System and method of pouring concrete around a flexible ventilation duct assembly
20170190076 · 2017-07-06
Inventors
Cpc classification
International classification
Abstract
A system for pouring concrete around a flexible duct assembly. The system includes a balloon deployment system for deploying and retracting a balloon system within the duct assembly. The balloon deployment system is displaceable along a length of the duct assembly and follows a level of concrete being poured therearound. A method for pouring concrete around a flexible duct assembly is also disclosed.
Claims
1. A system for pouring concrete around a flexible duct assembly comprising: a balloon deployment system for deploying and retracting a balloon system within the duct assembly, wherein the balloon deployment system is displaceable along a length of the duct assembly and follows a level of concrete being poured therearound.
2. The system according to claim 1, wherein the balloon system comprises first and second balloon sub-assemblies, wherein each balloon subassembly is independently deployable and retractable with respect to the duct assembly to allow the balloon deployment system to follow the rising level of poured concrete around the duct assembly.
3. The system according to claim 1, further comprising a detection device to detect the level of concrete being poured around the duct assembly.
4. The system according to claim 3, wherein the detection device comprises a flexible cable resistivity sensor.
5. A method for pouring concrete around a flexible duct assembly comprising: installing the duct assembly within an excavated void; placing, within the duct assembly, a balloon deployment system for deploying and retracting a balloon system within the duct assembly; pouring concrete in a space around the duct assembly; and displacing the balloon deployment system along a length of the duct assembly and to follow a level of concrete being poured therearound.
6. The method according to claim 5, wherein the balloon system comprises first and second balloon sub-assemblies, wherein each balloon subassembly is independently deployable and retractable with respect to the duct assembly and the step of displacing the balloon system comprises selectively retracting a lower balloon subassembly once a lower portion of poured concrete has reached a predetermined level of solidification.
7. A system for deployment of a duct assembly within an excavated void comprising: a lowering system for lowering the duct assembly within the excavated void; and a cable guide system for guiding the duct assembly along a length of the excavated void.
8. The system according to claim 7, wherein the lowering system comprises first and second lowering cables removably affixable to the duct assembly.
9. The system according to claim 7, wherein the cable guide system comprises a guide cable slidably affixable to the duct assembly.
10. The system according to claim 8, further comprising a plurality of lowering cable brackets provided around a periphery of the duct assembly and attachable to the lowering cables.
11. The system according to claim 9, further comprising a plurality of guide cable brackets provided around a periphery of the duct assembly and being slidably attachable to the guide cable.
12. The system according to claim 10, further comprising a ring assembly affixable around the duct assembly and supporting the cable brackets.
13. The system according to claim 7, further comprising a conical nose assembly affixable at a front extremity of the duct assembly and shaped to guide travel of a front portion of the duct assembly along the excavated void.
14. A method for deploying of a duct assembly within an excavated void comprising: lowering the duct assembly within the excavated void; and guiding the duct assembly along a length of the excavated void using a cable guide system.
15. The method according to claim 14, further comprising, before the lowering step: deploying a guide cable along a length of the excavated void; assembling the duct assembly progressively from a plurality of smaller duct segments, each duct segment comprising a bracket ring assembly, lowering cable brackets and guide cable brackets, the cable brackets being supported by the bracket ring assembly and removably connected thereto; and for each connected duct segment: affixing the lowering cable brackets to lowering cables; and installing the guide cable bracket such that the cable guide passes through a slidable opening of the guide cable bracket.
16. The system according to claim 1, further comprising a system for deployment of a duct assembly within an excavated void comprising: a lowering system for lowering the duct assembly within the excavated void; and a cable guide system for guiding the duct assembly along a length of the excavated void.
17. The system according to claim 16, wherein the lowering system comprises first and second lowering cables removably affixable to the duct assembly.
18. The system according to claim 16, wherein the cable guide system comprises a guide cable slidably affixable to the duct assembly.
19. The system according to claim 17, further comprising a plurality of lowering cable brackets provided around a periphery of the duct assembly and attachable to the lowering cables.
20. The system according to claim 19, further comprising a plurality of guide cable brackets provided around a periphery of the duct assembly and being slidably attachable to the guide cable.
21. The system according to claim 19, further comprising a ring assembly affixable around the duct assembly and supporting the cable brackets.
22. The system according to claim 16, further comprising a conical nose assembly affixable at a front extremity of the duct assembly and shaped to guide travel of a front portion of the duct assembly along the excavated void.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF PREFERRED EMBODIMENTS
[0058] In the following description, the same numerical references refer to similar elements. Furthermore, for the sake of simplicity and clarity, namely so as to not unduly burden the figures with several references numbers, not all figures contain references to all the components and features, and references to some components and features may be found in only one figure, and components and features of the present invention illustrated in other figures can be easily inferred therefrom. The embodiments, geometrical configurations, materials mentioned and/or dimensions shown in the figures are optional, and are given for exemplification purposes only.
[0059] Furthermore, although the present invention may be used with various objects, such as ventilation ducts in mine raises or chutes, for example, it is understood that it may be used in other types of environments. For this reason, expressions such as mine, raise or chute etc. as used herein should not be taken as to limit the scope of the present invention to these applications in particular. These expressions encompass all other kinds of materials, objects and/or purposes with which the present invention could be used and may be useful, as can be easily understood.
[0060] As shown in
[0061] In some implementations, as better shown in
[0062] In some implementations, as shown in
[0063] In some implementations, the detection device 22 comprises a flexible cable resistivity sensor.
[0064] According to the present invention, there is also provided a method for pouring concrete around a flexible duct assembly comprising: [0065] installing the duct assembly within an excavated void; [0066] placing, within the duct assembly, a balloon deployment system for deploying and retracting a balloon system within the duct assembly; [0067] pouring concrete in a space around the duct assembly; and [0068] displacing the balloon deployment system along a length of the duct assembly and to follow a level of concrete being poured therearound.
[0069] In some implementations of the method, the balloon system comprises first and second balloon sub-assemblies, as shown in
[0070] According to the present invention, as shown in
[0073] In some implementations, the lowering system 34 comprises first and second lowering cables removably affixable to the duct assembly 30.
[0074] In some implementations, the cable guide system 36 comprises a guide cable slidably affixable to the duct assembly 30. Preferably, the guide cable is adjustably tensioned.
[0075] In some implementations, the system further includes a plurality of lowering cable brackets 38 (illustrated in
[0076] In some implementations, the system further includes a plurality of guide cable brackets 40 (illustrated in
[0077] The angles illustrated in
[0078] In some implementations, as better shown in
[0079] In some implementations, as better shown in
[0080] According to the present invention, there is also provided a method for deploying of a duct assembly within an excavated void comprising: [0081] lowering the duct assembly within the excavated void; and [0082] guiding the duct assembly along a length of the excavated void using a cable guide system.
[0083] In some implementations, the method further includes, before the lowering step: [0084] deploying a guide cable along a length of the excavated void; [0085] assembling the duct assembly progressively from a plurality of smaller duct segments, each duct segment comprising a bracket ring assembly, lowering cable brackets and guide cable brackets, the cable brackets being supported by the bracket ring assembly and removably connected thereto; and [0086] for each connected duct segment: [0087] affixing the lowering cable brackets to lowering cables; and [0088] installing the guide cable bracket such that the cable guide passes through a slidable opening of the guide cable bracket.
[0089] Of course, numerous modifications could be made to the above-described embodiments without departing from the scope of the invention, as defined in the appended claims.