A centrifugal brake mechanism for a controlled descent device, and a drum device employing it. The brake mechanism comprises a circular wheel configured and operable to rotate about an axis of rotation, an axle extending along and rotatable about the axis inside a central cavity of the wheel and having two or more parallel shaft rods extending inside the cavity substantially perpendicular to the axis of rotation, a gear system for transferring rotations of the wheel into counter-rotations of the axle, one or more brake elements each having two or more pass-through bores for slidably mounting over the two or more parallel shaft rods, two or more springs mounted over the parallel shaft rods between the brake element and the axle, and a friction enhancement mechanism for increasing friction forces between the brake elements and the inner wall the wheel responsive to increase in angular velocity of the wheel.
1. A drum device for controlled release of a cable spooled therein, the drum device comprising:
a support structure having a cable release opening for passage of released cable portions therethrough; a circular wheel located inside said support structure and configured and operable to rotate about an axis of rotation thereof, said circular wheel comprising a circular central cavity and an inner wall encircling the cavity; a brake mechanism comprising one or more brake elements mounted to slidably move inside said central cavity, said one or more brake elements being configured and operable to slide towards the inner wall of the wheel encircling said cavity and apply friction forces thereon; and a cable-release system configured and arranged to receive the released cable portions from the circular wheel and direct the released cable portions in an outward direction towards the cable release opening of the drum device, and prevent backward movement of the released cable into the drum device, wherein the spooled cable is configured to be anchored to an external support by a free end of said cable, and wherein said drum device is configured and operable to be harnessed to a descending user for guaranteeing continuous descent of the user while preventing suspension trauma. 2. The drum device of 3. The drum device of 4. The drum device of 5. The drum device of 6. The drum device of 7. The drum device of 8. The drum device of 9. The drum device of 10. The drum device of 11. The drum device of 12. The drum device of 13. The drum device of 14. A controlled descent device comprising a wearable harness and the drum device of 15. The controlled descent device of 16. The controlled descent device of 17. A drum device for controlled release of a cable spooled therein, the drum device comprising:
a support structure having a cable release opening for passage of released cable portions therethrough; a circular wheel located inside said support structure and configured and operable to rotate about an axis of rotation thereof, said circular wheel comprising a circular central cavity and an inner wall encircling the cavity; a brake mechanism comprising one or more brake elements mounted to slidably move inside said central cavity, said one or more brake elements being configured and operable to slide towards the inner wall of the wheel encircling said cavity and apply friction forces thereon; and a cable-release system configured and arranged to receive the released cable portions from the circular wheel and direct the released cable portions in an outward direction towards the cable release opening of the drum device, and prevent backward movement of the released cable into the drum device, wherein the circular wheel comprises a cylindrical support insertable into the cavity of said circular wheel and configured to interact with the brake elements. 18. The drum device of 19. A controlled descent system comprising a concatenation of two or more drum devices, each one of said drum devices comprising:
a support structure having a cable release opening for passage of released cable portions therethrough; a circular wheel located inside said support structure and configured and operable to rotate about an axis of rotation thereof, said circular wheel comprising a cable spooled thereover, a circular central cavity and an inner wall encircling the cavity; a brake mechanism comprising one or more brake elements mounted to slidably move inside said central cavity, said one or more brake elements being configured and operable to slide towards the inner wall of the wheel encircling said cavity and apply friction forces thereon; and a cable-release system configured and arranged to receive the released cable portions from the circular wheel and direct the released cable portions in an outward direction towards the cable release opening of the drum device, and prevent backward movement of the released cable into the drum device. 20. The controlled descent system of 21. The controlled descent system of 22. The controlled descent system of 23. The controlled descent system of 24. The controlled descent system of
The present invention is generally in the field of centrifugal brakes usable for controlled descent devices. In today's urban environments, many people live or work in multi-storied buildings such as sky-scrapers. In case of a fire or terrorist attack, rapid descent from upper floors of such buildings may be necessary. In such emergency situations, use of an elevator may be unsafe. Emergency stairwells may become blocked by fire or smoke, making rapid escape difficult. Descent devices may be used in such emergency situations to allow a rescuee to be safely lowered to the ground. Some patent publications relating to brake mechanisms usable for controlled descent device (CDD) applications are briefly described below. US Patent publication No. 2010/181145 describes a descent device comprising a hollow spool rotatable about a rotational axis and a lifeline, in the form of a braided steel cable, wound about the spool. A centrifugal brake mechanism including a brake assembly, comprising a pair of brake shoes and associated brake pads, is engageable with the spool to apply a braking force to the spool as the spool rotates. Biasing members, in the form of compression springs, extend between the brake shoes for biasing the brake shoes and pads into engagement with the spool. US Patent publication No. 2004/245048 describes a rappelling device for permitting persons to be rescued from high buildings, towers, and the like, having a suspension strap, suspension vest, or the like, to be worn by the person in question, wherein a rope container having a device to release the rope length is provided on the suspension strap, which solution is supposed to be easy to operate, on the one hand, and to be made available to the persons in question at any time, and easy to handle for them, whereby the person using the device can essentially move both hands freely, in a stable rappelling position. This is achieved in that the rope drum that forms the rope container, in the wearing position on the back of the person using the device, is provided with a rope guide device for passing the rope to a release position in the chest region of the person using the device. International Patent Publication No. WO 03/055560 discloses an abseiling device used as rescue equipment in disaster situations, particularly fires in buildings or tall buildings, comprising a harness for supporting particularly a person, a housing provided with a rope drum and an automatic braking device, and a rope, one end of which is fixed to the building and the other end of which is fixed to the housing. The housing is connected to the harness so as to form a unit. International Patent Publication No. WO 89/00063 describes a lowering device particularly for assisting persons to escape from multi-storied buildings in an emergency situation, and adapted to engage a cable or rope of twisted configuration. The device comprises an inner rotatable sleeve surrounding and engaging the cable to follow the twist therein and rotate about the cable as it descends down the cable. The inner sleeve is contained within an outer housing which, in turn, supports a person, and the speed of rotation of the inner sleeve and thus the rate of descent of the device down the cable is controlled by a centrifugal brake having bell cranks carried by the inner sleeve and each pivotable against tension springs under centrifugal force to cause eccentrics on the ends of the cranks to act on brake shoes which engage a brake surface on part of the outer housing. Also disclosed is a device which, as an alternative, involves braking by utilizing a hydraulic system with a closed circuit gear pump driven by the inner sleeve and containing a variable constricted orifice to control the speed of the pump and therefore the rate of descent of the device. The slow descender described in U.S. Pat. No. 3,946,989 includes a rope pulley and a braking apparatus which restricts the rotation speed of the rope pulley. The braking apparatus includes a mechanical braking device containing a centrifugal brake which has centrifugal weights, a V-shaped lining part cooperating with the weights, and a speed multiplying gearing device connecting the rope pulley and the centrifugal friction brake. The slow descender further includes an oil hydraulic braking device of the vane pump type or of the inscribed gear pump type. U.S. Pat. No. 4,986,390 describes a small and light slow-descending device that anybody can easily carry in a traveling bag, or the like. Therefore, it is useful as an emergency evacuation device which enables to escape from a fire in a hotel, apartment house, office building, etc., or from a disaster in a high level road or highway, etc. There is a need in the art for compact and efficient centrifugal brake mechanisms for a controlled descent device configured to be attached to a harness wearable by a descending user and capable of rapidly damping angular velocity of a rotating body (e.g., a wheel, drum, or cable reel) of the device. Embodiments of the centrifugal brake mechanism of the present invention are particularly beneficial for drum devices of controlled descent devices (CDDs) configured to regulate the speed release of a cable spooled in the drum device, and guarantee continuous cable release from the device until reaching safe ground, and prevent suspension trauma. For this purpose a friction enhancement mechanism is used in some embodiments for increasing friction forces in response to increase in angular velocity of the cable drum. The centrifugal brake mechanism of the present invention is configured to allow substantial reduction of the geometrical dimensions of the drum device by compactly arranging its components inside a circular central cavity formed inside a cable reel/drum, of the drum device, on which the cable is spooled. Brake elements (e.g., brake shoe arrangements) mounted inside the central cavity are slidably coupled to a rotatable axle/shaft coaxially mounted inside the cable reel, and a planetary gear system is used to transfer rotations of the cable reel into counter-rotations of the axle. This configuration causes the brake elements to rotate inside the central cavity in a direction opposite to the direction of the rotation of the cable reel, and responsively to radially slide outwardly towards an inner wall of the cable drum due to centrifugal forces applied over them, and exert friction forces which slow down the angular speed of the cable drum. In some embodiments the brake elements are mounted inside the cavity for radial movement over two or more parallel shaft rods attached to the axle. As the brake elements slide over the shaft rods distally away from the axle their front faces become pressed against the inner wall of the cavity and apply friction forces thereover, thereby damping the angular velocity of the cable drum and consequently slowing down the descent speed. In some embodiments the brake mechanism comprises a friction enhancement mechanism configured to damp the angular speed of the drum by increasing the contact surface area of the braking elements used to apply the friction forces. The friction enhancement mechanism is preferably configured to provide engagement between one or more circular rails and corresponding one or more curved grooves engageable with said one or more circular rails, provided on the brake elements and on the inner wall of the cable drum. In this way, the friction forces evolving between the brake elements and the inner wall of the wheel are progressively increased responsive to increase in angular velocity of the wheel. Particularly, in addition to the friction obtained between the front faces of the brake elements and the inner wall of the cable drum, as the angular speed of the cable drum is increased, the circular rails progressively become engaged in the curved grooves, which adds to the friction forces a progressively increasing friction component. The one or more curved grooves may be provided on the front faces of the brake elements and/or on the inner wall of the cable drum, and one or more corresponding circular rails may be provided on the inner wall of the cable drum and/or on the front faces of the brake elements. For example, in some embodiments the front faces of the brake elements comprise one or more curved grooves and the inner wall of the cable drum comprises one or more circular rails radially protruding inwardly from the inner wall of the cavity, each circular rail configured to become engaged inside curved grooves of the brake elements, while the respective brake elements contact the inner wall. In one aspect there is provided a centrifugal brake mechanism for a controlled descent device and being configured to be attached to a harness wearable by a descending user. The centrifugal brake mechanism comprises a support structure configured for attachment to the harness, a circular wheel having a circular central cavity and being attached to the support structure to allow it to be rotated about an axis of rotation of the wheel, an axle mounted inside the central cavity and configured and operable to rotate about the axis of the wheel thereinside and comprising two or more parallel shaft rods attached thereto and extending substantially perpendicular to the axis of rotation, a gear system configured and operable to transfer rotations of the wheel into counter-rotations of the axle, one or more brake elements each having two or more pass-through bores for slidably mounting inside the central cavity over the two or more parallel shaft rods and configured to radially slide towards an inner wall of the wheel encircling the cavity in response to the counter-rotations of the axle and contact and apply friction forces over the inner wall by a front face thereof. The centrifugal brake mechanism further comprises two or more springs mounted over at least one of the shaft rods between the brake element and the axle. A friction enhancement mechanism is used in some embodiments for increasing friction forces responsive to increase in angular velocity of the wheel. The friction enhancement mechanism is configured for providing additional engagement between the circular wheel and the brake elements by one or more circular rails and corresponding one or more curved grooves engageable with said one or more rails. The friction enhancement mechanism is configured to progressively increase friction between the brake elements and the inner wall of the wheel responsive to increase in angular velocity of the wheel. In some possible embodiments the friction enhancement mechanism is implemented by one or more curved grooves provided in the each brake element and one or more circular rails provided in the inner wall encircling the cavity. The circular rails are configured to be received inside one of the curved grooves when the brake elements contact the inner wall, to thereby increase the applied friction forces. The one or more curved grooves form in some embodiments shoulder structures in the outer faces of the brake elements, and each of the one or more circular rails can be formed by two circular grooves formed in the inner wall. In this way, each circular groove is configured to receive one of the shoulder structures of the brake elements when the brake elements contact the inner wall, to thereby increase the applied friction forces. Geometrical shapes of at least one of the curved grooves and of a respective one of the circular rails configured to be received in it, may be adapted to progressively increase the contact surface area of the respective brake element according to the speed of rotation of the wheel, to thereby increase the friction forces responsive to increase in angular velocity of the wheel. Additionally or alternatively, one of the one or more curved grooves may comprise a tapering groove section in which opposing sides of the groove taper towards the axis of rotation, and at least one of the one or more circular rails may comprise a corresponding tapering rail section configured to be received inside the tapering groove section. Optionally, and in some embodiments preferably, the gear system is a planetary gear comprising a sun-gear fixedly attached to the axle, one or more planet gears attached to said support member and meshing with the sun-gear, and a ring-gear formed over a portion of the inner wall of the cavity and meshing with said one or more planet gears. In some embodiments, the gear system is configured to rotate the axle during rotation of the wheel in an angular velocity whose magnitude is greater than the magnitude of the angular velocity the wheel. For example, and without being limiting, a speed ratio of the gear system may be about 1 to 5.3. In another aspect there is provided a drum device for controlled release of a cable spooled therein and anchored to an external support by a free end thereof, and being configured to be harnessed to a descending user for guaranteeing continuous descent of the user while preventing suspension trauma. The drum device comprising a housing having a cable release opening for passage of released cable portions therethrough, and the centrifugal brake mechanism as described hereinabove or hereinbelow. For example, the drum device comprises a cable reel on which the cable is spooled, and the cable reel is mounted inside the housing for rotation about an axis thereof during the release of the cable through the opening, an axle mounted inside a central cavity of the cable reel and configured to rotate thereinside about the axis of the wheel, a gear system configured and operable to transfer rotations of said cable reel into counter-rotations of said axle, and one or more brake elements slidably coupled to the axle inside the central cavity and configured and operable to radially slide towards an inner wall of the cable reel encircling the cavity in response to the counter-rotations of the axle, and to contact and apply friction forces over the inner wall. The brake elements and inner wall of the wheel are adapted in some embodiments to implement a friction enhancement mechanism implemented by one or more curved grooves and corresponding one or more circular rails, as described hereinabove and hereinbelow. Similarly, geometrical shapes of at least one of the curved grooves and of a respective one of the circular rails may be adapted to progressively increase the contact surface area of the respective brake element according to the speed of rotation of the wheel, to increase the friction forces responsive to increase in angular velocity of the wheel. At least one of the one or more curved grooves may comprise a tapering groove section, and at least one of the one or more circular rails may comprise a corresponding tapering rail section, as described hereinabove and hereinbelow. The drum device may comprise one or more shaft rods attached to the axle substantially perpendicular to the axis of rotation, and each brake element may comprise one or more pass-through bores for slidably mounting it over the shaft rods for it to radial slide thereover. One or more return springs, each spring being mounted over one of said one or more shaft rods, may be used to mechanically couple between the axle and the brake element mounted over the shaft rod. In some embodiments a cable-release system is used to receive released cable portions from the circular wheel and direct the released cable portions in an outward direction towards the cable release opening of the drum device, and prevent backward movement of the released cable into the housing. For example, and without being limiting, the cable-release system may comprise a first cable-release unit mounted above the cable reel and having a slender opening defined between two rotatable roller shafts for passage of the released cable portions therethrough. Optionally, and in some embodiments preferably, the two rotatable roller shafts of the first cable-release unit are set with substantially different diameters according to a predetermined bend radius of the cable. The cable-release system may comprise at least one additional cable-release unit having a slender opening defined between two rotatable roller shafts for passage of the released cable portions therethrough, where the at least one additional cable-release unit is mounted above and substantially in parallel to the first cable-release unit. Optionally, and in some embodiments preferably, orientation of the two rotatable roller shafts of the first cable-release unit is substantially perpendicular to orientation of the two rotatable roller shafts of the at least one additional cable-release unit. The circular wheel comprises in some embodiments a cylindrical support insertable into the cavity of the circular wheel and configured to interact with the brake elements. Optionally, the circular wheel comprises a ring-gear component and a corresponding flat ring-gear reinforcing element configured to attach in alignment over the ring-gear component. In yet another aspect there is provided a controlled descent device comprising a wearable harness, a support structure attached to the harness and comprising a cable release opening for passage of portions of a spooled cable therethrough, and a drum device comprising the spooled cable and a brake mechanism configured to regulate the speed release of the cable from the drum device. In some embodiments the brake mechanism comprises a circular wheel configured to rotate about an axis of rotation thereof and having a circular central cavity, an axle extending along and rotatable about said axis of rotation inside the central cavity, two or more parallel shaft rods attached to the axle and extending substantially perpendicular to the axis of rotation inside the cavity, a gear system configured to transfer rotations of said wheel into counter-rotations of said axle, and one or more brake elements mounted on said two or more parallel shaft rods. Optionally, and in some embodiments preferably, each brake element has two or more pass-through bores for slidably moving along the two or more parallel shaft rods inside said central cavity. Two or more springs are mounted over at least one of the shaft rods between the brake element and the axle, and the one or more brake elements are configured to radially slide over the parallel shaft rods towards the inner wall of the wheel encircling in response to counter-rotations of said axle. The controlled descent device comprises in some embodiments a friction enhancement mechanism configured to increase friction forces between the brake elements and the inner wall of the wheel responsive to increase in angular velocity of the wheel. The friction enhancement mechanism is configured to provide additional engagement between the circular wheel and the brake element using one or more circular rails and corresponding one or more curved grooves engageable with the one or more rails, to thereby progressively increase friction between the brake elements and the inner wall of the wheel responsive to increase in angular velocity of the wheel. Thus, the friction enhancement mechanism further substantially facilitates prevention of suspension trauma to a descending user harnessed to the controlled descent device. In some applications the controlled descent device comprises a cable-release system configured to receive released cable portions from the circular wheel and direct the released cable portions in an outward direction towards the cable release opening of the drum device, and prevent backward movement of the released cable into the housing. Optionally, and in some embodiments preferably, the cable-release system comprises first and second cable-release units mounted in parallel above the circular wheel, each cable-release unit having a slender opening defined between two rotatable roller shafts thereof for passage of the released cable portions therethrough. Optionally, the orientation of the rotatable roller shafts of the first cable-release unit is substantially perpendicular to orientation of the rotatable roller shafts of the second cable-release unit. In yet another inventive aspect a controlled descent system is disclosed comprising a concatenation to two or more of the control descent devices according to any one of the embodiments described hereinabove and hereinbelow. The controlled descent system comprises a cable release inhibiting mechanism configured to prevent cable release from at least one of the controlled descent devices. The cable release inhibiting mechanism can be neutralized by a user to activate cable release from at least one of the controlled descent devices. For example, the cable release inhibiting mechanism can have a locking-cable connecting at least one of the controlled descent devices to an harness of a rescuee, or to a free end of its cable, or of another one of the controlled descent devices. The cable release inhibiting mechanism comprises in some embodiments a pull-string configured to enable the rescuee to disconnect the locking-cable, to thereby permit release of the cable spooled in at least one of the controlled descent devices. Free ends of the cables of at least two of the controlled descent devices can be attached one to the other. Additionally, or alternatively, the support structures of at least two of the controlled descent devices are attached one to the other. In some embodiments the controlled descent system comprises a concatenation of two control descent devices, upper and lower devices, connected one to the other by free ends of their cables, such that the controlled descent devises are gradually displaced away one from the other as cable release occur. The upper controlled descent device can be attached to a wall/anchor preparation in a building/structure, and the lower controlled descent device can be attached to a harness of a rescuee. One end of a locking-cable of the cable release inhibiting mechanism can be fixedly attached to the lower controlled descent device, and its free end can be releasably attached to a free end of the cable of the upper controlled device, or of the lower controlled device. In this configuration the cable of the upper controlled descent device is released first, since the cable of the lower controlled descent device is locked by the cable release inhibiting mechanism. The rescuee can activate cable release from the lower controlled descent device by pulling the pull-string when the entire length of the cable of the upper controlled descent device is released, or earlier, if so needed, for disconnecting the locking-cable from the free end of the cable of the upper controlled device, or of the lower controlled device, if it is thereto connected. In other possible embodiments the controlled descent system comprises a concatenation of two control descent devices, upper and lower devices, fixedly connected one to the other. A free end of the upper controlled descent device can be attached to a wall/anchor preparation in a building/structure, and the free end of the lower controlled device can be attached to a harness of a rescuee. One end of a locking-cable of the cable release inhibiting mechanism can be fixedly attached to the harness, and its free end can be releasably attached to the lower controlled device, or vice versa. In this configuration the cable of the upper controlled descent device is released first, since the cable of the lower controlled descent device is locked by the cable release inhibiting mechanism. The rescuee can activate the cable release from the lower controlled descent device by pulling the pull-string, when the entire length of the cable of the upper controlled descent device is released, or earlier, if so needed, by disconnecting the locking-cable from the lower controlled descent device. In order to understand the invention and to see how it may be carried out in practice, embodiments will now be described, by way of non-limiting example only, with reference to the accompanying drawings. Features shown in the drawings are meant to be illustrative of only some embodiments of the invention, unless otherwise implicitly indicated. In the drawings like reference numerals are used to indicate corresponding parts, and in which: The various embodiments of the present invention are described below with reference to the drawings, which are to be considered in all aspects as illustrative only and not restrictive in any manner. Elements illustrated in the drawings are not necessarily to scale, emphasis instead being placed upon clearly illustrating the principles of the invention. This invention may be provided in other specific forms and embodiments without departing from the essential characteristics described herein. As shown in The CDD 9 shown in The upper portion of the tear-like shaped support structure 45 includes a cable release mechanism for directing the release of the cable 4 from the drum device 5 and preventing backward movement of the cable 4 into the support structure. In this non-limiting example the cable release mechanism comprises two cable release units, 48 and 49, accommodated one on top of the other between the upper portions of the cover plates, 45 As best seen in The parallel roller shafts, 49 The upper cable release mechanism 48 comprises two roller shafts 48 As seen in In some embodiments a fastening element 5 As best seen in Optionally, and in some embodiments preferably, the planetary gear system 65 is designed to transfer the rotations of the cable reel 47 to the axle 60 during the cable release and cause counter rotations (i.e., in opposite direction) of the axle 60 in an angular velocity (Vxin Optionally, and in some embodiments preferably, the planetary gear system 65 may be configured and operable to rotate the axle 60 during the cable release and cause counter rotations (i.e., in opposite direction) of the axle 60 in an angular velocity (Vxin In possible embodiments the diameter of the ring-gear 67 may be about 140 to 150 mm, the diameter of the planet-gears 65 may be about 50 to 70 mm, and the diameter of the sun-gear 64 may be about 25 to 35 mm. The axle 60, rod arms 67 For example, and without being limiting, in some possible embodiments: the weight of a drum device, and about 50 m of cable reeled therein, may be about 5 kilograms; the weight of a drum device, and about 100 m of cable reeled therein, may be about 7.5 kilograms; and the weight of a drum device, and about 200 m of cable reeled therein, may be about 12 kilograms. The drum device having these weight ranges may be of suitable weight for a user to lift and put on his or her back using a CDD according to embodiments of the invention. In this specific and non-limiting example, two parallel rods 67 are attached to the axle 60 to form two pairs of rod arms 67 As seen, the external faces (also referred to herein as front faces) 62 In some possible embodiments the external surfaces 62 Additionally, or alternatively, the brake mechanism 5 It is noted that the curved grooves 68 and their respective circular rails 66 further serve as guiding means that prevent movements of the brake shoes 62 in undesired directions during engagement of the rails 66 inside the grooves 68, and which translate rolling/tilting moments, which may be applied over the brake shoes during operation of the device, into an increase in the damping friction forces. In some embodiments the damping friction forces are further increased by adding one or more inclined facets to the one or more curved grooves 68 and the one or more circular rails 66. For example, and without being limiting, at least one curved groove 68 may include a tapering section wherein the sides of the curved groove gradually taper towards the axis of rotation 47 In some embodiments (not shown) one or more circular rails are formed on the front faces 62 The slit portion 68 As also seen in For example, and without being limiting, the drum device arrangement shown in The drum device 5′ comprises a gear system (not shown) and brake elements (not shown) configured to regulate the cable release during the fall, as exemplified and described hereinabove. In this embodiment, however, each planet cogwheel is attached for rotation over a respective pivot 92 provided on one of the arms of the three-apex star-shaped plate 93 The cylindrical support 47 The reinforcing gear ring 67 In some embodiments the main body element 47 The disengagement arrangement is configured to release the attachment of the free end of the locking-cable 43 One end of the locking-cable 43 As described hereinabove and shown in the associated Figs., the present invention provides a centrifugal brake mechanism for a CDD. While particular embodiments of the invention have been described, it will be understood, however, that the invention is not limited thereto, since modifications may be made by those skilled in the art, particularly in light of the foregoing teachings. As will be appreciated by the skilled person, the invention can be carried out in a great variety of ways, employing more than one technique from those described above, all without exceeding the scope of the invention.TECHNOLOGICAL FIELD
BACKGROUND
GENERAL DESCRIPTION
BRIEF DESCRIPTION OF THE DRAWINGS
DETAILED DESCRIPTION OF EMBODIMENTS