VIBRATION ISOLATOR FOR SUPPORTING A PAYLOAD
20230085971 · 2023-03-23
Inventors
- Galip Tuna TURKBEY (Veldhoven, NL)
- Bert VAN LIEROP (Veldhoven, NL)
- Alex VAN LANKVELT (Veldhoven, NL)
- Erik LOOPSTRA (Ederheim Huernheim, DE)
- Ahmet Levent AVSAR (Veldhoven, NL)
Cpc classification
F16F15/0232
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16F2224/048
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A vibration isolator (10) for supporting a payload and isolating the payload from vibrations has: a pressurized gas compartment (24) formed with a rigid base structure (28), which base structure has an opening (32) covered with a flexible membrane (20) having an inner surface (21) facing into the gas compartment and an outer surface (22) facing in the opposite direction, a support member (12) for supporting the payload, which support member is arranged in contact with the outer surface (22) of the membrane, and a clamping member (62) arranged at the inner surface (21) of the membrane, wherein the support member and the clamping member form a clamping system (66), which system includes at least one magnetic element (64) effecting the membrane to be pressed against the support member.
Claims
1. Vibration isolator for supporting a payload and isolating the payload from vibrations, comprising: a pressurized gas compartment formed with a rigid base structure, which base structure has an opening covered with a flexible membrane having an inner surface facing towards the gas compartment and an outer surface facing in a direction facing away from the gas compartment, a support member configured to support the payload, which support member is arranged in contact with the outer surface of the membrane, and a clamping member arranged at the inner surface of the membrane, wherein the support member and the clamping member form a clamping system, which system comprises at least one magnetic element effecting a force pressing the membrane against the support member.
2. Vibration isolator according to claim 1, wherein the magnetic element is configured as a permanent magnet.
3. Vibration isolator according to claim 1, wherein the magnetic element is comprised by the clamping member.
4. Vibration isolator according to claim 1, wherein the clamping member is ring shaped.
5. Vibration isolator according to claim 1, wherein a first one of the members of the clamping system comprises the magnetic element and a second one of the members comprises a magnet target arranged opposite to the magnetic element, and wherein the clamping system is configured to enable magnetic attraction between the magnetic element and the magnet target.
6. Vibration isolator according to claim 5, wherein the first member of the clamping system comprises several magnetic elements arranged along a rim of the first member.
7. Vibration isolator according to claim 5, wherein the first member of the clamping system is the clamping member and the second member of the clamping system is the support member.
8. Vibration isolator according to claim 1, wherein the clamping system comprises at least two magnetic elements arranged with opposite magnetic orientations.
9. Vibration isolator according to claim 1, wherein the clamping system comprises at least four magnetic elements arranged with alternating magnetic orientations.
10. Vibration isolator according to claim 1, wherein a clamping force between the support member and the clamping member is at least 500N.
11. Vibration isolator according to claim 1, wherein a coefficient of static friction between the support member and the membrane is at least 0.1.
12. Vibration isolator according to claim 1, wherein a pressure in the gas compartment is at least 2 bar higher than an ambient pressure.
13. Vibration isolator according to claim 1, which is configured to operate in a vacuum.
14. Vibration isolator according to claim 1, further comprising a damping chamber which is connected to the gas compartment via a restriction and/or via a valve.
15. Vibration isolator according to claim 14, wherein the damping chamber is connected to a pressure supply line.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0028] The above and further advantageous features of the invention are illustrated in the following detailed description of exemplary embodiments according to the invention with reference to the accompanying schematic drawings. In the drawing:
[0029]
[0030]
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034] In the exemplary embodiments or embodiments or embodiment variants described below, elements which are functionally or structurally similar to one another are provided with the same or similar reference signs as far as possible. Therefore, for understanding the features of the individual elements of a specific exemplary embodiment, reference should be made to the description of other exemplary embodiments or the general description.
[0035] In order to facilitate the description, a Cartesian xyz-coordinate system is indicated in the drawing, from which system the respective positional relationship of the components illustrated in the figures is evident. In
[0036]
[0037] Such a measuring setup may configured as an interferometric system. The vibration isolator 10 may be arranged in such a measuring setup to isolate the optical element to be tested from vibrations, i.e. the vibration isolator may be placed on a housing or base frame of the measurement setup and the optical element including its mount may be placed as payload on the vibration isolator. Other optical elements of the measurement setup may also be placed on a vibration isolator 10 in order to isolate the entire optical measurement path within the measurement setup from vibrations. Further, at least one vibration isolator may be contained within a microlithographic projection exposure tool, e.g. to isolate the projection objective or another optical system from vibrations. Such vibrations may especially be caused by the movement of stages used in the projection exposure tool to move a reticle and a wafer during the exposure process.
[0038] The vibration isolator 10 according to
[0039] The support member 12 further comprises a contact surface 18, in
[0040] The vibration isolator 10 further comprises a pressurized gas compartment 24, a pressure supply device 26, a rigid base structure 28, and a bracket 30. The pressurized gas compartment 24 can be filled with pressurized air or any other pressurized gas or gas mixture. The gas compartment 24 is formed by the base structure 28 and the membrane 20.
[0041] The base structure 28 according to
[0042] The membrane 20 is attached to the shoulder area 40, e.g. by bolts 42 or screws as shown in
[0043] The bottom part 46 of the base structure 28 within the circle formed by the sidewall 36 forms a floor of the gas compartment 24. The base structure 28, in the embodiment according to
[0044]
[0045] As mentioned above, in the operating state the support member 12 is freely floating within the space provided between the base structure 28 the bracket 30, i.e. in this state there is a gap 56 in z-direction between a protrusion 54 of the support member 12 and the ring-shaped section 52 of the base structure 28. The protrusion 54 is also ring-shaped around the axis 16. Further, there is a gap 58 in z-direction between the protrusion 54 of the support member 12 and the bracket 30. Additionally, there is a gap 60 extending perpendicular to the z-direction between the protrusion 54 of the support member 12 and the bracket 30. In the cross-section shown in
[0046]
[0047] It is important that the support member 12 remains centered within the ring-shaped bracket 30 during operation of the vibration isolator 10 and also when performing several cycles of inflating and deflating the gas compartment 24, i.e. switching back and forth between the states shown in
[0048] In order to avoid having the horizontal shearing forces cause a displacement of the support member 12 relative to the membrane 20, according to an aspect of the invention, a clamping member 62, comprising at least one magnetic element 64 in form of a permanent magnet and a housing structure 65, is arranged to press the membrane 20 against the contact surface 18 of the support member 12 and therewith fix the support member 12 and the membrane 20 to each other by friction.
[0049] A displacement of the support member 12 relative to the membrane 20 would result in a misalignment of the support member 12 within the vibration isolator 10, which could cause the protrusion 54 to make contact with the bracket 30 and/or the section 52 of the base structure 28. Such a misalignment could cause a malfunction of the vibration isolator 10, i.e. the efficiency of the vibration dampening function of the vibration isolator 10 could be reduced or may disappear completely.
[0050] The clamping member 62 and the support member 12 together form a clamping system 66.
[0051] As depicted in
[0052] According to an embodiment the same number of magnetic targets 68 are included in the support member 12 as there are magnetic elements 64 in the clamping member 62. Further, each of the magnet targets 68 is arranged opposite of a respective magnetic element 64 on the contact surface 18 side of the support member 12. That means, the magnet targets 68 and the magnetic elements 64 are respectively aligned to one another, being separated only by the membrane 20. The magnet targets 68 are arranged in recesses in the main body of the support member 12 and attached to the main body by bolts 70, such that the lower surface of the main body and the magnet targets 48 form an even surface acting as the contact surface 18.
[0053] The main body of the support member 12 may e.g. be made from aluminum. In case no separate magnet targets 68 are provided in the support member 12 the entire support member 12 may be made from a ferromagnetic material and therefore act as the magnet target itself.
[0054] At least one magnet target 68 may be of a material that can be magnetized, e.g. of a ferro-magnetic material such as steel. Alternatively, the magnet target 68 may be a permanent magnet itself arranged such that its magnetic direction is oriented opposite to the magnetic direction of the magnetic element 64.
[0055] According to an embodiment the magnetic elements 64 depicted in
[0056] The alternating orientation increases the effective magnetic clamping force between the support member 12 and the clamping member 62. According to an embodiment the magnetic force between each magnetic element 64 and the respective magnet target 68 may be on the order of 500 N, resulting in a clamping force between the support member 12 and the clamping member 62 for the embodiment according to
[0057]
[0058] The provision of the damping chamber 74 allows the gas from the gas compartment 24 to flow back and forth between the gas compartment 24 and the damping chamber 74 when compensating for vibrations with a large amplitude, which improves the vibration isolation properties of the vibration isolator 10.
[0059] The above description of exemplary embodiments, embodiments or embodiment variants is to be understood to be by way of example. The disclosure effected thereby firstly enables the person skilled in the art to understand the present invention and the advantages associated therewith, and secondly encompasses alterations and modifications of the described structures and methods that would be within the skill and understanding of the person skilled in the art. Therefore, all such alterations and modifications, insofar as they fall within the scope of the invention in accordance with the definition in the accompanying claims, and equivalents are intended to be covered by the protection of the claims.
LIST OF REFERENCE SIGNS
[0060] 10 vibration isolator [0061] 12 support member [0062] 14 support surface [0063] 16 axis [0064] 18 contact surface [0065] 20 membrane [0066] 21 inner surface [0067] 22 outer surface [0068] 24 gas compartment [0069] 26 pressure supply device [0070] 28 base structure [0071] 30 bracket [0072] 32 first cutout [0073] 34 second cutout [0074] 36 sidewall of first cutout [0075] 38 sidewall of second cutout [0076] 40 shoulder area [0077] 42 bolt [0078] 44 bulged section [0079] 46 bottom part [0080] 48 opening [0081] 50 pressure supply line [0082] 53 bolt [0083] 52 top ring-shaped section of the base structure [0084] 54 protrusion [0085] 56 gap [0086] 58 gap [0087] 60 gap [0088] 62 clamping member [0089] 64 magnetic element [0090] 65 housing structure [0091] 66 clamping system [0092] 67a first magnetic orientation [0093] 67b second magnetic orientation [0094] 68 magnet target [0095] 70 bolt [0096] 72 rim [0097] 74 damping chamber [0098] 76 connection line [0099] 78 throttle valve