DEVICE FOR COOLING AN OBJECT IN A VACUUM CHAMBER
20250237425 ยท 2025-07-24
Inventors
- Vincent Nuttens (Louvain-la-Neuve, BE)
- Colin GUILLAUME (Louvain-la-Neuve, BE)
- Guillaume COLLIGNON (Louvain-la-Neuve, BE)
Cpc classification
H05H13/02
ELECTRICITY
F25D19/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05H7/04
ELECTRICITY
H05H7/00
ELECTRICITY
International classification
F25D19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A cooling device for cooling an object contained in a vacuum chamber. The cooling device is insertable into and removable out of a boot housed by the vacuum chamber. The boot is in thermal contact with the object. A distal portion of the cooling device comprises a cold station and a coupler thermally connected to the cold station. The coupler comprises at least two mobile contacts thermally connected to the first cold station. The cooling device also comprises a driving means and a mechanical transmission connecting the driving means to the at least two mobile contacts. The driving means and the mechanical transmission are configured to move the at least two mobile contacts radially inwardly and outwardly to respectively loosen or make a conductive thermal contact between the cold station and the boot.
Claims
1. A cooling device for cooling an object in a vacuum chamber, the cooling device being insertable into and removable out of a boot housed by the vacuum chamber, the cooling device extending along a longitudinal axis, the cooling device comprising: a proximal portion; an intermediate portion; a distal portion comprising: a cold station, and a coupler thermally connected to the cold station, wherein the coupler comprises at least two mobile contacts thermally connected to the cold station; a driving means; and a mechanical transmission connecting the driving means to the at least two mobile contacts, wherein the driving means and the mechanical transmission are configured to move the at least two mobile contacts radially inwardly and outwardly.
2. The cooling device according to claim 1, wherein the driving means is a motor or a manual driving means.
3. The cooling device according to claim 1, wherein the driving means and the mechanical transmission are configured to: move the at least two mobile contacts radially inwardly to a thermally disconnected configuration; and move the at least two mobile contacts radially outwardly to a thermally connected configuration.
4. The cooling device according to claim 1, wherein: the driving means is arranged at the proximal portion; and the mechanical transmission comprises a drive shaft connecting the driving means to the coupler.
5. The cooling device according to claim 1, wherein the mechanical transmission has a transmission ratio greater than 1.
6. The cooling device according to claim 5, wherein the mechanical transmission comprises a geartrain arranged at the distal portion, wherein the geartrain comprises a driven wheel configured to cooperate with the at least two mobile contacts of the coupler.
7. The cooling device according to claim 6, wherein: the driven wheel comprises at least two arcuate holes, each of the at least two arcuate holes having a first end at a first distance from a center of the driven wheel and a second end at a second distance from the center of the driven wheel, the second distance different from the first distance; and the mechanical transmission comprises at least two pushers respectively arranged in front of the at least two mobile contacts, the at least two pushers each having an axial extension cooperating with a corresponding one of the at least two arcuate holes.
8. The cooling device according to claim 6, wherein: the driven wheel of the geartrain comprises at least two arcuate holes, each of the at least two arcuate holes having a first end at a first distance from a center of the driven wheel and a second end at a second distance from the center of the driven wheel, the second distance different from the first distance; and the at least two mobile contacts each have an axial extension respectively cooperating with a corresponding one of the least two arcuate holes.
9. The cooling device according to claim 1, wherein the at least two mobile contacts are angularly evenly spaced around the longitudinal axis.
10. The cooling device according to claim 9, wherein the at least two mobile contacts are between two and sixteen mobile contacts.
11. The cooling device according to claim 9, wherein the at least two mobile contacts are a pair number of mobile contacts.
12. The cooling device according to claim 9, wherein the at least two mobile contacts are six or eight mobile contacts.
13. The cooling device according to claim 1, wherein the cooling device is configured to cool the cold station down to a temperature between 1 K and 100 K or between 1 K and 10 K.
14. The cooling device according to claim 1, wherein the cold station is a first cold station, the coupler is a first coupler, and the intermediate portion comprises a second cold station and a second coupler thermally connected to the second cold station.
15. The cooling device according to claim 14, wherein the second coupler comprises a series of passive elements arranged around the second cold station and in thermal contact with the second cold station.
16. The cooling device according to claim 15, wherein the passive elements are toroidal springs.
17. The cooling device according to claim 14, wherein the cooling device is configured to cool the second cold station down to a temperature between 15 K and 100 K or between 20 K and 60 K.
18. A charged particle accelerator, comprising: a vacuum chamber; a superconducting magnet arranged in the vacuum chamber; a boot housed into the vacuum chamber and presenting an opening to ambient; a cooling device arranged in the boot, the cooling device comprising: a proximal portion; an intermediate portion; a distal portion comprising: a cold station, and a coupler thermally connected to the cold station, wherein the coupler comprises at least two mobile contacts thermally connected to the cold station; a driving means; and a mechanical transmission connecting the driving means to the at least two mobile contacts, wherein the driving means and the mechanical transmission are configured to move the at least two mobile contacts radially inwardly and outwardly.
19. The charged particle accelerator according to claim 18, wherein the charged particle accelerator is a cyclotron or a synchrocyclotron.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012] These and further aspects will be explained in greater detail by way of examples and with reference to the accompanying drawings in which:
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[0028] The drawings of the figures are neither drawn to scale nor proportioned. Generally, similar or identical components are denoted by the same reference numerals in the figures.
DETAILED DESCRIPTION OF EXEMPLARY EMBODIMENTS
[0029] Embodiments of the present disclosure include a cooling device for cooling an object in a vacuum chamber. The cooling device is insertable into and removable out of a boot housed by the vacuum chamber. The cooling device extends along a longitudinal axis. The cooling device includes a proximal portion, an intermediate portion, a distal portion including a cold station and a coupler thermally connected to the cold station. The coupler includes at least two mobile contacts thermally connected to the cold station. The cooling device also includes a driving means and a mechanical transmission connecting the driving means to the at least two mobile contacts. The driving means and the mechanical transmission are configured to move the at least two mobile contacts radially inwardly and outwardly.
[0030] In the context of the present disclosure, thermally connected means that there is a conductive thermal link between the connected parts, so that heat may be transmitted by conduction between the connected parts.
[0031] In the context of the present disclosure, and as is generally known in the art of machinery and control, a driving means is a component that is adapted to produce force or torque on the mobile contacts via the mechanical transmission, or displacement of the mobile contacts in a controlled or controllable way, when input power is supplied to the driving means. Input power may for example be electric power, or pneumatic power, or hydraulic power, or human power (i.e. power applied by a human being).
[0032] Since the driving means and the mechanical transmission are part of the cooling device, it becomes easy to maintain or to replace the driving means and/or (parts of) the mechanical transmission when the cooling device is removed out of the boot of the vacuum chamber. Because of the presence of the driving means, it becomes furthermore possible to apply a controlled force on the mobile contacts so that these mobile contacts move radially inwardly and/or outwardly in a controlled way and without being dependent on any kind of heating or cooling of any part.
[0033] In some embodiments, the driving means is a manual driving means, such as a crank or a lever or a wheel for example, and which can be operated by a human being.
[0034] In some embodiments, the driving means is a motor, such as for example an electric motor, or an electromagnet, or a hydraulic motor, or a pneumatic motor, or a hydraulic cylinder, or a pneumatic cylinder.
[0035] In some embodiments, the driving means and the mechanical transmission are configured to drive and to move each of the at least two mobile contacts radially inwardly to a thermally disconnected configuration and to drive and to move each of the at least two mobile contacts radially outwardly to a thermally connected configuration, or vice-versa.
[0036] In some embodiments, the driving means is configured to drive and/or to move each of the at least two mobile contacts simultaneously and radially inwardly to a thermally disconnected configuration and to drive and/or to move each of the at least two mobile contacts simultaneously and radially outwardly to a thermally connected configuration, or vice-versa. By simultaneously it is meant that the mobile contacts are moved all together and synchronously from their respective initial starting positions, either outwardly or inwardly. This allows for a good centering of the cooling device after it has been inserted into the boot of the vacuum chamber and following to the actuation of the driving means.
[0037] In some embodiments, the driving means is arranged at the proximal portion of the cooling device and the mechanical transmission comprises a drive shaft connecting the driving means to the first coupler. This allows for an easy access to the driving means from the outside of the vacuum chamber when the cooling device is inserted into the boot of the vacuum chamber.
[0038]
[0039]
[0040] As can be seen on
[0041] The cooling device (1) extends along a longitudinal axis (L) and presents a proximal portion (2), an intermediate portion (3) and a distal portion (4). The proximal portion (2) is that portion of the cooling device (1) which is located outside of the vacuum chamber (200) when the cooling device (1) is inserted into the boot (300) and it may for example comprise a flange and a joint so as to provide for an airtight connection between the cooling device (1) and the boot (300) when the cooling device (1) is inserted into the boot (300). In the case of a cryocooler, the proximal portion (2) is sometimes called the head of the cryocooler. The distal portion (4) comprises a first cold station (10) and a first coupler (20) thermally connected to the first cold station (10). In operation, the cooling device (1) cools the first cold station (10), which in turn allows to cool the object to be cooled (100) into the cryostat through a thermal link (shown by three serpentine-like dotted lines) between the first cold station (10) and the object to be cooled (100), via the first coupler (20) and the boot (300) or a part thereof.
[0042] This is generally known in the art and will hence not be described further.
[0043] A number of exemplary embodiments of a cooling device (1) according to the present disclosure will now be described in more detail.
[0044] A cutaway view of a first embodiment of a cooling device (1) (or cryostat) according to the present disclosure is shown on
[0045] In this first embodiment, the first coupler (20) comprises a cup-shaped part (21) which is attached and thermally connected to the first cold station (10). The cup-shaped part (21) may alternatively form an integral part of the first cold station (10).
[0046] This cup-shaped part (21) presents at least two flexible extensions (22) extending longitudinally and arranged radially opposite to each other. In this example, the cup-shaped part (21) comprises two flexible extensions. The flexible extensions (22) are adapted to be deformed flexibly (i.e. elastically) and radially outwards or inwards (upwards and/or downwards on the cutaway views of
[0047] The first coupler (20) also comprises at least two pushers (60) arranged in front of respectively the at least two mobile contacts (22). In the present example, the first coupler (20) comprises two pushers (60) arranged in front of respectively the two mobile contacts (22) to cooperate respectively with the two mobile contacts (22). When the two pushers (60) are moved radially outwards, as shown by the two arrows on
[0048] The cooling device (1) may also comprise guiding means (not shown) to guide each of the two pushers (60) in a radial direction only (i.e. with only one degree of freedom).
[0049] The cooling device (1) also comprises a driving means (50) and a mechanical transmission connecting the driving means (50) to the at least two mobile contacts (22), the driving means (50) and the mechanical transmission being configured to move each of the at least two mobile contacts (22) radially inwardly and/or outwardly.
[0050] In the example of
[0051] The geartrain (82) has a gear ratio of R. In some examples the value of R is greater than one, preferably greater than five, preferably greater than ten. This allows to increase the torque applied on the driven wheel (83) of the geartrain (82) and hence the force applied on the pushers (60). In this example, the drive shaft (81) is mounted on a first bearing that is mounted on a disk-shaped portion of the cup-shaped part (21), and an axle of the driven wheel (83) of the geartrain (82) is mounted on a second bearing that is mounted on a central part of the disk-shaped portion of the cup-shaped part (21). In this example, the motor is attached on the disk-shaped portion of the cup-shaped part (21) but it may also be attached on another fixed part of the cooling device (1).
[0052] The driven wheel (83) of the geartrain (82) is configured to cooperate with the two pushers (60) to move the two mobile contacts (22) of the first coupler (20) radially inwardly and/or outwardly. To obtain such cooperation and movements, the driven wheel (83) of the geartrain (82) may for example comprise two arcuate holes (84), each arcuate hole having one end at a first distance from a center of the driven wheel (83) and an opposite end at a second distance from the center of the driven wheel (83), the second distance different from the first distance, and the two pushers (60) each comprise an axial extension (85), such as a rod for example, cooperating respectively with a corresponding one of the two arcuate holes (84). Hence, when the motor is controlled to rotate in one direction, the driven wheel (83) of the geartrain (82) will force a radial outward movement of the two pushers (60), thereby pushing on the mobile contacts (22) to establish the thermal connection of the latter with the boot (300). When the motor is controlled to rotate in an opposite direction, the driven wheel (83) of the geartrain (82) will force a radial inward movement of the pushers (60), thereby loosing the connection of the mobile contacts (22) with the boot (300).
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[0054] In some examples, each mobile contact is mechanically connected to its corresponding pusher (60), for example through a flexible mechanical link or an articulated mechanical link between both. Hence, when the driving means (50) causes to pull on the pushers (60) to move them radially inwards, each pusher (60) will also pull on its corresponding mobile contact to move it inwards. This has the advantage that it forces the breaking of the contact between each mobile contact (22) and the boot (300), which may be useful in case this contact becomes frozen for example.
[0055] In the example of
[0056] A cutaway view of a second embodiment of a cooling device (or cryostat) according to the present disclosure is shown on
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[0060] In the embodiments of
[0061] In the embodiments described so far, there are two mobile contacts (22), but there may be more of them. In each embodiment, there may be between two and sixteen mobile contacts (22). In some examples, there are a pair number of mobile contacts (22), more preferably eight mobile contacts (22).
[0062] In each embodiment, the at least two mobile contacts (22) are angularly evenly spaced around the longitudinal axis (L) of the cooling device (1) and are arranged at equidistance from the longitudinal axis (L).
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[0064] It will be obvious that the coupler may comprise more or less than six mobile contacts (22) and that there may be other polygonal cross sections for the inner wall of the boot (300) with corresponding arrangements of the mobile contacts (22) and of the pushers (60).
[0065] A cutaway view of a third embodiment of a cooling device according to the present disclosure is shown on
[0066] In some examples, each mobile contact (22) is mechanically connected to its corresponding pusher (60), for example through a flexible mechanical link or an articulated mechanical link between both. Hence, when the driving means (50) causes to drive the pushers (60) to move them in one radial direction or in the opposite radial direction, the pushers (60) will also drive their corresponding mobile contacts (22) in the same directions.
[0067] In the example of
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[0071] Whatever the embodiment, the mechanical transmission has a transmission ratio of R, wherein R is greater than one, or greater than five, or greater than ten. As is well known, the transmission ratio R of a mechanical transmission is the ratio Wi/Wo, wherein Wi is the input speed of the mechanical transmission, and Wo is the output speed of the mechanical transmission.
[0072] In some examples, the cooling device (1) is adapted, when in operation, to cool the first cold station (10) down to a temperature between 1 K and 100 K or between 1 K and 25 K, in some examples down to a temperature between 2 K and 10 K.
[0073] In some examples, the cooling device (1) is adapted, when in operation, to cool the second cold station (90) down to a temperature between 30 K and 100 K, in some examples down to a temperature between 30 K and 60 K.
[0074] The present disclosure also provides a charged particle accelerator (1000) comprising: [0075] a vacuum chamber (200); [0076] a main superconducting magnet (100) arranged into the vacuum chamber; [0077] a boot (300) housed into the vacuum chamber (200) and presenting an opening to the ambient; [0078] one or more thermal links between the superconducting magnet (100) and the boot (300) or part of the boot (300); and [0079] a cooling device as described herein and arranged into the boot (300).
[0080] As is known in the art of particle accelerators, the vacuum chamber (200) is sometimes called a cryostat, the cooling device (1) is sometimes called a cryocooler, and the main superconducting magnet is the electromagnet which imposes a trajectory of the charged particles while being gradually accelerated into the accelerator.
[0081] The thermal links are for example thermally conductive links, for example made of copper or aluminum, or liquid links, such as liquid helium for example, or a combination of those.
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[0084] In some examples, the charged particle accelerator (1000) is a cyclotron or a synchrocyclotron.
[0085] In the examples of
[0086] In other examples, the superconducting magnet may be arranged into an enclosure containing liquid Helium for example, the enclosure being housed into the vacuum chamber (200), preferably inside the heat shield (400). In such a case, the first thermal links (501) are thermally connected to a condenser arranged into the said enclosure to condense the Helium after it has evaporated due to its heating up by the superconducting magnet.
[0087] The present device has been described in terms of specific embodiments, which are illustrative and not to be construed as limiting. Reference numerals in the claims, if any, do not limit their protective scope. Use of the verbs to comprise, to include, to be composed of, or any other variant, as well as their respective conjugations, does not exclude the presence of elements other than those stated. Use of the article a, an or the preceding an element does not exclude the presence of a plurality of such elements.
[0088] The device according to the present disclosure may also be described as follows: a device for cooling an object (100) contained into a vacuum chamber (200), the object being a superconducting magnet for example. The cooling device (1) is insertable into and removable out of a boot (300) housed by the vacuum chamber (200), the boot or part of it being in thermal contact (conductive and/or convective) with the object to be cooled (100). A distal portion (4) of the cooling device (1) comprises a first cold station (10) and a first coupler (20) thermally connected to the first cold station (10). The first coupler (20) comprises at least two mobile contacts (22, 60) that are thermally connected to the first cold station (10), and the cooling device (1) comprises a driving means (50) and a mechanical transmission connecting the driving means (50) to the at least two mobile contacts (22, 60), the driving means (50) and the mechanical transmission being configured to move each of the at least two mobile contacts (22, 60) radially inwardly and outwardly in order to make or loosen a conductive thermal contact between the first cold station (10) and the boot (300) or part thereof.