Tower Positioner
20200269075 ยท 2020-08-27
Inventors
Cpc classification
A62B35/0081
HUMAN NECESSITIES
A63B29/02
HUMAN NECESSITIES
International classification
A63B29/02
HUMAN NECESSITIES
Abstract
A climbing tool for work positioning on a rope, usable as an ascender, speed control descender, lanyard rope grab and fall arrest device. The tool is for use with a single rope, a doubled rope or in a two line configuration.
Claims
1. A tower positioner device for use with at least one rope comprising: a body with a top attachment point and a lower attachment point; a top control plate pivotably connected to the body adjacent the top attachment point; a lower control plate pivotably connected to the body adjacent the bottom attachment point; at least one middle control plate pivotably connected to the body between the top control plate and the lower control plate; each of the top control plate, the lower control plate, and the at least one middle control plate including: a first upper oblong hole; a second lower oblong hole offset from the first upper oblong hole and separated by a gap; an axle hole for receiving an axle to connect to the body along an axis of a short side of the first upper oblong hole and the second lower oblong hole; a handle opposite the axle hole; wherein the offset between the first upper oblong hole and the second lower oblong hole is perpendicular to the axle hole; wherein the top control plate, the lower control plate and the at least one middle control plate are pivotable between an upward position and a downward position, such that when the top control plate, the lower control plate, and the least one middle control plate are moved to the downward position, a rope path through the first upper oblong hole and the second lower oblong hole is open and the rope can pass through the first upper oblong hole and the second lower oblong hole of each of the top control plate, the lower control plate and the at least one middle control plate without resistance; such that when the top control plate, the lower control plate, and the least one middle control plate are moved to the upward position, the rope path through the first upper oblong hole and the second lower oblong hole is restricted, forcing the rope to bend to an S-shape, generating friction between a point on the first upper oblong hole and the second lower oblong hole; and wherein the top control plate and the at least one middle control plate when in the upward position acts a plane clamp on the rope and the bottom control plate acts as brake on the rope.
2. The tower positioner device of claim 1, the body is a unitary body.
3. The tower positioner device of claim 2, wherein the unitary body further comprises a roller arm having a rotatable roller.
4. The tower positioner device of claim 1, wherein the body is bendable and comprises: a first link pivotably connected to the top attachment point and the upper control plate; a second link pivotably connected to the first link, the upper control plate, and the at least one middle control plate; a third link pivotably connected to the second link, the at least one middle control plate, and the lower control plate; a fourth link pivotably connected to the lower control plate and the bottom attachment point.
5. The tower positioner device of claim 4, wherein the third link is rigid.
6. The tower positioner device of claim 1, wherein the top attachment point and the bottom attachment point can rotate 360 degrees relative to the upper control plate.
7. The tower positioner device of claim 1, wherein the bottom attachment point and the top attachment point are perpendicular to the axle hole of the upper control plate, the lower control plate and the at least one middle control plate.
8. The tower positioner device of claim 1, wherein the body is bendable and comprises: a first link pivotably connected to the top attachment point and the upper control plate; a second link pivotably connected to the first link, the upper control plate, and a first of the at least one middle control plate; another second link pivotably connected to the first of the at least one middle control plates and a second of the at least one middle control plates; a third link pivotably connected to the another second link, the second of the at least one middle control plate, and the lower control plate; a fourth link pivotably connected to the lower control plate and the bottom attachment point.
9. The tower positioner device of claim 1, further comprising a shroud surrounding the tower positioner device, the shroud comprising a body having a first side, a second side opposite the first side, a U-shaped slot in the first side and the second side, a front side and a back side, wherein the back side has a first attachment point and a second attachment point and the first attachment point is aligned with the top attachment point of the tower positioner device and the second attachment point is aligned with the bottom attachment point.
10. The tower positioner device of claim 1, wherein at least one of the upper control plate, the at least one middle control plate and the lower control plate are spring loaded towards the upward position.
11. A tower positioner device for use with at least one rope comprising: a body with a top attachment point and a lower attachment point; a top control plate pivotably connected to the body adjacent the top attachment point including a first top sub plate with a first side oblong opening hole and a second top sub plate with a second side oblong opening hole offset from the first side oblong opening hole on a same side of the top control plate, the first top sub plate and the second top sub plate having a handle at one end and an axle hole an opposite end; a lower control plate pivotably connected to the body adjacent the bottom attachment point including a first lower sub plate with a first side oblong opening hole and a second lower sub plate with a second side oblong opening hole offset from the first side oblong opening hole on a same side of the lower control plate, the first lower sub plate and the second lower sub plate having a handle at one end and an axle hole at an opposite end; a middle control plate pivotably connected to the body between the top control plate and the lower control plate including a first middle sub plate with a first side oblong opening hole and a second middle sub plate with a second side oblong opening hole offset from the first side oblong opening hole on a same side of the middle control plate, the first middle sub plate and second middle sub plate having a handle at one end and an axle hole at an opposite end; wherein the first side oblong opening and the second side oblong opening of the top control plate and the lower control plate are aligned on a same side and the first side oblong opening and the second side oblong opening of the middle control plate are on an opposite side, such that the rope can be threaded into the top control plate, middle control plate and lower control plate midline; wherein the top control plate, the lower control plate and the at least one middle control plate are pivotable between an upward position and a downward position, such that when the top control plate, the lower control plate, and the least one middle control plate are moved to the downward position, a rope path through the first side oblong opening and the second side oblong opening is open and the rope can pass through the first side oblong opening and the second side oblong opening of each of the top control plate, the lower control plate and the middle control plate without resistance; such that when the top control plate, the lower control plate, and the middle control plate are moved to the upward position, the rope path through the first side oblong opening and the second side oblong opening is restricted, forcing the rope to bend to an S-shape, generating friction between a point on the first side oblong opening and the second side oblong opening; and wherein the top control plate and the middle control plate when in the upward position acts a plane clamp on the rope and the bottom control plate acts as brake on the rope.
12. The tower positioner device of claim 11, further comprising a lock plate for each of the top control plate, lower control plate and the middle control plate pivotably attached to the body.
13. The tower positioner device of claim 12, wherein the lock plate for the lower control plate further comprises a rotatable roller.
14. The tower positioner device of claim 11, wherein the body is bendable and comprises: a first link pivotably connected to the top attachment point and the upper control point; a second link pivotably connected to the first link, the upper control plate, and the middle control plate; a third link pivotably connected to the second link, the middle control plate, and the lower control plate; a fourth link pivotably connected to the lower control plate and the bottom attachment point.
15. The tower positioner device of claim 14, wherein the third link is rigid.
16. The tower positioner device of claim 11, wherein the top attachment point and the bottom attachment point can rotate 360 degrees relative to the upper control plate.
17. The tower positioner device of claim 11, wherein the bottom attachment point and the top attachment point are perpendicular to the axle hole of the upper control plate, the lower control plate and the at least one middle control plate.
18. The tower positioner device of claim 11, wherein at least one of the upper control plate, the middle control plate and the lower control plate are spring loaded towards the upward position.
19. A tower positioner device for use with at least one rope comprising: a body with a top attachment point and a lower attachment point; a top control plate pivotably connected to the body adjacent the top attachment point including a first top sub plate with a first side oblong opening hole and a second top sub plate with a second side oblong opening hole offset from the first side oblong opening hole on a same side of the top control plate, the first top sub plate and the second top sub plate having a handle at one end and an axle hole an opposite end; a lower control plate pivotably connected to the body adjacent the bottom attachment point including a first lower sub plate with a first side oblong opening hole and a second lower sub plate with a second side oblong opening hole offset from the first side oblong opening hole on a same side of the lower control plate, the first lower sub plate and the second lower sub plate having a handle at one end and an axle hole at an opposite end; wherein the first side oblong opening and the second side oblong opening of the top control plate and the lower control plate are aligned on an opposite side, such that the rope can be threaded into the top control plate and the lower control plate midline; wherein the top control plate and the lower control plate are pivotable between an upward position and a downward position, such that when the top control plate and the lower control plate are moved to the downward position, a rope path through the first side oblong opening and the second side oblong opening is open and the rope can pass through the first side oblong opening and the second side oblong opening of each of the top control plate and the lower control plate without resistance; such that when the top control plate and the lower control plate are moved to the upward position, the rope path through the first side oblong opening and the second side oblong opening is restricted, forcing the rope to bend to an S-shape, generating friction between a point on the first side oblong opening and the second side oblong opening; and wherein when the top control plate is in the upward position acts a plane clamp on the rope and the lower control plate acts as brake on the rope.
20. The tower positioner device of claim 19, wherein the body is bendable and comprises: a first link pivotably connected to the top attachment point and the upper control point; a second link pivotably connected to the first link, the upper control plate, and the lower control plate; a fourth link pivotably connected to the lower control plate and the bottom attachment point.
Description
BRIEF DESCRIPTION OF THE DRAWING
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DETAILED DESCRIPTION OF THE INVENTION
[0039] The tower positioner is a climbing tool for work positioning on a rope, usable as an ascender, speed control descender, lanyard rope grab and fall arrest device. The tool is for use with a single rope, a doubled rope or in a two line configuration.
Rope Control Plates
FIGS. 1, 5a-5b, 14-17
[0040] Referring to
[0041] Each of the plates 4, 5, 6 have two offset oblong holes, an upper hole 11 (see
[0042] One end of the plate 4, 5, 6 has a through-hole 52 for an axle, and the opposite end has an extended handle 41, 42, 43 respectively, for a user to cause the plate 4, 5, 6 to pivot on the axle. The axle hole 52 is drilled through the plate 4, 5, 6 along the axis of the short side of the oblong profile, and at a distance of 2-3 rope diameters from the center of the rope channel 98.
[0043] As shown in
[0044] As can be seen in
[0045] The amount of pull needed to draw the rope 3 through the plate in the fully engaged position shown in
[0046] The upper control plate 4 and middle control plate 5 interact and generate friction with each other as a plane clamp. The upper control plate 4 and the middle control plate 5 pivot relative to each other and shift in a planar way when a load is applied, offsetting the holes relative to each other, causing a pinching or lenticular shrinking of the rope channel 98 that the rope 3 is traveling through. This adds friction in a pinching or clamping fashion. Alone, this is very effective at stopping the rope 3, but release is abrupt, and hard to control.
[0047] By adding the lower control plate 6, which acts as a brake, release is considerably more gradual, and easy to control. The lower control plate 6 allows the rope 3 to pass freely through the plate 6 in the open position shown in
[0048] When holding the climber's weight on the rope 3, the plates 4, 5, 6 share the load. When the upper control plate and middle control plates 4, 5 are incrementally forced toward the open position by pushing down on the top handle 41, which in turn pushes down on the middle control plate 5, the pinching effect and the bending effect of the upper control plate 4 and middle control plate 5 is progressively reduced until, for any given weight, the point of slipping on the rope 3 can be found. At this point upper and middle control plates 4, 5 have released most of their grip, and the lower control plate or brake plate 6 is holding most of the load. At this point, the upper control plate 4 and middle control plate 5 come into contact with the lower control plate 6 and start to push it down toward the open position. This reduces the grip of lower control plate 6 and increases the speed of descent down the rope 3. The speed of descent can be controlled by adjusting the extent of the angle of the plates 4-6. This makes release more progressive, and makes modulating the degree of friction easier over a larger range of adjustment.
Unitary-Body Embodiment
FIGS. 1-3, 13
[0049] In this embodiment, the unitary tower positioner device 20 has a unitary body 22 in the form of a C-shaped channel with axle holes 64, 65, 66 to accept axles passing through holes 52 in the plates 4, 5, 6, respectively. At the top and bottom of the body 22 are attachment holes 1, 2 to accept a connector such as a carabineer or the like, for attachment to a climbing harness or as shown in
[0050] Optionally, the unitary body 22 can be provided with a fairlead roller 79 mounted by an axle 69 on a roller arm 68 to facilitate advancing the unitary tower positioner device 20 up the rope 3. This can be seen in
[0051]
Link-Body Embodiment
FIGS. 6-8
[0052] As shown in
[0053] The axle or pin 24 connecting the first link 7 and the second link 8 forms the axle for the upper control plate 4, the axle or pin 25 which connects the second link 8 and the third link 9 forms the axle for the middle control plate 5, and the axle or pin 26 connecting the third link 9 and the fourth link 10 forms the axle for the lower control plate 6. Top attachment link 72 is connected to the first link 7 through axle or pin 28. Bottom attachment link 71 is connected to the fourth link 19 through axle or pin 29.
[0054]
Open-Hole Embodiment
FIGS. 4 and 9-12
[0055] In the embodiments described above, the holes 11, 12 through the control plates 4, 5, 6 are formed as closed oblong openings. As a result, the devices 20, 40 described above require that an end of the rope 3 be threaded through the holes 11, 12 in the control plates 4-6. In this embodiment, shown in
[0056] As can be seen in
[0057] The rope passages 74, 75, 76 are formed of offset upper and lower holes 11, 12 as described above in reference to
[0058] The side openings 94, 95, 96 can all be aligned on one side of the plates 84, 85, 86, or they can alternate from side to side, or as shown in the figures, the side opening 94 on the upper control plate 84 can be on one side, and side openings 95, 96 on the middle control plate 85 and lower control plate 86 can be on the opposite side. However the side openings 94-96 are arranged, the rope 3 can be easily threaded through the side openings 94-96 into the rope passages 74-76.
[0059] This embodiment can be provided with lock plates 44-46 covering over each control plates 84-86, as shown in the figures. Each of the lock plates 44-46 has oblong holes with a side openings 54-56 on the opposite side from the side openings 94-96 on the control plates 84-86 which it covers. By pivoting the lock plates 44-46 down over its associated control plates 84-86, the rope 3 can be secured in the rope passages 74-76 and prevented from slipping back out the side openings 94-96.
[0060] In this embodiment, a roller or curved guide 59 can be provided on the lock plate 46 covering the lower control plate 86, which functions in the same way as the roller 79 in the unitary-body embodiment above.
[0061] It will be understood that while
Alternate Link Body Embodiment
FIGS. 18-19
[0062] The tower positioner device 200 has a bendable body which is formed by a series of links. In order from top to bottom, these links are a top attach link 72 with the top attach point 82, a first link 7, a second link 8 and a fourth link 10 and a bottom attach link 71 with the bottom attach point 81. The third rigid link 9 as previously described is not present in this embodiment. The links 72, 7, 8, 10, 71 are connected by axels or pins so that adjoining links can bend or pivot relative to each other. The rope 3 can be inserted into the tower positioner device 200 midline on the rope 3 similar to
[0063] The axle or pin 24 connecting the first link 7 and the second link 8 forms the axle for the upper control plate 84, the axle or pin 25 which connects the second link 8 and the fourth link 10 forms the axle for the lower control plate 86. Axle or pin 28 connects the first link 7 to the top attachment link 72. Axle or pin 29 connects the fourth link 10 to the bottom attachment link 71.
[0064] The upper control plate 84 and lower control plate 86 are formed with side openings 94, 96 which allow side access into the rope passages 74, 76. The rope passages 74, 76 are formed of offset upper and lower holes 11, 12 as described above, and will not be further described in this section.
[0065] The side openings 94, 96 can all be aligned on one side of the plates 84, 86, or they can alternate from side to side as shown in the figure, the side opening 94 on the upper control plate 84 can be on one side, and side opening 96 on the lower control plate 86 can be on the opposite side. However the side openings 94, 96 are arranged, the rope 3 can be easily threaded through the side openings 94, 96 into the rope passages 74, 76.
[0066] It should be noted that while the second link 8 is shown outwardly adjacent the first link 7 and the fourth link 10 in the figures, alternatively, the first link 7 and the fourth link 10 could be outwardly adjacent the second link 8.
Shroud Embodiment
FIGS. 20-24
[0067] A removable shroud 301 can cover the tower positioner device 300 during use of the tower positioner device 300 as a fall arrest device. The removable shroud 301 prevents the handles of the plates 4-6 of the tower positioner 300 from inadvertently being depressed by the climber's body or failing debris.
[0068] Referring to
[0069]
[0070] The tower positioner device 300 has a bendable body which is formed by a series of links. In order from top to bottom, these links are a top attach link 72 with the top attach point 82, a first link 7, a second link 8, a rigid third link 9, a fourth link 10 and a bottom attach link 71 with the bottom attach point 81. The links 72, 7, 8, 9, 10, 71 are connected by axels or pins so that adjoining links can bend or pivot relative to each other. The top attachment point 82 of the top attach link is aligned with the first attachment hole 2 of the shroud 301. The bottom attachment point 81 of the bottom attach link 71 is aligned with the second attachment hole 1 of the shroud 301. As shown, a single carabineer 350 passes through both the top attachment point 82 and the first attachment hole 2, and another single carabineer 350 passes through both the bottom attachment point 81 and the second attachment hole 1, linking the shroud 301 to the tower positioner 300.
[0071] The axle or pin 24 connecting the first link 7 and the second link 8 forms the axle for the upper control plate 4, the axle or pin 25 which connects the second link 8 and the third link 9 forms the axle for the middle control plate 5, and the axle or pin 26 connecting the third link 9 and the fourth link 10 forms the axle for the lower control plate 6. Axle or pin 27 connects the first link 7 to the top attach link 82. Axle or pin 28 connects the fourth link 10 to the bottom attach link 71.
[0072] Rope 3 is received within the holes of the plates 4-6 for ascending. To descend, the rope 3 is wrapped back around and received within the U-shaped slot 303 of the shroud 301 and contacts the handle 41 of the top control plate 4, such that the rope 3 pulls down on the plates 4-6 forcing the plates 4-6 to the closed position.
[0073] While the shroud is shown using control plates 4-6, control plates 84-86 may also be used.
Magnet Embodiment
FIGS. 25-26
[0074] The tower positioner device 400 has a bendable body which is formed by a series of links. In order from top to bottom, these links are a top attach link 72 with the top attach point 82, a first link 7, a second link 8 and a fourth link 10 and a bottom attach link 71 with the bottom attach point 81. The rigid third link 9 as previously described is not present in this embodiment. The links 72, 7, 8, 10, 71 are connected by axels or pins so that adjoining links can bend or pivot relative to each other. The rope 3 can be inserted into the tower positioner device 400 midline on the rope 3 similar to the depiction in
[0075] The axle or pin 24 connecting the first link 7 and the second link 8 forms the axle for the upper control plate 84, the axle or pin 25 which connects the second link 8 and the fourth link 10 forms the axle for the lower control plate 86.
[0076] The upper control plate 84 and lower control plate 86 are formed with side openings 94, 96 which allow side access into the rope passages 74, 76. The rope passages 74, 76 are formed of offset upper and lower holes 11, 12 as described above, and will not be further described in this section.
[0077] The side openings 94, 96 can all be aligned on one side of the plates 84, 86, or they can alternate from side to side as shown in the figure, the side opening 94 on the upper control plate 84 can be on one side, and side opening 96 on the lower control plate 86 can be on the opposite side. However the side openings 94, 96 are arranged, the rope 3 can be easily threaded through the side openings 94, 96 into the rope passages 74, 76.
[0078] Lock plates 44, 46 cover over each control plate 84, 86, as shown in the figures. In this embodiment, the lock plates 44-46 preferably includes a magnet 103 that is attracted to a magnet 104 present in the upper control plate 84 and in the lower control plate 86. The magnets 103-104 ensure that the lock plates 44-46 remains over and adjacent the upper and lower control plates 84, 86. Lock plate 44 has oblong holes with a side opening 54 on the opposite side from the side opening 94 on the control plate 84 which it covers. By pivoting the lock plate 44 down over its associated control plate 84, the rope 3 can be secured in the rope passage 74 and prevented from slipping back out the side opening 94. Lock plate 46 covers the lower control plate 86 and includes a roller or curved guide 59, which functions in the same way as the roller 79 in the unitary-body embodiment above.
Extra Clutch Embodiment
FIG. 27
[0079] The tower position device 500 has a bendable body which is formed by a series of links. In order from top to bottom, these links are a top attach link 72 with the top attach point 82, a first link 7, a plurality of second links 8a, 8b, a third link 9, a fourth link 10 and a bottom attach link 71 with the bottom attach point 81. The links 72, 7, 8a, 8b, 9, 10, 71 are connected by axles or pins 501, 502, 503, 504, 505, 506, 507 so that adjoining links can bend or pivot relative to each other.
[0080] The axle or pin 501 connects the first link 7 to the top attach link 72. The axle or pin 502 connects the first link 7 and a second link 8a and forms the axle for the upper control plate 4. Axle or pin 503 connects the second link 8a to a first middle control plate 5a. Axle or pin 504 connects the other second link 8b to a second middle control plate 5b. Axle or pin 505 connects the other second link 8b to a third middle control plate 5c. Axle or pin 506 forms the axle connecting the other second link 8b to the third rigid link 9. Axle or pin 506 connects the third link 9 and the fourth link 10 to the lower control plate 6 and axle or pin 507 connects the bottom attach link 71 to the fourth link 10. The additional middle control plates 5a, 5b, 5c provide extra grip and clutch on the rope 3.
[0081] While the additional middle control plates were shown being attached to a bendable body, the additional middle control plates could be added to a unitary body as well.
Swivel Embodiment
FIG. 28
[0082] The tower positioner 600 has a bendable body which is formed by a series of links. In this embodiment, the top attach link 72 and the bottom attach link 71 are replaced with a top attach swivel 602 and a bottom attach swivel 605. The top attach swivel 602 includes a top attach point 603. The bottom attach swivel 605 includes a bottom attach point 606. The top attach swivel 602 and bottom attach swivel 605 are pivotable about a vertical axis of the tower positioner 600 and can preferably rotate 360 degrees about the axis.
[0083] In order from top to bottom, the tower positioner 600 includes a top attach swivel 602 with a top attach point 603, a first link 7, a second link 8, a third link 9, a fourth link 10 and a bottom attach swivel 605 with a bottom attach point 606. The links 602, 7, 8, 9, 10, 605 are connected by axles or pins 608, 609, 610, 611, 612 so that adjoining links can bend or pivot relative to each other.
[0084] The axle or pin 608 connects the first link 7 to the top attach swivel 602. The axle or pin 609 connects the first link 7 and the second link 8 and forms the axle for the upper control plate 4. Axle or pin 610 connects the second link 8 to the third rigid link 9 and is the axle for the middle control plate 5. Axle or pin 611 connects the third rigid link 9 and the fourth link 10 to the lower control plate 6 and axle or pin 612 connects the bottom attach swivel 605 to the fourth link 10. The bottom and top attachment swivels 602, 605 allow the tower positioner 600 to rotate as needed during use by the climber.
Tower Positioner with Perpendicular Attachment Points
FIG. 30
[0085] The tower positioner 700 of this embodiment has a bendable body which is formed by a series of links. In this embodiment, the top attach link 72 and bottom attach link 71 are replaced with a top attach link 702 and bottom attach link 705. The top attach link 702 is attached to a first link 7 and the bottom attach link 701 is attached to a fourth link 10. The top attach link 702 has a top attach point 701 and the bottom attach link 705 has a bottom attach point 704. The top attach point 701 and the bottom attach point 704 are perpendicular to movement of the clutch plates 84, 86.
[0086] In order from top to bottom, the tower positioner 700 includes a top attach link 702 with a top attach point 701, a first link 7, a second link 8, a fourth link 10 and a bottom attach link 705 with a bottom attach point 704. The links 702, 7, 8, 10, 705 are connected by axles or pins 706, 707, 708, 709 so that adjoining links can bend or pivot relative to each other.
[0087] The axle or pin 706 connects the first link 7 to the top attach point 702. The axle or pin 707 connects the first link 7 and the second link 8 and forms the axle for the upper control plate 84. Axle or pin 708 connects the second link 8 to the third link 9 and is the axle for the lower control plate 86. Axle or pin 709 connects the bottom attach link 705 to the fourth link 10.
Spring Loaded Control Plates
FIG. 29
[0088]
Usage of the Tower Positioner Device
[0089] As a rope grab, the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 can be used on a lanyard, rope or flip line to adjust the lanyard or rope length. With a fairlead pulley, the lanyard or rope 3 can be shortened with one hand by pulling the tail exiting the tower position device 20, 40, 60, 200, 300, 400, 500, 600, 700 up toward the working end the pulley advances the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 up the line. To lengthen the lanyard or rope, the top handle of a control plate 4, 84, is depressed and rope 3 can be let through the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700. Both operations can be done with one hand.
[0090] As a foot ascender, the lower attachment point 1, 71, 605, 705 of the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 is attached to a foot loop, and a bungee cord is attached to the top attachment point 2, 72, 602, 702. The top attachment point 2, 72, 602, 702 can be attached to a waist harness, or alternatively attached to the climber's pant leg with a clip.
[0091] As a knee ascender, the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 is positioned at around the knee level with a foot loop and lanyard of the correct length and a bungee cord supporting the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 from the top.
Single Rope Technique
[0092] In use with a single rope 3, the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 is attached to the climber's harness with a carabineer 350, 352 or the like, at the bottom attachment point 1, 71, 605, 705, and a chest harness is attached to the top attachment point 2, 72, 603, 702, with a single rope 3 attached to a high anchor point, and the rope's free end threaded through the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700, the climber can with the help of a foot ascender or the like, can ascend the rope 3 by steeping up on the foot ascender and there by advancing the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 up the rope 3, then transferring weight to the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 by sitting back into the harness and advancing the foot ascender up the rope 3 and repeat. In this sit stand method the climber effectively inchworms themselves up the rope 3.
Doubled Rope Technique
[0093] In a dynamic doubled rope system, shown in
[0094] By simply pulling the rope 3 exiting the bottom of the tower positioner device 40, the tower positioner device 40 advances up the rope 3 automatically as it is being pulled by the end of the rope 3. This has the advantage of being a two-to-one system, so as a climber you only have to lift half your weight to ascend.
Two Line System
[0095] In a two line system, as used in most rope access work, one rope is a safety or rescue rope for emergency fall arrest, and the other is the working rope for work positioning. Two tower positioner devices 20, 40, 60, 200, 300, 400, 500, 600, 700 can be used, one for work positioning and one for fall arrest and self-recue, in this system there is always a back up system in case one fails. In practice, the climber ascends on one rope and the other tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 follows up on the other, capturing any progress made, if a fall occurs, the tower positioner device 20, 40, 60, 200, 300, 400, 500, 600, 700 catches the climber's fall, and limits the damaging dynamic forces on the climber's body, by decelerating the climber's weight, without damaging the rope, and leaves open the option to safely descend the rope to the ground (self-rescue).
[0096] Accordingly, it is to be understood that the embodiments of the invention herein described are merely illustrative of the application of the principles of the invention. Reference herein to details of the illustrated embodiments is not intended to limit the scope of the claims to be filed in a utility patent application claiming benefit of this provisional application, which themselves will recite those features regarded as essential to the invention.