This application is based upon and claims the benefit of priority from prior Japanese Patent Application No. 2007-303246, filed Nov. 22, 2007, the entire contents of which are incorporated herein by reference.
1. Field of the Invention
The present invention relates to a magnetic resonance apparatus having a radio frequency (RF) coil placed inside a gantry.
2. Description of the Related Art
A magnetic resonance apparatus generally has an RE coil such as a whole body (WB) coil placed inside a gantry.
An RE coil generates heat upon being energized. Conventionally, the cooling of the RF coil relies on natural convection around the coil, and no special cooling means is used.
Note that a structure for cooling an RE coil by using cooling water is known in, for example, Jpn. Pat. Appln. KOKAI Publication No. 11-244255.
The heat generated by an RF coil therefore raises the temperature in the imaging space in a gantry and may give an uncomfortable feeling to a subject to be examined who is placed in the imaging space.
An attempt has therefore been made to make it difficult to transmit the heat generated by an RF coil to an imaging space by placing a cover on the RF coil at a certain interval. In this case, however, the cover reduces the imaging space. This may give an oppressive feeling to the subject.
The structure known in Jpn. Pat. Appln. KOKAI Publication No. 11-244255 includes a cooling portion with a bulky structure, which requires a large accommodation space. This may reduce the imaging space and gives an oppressive feeling to a subject.
Under the circumstances, it has been required to prevent the heat generated by an RF coil placed inside a gantry from raising the temperature in an imaging space.
According to a first aspect of the present invention, there is provided a magnetic resonance apparatus comprising: a static field magnet which generates a static magnetic field; a gradient field coil which generates a gradient magnetic field to be superimposed on the static magnetic field; a cover which forms, inside the static field magnet and the gradient field coil, an internal space in which a bed top and a subject placed on the bed top are to be inserted; a radio frequency coil unit which includes a cylindrical base portion and a plurality of first electronic elements and a plurality of second electronic elements arranged on the base portion and is placed in the internal space; a first flow path which is formed between the base portion and the cover to cool the first electronic elements; a second flow path which is formed between the base portion and the cover and communicates with the first flow path to cool the second electronic elements; and a cooling unit which cools the radio frequency coil unit by generating a cooling gas Flow flowing from the first flow path to the second flow path.
According to a second aspect of the present invention, there is provided a magnetic resonance apparatus comprising: a static field magnet which generates a static magnetic field; a gradient field cools which generates a gradient magnetic field to be superimposed on the static magnetic field; a cover which forms inside the static field magnet and the gradient field coil, an internal space in which a bed top and a subject placed on the bed top are to be inserted; a radio frequency coil unit which includes a cylindrical base portion and a plurality of electronic elements arranged on the base portion and is placed in the internal space; a flow path which is formed between the base portion and the cover circumferentially relative to the base portion to cool the electronic elements; and a cooling unit which cools the radio frequency coil unit by generating two types of flows in different directions circumferentially relative to the base portion as cooling gas Flows in the flow path.
According to a third aspect of the present invention, there is provided a magnetic resonance apparatus comprising: a static field magnet which generates a static magnetic field; a gradient field coil which generates a gradient magnetic field to be superimposed on the static magnetic field; a cover which forms, inside the static field magnet and the gradient field coil, an internal space in which a bed top and a subject placed on the bed top are to be inserted; a radio frequency coil unit which includes a cylindrical base portion and a plurality of electronic elements arranged on the base portion in a circumferential direction thereof and is placed in an internal space; a flow path which guides a cooling gas in the circumferential direction of the base portion; at least one discharge port which discharges the cooling gas from the flow path toward the electronic elements; and a cooling unit which cools the radio frequency coil unit by generating a flow of the cooling gas discharge from the discharge port toward the electronic elements through the flow path.
Additional objects and advantages of the invention will be set forth in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. The objects and advantages of the invention may be realized and obtained by means of the instrumentalities and combinations particularly pointed out hereinafter.
The accompanying drawings, which are incorporated in and constitute a part of the specification, illustrate presently preferred embodiments of the invention, and together with the general description given above and the detailed description of the preferred embodiments given below, serve to explain the principles of the invention.
An embodiment of the present invention will be described below with reference to the views of the accompanying drawing.
The gantry of the magnetic resonance apparatus 100 accommodates a static field magnet 1, a gradient field coil unit 2, a bore tube 3, a body coil unit 4, a cover 5, and a bed rail 6.
The static field magnet 1 has a hollow cylindrical shape, and generates a uniform static magnetic field in the internal space. As the static field magnet 1, for example, a permanent magnet or a superconductive magnet is used.
The gradient field coil unit 2 has a hollow cylindrical shape. The gradient field coil unit 2 is placed inside the static field magnet 1 while they are almost axially aligned with each other. The gradient field coil unit 2 includes a combination of three types of coils corresponding to X-, Y-, and Z-axes perpendicular to each other. The gradient field coil unit 2 generates gradient magnetic fields whose magnetic field strengths incline along the X-, Y-, and Z-axes, respectively, when the above three types of coils separately receive currents from gradient field power supplies. Note that the axis direction coincides with, for example, the static magnetic field direction. Gradient magnetic fields along the X-, Y-, and Z-axes respectively correspond to a slice selection gradient magnetic field Gs, a phase encoding gradient magnetic field Ge, and a readout gradient magnetic field Gr. The slice selection gradient magnetic field Gs is used to arbitrarily determine an imaging slice. The phase encoding gradient magnetic field Ge is used to encode the phase of a magnetic resonance signal in accordance with a spatial position. The readout gradient magnetic field Gr is used to encode the frequency of a magnetic resonance signal in accordance with a spatial position. As the gradient field coil unit 2, a so-called actively shielded gradient coil (ASGC) can be used.
The bore tube 3 has a hollow cylindrical shape. The bore tube is placed inside the gradient field coil unit 2 while being axially aligned with the gradient field coil unit. The bore tube 3 forms inside an imaging space in which a subject to be examined is placed to be imaged.
The body coil unit 4 has a hollow cylindrical shape, and includes a base portion 41 having flanges extending outward from the two ends and partition members 42 and 43. The base portion 41 is placed inside the bore tube 3 with the distal ends of the flanges being attached to the inner surface of the bore tube 3. A whole body (WB) coil is mounted on the outer surface of the base portion 41. The WB coil is, for example, a birdcage coil. A toroidal shape space is formed between the base portion 41 and the bore tube 3. The WB coil is placed inside the space. Note that the WB coil is not illustrated in
The cover 5 covers the body coil unit 4 to prevent the subject placed in the imaging space from touching the body coil unit 4.
The bed rail 6 is placed so as to extend through the inside of the body coil unit 4. The bed rail 6 guides a bed top (not shown), which is sent laterally from the right side of
The outer surface of the base portion 41 is provided with many conductive patterns 45 and many circuit elements 46 and 47 which form the body coil. The circuit elements 46 are, for example, capacitors. The circuit elements 47 are, for example, pin diodes. The many circuit elements 46 are arranged near the two side ends of the base portion 41 circumferentially relative to the base portion 41. The many circuit elements 47 are arranged near the middle of the base portion circumferentially relative to the base portion 41.
One U-shaped groove 61a and four linear grooves 61b, 61c, 61d, and 61e are formed in the lower member 61 longitudinally. Each of the grooves 61a to 61e is open upward. The lower member 61 also has openings 61f, 61g, 61h, 61i, 61j, 61k, 61m, 61n, 61o, 61p, and 61g formed in the bottom surfaces of the grooves 61a to 61e at positions near the two ends of the groove 61a, in the curved portion of the groove 61a, and near the two ends of each of the grooves 61b to 61e.
The base portion 41 has an opening 41a at a position facing the opening 61h, an opening 41b at a position facing the opening 61t, an opening 41c at a position facing the opening 61m, an opening 41d at a position facing the opening 61o, and an opening 41e at a position facing opening 61q in the state shown in
The upper member 62 has a recess portion 62a formed on the upper side longitudinally. The recess portion 62a guides the movement of the bed top longitudinally relative to the upper member 62. The lower side of the upper member 62 has a shape to fit in the upper side of the lower member 61. When the upper member 62 is mounted on the upper portion of the lower member 61, the bed rail 6 is formed. The bed rail 6 closes the upper sides of the grooves 61a, 61h, 61c, 61d, and 61e. Six ducts like those shown in
As shown in
As shown in
As shown in
As shown in
An air path communicating with the space 44b is formed by the route of opening 61i—first duct—opening 61j—opening 41b—space 44c—opening 43a, the route of opening 61k—second duct—opening 61c opening 41c—space 44a opening 42a, the route of opening 61n—fifth duct—opening 61o—opening 41d—space 44a—opening 42a, or the route of opening 61p—sixth duct—opening 61q—opening 41e—space 44c opening 43a. In addition, an air path communicating with the opening 61 or 61g is formed by the route of space 44b—opening 41a—opening 61h—third or fourth duct.
For this reason, as shown in
The circuit element 46 is located on the upstream side of the above air path relative to the circuit element 47. For this reason, air striking the circuit element 46 is lower in temperature than that striking the circuit element 47, and the circuit element 46 is higher in cooling efficiency than the circuit element 47. In general, a capacitor is smaller in margin for a rise in temperature than a pin diode. This embodiment is based on the assumption that a capacitor is used as the circuit element 46, and a pin diode is used as the circuit element 47. Therefore, a capacitor having a smaller margin for a rise in temperature can be efficiently cooled.
As is obvious from
In addition, since the spaces 61c and 61d are symmetrically formed with respect to the direction in which the bed rail 6 guides the bed top, and so are the spaces 61b and 61e, the flows of air can be stably formed by two routes like those described above.
As described above, according to this embodiment, the heat generated by the circuit elements 46 and 47 can be dissipated to the outside of the gantry more efficiently than natural convection. This can cool the WB coil unit 4. As a consequence, discomfort given to the subject by heat can be reduced. In addition, according to this embodiment, it is not necessary to increase the gap between the WE coil unit 4 and the cover 5 to take measures against the generation of heat by the WB coil unit 4. This makes it possible to secure a large distance between the subject and the cover 5 and reduce the oppressive feeling given to the subject by the cover 5.
in addition, according to this embodiment, since the space formed by the base portion 41 and the bore tube 3 is used as part of an air path, and a duct as part of an air path is formed inside the bed rail 6, there is no need to newly secure a space in the gantry in which a duct is to be placed. A duct having a large cross-sectional area can be provided inside the bed rail 6 as compared with a case in which a duct is placed in a space newly secured in the gantry. This can reduce the pressure loss in the duct and efficiently generate an air current.
In addition, according to this embodiment, since the array directions of the circuit elements 46 and 47 coincide with the directions of air currents, the air currents can be reliably made to strike the circuit elements 46 and 47. Therefore, the circuit elements can be efficiently cooled.
According to this embodiment, the bed rail 6 has the hollow structure to accommodate the ducts, and the wall portions for partitioning between the ducts function as ribs. More specifically, as shown in
In addition, the spaces 61a, the spaces 61c and 61d, and the spaces 61b and 61e are symmetric when viewed in the direction in which the bed rail 6 guides the bed top. Therefore, the walls partitioning the respective spaces are symmetric when viewed in the above direction in which the bed rail 6 guides the bed top. This can efficiently increase the rigidity of the bed rail 6.
This embodiment can be variously modified as follows.
(1)
Referring to
In the arrangement shown in
(2)
Referring to
The air flowing into the space 44a is blown into the space 44b through the opening 54a and is drawn into the space 44c through the opening 55a. With this operation, when the circuit elements 46 and 47 are arrayed axially relative to the base portion 41, an air current can be formed along the array direction.
(3)
Referring to
The openings 56a and 59a are formed to respectively face the circuit elements 46, as shown in
With this arrangement, the air flowing into the space 44a is blown into the space 44c through the openings 56a. At this time, the circuit elements 46 are cooled. The air flowing into the space 44c is blown into the space 44d through the openings 59a. At this time, the circuit elements 46 are cooled. The air flowing into the space 44c is blown into the space 44b through the openings 57a, and the air flowing into the space 44d is blown into the space 44b through the openings 58a. At this time, the circuit elements 47 are cooled.
According to this arrangement, since the air whose flow rate has increased when passing through the openings 56a, 57a, 58a, and 59a is blown against the circuit elements 46 and 47, the circuit elements 46 and 47 can be efficiently cooled.
(4) The number and shape of ducts in the bed rail 6 can be arbitrarily changed. For example, the groove 61a can be replaced by a linear groove.
(5) It suffices to guide air to the circuit elements 46 and 47 by using ducts placed outside the bed rail 6 or outside the space between the base portion 41 and the bore tube 3.
(6) The fan 8 can be used to send air.
(7) It suffices to circulate a gas other than air by using the fan 8.
(8) The fan 8 need not be a constituent element of the magnetic resonance apparatus, and a general purpose fan can be properly connected and used.
(9) The RA coil to be cooled can be a coil other than a WE coil.
(10) Discrete members can be used as a member (so-called bobbin) which holds the conductive patterns 45 of the WB coil and the circuit elements 46 and 47 and a support member which supports the bobbin on the bore tube 3. In this structure, a member different from the support member can be placed to form a space serving as an air path in the gap between the bobbin and the bore tube 3.
Additional advantages and modifications will readily occur to those skilled in the art. Therefore, the invention in its broader aspects is not limited to the specific details and representative embodiments shown and described herein. Accordingly, various modifications may be made without departing from the spirit or scope of the general inventive concept as defined by the appended claims and their equivalents.
Number | Date | Country | Kind |
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2007-303246 | Nov 2007 | JP | national |