] As best shown in
FIGURES 5 and
6, each insulator
98, 100, 98', 100' comprises a cylindrical block
104, 105, each with a central axial bore
106. A first, lower portion
110 of each block
104, 105 is received within a correspondingly shaped cylindrical socket
112 in the deflector
80, 82. It will be understood that different shaped insulator blocks may be used, such as
rectangular blocks and a corresponding shaped socket in the defector provided. As
will be appreciated, two sockets are formed in each deflector to receive corresponding
insulator blocks, a total of four sockets in all. Each socket extends partway into
the deflector, preferably, about half way.
[0025] The socket
112 has a slightly larger diameter than the corresponding block
104, 105, such that a gap 116 spaces the insulator from the deflector adjacent a cylindrical
side
118 and preferably also a base
119 of the insulator block
104, 105. The gap
116 is preferably about 70-100 microns in width, such that a space is maintained between
the insulator
104, 105, and the deflector
80, 82. This reduces the risk of shorting out. In service, insulators sometimes become coated
with a plating layer formed by evaporation of filament material. Leaving a gap between
the insulator and the deflector allows for a fairly thick layer of plating material
to accumulate without resulting in shorting out.
[0026] A second upper (in
FIGURE 6) portion
120 of each insulator block
104, 105 is received within a cylindrical passageway
122 in the base (four passageways are shown in
FIGURE 4)
. The passageway
122 is chamfered to create a smaller diameter portion
124 at the upper end thereof with a shoulder
126 for providing an upper stop for the insulator block
104, 105.
[0027] The insulator blocks
104, 105 are formed from an electrically insulating material, such as alumina. For example,
94% purity or 99% purity alumina may be used, such as AD 94, AL 500, or equivalent
purity. Al
2O
3 meeting ASTM Standard D2442 Type 4 is an exemplary insulating material. For effective
electrical insulation of the deflector from the base (and the filament), the insulators
preferably provide a resistance of at least 720 giga-ohm.
[0028] A pair of deflector rods
130, 130', 132, 132', formed from an electrically conductive material, such as niobium, are mounted to
each deflector
80, 82 (i.e., four rods in total) and are received through the corresponding bore
106 of the insulator blocks
104, 105. The deflector rods 1
30, 130', 132, 132' are electrically connected to a respective bias supply 134, 135 by suitable wiring
136 (FIGURE 3). One bias supply is preferably provided for each deflector. The rod is
electrically insulated from the base
60 by the corresponding insulator block
104, 105 and by a gap
138 at the upper end portion
124 of the insulator passage
122.
[0029] The deflector rods
130, 130', 132, 132' provide an electrically conductive path to the respective deflector
80, 82 for biasing the deflector to an appropriate voltage for deflecting or focusing the
electron beam. For example, as the two deflectors
80, 82 both become more negative, relative to the filament, the size of the focal spot is
reduced. When they become sufficiently negative, the electron beam is turned off.
If one deflector is more negative than the other, the focal spot moves away from the
more negative part. This latter result can be achieved by biasing only one of the
deflectors and having the other deflector at the same potential as the filament. Because
of the close proximity of the deflectors to the filament, a small bias is able to
deflect or focus the beam. The two bias supplies
134, 135 may be computer controlled to permit automatic control of the width and positioning
of the focal spot to a multiplicity of locations.
[0030] Each rod
130, 130', 132, 132 is preferably brazed to the deflector prior to insertion of the rod in the corresponding
insulator block bore
106. As shown in
FIGURE 6, each deflector has a depression
140, such as central hole machined in the base of each socket
112, and shaped to receive one end
142 of the respective rod
130, 130', 132, 132. To attach the rod to the deflector, the rod is positioned in the hole
140, together with a small piece of a suitable braze material, and the assembly heated
to an appropriate temperature to braze the two components
130, 80 together.
[0031] In an alternative embodiment, pairs of deflector rods
130, 130' and
132, 132', respectively, are connected at their ends
142 by a connecting portion (not shown) to form a generally U-shaped member. In this
embodiment, the depression
140 takes the form of a slot, shaped to receive the connecting member therein. The connecting
portion is positioned in the slot
140, together with a small piece of a suitable braze material, and the assembly heated
to an appropriate temperature to braze the two components together. Other methods
of attaching the rod
130, 132 to the deflector
80, 82 are also contemplated.
[0032] Each of the insulator blocks
104, 105 has a cylindrical tube
146, 147, 146', 147' mounted axially in the central bore
106 for receiving the corresponding rod. Although only two tubes
146, 147 and two blocks are shown in the view of
FIGURE 6, it will be appreciated that a tube is provided for each insulator block. Thus, for
this embodiment, four tubes
146, 147, 146', 147' are employed, as shown in
FIGURE 4. Each passageway, insulator block bore, and corresponding tube and rod are preferably
concentrically arranged, as shown in
FIGURE 4. As shown in
FIGURE 5, the tube
146, 147 has an upper end which extends beyond the upper end of the insulator block, when
installed, and is preferably of sufficient length to extend above the base
60 when the insulator block
104, 105 is located in the base. At a lower end, the tube
146, 147, when installed, is preferably flush with the base
119 of the insulator block, or may be slightly set back within the block.
[0033] The tube
146, 147 has an axially extending bore
148 therethrough with an internal diameter which is only slightly larger than the diameter
of the corresponding rod
130, 132 so that the rod fits snugly in the tube bore. For example, the rod
130, 132 may have an OD of 0.100 cm + 0.000/-0.018 and the corresponding tube
146, 147 an ID of 0.104 cm + 0.025/- 0.000. The tube is preferably formed from a material
which is readily welded to the rod, for example, by laser welding. Exemplary materials
for forming the tube include nickel and Kovar
™. The tube
146, 147 is attached to the insulator block
104, 105 by brazing the two parts together, for example, by heating the tube and block with
a suitable braze material between them. The quantity of braze material used should
be sufficient to attach the parts firmly, without overflowing significantly at ends
of the insulator block. This step is preferably carried out prior to inserting the
insulator block into the base passageway
122.
[0034] The insulator blocks
104, 105 for the deflectors and the insulative support(s)
67, 67' for the filament assembly
66 (or tube
71, in the case of the embodiment of
FIGURES 3 and
4) are brazed to the cup base
60 by heating the base and insulator, together with a suitable brazing material. The
deflector insulator blocks
104, 105 and the insulative supports
67, 67' may be brazed into the base at the same time. However, in this embodiment, because
the insulator blocks
104, 105 are inserted from the bottom of the base and the insulative support(s)
67, 67' for the filament are inserted from the top of the base, it may be preferable to braze
first one set of insulators (either the filament or the deflector insulators) and
then flip the base over and braze the other set of insulators.
[0035] The brazing material for the insulator blocks
104, 105 is preferably positioned in the shelf region. The brazing material can be the same
type as is used to attach the tube to the insulator block and the rod to the deflector.
However, since the brazing is preferably carried out in three separate steps (rod
to deflector, tube to block, and block to base), the brazing material for each of
the three joints can be a different material which is compatible with the parts to
be joined and heated to an appropriate temperature for the respective braze material
to melt.
[0036] To provide a suitable surface for brazing, the insulator block preferably has a very
thin surface coating
150 of a metallizing material, such as a molybdenum-manganese or tungsten-manganese composite
material (shown exaggerated in the thickness in
FIGURE 6)
. The coating may be deposited on the block by suitable deposition techniques to a
thickness of about 5-20 microns. Preferably, the metallizing layer extends over only
a portion of the outer surface of the blocks, such as at the upper end of the block
in the region where the braze material will be applied, to minimize risk of shorting
between the base and the deflector.
[0037] The insulator tubes
146, 147 are welded or otherwise attached to the rods
130, 132, for example, by laser welding. This step is preferably carried out after the
insulators
104, 105 have been brazed into the base. This allows the deflectors to be properly aligned
with the filament. The length of the deflector rods
130, 132 is preferably selected such that, when the deflectors are correctly positioned, the
rods are level with or protrude by a small amount from the upper ends of their respective
tubes
146, 147.
[0038] To ensure alignment of the filament tip
70 with the deflectors, the insulative filament posts
67, 67' are preferably seated in the base
60 and the ends of the filament
66 positioned (crimped, or crimped and welded) before inserting the deflector rods
130, 132 into the insulator tubes
146, 147. The rods are then inserted into their respective tubes. A gauge (not shown) of the
appropriate thickness is then inserted between the deflector and the base to determine
an appropriate gap
152 between the deflector and the base. The base and deflector are pushed towards each
other (the rods sliding in their respective tubes) until the base and deflector contact
the gauge.
[0039] Prior to laser or otherwise welding the insulator tubes
146, 147 to the deflector rods 130, 132, the respective insulator tubes and rods are optionally
crimped together to hold the desired set position. The two deflectors
80, 82 are preferably positioned so that the filament tip
70 is approximately halfway between top and bottom surfaces of the deflector. This minimizes
the risk of metallization of the insulator by material evaporating from the filament
and avoids a "line of sight" being created in which material from the filament can
travel in a straight line to the insulator. As can be seen from
FIGURE 5, the deflectors are positioned such that material evaporating from the filament tip
70 will be inhibited by the projections 97,
97' from traveling directly towards the insulator blocks, the closest direct paths
x and
y to the insulators
98, 100 taking the material to the base
60, rather than to the insulator.
[0040] In an alternate embodiment, illustrated in
FIGURES 7 and
8, a cathode assembly
216 is shown. The cathode assembly is similar to assembly
18 and includes a base
220, similar to base
60, with four bores
222, 222', 224, 224' for receiving deflector insulator blocks
226, 226', 228, 228'. The bores and insulator blocks are similar to those shown in
FIGURES 2-6. However, in this embodiment, the bores are constructed for the insulator blocks to
be mounted from an upper surface
230 of the base, rather than from the lower surface
232, as is the case in the embodiment of
FIGURES 2-6. This allows the cathode filament support(s)
67, 67' (not shown) and the insulator blocks
226, 226', 228, 228' to be mounted from the same side
230 of the base and facilitates brazing by allowing the cathode filament supports
67,67' and insulator blocks
226, 226', 228, 228' to be readily brazed in the same operation.
[0041] As shown in
FIGURE 8, the bores each have an tapered shoulder portion
240 between a widened upper portion
242 and a narrower lower portion
244 of the bore. The insulator blocks
226, 226', 228, 228' are shaped with a shoulder portion
246 between a widened upper portion
248 and a narrower lower portion
250 of the block. The lower portion of the block is received at its lower end by the
corresponding deflector
80, 82. The shoulder portion
246 of the block sits on the bore shoulder portion
240. Prior to brazing, a small amount of brazing material is placed in the generally triangular
space between the two shoulders
246, 240 for sealing the two components together when brazed. The shoulder portion
246 of the insulating block may be metallized prior to inserting the block into the bore
to provide a good weld joint. An insulation gap
252 may be provided between the narrow portion
250 of the insulating block and the lower portion
244 of the bore. The gap ensures that even if a small portion of material evaporated
from the filament tip enters the lower portion of the bore, it is deposited adjacent
the surface
232, and the insulative barrier between the deflector and the base is not impaired. A
similar arrangement (not shown) is used for brazing the filament support(s)
67, 67 into the respective bores
68, 68' to that described previously. Assembly of the cathode assembly
216 is otherwise the same as for the embodiment of
FIGURES 2-6.
[0042] Other components of the cathode assembly are analogous to those described for the
embodiment of
FIGURES 2-6 and are given the same numerals. As for the earlier embodiment, deflector rods
130, 132 are brazed to the deflectors
80,82 with brazing material
260 (FIGURE 8). The rods are then positioned in the respective tube bores
148 and, after adjusting the height of the deflector, the tubes are crimped and welded
or otherwise attached to the rods.
[0043] While in this embodiment, both the deflector insulator blocks and the filament supports
are inserted from the top of the block, it is also contemplated that the base may
be configured for inserting both the insulator blocks and filament supports from the
bottom of the base.
[0044] A preferred method of assembling the cathode is thus as follows:
- a) braze the rods 130, 132 to the deflectors 80, 82,
- b) braze the tubes 146, 147 to the insulator blocks 104, 105,
- c) braze the insulator blocks 104, 105 (or 226, 228) and filament supports 67,67' (or tube 71) to the base 60,
- d) set the filament tip 70 height by positioning and fixing filament shanks 73, 73' into tubes 71, 71' in the insulative supports 67,67',
- e) set the deflector height with a gauge and crimp the tubes 146, 147 to the rods 130, 132,
- f) weld the tubes 146, 147 to the rods 130, 132.
[0045] As will be appreciated, step b) may alternatively be carried out before or concurrently
with step a) and steps a), b), and/or c) may be carried out after step d).
[0046] Assembling the components stepwise, with three separate brazing steps a), b), c),
and a welding step f), rather than brazing the insulator to the base and to the deflector
in a single brazing operation, minimizes tolerance stackups due to improper alignment
of the three components. The deflectors
80, 82 are easily aligned with respect to the filament tip
70, simply by sliding the rods
130, 132 up and down in their respective tubes
146, 147. Having two (or more) tubes which fit snugly to the corresponding rods and thus guide
their movement ensures that the deflector remains parallel with the base as it is
being positioned.
1. A cathode assembly (18, 216) comprising a base (60), a filament assembly (66) mounted
to the base for delivering a stream of electrons, a deflector (80) carried by the
base for deflecting the electrons or focusing the electrons into a beam, an insulator
(98) for electrically insulating the deflector from the base, the insulator defining
a bore (106), and a rod (130) attached to and connected with the deflector adjacent
a first end (142) of the rod, the rod being received within the insulator bore, characterized in
said cathode assembly further comprising a tube (146, 147, 146', 147'), mounted in
the bore, which receives the rod.
2. The cathode assembly of claim 1, further characterized by a second deflector (82) supported by the base, a second insulator (100) for electrically
insulating the second deflector from the base, the second insulator defining a second
bore (106), and a second tube mounted in the bore which receiver a second rod (132,
132'), connected with the deflector adjacent a first end (142) of the second rod,
the second rod being received within the second insulator bore.
3. The cathode assembly of claim 2, further characterized by the first ends of the first and second rods comprising a connecting portion and wherein
the connection portion is connected with the deflector.
4. The cathode assembly of any one of claims 1 to 3, further characterized by an further insulator (98') for electrically insulating each deflector (80) from the
base, the further insulator defining an further bore (106), and an further tube mounted
in the bore which receives a further rod (130'), connected with the deflector adjacent
a first end (142) of the rod, the further rod being received within the further insulator
bore (106).
5. The cathode assembly of any one of claims 1 to 4, further characterized by the base defining a passageway (122), a first end of the insulator being received
in the passageway.
6. The cathode assembly of claim 5, further characterized by the passageway (122) including a first portion (244) and a second portion (242),
the second portion having a larger internal diameter than the first portion such that
a shoulder (240) is defined between the first and second portions, the insulator including
a block (226, 226', 228, 228') having a portion (248) of larger diameter than the
first portion of the passageway which is received in the second portion of the passageway.
7. The cathode assembly of claim 6, further characterized by the second portion of the passageway being adjacent an upper surface (230) of the
base.
8. The cathode assembly of any one of claims 1 to 7, further characterized by the deflector defining a socket (112) which receives a second end (110) of the insulator.
9. The cathode assembly of claim 8, further characterized by the deflector defining a hole (140) which extends into the deflector from the socket,
the hole receiving the first end of the rod.
10. The cathode assembly of claim 8, further characterized by the deflector socket having a larger diameter than a diameter of the insulator, such
that a gap (116) is defined between the socket and a side wall of the deflector.
11. The cathode assembly of any one of claims 1 to 10, further characterized by the insulator having a metallized coating (150) on a first portion thereof, the insulator
being brazed or welded to the base at the metallized coating.
12. The cathode assembly of any one of claims 1 to 11, further characterized by the rod electrically connecting the deflector with a source (76) of electrical potential
for biasing the deflector.
13. The cathode assembly of any one of claims 1 to 12, further characterized by the deflector being configured and positioned to eliminate a direct line of sight
for the flow of vaporized filament material between the filament and the insulator.
14. An X-ray tube characterized by an envelope which encloses an evacuated chamber, the cathode assembly of any one
of preceding claims 1 to 13 disposed within the chamber, and an anode disposed within
the chamber positioned to be struck by the electrons and generate X-rays.
15. A method of assembling a cathode assembly
characterized by
a) attaching at least one rod (130, 130', 132, 132') to at least one deflector (80,
82) for deflecting the electrons or focusing the electrons into a beam,
b) attaching a metal tube (146, 147, 146', 147') in an insulator (98, 100) to define
a bore for receiving the rod,
c) attaching the insulator to a base (60),
d) attaching a filament assembly (66) to the base,
e) sliding the rod into the tube to mount the deflector to the base, and
f) attaching the rod to the tube.
16. The method of claim 15, further characterized by the step of mounting the rod to the deflector including positioning the first end
of the rod in a depression (140) within the deflector and brazing the rod to the deflector.
17. The method of claim 16, further characterized by as the rod is slid into the tube, setting and aligning the deflector, and performing
the step of attaching the rod to the tube after the deflector has been set in a preselected
position with a preselected alignment.
18. The method of claim 16, further characterized by the step of attaching the insulator to the base includes inserting the insulator
into a bore from a first surface of the base,
the step of attaching the filament assembly to the base includes inserting a filament
insulator into a second bore from the first surface of the base , and brazing the
insulator and filament insulator to the base in a single brazing step.
19. The method of any one of claims 15 to 18, further characterized by the step of attaching the insulator to the base including: metallizing one end (120)
of an outer surface of the insulator, positioning the metallized end of the insulator
in a passageway (122) in the base, and brazing the metallized surface of the insulator
to the base.
20. The method of any one of claims 15 to 19, further characterized by the step of attaching the tube in the insulator including: inserting the tube in
a bore (106) in the insulator, and welding the tube to the insulator.
21. The method of either one of preceding claims 19 and 20, further characterized by the step of attaching the rod to the tube including: crimping the rod and the tube
together.
1. Kathodenbaugruppe (18, 216) mit einer Basis (60), einer an der Basis montierten Filamentbaugruppe
(66) zur Abgabe eines Elektrodenstroms, einer durch die Basis getragenen Ablenkeinheit
(80) zum Ablenken der Elektronen oder zum Fokussieren der Elektroden zu einem Strahlenbündel,
einem Isolator (98) zum elektrischen Isolieren der Ablenkeinheit von der Basis, wobei
der Isolator eine Bohrung (106) definiert, und einem Stab (130), der an der Ablenkeinheit
angebracht ist und mit der Ablenkeinheit angrenzend an ein erstes Ende (142) des Stabs
verbunden ist, wobei der Stab in der Isolatorbohrung aufgenommen wird, dadurch gekennzeichnet, dass die genannte Kathodenbaugruppe weiterhin ein Rohr (146, 147, 146', 147') umfasst,
das in der Bohrung montiert ist und den Stab aufnimmt.
2. Kathodenbaugruppe nach Anspruch 1, weiterhin gekennzeichnet durch eine zweite durch die Basis getragene Ablenkeinheit (82), einen zweiten Isolator (100) zum elektrischen
Isolieren der zweiten Ablenkeinheit von der Basis, wobei der zweite Isolator eine
zweite Bohrung (106) definiert, und ein zweites Rohr, das in der Bohrung montiert
ist und einen zweiten Stab (132, 132') aufnimmt, der mit der Ablenkeinheit angrenzend
an ein erstes Ende (142) des zweiten Stabs verbunden, wobei der zweite Stab in der
zweiten Isolatorbohrung aufgenommen wird.
3. Kathodenbaugruppe nach Anspruch 2, weiterhin dadurch gekennzeichnet, dass die ersten Enden des ersten und des zweiten Stabs einen Verbindungsteil umfassen
und wobei der Verbindungsteil mit der Ablenkeinheit verbunden ist.
4. Kathodenbaugruppe nach einem der Ansprüche 1 bis 3, weiterhin gekennzeichnet durch einen Isolator (98') zum elektrischen Isolieren jeder Ablenkeinheit (80) von der
Basis, wobei der weitere Isolator eine weitere Bohrung (106) definiert, und ein weiteres
Rohr in der Bohrung montiert ist und einen weiteren Stab (130') aufnimmt, der mit
der Ablenkeinheit angrenzend an ein erstes Ende (142) des Stabs verbunden ist, wobei
der weitere Stab in der weiteren Isolatorbohrung (106) aufgenommen wird.
5. Kathodenbaugruppe nach einem der Ansprüche 1 bis 4, weiterhin dadurch gekennzeichnet, dass die Basis einen Durchgang (122) definiert, wobei ein erstes Ende des Isolators in
dem Durchgang aufgenommen wird.
6. Kathodenbaugruppe nach Anspruch 5, weiterhin dadurch gekennzeichnet, dass der Durchgang (122) einen ersten Teil (244) und einen zweiten Teil (242) umfasst,
wobei der zweite Teil einen größeren Innendurchmesser hat als der erste Teil, so dass
eine Schulter (240) zwischen dem ersten und dem zweiten Teil definiert wird, wobei
der Isolator einen Block (226, 226', 228, 228') mit einem Teil (248) von größerem
Durchmesser umfasst als der erste Teil des Durchgangs, der in dem zweiten Teil des
Durchgangs aufgenommen wird.
7. Kathodenbaugruppe nach Anspruch 6, weiterhin dadurch gekennzeichnet, dass der zweite Teil des Durchgangs an eine obere Fläche (230) der Basis angrenzt.
8. Kathodenbaugruppe nach einem der Ansprüche 1 bis 7, weiterhin dadurch gekennzeichnet, dass die Ablenkeinheit einen Buchse (112) definiert, die ein zweites Ende (110) des Isolators
aufnimmt.
9. Kathodenbaugruppe nach Anspruch 8, weiterhin dadurch gekennzeichnet, dass die Ablenkeinheit ein Loch (140) definiert, das von der Buchse aus in die Ablenkeinheit
reicht, wobei das Loch das erste Ende des Stabs aufnimmt.
10. Kathodenbaugruppe nach Anspruch 8, weiterhin dadurch gekennzeichnet, dass der Durchmesser der Ablenkeinheitbuchse größer ist als der Durchmesser des Isolators,
so dass zwischen der Buchse und einer Seitenwand der Ablenkeinheit eine Lücke (116)
definiert wird.
11. Kathodenbaugruppe nach einem der Ansprüche 1 bis 10, weiterhin dadurch gekennzeichnet, dass der Isolator eine metallisierte Beschichtung (150) auf einem ersten Teil hat, wobei
der Isolator bei der metallisierten Beschichtung an die Basis angelötet oder angeschweißt
wird.
12. Kathodenbaugruppe nach einem der Ansprüche 1 bis 11, weiterhin dadurch gekennzeichnet, dass der Stab die Ablenkeinheit elektronisch mit einer Quelle (76) von elektrischem Potenzial
verbindet, um die Ablenkeinheit vorzuspannen.
13. Kathodenbaugruppe nach einem der Ansprüche 1 bis 12, weiterhin dadurch gekennzeichnet, dass die Ablenkeinheit konfiguriert und positioniert ist, um eine direkte Sichtlinie für
den Fluss des verdampften Filamentmaterials zwischen dem Filament und dem Isolator
zu eliminieren.
14. Röntgenröhre gekennzeichnet durch einen Kolben, der eine evakuierte Kammer umschließt, wobei die Kathodenbaugruppe
von einem der vorhergehenden Ansprüche 1 bis 13 innerhalb der Kammer angeordnet ist,
und eine innerhalb der Kammer befindliche Anode so positioniert ist, dass sie durch die Elektronen getroffen wird und Röntgenstrahlen erzeugt.
15. Verfahren des Zusammenbauens einer Kathodenbaugruppe,
gekennzeichnet durch die folgenden Schritte:
a) Anbringen mindestens eine Stabs (130, 130', 132, 132') an mindestens einer Ablenkeinheit
(80, 32) zum Ablenken der Elektronen oder Fokussieren der Elektronen zu einem Strahlenbündel,
b) Anbringen eines Metallrohrs (146, 147, 146', 147') in einem Isolator (98, 100),
um eine Bohrung zur Aufnahme des Stabs zu definieren,
c) Anbringen des Isolators an einer Basis (60),
d) Anbringen einer Filamentbaugruppe (66) an der Basis,
e) Hineinschieben des Stabs in das Rohr, um die Ablenkeinheit an der Basis zu montieren,
und
f) Anbringen des Stabs an dem Rohr.
16. Verfahren nach Anspruch 15, weiterhin gekennzeichnet durch den Schritt des Montieren des Stabs an der Ablenkeinheit einschließlich Positionieren
des ersten Endes des Stabs in einer Vertiefung (140) innerhalb der Ablenkeinheit und
Anlöten des Stabs an die Ablenkeinheit.
17. Verfahren nach Anspruch 16, weiterhin dadurch gekennzeichnet, dass wenn der Stab in das Rohr hineingeschoben wird, die Ablenkeinheit eingestellt und
ausgerichtet wird, und der Schritt des Anbringens des Stabs an dem Rohr durchgeführt
wird, nachdem die Ablenkeinheit in eine zuvor ausgewählte Stellung mit einer zuvor
ausgewählten Ausrichtung gebracht worden ist.
18. Verfahren nach Anspruch 16, weiterhin dadurch gekennzeichnet, dass der Schritt des Anbringens des Isolators an der Basis das Einsetzen des Isolators
in eine Bohrung ausgehend von einer ersten Oberfläche der Basis umfasst, dass der
Schritt des Anbringens der Filamentbaugruppe an der Basis das Einsetzen eines Filamentisolators
in eine zweite Bohrung ausgehend von der ersten Oberfläche der Basis umfasst, und
dass der Isolator und der Filamentisolator in einem einzigen Lötschritt an der Basis
angelötet werden.
19. Verfahren nach einem der Ansprüche 15 bis 18, weiterhin dadurch gekennzeichnet, dass der Schritt des Anbringens des Isolators an der Basis Folgendes umfasst: Metallisieren
eines Endes (120) einer äußeren Fläche des Isolators, Positionieren des metallisierten
Endes des Isolators in einem Durchgang (122) in der Basis, und Anlöten der metallisierten
Oberfläche des Isolators an der Basis.
20. Verfahren nach einem der Ansprüche 15 bis 19, weiterhin dadurch gekennzeichnet, dass der Schritt des Anbringens des Rohrs in dem Isolator Folgendes umfasst: Einsetzen
des Rohrs in eine Bohrung (106) im Isolator, und Anschweißen des Rohrs an den Isolator.
21. Verfahren nach einem der vorhergehenden Ansprüche 19 und 20, dadurch gekennzeichnet, dass der Schritt des Anbringens des Stabs an dem Rohr Folgendes umfasst: Zusammencrimpen
des Stabs und des Rohrs.
1. Ensemble cathode (18, 216), comprenant une base (60), un ensemble filament (66) monté
sur la base pour émettre un flux d'électrons, un déflecteur (80) supporté par la base
pour faire dévier les électrons ou les focaliser en un faisceau, un isolateur (98)
pour isoler électriquement le déflecteur de la base, l'isolateur définissant un alésage
(106), et une tige (130) fixée au déflecteur et reliée à celui-ci par une première
extrémité (142) de la tige, ladite tige étant accueillie dans l'alésage de l'isolateur,
caractérisé en ce que
ledit ensemble cathode comprend en outre un tube (146, 147, 146', 147') monté dans
l'alésage, qui accueille la tige.
2. Ensemble cathode selon la revendication 1, caractérisé en outre par un second déflecteur (82) supporté par la base, un second isolateur (100) pour isoler
électriquement le second déflecteur de la base, le second isolateur définissant un
second alésage (106), et un second tube monté dans l'alésage qui accueille une seconde
tige (132, 132') reliée au déflecteur par une première extrémité (142) de la seconde
tige, la seconde tige étant accueillie dans l'alésage du second isolateur.
3. Ensemble cathode selon la revendication 2, caractérisé en outre en ce que les premières extrémités de la première et de la seconde tige comprennent une partie
de raccordement, et dans lequel la partie de raccordement est reliée au déflecteur.
4. Ensemble cathode selon l'une quelconque des revendications 1 à 3, caractérisé en outre par un isolateur supplémentaire (98') pour isoler électriquement chaque déflecteur (80)
de la base, l'isolateur supplémentaire définissant un alésage supplémentaire (106),
et un tube supplémentaire monté dans l'alésage qui accueille une seconde tige (130')
reliée au déflecteur par une première extrémité (142) de la tige, la tige étant accueillie
par l'isolateur l'alésage (106) de l'isolateur supplémentaire.
5. Ensemble cathode selon l'une quelconque des revendications 1 à 4, caractérisé en outre en ce que la base définit un passage (122), une première extrémité de l'isolateur étant accueillie
dans le passage.
6. Ensemble cathode selon la revendication 5, caractérisé en outre en ce que le passage (122) comprend une première partie (244) et une seconde partie (242),
la seconde partie ayant un diamètre interne plus grand que la première partie, de
telle sorte qu'un épaulement (240) est défini entre la première et la seconde partie,
l'isolateur comprenant un bloc (226, 226', 228, 228') présentant une partie (248)
de diamètre supérieur à celui de la première partie du passage, qui est accueillie
dans la seconde partie du passage.
7. Ensemble cathode selon la revendication 6, caractérisé en outre en ce que la seconde partie du passage est adjacente à une surface supérieure (230) de la base.
8. Ensemble cathode selon l'une quelconque des revendications 1 à 7, caractérisé en outre en ce que le déflecteur définit un socle (112) qui reçoit une seconde extrémité (110) de l'isolateur.
9. Ensemble cathode selon la revendication 8, caractérisé en outre en ce que le déflecteur définit un orifice (140) qui s'étend à l'intérieur du déflecteur à
partir du socle, l'orifice accueillant la première extrémité de la tige.
10. Ensemble cathode selon la revendication 8, caractérisé en outre en ce que le socle du déflecteur a un diamètre supérieur à un diamètre de l'isolateur, de telle
sorte qu'un espace (116) est défini entre le socle et une paroi latérale du déflecteur.
11. Ensemble cathode selon l'une quelconque des revendications 1 à 10, caractérisé en outre en ce que l'isolateur présente un revêtement métallisé (150) sur une première partie de celui-ci,
l'isolateur étant brasé ou soudé à la base sur le revêtement métallisé.
12. Ensemble cathode selon l'une quelconque des revendications 1 à 11, caractérisé en outre en ce que la tige raccorde électriquement le déflecteur à une source (76) de potentiel électrique
pour polariser le déflecteur.
13. Ensemble cathode selon l'une quelconque des revendications 1 à 12, caractérisé en outre en ce que le déflecteur est configuré et positionné de sorte à éliminer une ligne de visée
directe du flux de matériau filamentaire vaporisé entre le filament et l'isolateur.
14. Tube à rayons X, caractérisé par une enveloppe qui renferme une chambre à vide, l'ensemble cathode selon l'une quelconque
des revendications précédentes 1 à 13 disposé à l'intérieur de la chambre, et une
anode disposée à l'intérieur de la chambre, positionnée de sorte à être heurtée par
les électrons et générer des rayons X.
15. Procédé d'assemblage d'un ensemble cathode,
caractérisé par les étapes consistant à :
a) fixer au moins une tige (130, 130', 132, 132') à au moins un déflecteur (80, 82),
pour faire dévier les électrons ou focaliser les électrons en un faisceau,
b) fixer un tube métallique (146, 147, 146', 147') dans un isolateur (98, 100) pour
définir un alésage pour recevoir la tige,
c) fixer l'isolateur à la base (60),
d) fixer un ensemble filament (66) à la base,
e) faire coulisser la tige dans le tube pour monter le déflecteur à la base, et
f) fixer la tige au tube.
16. Procédé selon la revendication 15, caractérisé en outre en ce que l'étape consistant à monter la tige sur le déflecteur comprend le positionnement
de la première extrémité de la tige dans un renfoncement (140) à l'intérieur du déflecteur,
et le brasage de la tige au déflecteur.
17. Procédé selon la revendication 16, caractérisé en outre par l'étape consistant à positionner et aligner le déflecteur pendant que la tige est
insérée par coulissement dans le tube, et en ce que l'étape de fixation de la tige
au tube est exécutée après le positionnement du déflecteur dans une position présélectionnée
avec un alignement présélectionné.
18. Procédé selon la revendication 16, caractérisé en outre en ce que l'étape consistant à fixer l'isolateur à la base comprend l'insertion de l'isolateur
dans un alésage à partir d'une première surface de la base,
en ce que l'étape consistant à fixer l'ensemble filament à la base comprend l'insertion d'un
isolateur de filament dans un second alésage à partir de la première surface de la
base, et le brasage de l'isolateur et de l'isolateur de filament à la base en une
seule étape de brasage.
19. Procédé selon l'une quelconque des revendications 15 à 18, caractérisé en outre en ce que l'étape consistant à fixer l'isolateur à la base comprend : la métallisation d'une
extrémité (120) d'une surface externe de l'isolateur, le positionnement de l'extrémité
métallisée de l'isolateur dans un passage (122) dans la base, et le brasage de la
surface métallisée de l'isolateur à la base.
20. Procédé selon l'une quelconque des revendications 15 à 19, caractérisé en outre en ce que l'étape consistant à fixer le tube dans l'isolateur comprend l'insertion du tube
dans un alésage (106) dans l'isolateur, et le soudage du tube à l'isolateur.
21. Procédé selon l'une quelconque des revendications précédentes 19 et 20, caractérisé en outre en ce que l'étape consistant à fixer la tige au tube comprend le sertissage du tube à la tige.