1461161336-216d8a73-2152-495b-b2a6-948261cd9eef

1. A method for the stimulation of integumental melanocytes in a mammal, which comprises the steps of:
(i) administering to said mammal an amount of alpha-MSH or an alpha-MSH analogue effective to stimulate melanocytes in the skin or other epidermal tissue; and
(ii) exposing said skin or other epidermal tissue to ultraviolet (UV) irradiation.
2. A method for stimulating melanin production in a mammal, which comprises the steps of:
(i) administering to said mammal an amount of alpha-MSH or an alpha-MSH analogue effective to stimulate melanin production in the skin or other epidermal tissue; and
(ii) exposing said skin or other epidermal tissue to ultraviolet (UV) irradiation.
3. A method for inducing tanning in a mammal, which comprises the steps of:
(i) administering to said mammal an amount of alpha-MSH or an alpha-MSH analogue effective to induce tanning in the skin or other epidermal tissue; and
(ii) exposing said skin or other epidermal tissue to ultraviolet (UV) irradiation.
4. The method according to claim 1, wherein said mammal is a human.
5. A method for inducing skin tanning in a human which comprises the steps of:
(i) administering to said human an amount of alpha-MSH or an alpha-MSH analogue effective to induce tanning in the skin or other epidermal tissue; and
(ii) exposing said skin or other epidermal tissue to ultraviolet (UV) irradiation.
6. The method according to claim 1, wherein the alpha-MSH analogue is a compound of the formula:
R1-W-X-Y-Z-R2

wherein
R1 is selected from the group consisting of Ac-Gly-, Ac-Met-Glu-, Ac-Nle-Glu-, and Ac-Tyr-Glu-;
W is selected from the group consisting of -His-and -D-His-;
X is selected from the group consisting of -Phe-, -D-Phe-, -Tyr-, -D-Tyr-, and -(pNO2)D-Phe7-;
Y is selected from the group consisting of -Arg- and -D-Arg-;
Z is selected from the group consisting of -Trp- and -D-Trp-; and
R2 is selected from the group consisting of \u2014NH2; -Gly\u2014NH2; and -Gly-Lys\u2014NH2.
7. The method according to claim 1, wherein the alpha-MSH analogue is a compound selected from the group consisting of:
D-Phe7-alpha-MSH
Nle4, D-Phe7-alpha-MSH
D-Ser1, D-Phe7-alpha-MSH
D-Tyr2, D-Phe7-alpha-MSH
D-Ser3, D-Phe7-alpha-MSH
D-Met4, D-Phe7-alpha-MSH
D-Glu5, D-Phe7-alpha-MSH
D-His6, D-Phe7-alpha-MSH
D-Phe7, D-Arg7-alpha-MSH
D-Phe7, D-Trp9-alpha-MSH
D-Phe7, D-Lys11-alpha-MSH
D-Phe-7, D-Pro12-alpha-MSH
D-Phe7, D-Val13-alpha-MSH
D-Ser1, Nle4, D-Phe7-alpha-MSH
D-Tyr2, Nle4, D-Phe7-alpha-MSH
D-Ser3, Nle4, D-Phe7-alpha-MSH
Nle4, D-Glu5, D-Phe7-alpha-MSH
Nle4, D-His6, D-Phe7-alpha-MSH
Nle4, D-Phe7, D-Arg8-alpha-MSH
Nle4, D-Phe7, D-Trp9-alpha-MSH
Nle4, D-Phe7, D-Lys11-alpha-MSH
Nle4, D-Phe7, D-Pro12-alpha-MSH
Nle4, D-Phe7, D-Val13-alpha-MSH
cCys4, Cys10-alpha-MSH
cCys4, D-Phe7, Cys10-alpha-MSH
cCys4, Cys11-alpha-MSH
cCys5, Cys10-alpha-MSH
cCys5, Cys11-alpha-MSH
cCys4, Cys10-alpha-MSH4-13
cCys4, Cys10-alpha-MSH4-12
Nle4, D-Phe7-alpha-MSH4-10
Nle4, D-Phe7-alpha-MSH4-11
D-Phe7-alpha-MSH5-11
Nle4, D-Tyr7-alpha-MSH4-11
(pNO2)D-Phe7-alpha-MSH4-11
Tyr4, D-Phe7-alpha-MSH4-10
Tyr4, D-Phe7-alpha-MSH4-11
Nle4-alpha-MSH4-11
Nle4, (pNO2)D-Phe7-alpha-MSH4-11
Nle4, D-His6-alpha-MSH4-11
Nle4, D-His6, D-Phe7-alpha-MSH4-11
Nle4, D-Arg8-alpha-MSH4-11
Nle4, D-Trp9-alpha-MSH4-11
Nle4, D-Phe7, D-Trp9-alpha-MSH4-11
Nle4, D-Phe7-alpha-MSH4-9 and
Nle4, D-Phe7, D-Trp9-alpha-MSH4-9
8. The method according to claim 7, wherein the alpha-MSH analogue is a compound selected from the group consisting of:
Nle4, D-Phe7-alpha-MSH
Nle4, D-Phe7-alpha-MSH4-10
Nle4, D-Phe7-alpha-MSH4-11
Nle4, D-Phe7, D-Trp9-alpha-MSH4-11 and
Nle4, D-Phe7-alpha-MSH4-9
9. The method according to claim 8, wherein the alpha-MSH analogue is Nle4, D-Phe7-alpha-MSH.
10. The method according to claim 1, wherein said step of exposing to UV irradiation is carried out subsequent to said step of administration of alpha-MSH or an alpha-MSH analogue.
11. The method according to claim 1, wherein said administration is oral, parenteral or transdermal administration.
12. The method according to claim 1, wherein said ultraviolet (UV) irradiation consists essentially of or comprises UV-B irradiation.
13-17. (canceled)

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 foam proportioning system powered by a battery, the system comprising:
a pump with a pump motor; and
a solid state contactor including a battery terminal connected to the battery, a load terminal connected to the pump motor, and an enable switch selectively connecting the battery terminal and the load terminal in order to form a power line carrying a current from the battery to the pump motor;
a state of the enable switch being based on the current being drawn through the power line by the pump motor;
the enable switch being closed in order for the solid state contactor to provide power to the pump motor when the current through the power line is between about zero amps and about 80 amps.
2. The system of claim 1 wherein the solid state contactor can withstand current through the power line of up to about 1200 amps for about 500 milli-seconds.
3. The system of claim 1 wherein the solid state contactor removes power from the pump motor if the pump motor attempts to draw greater than about 80 amps for longer than about 500 milli-seconds.
4. The system of claim 1 wherein the pump motor is a 24-volt direct current motor.
5. The system of claim 1 wherein the battery provides between about 10 volts to about 29 volts.
6. The system of claim 1 wherein the solid state contactor provides power to the pump motor when an input voltage from the battery is between about 9 volts and about 28 volts.
7. The system of claim 1 wherein the solid state contactor can remove power from the pump motor when an input voltage from the battery is less than about 8 volts.
8. The system of claim 1 wherein the solid state contactor can provide power within about 25 milli-seconds and can remove power within about 2 milli-seconds.
9. The system of claim 1 wherein at least one of the battery terminal and the load terminal is constructed of at least one of stainless steel and bronze.
10. The system of claim 1 wherein at least one of the battery terminal and the load terminal is covered by a rubber protective terminal boot.
11. The system of claim 1 wherein the solid state contactor includes a thermal transfer material on at least one side that is mounted to a metal mounting surface for heat dissipation.
12. The system of claim 1 wherein the enable switch is one of a ground-actuated toggle switch and a dry contact relay.
13. The system of claim 1 wherein the solid state contactor can operate in a temperature range of about negative 40 degrees Fahrenheit to about positive 160 degrees Fahrenheit.
14. The system of claim 1 wherein the solid state contactor draws up to about 15 milli-amps during operation of the pump motor.
15. The system of claim 1 wherein the solid state contactor draws an activation current of up to about 30 milli-amps.
16. The system of claim 1 wherein a resistance between the load terminal and the battery terminal is less than or equal to about 1 milli-ohm when power is provided to the pump motor.
17. The system of claim 1 wherein a resistance between the load terminal and the battery terminal is greater than or equal to about 250 kilo-ohms when power is removed from the pump motor.
18. The system of claim 1 and further comprising a capacitor connected to the pump motor; and wherein the solid state contactor gradually charges the capacitor when the pump motor is turned on in order to prevent arcing.
19. The system of claim 18 wherein the capacitor is about 82,000 micro-farads.
20. The system of claim 18 wherein the capacitor draws a larger input current for about 200 milli-seconds after the pump motor is started.
21. The system of claim 1 wherein the solid state contactor removes power from the pump motor within about 25 milli-seconds if the current is between about 80 amps and about 250 amps.
22. The system of claim 1 wherein the solid state contactor removes power from the pump motor within about 5 milli-seconds if the current is greater than about 250 amps.

1461161324-94171864-406e-4135-8d00-c2e62558fefa

1. A method for recognizing, collecting and repositioning objects, which objects (1) exhibit non-predetermined dimensional characteristics and are arranged on a support surface (2), which method is realized by means of a gripper group (30) which moves in at least a longitudinal direction relative to an object (1) to be handled, a direction towardsaway from the object (1), and a direction of height adjustment relative to the object (1), the gripper group (30) being controlled by a computerized control unit, which method being characterized in that it includes any suitable combination of following operating stages:
approaching and recognizing a said object (1), comprising an approach to the object (1) by an approximately-set mobile gripper group (30), which approaching and recognizing is performed with assistance of positional information stored in the control unit; identification of the outline of the object (1), by a perpendicular three-dimensional scanning, performed using sequences of displacements of the gripper unit (30) by means for gauging punctual distances (50), which means are arranged at least one finger (35, 36) of the gripper group (30), and by a presence sensor means (55) for detecting the depth of the object, which presence sensor means (55) is arranged at a top of the fingers (35, 36) of the gripper group (30);
gripping the object (1), including an operation performed by the gripper group (30) for progressively tightening the object (1) until a predetermined intensity of grip is reached, which intensity of grip depends on physical characteristics of the object (1);
collecting the object (1), including operations of lifting and moving the object (1);
releasing the object (1), including: operations in which the gripper group (30) approaches a support surface (2); moving the gripper group (30) until the object (1) makes contact with the support surface (2); opening the fingers (35, 36) of the mobile gripper group (30) until contact with the object (1) is lost; and
extracting the fingers (35, 36) from the place where the object (1) is located.
2. The method of claim 1, characterized in that the identification of the outline of the object (1) comprises acquiring a set of punctual distance data regarding the object (1) by the means for gauging punctual distance (50), the positioning on the various points of acquisition being obtained through movements of the fingers (35, 36) of the mobile gripper unit (30) along trajectories controlled by the control unit, and processing of this information by the control unit to obtain the dimensional outline and distance of the object from the gripper group (30).
3. The method of claim 2, characterized in that the points of acquisition are organized in a grid fashion having a predefined step.
4. The method of claim 1, characterized in that identifying the outline of the object (1) comprises acquisition, via the presence sensor means (55), of data regarding a depth of the object (1), in a form of presence or absence of a signal which is transmitted and received respectively by a transmitter and a receiver belonging to the presence sensor means (55).
5. The method of claim 4, characterized in that the signal is a light signal.
6. The method of claim 1, characterized in that in the gripping stage, the object (1) is gripped by the gripping fingers (35, 36) with interpositioning of at least one oscillating rod (350), which is provided in the inner surface of the fingers (35, 36).
7. The method of claim 6, characterized in that a said oscillating rod (350) is provided for each finger (35, 36).
8. The method of claim 1, characterized in that, in the gripping stage, the intensity of grip exerted on an object (1) by the gripping fingers (35, 36) of the mobile gripper group (30) is controlled by the control unit in at least two different ways, depending on the dimensions of the object (1) to be collected.
9. The method of claim 8, characterized in that, in order to grip objects of small dimensions, grip intensity is controlled by reading a pressure exerted on the object (1), the reading being shown on load gauging means (355) arranged at a distal portion of at least one of the gripper fingers (35, 36).
10. The method of claim 9, characterized in that the load measuring means (355) are operated with interpositioning of an outer arm (351) of a oscillating rod (350).
11. The method of claim 8, characterized in that, to grip objects (1) of large dimensions, the intensity of grip is controlled by reading a value of a current feedback signal of a motor activating the gripper fingers (35, 36).
12. The method of claim 1, characterized in that the lifting operation comprises an initial lifting stage of the object (1) by the gripper group (30), in which initial lifting stage control of slippage of the object (1) is provided by mobile anti-fall support means (60), arranged below the gripper group (30).
13. The method of claim 12, characterized in that the movement of the anti-fall support means (60) is independent of the movement of the mobile gripper unit (30).
14. The method of claim 1, characterized in that the approach part of the release stage comprises a first moving of the object (1) to a raised position of the object (1) itself above the support surface (2), and a subsequent withdrawal operation of the anti-fall support means (60) from the base of the object (1), up until disengagement of the anti-fall support means (60) from the object (1).
15. A device for recognizing, collecting and repositioning objects, which objects exhibit non-predetermined dimensional characteristics and are arranged on a support surface (2), the device (10) being provided with degrees of freedom corresponding to at least a direction of longitudinal movement with respect to an object (1) to be handled, a direction of movement towardsaway from the object (1), and a direction of adjustment of the height relative to the object (1), the device (10) also being controlled by a computerized control unit, which device (10) is characterized in that it comprises: a support (20); a mobile gripper group (30), associated to the support and mobile relative to the support in at least a first direction, the gripper group (30) being provided with at least a pair of fingers (35, 36) positioned facing one another, which are mobile in the second direction, and which can open and close with respect to one another in order respectively to grip and release an object (1), the fingers (35, 36) also being mobile together in a third direction towardsaway from the object (1); means for measuring punctual distance (50), which are arranged at least a finger of the gripper group (30) and which perform punctual gauging of a distance between a distal end of the finger (35) and the object (1) in order to enable, in cooperation with suitable sequences of movements of the fingers (35, 36), performance of an orthogonal three-dimensional scan of the object (1); presence sensor means (55) for detecting a presence of the object (1), which presence sensor means (55) identify a depth of the object (1) and are arranged at distal ends of the fingers (35, 36); a computerized control unit, which pilots the gripper group (30) and receives and processes information from the means for gauging punctual distance (50) and the presence sensor means (55).
16. The device of claim 15, characterized in that the support (20) comprises a vertical column element (21), which slidingly supports the gripper group (30), and that the first direction of movement defined by the support (20) coincides with a height adjustment direction of the gripper group (30).
17. The device of claim 16, characterized in that the vertical column element (21) is provided with guides (22) of recirculating ball type.
18. The device of claim 15, characterized in that the gripper group (30) comprises a support body (33) of the fingers (35, 36), which support body (33) is slidingly cantilevered mounted on a sliding bracket (31) in the third direction of moving towardsaway, the sliding bracket (31) being in turn slidingly mounted on the support (20) in the first direction of height adjustment.
19. The device of claim 15, characterized in that the sliding bracket (31) is mounted on the support (20) in a horizontal position and parallel to the support (20), in that the support body (33) is mounted in a horizontal position and perpendicular to the sliding bracket (31), and in that the fingers (35, 36) are mounted perpendicularly to the sliding bracket and are mutually parallel.
20. The device of claim 15, characterized in that each finger (35, 36) comprises a oscillating rod (350), arranged on an inner surface of the relative finger (35, 36) and pivoted at the central portion of the finger (35, 36), the oscillating rod (350) being designed to facilitate the gripping of objects (1) having widely differing dimensions.
21. The device of claim 15, characterized in that at least one finger (35, 36) is provided with means for gauging load (355), arranged in the distal portion of the finger (35, 36) and designed to detect a pressure exerted by the finger (35, 36) on small objects (1).
22. The device of claim 20, characterized in that the organs for gauging load (355) are constituted by a miniaturized load cell.
23. The device of claim 20, characterized in that the load gauging organs (355) are activated with interpositioning of the outer arm (351) of the oscillating rod (350).
24. The device of claim 15, characterized in that the presence sensor means (55) comprise a photoelectric emitter and a relative receiver, which are arranged facing each other on distal ends of the inner surfaces (35a, 36a) of the fingers (35, 36).
25. The device of claim 15, characterized in that the means for measuring punctual distance (50) comprise at least one emitter of a light laser beam, which emits the beam towards the object (1) to be analysed, and a relative sensitive element which receives an echo of the light laser beam reflected by the object (1), in order to measure the distance of the object (1) using triangulation techniques.
26. The device of claim 25, characterized in that a laser emitter and a relative sensitive element are provided on each gripper finger (35, 36).
27. The device of claim 15, characterized in that it further comprises anti-fall organs (60a), mounted on the support (20), below the gripper group (30) and designed to prevent an object (1) from falling, and comprises anti-slip means (60b), mounted on the anti-fall organs (60a) and designed to control that the object is lifted without any slippage relative to the gripper group (30).
28. The device of claim 27, characterized in that the anti-fall organs (60a) are slidingly mounted on the support (20).
29. The device of claim 27, characterized in that the anti-fall organs comprise: a second sliding bracket (61), horizontally mounted on the support (20) and provided with guides (62); a second support body (63) horizontally cantilevered mounted on the second sliding bracket (61) and sliding in the guides (62): an anti-fall finger (66), which is horizontally mounted in the second body support (63) and directed toward the objects (1) to be supported, the anti-fall finger (66) being operatable, together with the relative second support body (63) and in a phase relation with the operation of the gripper group (30), so as to be positioned immediately below the base of the object (1) to be collected.
30. The device of claim 27, characterized in that the anti-slip means (60b) comprise optical distance detecting means (67) which are electrically connected to the control unit, an optical axis (69) of the optical distance detecting means (67) being directed toward the object (1), which anti-slip means (60b) are operated in a phase relation with the operation of the gripper unit (30) in such a way as to maintain the optical axis (69) immediately below the lower edge of the object (1).
31. The device of claim 29, characterized in that the optical distance detecting means (67) comprise a laser distance sensor (67a), which is mounted in the second support body (63) and is provided with a prismatic lens (68), which prismatic lens (68) orients the laser beam emitted by the sensor according to the optical axis (69).
32. The device of claim 30, characterized in that the optical axis (69) is arranged parallel to, and immediately above, the anti-fall finger (66).
33. The device of claim 27, characterized in that, during the first lifting of the object (1), the anti-fall organs (60a) are maintained at a height which is immediately below the base of the object (1), by raising the anti-fall organs which follows a corresponding raising of the gripper group (30), an amount of the raising of the anti-fall organs (60a) being defined by data relative to any slippage of the object (1) transmitted by the anti-slip organs to the control unit.
34. The device of claim 15, characterized in that it is mounted, at the lower end (25) of the vertical support (20), on a mobile and self-stabilizing base (80) which is controlled by a processor and which operates as a robotic mobile handling and transporting unit in order to manage the objects (1) in an automated shop or store (200).
35. The device of claim 17, characterized in that the sliding bracket (31) is mounted on the support (20) in a horizontal position and parallel to the support (20), in that the support body (33) is mounted in a horizontal position and perpendicular to the sliding bracket (31), and in that the fingers (35, 36) are mounted perpendicularly to the sliding bracket and are mutually parallel.
36. The device of claim 21, characterized in that the organs for gauging load (355) are constituted by a miniaturized load cell.
37. The device of claim 21, characterized in that the load gauging organs (355) are activated with interpositioning of the outer arm (351) of the oscillating rod (350).
38. The device of claim 28, characterized in that the anti-fall organs comprise: a second sliding bracket (61), horizontally mounted on the support (20) and provided with guides (62); a second support body (63) horizontally cantilevered mounted on the second sliding bracket (61) and sliding in the guides (62): an anti-fall finger (66), which is horizontally mounted in the second body support (63) and directed toward the objects (1) to be supported, the anti-fall finger (66) being operatable, together with the relative second support body (63) and in a phase relation with the operation of the gripper group (30), so as to be positioned immediately below the base of the object (1) to be collected.
39. The device of claim 30, characterized in that the optical distance detecting means (67) comprise a laser distance sensor (67a), which is mounted in the second support body (63) and is provided with a prismatic lens (68), which prismatic lens (68) orients the laser beam emitted by the sensor according to the optical axis (69).
40. The device of claim 31, characterized in that the optical axis (69) is arranged parallel to, and immediately above, the anti-fall finger (66).

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 common pivot arrangement mounted on a base member of a portable computer, said base member comprising a plurality of first locating holes and a plurality of second locating holes, said common pivot arrangement comprising:
a hinge unit, said hinge unit comprising a holder base and a hinge, said hinge comprising a fixed member fixedly mounted to said holder base and a rotatable member rotated about a first axis relative to said fixed member, said holder base comprising a plurality of first through holes corresponding to the second locating holes of said base member respectively and a plurality of second through holes; and
a rotary device, said rotary device comprising a mount and a wheel pivotally mounted on said mount and rotated about a second axis relative to said mount, said second axis is perpendicular to said first axis, said mount comprising a plurality of through holes corresponding to the first locating holes of said base member respectively, said wheel comprising a plurality of mounting holes corresponding to the second through holes of said holder base of said hinge unit respectively.
2. The common pivot arrangement as claimed in claim 1, wherein said holder base further comprises stopper means; said mount further comprises stopper means adapted to stop the moving of the stopper means of said holder base.
3. The common pivot arrangement as claimed in claim 2, wherein the stopper means of said holder base is a rod; the stopper means of said mount is an end of a guide slot.
4. The common pivot arrangement as claimed in claim 3, wherein the rod of said holder base is formed with a screw hole and a screw bolt threaded into said screw hole and movable with said holder base along the guide slot and stopped at the end of said guide slot of said mount.
5. The common pivot arrangement as claimed in claim 1, wherein said base member is comprised of a top shell and a bottom shell; said first locating holes and said second locating holes of said base member are respectively formed in said bottom shell and extending upwards.
6. The common pivot arrangement as claimed in claim 1, wherein said base member has a top surface and a keyboard installed in said top surface.