1. A seat comprising:
a sitting portion frame;
a cushion material including a lower layer portion stretched in a front-rear direction on the sitting portion frame, and a surface layer portion layered on the lower layer portion and stretched on the sitting portion frame;
and
a tension adjusting mechanism that connects connection positions of the lower layer portion in to portions of the sitting frame that are lower than the connection positions, the connection positions being provided on the lower layer portion at locations corresponding to locations where ischial tuberosities of a person are located when the person is seated in the seat;
wherein:
the tension adjusting mechanism generates tensile force at a time when the person sits in the seat;
the surface layer portion includes portions between a central portion in a left-right direction which support the seated person and both end portions in the left-right direction, and which elongate in a left-right direction more easily than the central portion and the both end portions; and
the portions between the central portion in the left-right direction and both end portions in the left-right direction include elastic members which elongate more easily than the central portion and the both end portions.
2. The seat of claim 1, wherein the elastic members include a three-dimensional solid knit fabric.
3. The seat of claim 1, wherein left-right direction widths of the elastic members vary continuously along a front-rear direction of the sitting portion frame or a top-bottom direction of the back portion frame.
4. A seat comprising:
a back portion frame;
a cushion material including a lower layer portion stretched on the back portion frame at a portion corresponding to a region between a lower side of shoulder blades and a lumbar vertebrae region of a seated person, and a surface layer portion layered on the lower layer portion and stretched on the back portion frame; and
a tension adjusting mechanism that connects at least one connection position of the lower layer portion that is located further upward than beneath the shoulder blades and a connection position further downward than the lumbar vertebrae region to the back portion frame;
wherein:
the tension adjusting mechanism generates tensile force which pulls the lower layer portion rearward at a time of sitting;
the surface layer portion includes portions between a central portion in a left-right direction which support the seated person and both end portions in the left-right direction, and which elongate in a left-right direction more easily than the central portion and the both end portions; and
the portions between the central portion in the left-right direction and both end portions in the left-right direction include elastic members which elongate more easily than the central portion and the both end portions.
5. The seat of claim 4, wherein the elastic members include a three-dimensional solid knit fabric.
6. The seat of claim 4, wherein left-right direction widths of the elastic members vary continuously along a front-rear direction of the sitting portion frame or a top-bottom direction of the back portion frame.
7. A seat comprising:
a seat frame that includes a fixed frame and a movable frame provided at a rear portion of the fixed frame, the movable frame being able to move in a front-rear direction;
a cushion material that includes a cloth spring material with a front end portion that is anchored at the fixed frame and a rear end portion that is anchored at the movable frame, and a surface layer portion layered on the cloth spring material and stretched on the fixed frame;
an urging member provided between the fixed frame and the movable frame, the urging member urging the movable frame rearward and adding tension to the cloth spring material at a time when a person sits in the seat; and
a tension adjusting mechanism that connects connection positions of the cloth spring material to portions of the fixed frame that are rearward and downward with respect to the connection positions;
the connection positions are provided on the cloth spring material at locations outward and rearward with respect to locations where ischial tuberosities of a person are located when the person is seated in the seat;
wherein:
the tension adjusting mechanism generates tensile force at the time when the person sits in the seat;
the surface layer portion includes portions between a central portion in a left-right direction which support the seated person and both end portions in the left-right direction, and which elongate in a left-right direction more easily than the central portion and the both end portions; and
the portions between the central portion in the left-right direction and both end portions in the left-right direction include elastic members which elongate more easily than the central portion and the both end portions.
8. The seat of claim 7, wherein the elastic members include a three-dimensional solid knit fabric.
9. The seat of claim 7, wherein left-right direction widths of the elastic members vary continuously along a front-rear direction of the sitting portion frame or a top-bottom direction of the back portion frame.
10. The seat of claim 7, wherein a pushing member, which pushes the cloth spring material from a lower side at the time of sitting, is provided further forward than a front-rear direction central portion of the cloth spring material.
11. The seat of claim 10, wherein the pushing member includes a pushing plate which is formed in a rectangular shape that includes a width of substantially 100 mm and that is disposed in a left-right direction of the seat and that includes a rear end portion that is positioned from 250 mm to 350 mm forward of the connection positions, and an elastic member which is provided between the pushing plate and the fixed frame.
12. A seat comprising:
a frame; and
a sheet of a cloth spring material;
wherein:
a front end portion of the sheet is attached along its length to a front portion of the frame;
a rear end portion of the sheet is attached along its length to a rear portion of the frame;
the front portion of the frame is provided so that the front portion of the frame and the front end portion of the sheet remain fixed in location when the seat is in use;
the rear portion of the frame comprises a connecting portion and a torsion bar, the connecting portion being rotatable about the torsion bar;
the rear end portion of the sheet is attached to the connecting portion so that the rear end portion of the sheet and the connecting portion rotate about the torsion bar against a torsional load of the torsion bar when the seat is in use; and
rotation of the connecting portion about the torsion bar causes the location of the rear end portion of the sheet to change both in an up-down direction and a front-rear direction in accordance with a pushing force applied to the sheet so that a planar orientation of the sheet changes.
13. The seat of claim 12, further comprising:
at least one first spring member connected to the frame and to the sheet;
wherein:
the at least one first spring member is attached to the rear portion of the frame at a location above the connecting portion, the location being fixed when the seat is in use;
the at least one first spring member is attached to the sheet at a location forward of the rear end portion of the sheet;
the at least one first spring member acts to resist movement of the rear end portion of the sheet toward the front portion of the frame when the seat is in use.
14. The seat of claim 13, wherein the at least one first spring member comprises at least two extension coil springs attached to the sheet at respective locations equidistant from a center line of the sheet in a left-right direction.
15. The seat of claim 12, further comprising:
at least one second spring member connected to the frame and to the sheet;
wherein:
the at least one second spring member is attached to the rear portion of the frame at a location below the connecting portion, the location being fixed when the seat is in use;
the at least one second spring member is attached to the sheet at a location forward of the rear end portion of the sheet;
the at least one second spring member acts to resist movement of the rear end portion of the sheet toward the front portion of the frame when the seat is in use.
16. The seat of claim 15, wherein the at least one second spring member comprises at least two extension coil springs attached to the sheet at respective locations equidistant from a center line of the sheet in a left-right direction.
17. The seat of claim 15, wherein the at least one second spring member comprises at least one extension coil spring.
18. The seat of claim 12, further comprising:
a plate member; and
at least one third spring member;
wherein:
the plate member extends along a width of the seat beneath the sheet at a location rearward of the front end portion of the sheet;
the at least one third spring member is connected to the frame and the plate member;
the at least one third spring member pushes the plate member into a bottom surface of the sheet when the seat is in use.
19. The seat of claim 18, wherein:
the plate member comprises a pushing plate having a substantially rectangular shape when viewed from above and having a major dimension provided in a left-right direction; and
the at least one third spring member comprises a plurality of compression coil springs attached to the plate member at uniform intervals in the left-right direction.
20. The seat of claim 12, further comprising:
at least one fourth spring member;
wherein:
the at least one fourth spring member is connected to a side edge portion of the sheet and a side portion of the frame;
the at least one fourth spring member acts to resist movement of the side edge portion of the sheet toward a portion of the frame opposite from the side portion of the frame when the seat is in use.
21. The seat of claim 12, further comprising:
a cushion member; and
a surface skin;
wherein:
the cushion member is provided over a top surface of the sheet;
the surface skin is provide over a top surface of the cushion member; and
the cushion member comprises a three dimensional solid knit fabric.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A Faraday rotator comprising:
a magnetic field forming section configured to form a magnetic field at a predetermined magnetic flux density in a predetermined region;
a Faraday element disposed in the predetermined region; and
a first heat exhaust member, disposed on a side of one primary plane of the Faraday element, configured to form an optical contact surface with the Faraday element and configured to allow light at a predetermined wavelength to pass.
2. The Faraday rotator according to claim 1,
wherein the Faraday element is one of an InSb crystal, a Ge crystal, a CdCr2S4 crystal, a CoCr2S4 crystal, and an Hg1-xCdxTe crystal.
3. The Faraday rotator according to claim 1,
wherein the first heat exhaust member includes a material having a higher thermal conductivity than the Faraday element.
4. The Faraday rotator according to claim 1,
wherein the first heat exhaust member includes diamond.
5. The Faraday rotator according to claim 1, further comprising:
a second heat exhaust member, disposed on the side of the other primary plane of the Faraday element, configured to form an optical contact surface with the Faraday element and configured to allow light at a predetermined wavelength to pass.
6. The Faraday rotator according to claim 1,
wherein the magnetic field forming section is a hollow magnet in which a through-hole is provided; and
the Faraday element is disposed within the through-hole.
7. The Faraday rotator according to claim 6, further comprising:
a movement mechanism configured to move the Faraday element along a direction of a line of magnetic force formed by the magnetic field forming section.
8. The Faraday rotator according to claim 1, further comprising:
a cooling mechanism configured to cool the first heat exhaust member.
9. A Faraday rotator comprising:
a magnetic field forming section configured to form a magnetic field at a predetermined magnetic flux density in a predetermined region;
a Faraday element disposed in the predetermined region;
a first anti-reflective film formed on one primary plane of the Faraday element; and
a first heat exhaust member, disposed on the opposite side of the Faraday element to the first anti-reflective film, configured to form an optical contact surface with the first anti-reflective film and configured to allow light at a predetermined wavelength to pass.
10. The Faraday rotator according to claim 9, further comprising:
a second anti-reflective film formed on the primary plane of the first heat exhaust member that is on the opposite side to the primary plane that faces the Faraday element.
11. The Faraday rotator according to claim 9, further comprising:
a third anti-reflective film formed on the other primary plane of the Faraday element; and
a second heat exhaust member, disposed on the opposite side of the Faraday element to the third anti-reflective film, configured to form an optical contact surface with the third anti-reflective film and configured to allow light at a predetermined wavelength to pass.
12. The Faraday rotator according to claim 11, further comprising:
a fourth anti-reflective film formed on the primary plane of the second heat exhaust member that is on the opposite side to the primary plane that faces the Faraday element.
13. An optical isolator comprising:
the Faraday rotator according to claim 1;
a first polarizer disposed upstream from the Faraday rotator and configured to allow light of a first polarization direction to pass; and
a second polarizer disposed downstream from the Faraday rotator and configured to allow light of a second polarization direction to pass,
the Faraday rotator being configured to rotate the polarization direction of first laser beam entering via the first polarizer and the polarization direction of second laser beam entering via the second polarizer from the opposite side to the first laser beam by substantially 45\xb0 in a predetermined rotation direction central to an optical path of the first laser beam; and
a plane of incidence of the first laser beam on the second polarizer being tilted substantially 45\xb0 in the predetermined rotation direction relative to a plane of incidence of the first laser beam on the first polarizer.
14. An optical isolator comprising:
the Faraday rotator according to claim 9;
a first polarizer disposed upstream from the Faraday rotator and configured to allow light of a first polarization direction to pass; and
a second polarizer disposed downstream from the Faraday rotator and configured to allow light of a second polarization direction to pass,
the Faraday rotator being configured to rotate the polarization direction of first laser beam entering via the first polarizer and the polarization direction of second laser beam entering via the second polarizer from the opposite side to the first laser beam by substantially 45\xb0 in a predetermined rotation direction central to an optical path of the first laser beam; and
a plane of incidence of the first laser beam on the second polarizer being tilted by substantially 45\xb0 in the predetermined rotation direction relative to a plane of incidence of the first laser beam on the first polarizer.
15. A laser apparatus comprising:
a master oscillator configured to output laser beam at a predetermined wavelength;
one or more amplifiers disposed in an optical path of the laser beam outputted from the master oscillator; and
at least one optical isolator according to claim 13, disposed in the optical path of the laser beam outputted from the master oscillator and upstream from at least one of the one or more amplifiers.
16. A laser apparatus comprising:
a master oscillator configured to output laser beam at a predetermined wavelength;
one or more amplifiers disposed in an optical path of the laser beam outputted from the master oscillator; and
at least one optical isolator according to claim 14, disposed in the optical path of the laser beam outputted from the master oscillator and upstream from at least one of the one or more amplifiers.
17. An extreme ultraviolet light generation apparatus comprising:
the laser apparatus according to claim 15;
a chamber;
a target supply system, attached to the chamber, and configured to supply a target material to the interior of the chamber; and
a focusing optical element configured to focus pulsed laser beam outputted from the laser apparatus at a predetermined region within the chamber.
18. An extreme ultraviolet light generation apparatus comprising:
the laser apparatus according to claim 16;
a chamber;
a target supply system, attached to the chamber, and configured to supply a target material to the interior of the chamber; and
a focusing optical element configured to focus pulsed laser beam outputted from the laser apparatus at a predetermined region within the chamber.