1. A method of providing home care for a physically impaired person, comprising:
controlling a patient lift system to automatically move the physically impaired person in a horizontal direction between separate facilities of a room without exertion from the physically impaired person.
2. The method as set forth in claim 1, wherein controlling the patient lift system comprises operating a motor lift assembly that is motor powered and configured to move a patient between the separate facilities of the room.
3. The method of claim 2, wherein operating the motor lift assembly comprises carrying the motor lift assembly on a sliding transverse beam.
4. The method of claim 3, wherein carrying the motor lift assembly comprises moving the motor lift assembly along the sliding transverse beam.
5. The method of claim 4, wherein moving the motor lift assembly comprises moving the sliding transverse beam along oppositely positioned horizontal beams.
6. The method of claim 5, wherein controlling the patient lift system comprises controlling a position of the motor lift assembly along the sliding transverse beam and a position of the sliding transverse beam along the oppositely positioned horizontal beams.
7. The method of claim 1, wherein controlling the patient lift system comprises automatically moving the physically impaired person between a portable shower stall and a portable commode.
8. A method of providing for a physically impaired person, comprising:
controlling a patient lift system to move the impaired person between separate facilities of a room without exertion from the physically impaired person, wherein the patient lift system includes a frame having a plurality of posts for supporting the frame and each of the posts having an end that extends freely from a portion of the frame.
9. The method as set forth in claim 8, wherein controlling the patient lift system comprises automatically moving the physically impaired person in a horizontal direction between separate facilities of the room.
10. A home care facility, comprising:
a patient lift system configured to automatically move a physically impaired person in a horizontal direction between separate facilities of a room without exertion from the physically impaired person.
11. The home care facility of claim 10, further comprising a controller configured to control movement of the patient lift system in the horizontal direction between the separate facilities of the room.
12. The home care facility of claim 10, wherein the patient lift system includes a free-standing frame operable without attachment to a wall or ceiling of the room where the physically impaired person is located.
13. The home care facility of claim 12, wherein the frame includes a plurality of posts for supporting the frame and each of the posts having an end that extends freely from a portion of the frame.
14. The home care facility of claim 13, wherein the plurality of posts are disposed at respective corners of the frame.
15. The home care facility of claim 12, wherein the frame comprises a plurality of horizontal beams constructed to be disposed at an upper region of the frame.
16. The home care facility of claim 12, wherein the frame is supported by a floor, a ceiling or wall of the room.
17. The home care facility of claim 10, wherein the separate facilities of the room are located under a travel area of the patient lift system.
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 production method of a multilayer clad material, comprising:
a rolling step of obtaining a laminated plate by clad rolling a first metallic plate and a second metallic plate made of dissimilar metallic materials or same metallic material in a superposed manner at a rolling reduction of 25% to 85%;
a surface activation treatment step of subjecting at least a joint scheduled surface of the laminated plate and at least a joint scheduled surface of a third metallic plate to a surface activation treatment in vacuum; and
a cold pressure welding step of, after performing the surface activation treatment, in vacuum, cold pressure welding the laminated plate and the third metallic plate by and between a pair of pressure rolls so that a rolling reduction becomes 0.1% to 15% in a superposed manner that the joint scheduled surface of the laminated plate and the joint scheduled surface of the third metallic plate are in contact with each other.
2. The production method of a multilayer clad material as recited in claim 1, wherein
a thickness of the first metallic plate is 0.5 to 2.0 times a thickness of the second metallic plate, and
a thickness of the third metallic plate is over 2.0 times or less than 0.5 times a thickness of the second metallic plate.
3. The production method of a multilayer clad material as recited in claim 1, wherein a thickness of at least one of metallic plates between the first metallic plate and the second metallic plate is 100 \u03bcm or less.
4. A production method of a multilayer clad material, comprising:
a rolling step of obtaining a laminated plate by clad rolling a nickel plate and a titanium plate in a superposed manner at a rolling reduction of 25% to 85%;
a surface activation treatment step of subjecting at least a surface of the titanium plate of the laminated plate and at least a joint scheduled surface of an aluminum plate to a surface activation treatment in vacuum; and
a cold pressure welding step of, after performing the surface activation treatment, in vacuum, cold pressure welding the laminated plate and the aluminum plate by and between a pair of pressure rolls so that a rolling reduction becomes 0.1% to 15% in a superposed manner that the surface of the titanium plate of the laminated plate and a joint scheduled surface of the aluminum plate are in contact with each other.
5. The production method of a multilayer clad material as recited in claim 4, wherein
a thickness of the nickel plate is 0.5 to 2.0 times a thickness of the titanium, and
a thickness of the aluminum plate is over 2.0 times or less than 0.5 times a thickness of the titanium plate.
6. The production method of a multilayer clad material as recited in claim 4, wherein
a thickness of the nickel plate is 10 to 100 \u03bcm,
a thickness of the titanium plate is 5 to 30 \u03bcm, and
a thickness of the aluminum plate is within a range of over 60 \u03bcm to 10 mm or less.
7. A production method of a multilayer clad material, comprising:
a first rolling step of obtaining a first laminated plate by clad rolling a first metallic plate and a second metallic plate made of dissimilar metallic materials or same metallic material in a superposed manner at a rolling reduction of 25% to 85%;
a second rolling step of obtaining a second laminated plate by clad rolling a third metallic plate and a fourth metallic plate made of dissimilar metallic materials or same metallic material in a superposed manner at a rolling reduction of 25% to 85%;
a surface activation treatment step of subjecting at least a joint scheduled surface of the first laminated plate and at least a joint scheduled surface of a second laminated plate to a surface activation treatment in vacuum; and
a cold pressure welding step of, after performing the surface activation treatment, in vacuum, cold pressure welding the first laminated plate and the second laminated plate by and between a pair of pressure rolls so that a rolling reduction becomes 0.1% to 15% in a superposed manner that the joint scheduled surface of the first laminated plate and the joint scheduled surface of the second laminated plate are in contact with each other.
8. The production method of a multilayer clad material as recited in claim 7, wherein
a thickness of the first metallic plate is 0.5 to 2.0 times a thickness of the second metallic plate,
a thickness of the fourth metallic plate is 0.5 to 2.0 times a thickness of the third metallic plate, and
a thickness of the third metallic plate is over 2.0 times or less than 0.5 times a thickness of the second metallic plate.
9. The production method of a multilayer clad material as recited in claim 7, wherein a thickness of at least one metallic plate among the first to fourth metallic plates is 100 \u03bcm or less.
10. A production method of a multilayer clad material, comprising:
a first rolling step of obtaining a first laminated plate by clad rolling a nickel plate and a titanium plate in a superposed manner at a rolling reduction of 25% to 85%;
a second rolling step of obtaining a second laminated plate by clad rolling an aluminum plate and a brazing plate in a superposed manner at a rolling reduction of 25% to 85%;
a surface activation treatment step of subjecting at least a surface of the titanium plate of the first laminated plate and at least a surface of the aluminum plate of the second laminated plate to a surface activation treatment in vacuum; and
a cold pressure welding step of, after performing the surface activation treatment, in vacuum, cold pressure welding the first laminated plate and the second laminated plate by and between a pair of pressure rolls at a rolling reduction of 0.1% to 15% in a superposed manner that a surface of the titanium plate of the first laminated plate and a surface of the aluminum plate of the second laminated plate are in contact with each other.
11. The production method of the multilayer clad material as recited in claim 10, wherein
a thickness of the nickel plate is 0.5 to 2.0 times a thickness of the titanium plate,
a thickness of the brazing plate is 0.5 to 2.0 times a thickness of the aluminum plate, and
a thickness of the aluminum plate is over 2.0 times or less than 0.5 times a thickness of the titanium plate.
12. The production method of the multilayer clad material as recited in claim 10, wherein
a thickness of the nickel plate is 10 \u03bcm to 100 \u03bcm, a thickness of the titanium plate is 5 \u03bcm to 30 \u03bcm,
a thickness of the aluminum plate is within a range of over 60 \u03bcm to 10 mm or less, and
a thickness of the brazing plate is 10 \u03bcm to 60 \u03bcm.
13. The production method of the multilayer clad material as recited in claim 1, wherein the surface activation treatment is plasma etching processing.
14. The production method of the multilayer clad material as recited in claim 1, wherein a temperature of the pressure rolls at a time of the cold pressure welding in the cold pressure welding step is within a range of 10\xb0 C. to 80\xb0 C.
15. The production method of the multilayer clad material as recited in claim 1, wherein the rolling reduction of the clad rolling in the rolling step is 45% to 65%.
16. The production method of the multilayer clad material as recited in claim 1, wherein the multilayer clad material is a multilayered material for insulating substrates.