WO2015082684A2 - System and method for extraction of smoke from road tunnels - Google Patents

System and method for extraction of smoke from road tunnels Download PDF

Info

Publication number
WO2015082684A2
WO2015082684A2 PCT/EP2014/076718 EP2014076718W WO2015082684A2 WO 2015082684 A2 WO2015082684 A2 WO 2015082684A2 EP 2014076718 W EP2014076718 W EP 2014076718W WO 2015082684 A2 WO2015082684 A2 WO 2015082684A2
Authority
WO
WIPO (PCT)
Prior art keywords
smoke
module
duct
accordance
tunnel
Prior art date
Application number
PCT/EP2014/076718
Other languages
French (fr)
Other versions
WO2015082684A3 (en
Inventor
Rune STORRØSÆTER
Original Assignee
Storrøsæter Rune
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Storrøsæter Rune filed Critical Storrøsæter Rune
Priority to US15/102,190 priority Critical patent/US20160305244A1/en
Priority to EP14806664.0A priority patent/EP3077623A2/en
Publication of WO2015082684A2 publication Critical patent/WO2015082684A2/en
Publication of WO2015082684A3 publication Critical patent/WO2015082684A3/en

Links

Classifications

    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21FSAFETY DEVICES, TRANSPORT, FILLING-UP, RESCUE, VENTILATION, OR DRAINING IN OR OF MINES OR TUNNELS
    • E21F1/00Ventilation of mines or tunnels; Distribution of ventilating currents
    • E21F1/003Ventilation of traffic tunnels
    • EFIXED CONSTRUCTIONS
    • E21EARTH OR ROCK DRILLING; MINING
    • E21FSAFETY DEVICES, TRANSPORT, FILLING-UP, RESCUE, VENTILATION, OR DRAINING IN OR OF MINES OR TUNNELS
    • E21F1/00Ventilation of mines or tunnels; Distribution of ventilating currents
    • E21F1/08Ventilation arrangements in connection with air ducts, e.g. arrangements for mounting ventilators

Definitions

  • the present invention relates to a module, a system and a method for extraction of smoke from tunnels, in particular smoke developing inside long road tunnels due to motoring accidents.
  • the invention concerns a smoke extraction module smoke extraction module, a smoke extraction system and a method for using such a system which enables extracting of smoke from tunnels, in particular large road tunnels.
  • the module comprises a duct for transportation of smoke, a suspension means which is at least indirectly connected to the duct, thereby enabling suspended connection between the duct and the tunnel wall or tunnel ceiling and a detachment mechanism, which, when activated, is arranged to detach the duct from the suspension means such that a displacement of the duct is enabled.
  • the displacement of the duct is preferably a pure longitudinal displacement.
  • a tunnel shall be interpreted as comprising any cavities where a fire outbreak is considered to represent a danger for life and health for living objects and/or considered to represent a risk of causing serious material damages. Examples are road tunnels, train tunnels, mines, etc.
  • the duct remains suspended to the tunnel wall or tunnel ceiling after detachment.
  • the detachment mechanism comprises an activator such as a relay configured to receive signals from a smoke detector situated inside the tunnel and configured to actuate the detachment of the duct by for example the activation of one or more coils.
  • the detachment mechanism further comprises a smoke detector for detection of smoke inside the tunnel.
  • the smoke detector is a remote smoke detector transmitting signals to the receiver.
  • the detachment mechanism further comprises fastening means such as a locking bolt, while the module also comprises one or more retaining means.
  • the suspension means and the retaining means may advantageously be releasably interconnected by the fastening means.
  • the suspension means and the retaining means may be pivotably interconnected, for example by the use of a hinge.
  • the detachment mechanism comprising an activator configured to receive signals from a smoke detector situated inside the tunnel as well as one or more elongated objects such as a rod, a wire, a cable or similar, extending between the fastening means and the activator.
  • the suspension means comprises one or more first hangers while the retaining means comprises one or more second hangers, wherein the first and second hangers are attached to the tunnel wall or ceiling during use.
  • the second hanger may be attached to the module such that the duct remains suspended in the tunnel wall or ceiling after detachment. The attachment may be directly on the duct itself or on the retaining means
  • the invention also concerns a smoke extraction system for extracting smoke from tunnels.
  • the system comprises a plurality of smoke extraction modules in accordance with the features disclosed above which are mutually arranged in an end-to-end fashion to form a channel extending along the tunnel during use.
  • the system also comprises an evacuation system arranged at one or both longitudinal ends of the channel for extraction of smoke.
  • the displacement of the duct within the system causes a longitudinal misalignment relative to adjacent ducts.
  • the invention also concerns a method for displacing a smoke extraction module arranged within a smoke extraction system comprising a plurality of modules arranged in an end-to- end fashion to form a channel extending along the tunnel, where each module comprises a duct for transportation of smoke and a suspension means suspending the duct from the tunnel wall.
  • the method comprises the following steps:
  • the method also comprises the step of transmitting signals from the smoke detector to an activator between step a) and step b), where said activator is configured to actuate the displacement mechanism. All method steps may advantageously be controlled by the use of a common control unit.
  • Fig. 1 is a perspective view of a tunnel situated smoke extraction system in accordance with the invention
  • Fig. 2 is a more detailed view of the smoke extraction system of fig. 1 where a fire situation has occurred beneath a smoke extraction module in accordance with the invention
  • Fig. 3 is a view of the smoke extraction system of fig. 2 after successful detachment from adjacent modules
  • Fig. 4 is a perspective view of the smoke extraction system of fig. 1 after successful detachment of the module from the adjacent modules,
  • Fig. 5 is a perspective view of a smoke extraction module in accordance with a first embodiment of the invention, prior to detachment,
  • Figs. 6 (a) and (b) are detailed views of a detachment mechanism arranged on a smoke extraction module in accordance with a first embodiment of the invention, wherein fig. 6 (a) and fig. 6 (b) shows the detachment mechanism before and immediately after detachment, respectively,
  • Fig. 7 is a view of the smoke extraction module of fig. 4 after completion of a successful detachment
  • Fig. 8 is a perspective view of a smoke extraction system in accordance with the invention, including a smoke extraction unit arranged at each longitudinal end of assembly of modules,
  • Fig. 9 is a perspective view of a smoke extraction module in accordance with a second embodiment of the invention, prior to detachment
  • Fig. 10 is a view of the smoke extraction module of fig. 9 showing the opposite radial side of the module
  • Fig. 11 is a detailed view of a part of a detachment mechanism arranged on a smoke extraction module in accordance with a second embodiment of the invention, prior to detachment,
  • Figs. 12 (a) and (b) are detailed views of another part of a detachment mechanism arranged on a smoke extraction module in accordance with a second embodiment of the invention, wherein fig. 12 (a) and (b) shows the interior components with and without a detachment activating coil, respectively,
  • Fig. 13 is a detailed view of the detachment mechanism arranged on a smoke extraction module in accordance with a second embodiment of the invention, immediately after detachment and
  • Fig. 14 is a perspective view of the smoke extraction module of fig. 9 after completion of a successful detachment.
  • FIG. 1 shows the inventive smoke extraction system 20 arranged within a road tunnel prior to implementation of any smoke extraction procedure.
  • An extraction unit 21 in form of a vacuum pump is arranged at a longitudinal side of a smoke guiding channel, which channel is composed of a plurality of smoke extraction modules ⁇ , ⁇ with ducts 2,2' arranged in an end-to-end fashion along the entire road tunnel.
  • the pumping capacity of the vacuum pump 21 should be equal or higher than the pumping capacity required to extract smoke from anywhere in the road tunnel to either or both channel ends during at least one fire outbreak.
  • the minimum required pumping capacity will of course vary depending on parameters such as length of road tunnel, mean diameter of smoke guiding channel, number of modules 1 within the channel, etc.
  • FIG 2 A more detailed view of the smoke extraction system 20 is seen in figure 2, where a single fire outbreak has started in a van located immediately beneath a particular module 1, hereinafter defined as the fire module 1.
  • ducts 2' belonging to adjacent modules ⁇ are in normal operation arranged in gas flowing connection with the duct 2 of the fire module 1 , that is on each of its longitudinal sides.
  • a plurality of smoke detectors 9 are arranged at specific locations within the tunnel, preferably in regular intervals along the entire tunnel length.
  • the smoke detectors 9 are fixed onto the tunnel wall 4, i.e. remote from the ducts 2,2'. However, they may alternatively (or additionally) be fastened to the channel itself.
  • FIGs 3 and 4 show similar views of the smoke extraction system 20 as in figures 1 and 2, respectively, where the fire module 1 have been detached from the remaining part of the smoke guiding channel, thereby creating two open channels which extends from the end of the adjacent modules 1 ' situated closest to the position of the fire outbreak to the corresponding vacuum pump 21 ,21 ' .
  • the double arrows 30 indicate the direction of the smoke 6 during pumping.
  • FIG. 5 shows a first embodiment of the inventive module 1 where a stable suspension of the module 1 is ensured by the attachment of two hangers 14, each being at one end fixed to the tunnel roof / wall 4 and the other end to duct enclosing locking collars 10,1 1 arranged near the longitudinal ends of the duct 2.
  • each locking collar 10, 1 1 comprises an upper collar 10, a lower collar 1 1 and a detachment mechanism 5 (indicated within a dotted square in figure 5), where the detachment mechanism provides releasable connection between at least one of the two facing end pairs belonging to the upper and lower collars 10,1 1 during normal / suspended position.
  • the detachment mechanism 5 comprises an activation device 7 arranged inside a cover 28 at the upper collar 10 and a bolt 8 (or any other releasable fastening means) interconnecting the two collars 10,1 1 at their ends.
  • the facing ends of the upper and lower collars 10,1 1 includes radial protrusions 18,18' with holes 32,33, where at least the upper hole 32 belonging to the upper protrusion 18 has an inner diameter being larger than the outer diameter of the bolts head 8".
  • the stem 8- of the bolt 8 is fixed to the lower protrusion 18' by known means (threads, nuts, etc).
  • each module 1 ,1 ' fixed at both ends of each module 1 ,1 ' to selectively displace one or more corresponding ducts 2,2',
  • any module 1 may be detached from the adjacent modules 1 ' .
  • the smoke detectors 9 labeled ii and iv detect smoke 6 indicating one or more fire outbreaks
  • signals will be sent initiating the activation of the one or more detachment mechanisms 5 connected to the modules 2' situated immediately above the activated smoke detector(s) 9.
  • the ducts directly connected to the vacuum pumps 21 ,21 ' and the central module 2 will remain in their original positions.
  • the number of modules in a road tunnel will be significantly larger.
  • FIG 9 shows a second embodiment of the inventive smoke extraction module 1 ,1 ' prior to detachment.
  • a stable suspension of the module 1 is ensured by the attachment of two hangers 14 being at one end fixed to the tunnel roof / wall 4 and the other end to enclosing locking collars 10,1 1 arranged near the longitudinal ends of the duct 2.
  • Each locking collar 10,1 1 further comprises an upper collar 10, a lower collar 1 1 and a bolt 8 (or any other releasable fastening means) interconnecting the two collars 10,1 1 at their ends.
  • the facing ends of the upper and lower collars 10,1 1 includes upper and lower radial protrusions 18,18' with holes 32,33, where both holes 32,33 have an inner diameter being larger than the outer diameter of the stem 8' of the bolt 8 but smaller than the outer diameter of the bolt head 8".
  • the lower part of the stem 8' displays a radial hole.
  • FIG. 10 a preferred embodiment (figure 10) the upper and lower collars 10, 1 1 are at this side interconnected by pivotable hinges 16.
  • the activation of the detachment procedure is achieved by a common activation mechanism 7 situated at a distance from the bolts 8.
  • a cable or rod 12 extends from each of the cotter pins 17 to the activation mechanism 7, as detailed in figure 1 1.
  • Figures 12 (a) and (b) show the innards of the activation mechanism 7, where the ends of the cables / rods 12 are connected to a common voltage controlled coil 24 (figure 12 (a)), the latter enabling a pulling force on the cables 12 in direction towards each other thereby pulling the cables 12 a distance that is sufficient to pull out the respective cotter pins 17.
  • FIG 12 (b) shows the activation mechanism 7 with the coil 24 removed.
  • a relay 13 is seen arranged beneath the coil 24 which is electrically connected to the coil 24 and a smoke detector 9, the latter via electrical wires 23.
  • a signal transmitted through the wires 23 activates the relay 13, which again applies the necessary voltage on the coil 24 in order to pull the cotter pins 17 out of the bolts 8 (figure 13).
  • Figure 14 shows the equilibrium position after a completed detachment of in total two detachment mechanisms 5, i.e. one detachment mechanism 5 for one of two end pairs of the upper and lower collars 10, 1 1.
  • two hangers 14,15 per longitudinal duct end are used, the first and second hanger 14,15 being fixed to the upper and lower collar 10,1 1, respectively.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mining & Mineral Resources (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • General Life Sciences & Earth Sciences (AREA)
  • Geochemistry & Mineralogy (AREA)
  • Geology (AREA)
  • Fire Alarms (AREA)
  • Excavating Of Shafts Or Tunnels (AREA)
  • Fire-Detection Mechanisms (AREA)
  • Filtering Of Dispersed Particles In Gases (AREA)

Abstract

The invention concerns a smoke extraction module, a smoke extraction system and a method for using such a system which enables extracting of smoke from tunnels, in particular large road tunnels. The module comprises a duct for transportation of smoke, a suspension means which is at least indirectly connected to the duct, thereby enabling suspended connection between the duct and the tunnel wall or tunnel ceiling and a detachment mechanism, which, when activated, is arranged to detach the duct from the suspension means such that a displacement of the duct is enabled.

Description

Title:
SYSTEM AND METHOD FOR EXTRACTION OF SMOKE FROM ROAD TUNNELS
Technical Field: The present invention relates to a module, a system and a method for extraction of smoke from tunnels, in particular smoke developing inside long road tunnels due to motoring accidents.
Background and prior art:
Accidents in tunnels are more dangerous than in the open air. An explosion or fire may cause considerable damage, and hazardous substances cannot be removed quickly. Smoke causes poor visibility, lack of oxygen rapidly occurs and there may be panic. The below table from the handbook of tunnel fire safety of 2005 (Alan Beard & Richard Carrel) lists some of the tunnel fatalities in recent years, hence providing an insight into the tragic consequences of tunnel fire.
Figure imgf000002_0001
As a result, the serious hazards related to smoke development in road tunnels have been an issue of debates for decades, and numerous solutions have been proposed trying to reduce the consequences in case of smoke inducing accidents. Examples may be found in publications DE 3117147 Al, DE 19825420 Al , DE 102004027761 Al, EP 1544408 Al, EP 1398461 , KR 101088341 B, DE 102007040237 Al , US 4361079 and DE 7524273 U all disclose solutions where tunnels have been equipped with a closed extraction channel or duct connected to one or more ventilation means. As explained in DE 3117146 Al enables use of smoke sensors situated along the tunnel guidance of smoke from the source of the smoke into a nearby clo sable hole of the extraction duct. The extracted smoke may be conveyed to the outside either vertically or longitudinally.
However, there are still many tunnels worldwide that have no or insufficient systems for smoke extractions, some of these being of considerable length, for example over 1000 meters. To install a solution based on the prior art solutions mentioned above, i.e. to install a dedicated extraction duct having closable openings, often requires a considerable amount of cost and manpower.
It is thus an object of the present invention to provide an assembly that enables effective smoke extraction at or near the smoke source and which may be installed into existing and new tunnels in an easier and more cost favourable manner.
Summary of the invention:
The present invention is set forth and characterized in the main claims, while the dependent claims describe other characteristics of the invention.
In particular, the invention concerns a smoke extraction module smoke extraction module, a smoke extraction system and a method for using such a system which enables extracting of smoke from tunnels, in particular large road tunnels. The module comprises a duct for transportation of smoke, a suspension means which is at least indirectly connected to the duct, thereby enabling suspended connection between the duct and the tunnel wall or tunnel ceiling and a detachment mechanism, which, when activated, is arranged to detach the duct from the suspension means such that a displacement of the duct is enabled. The displacement of the duct is preferably a pure longitudinal displacement. Hereinafter a tunnel shall be interpreted as comprising any cavities where a fire outbreak is considered to represent a danger for life and health for living objects and/or considered to represent a risk of causing serious material damages. Examples are road tunnels, train tunnels, mines, etc.
In a preferred embodiment the duct remains suspended to the tunnel wall or tunnel ceiling after detachment. In another preferred embodiment the detachment mechanism comprises an activator such as a relay configured to receive signals from a smoke detector situated inside the tunnel and configured to actuate the detachment of the duct by for example the activation of one or more coils. In another preferred embodiment the detachment mechanism further comprises a smoke detector for detection of smoke inside the tunnel. In an alternative embodiment the smoke detector is a remote smoke detector transmitting signals to the receiver. In another preferred embodiment the detachment mechanism further comprises fastening means such as a locking bolt, while the module also comprises one or more retaining means. The suspension means and the retaining means may advantageously be releasably interconnected by the fastening means. Furthermore, the suspension means and the retaining means may be pivotably interconnected, for example by the use of a hinge.
In another preferred embodiment the detachment mechanism comprising an activator configured to receive signals from a smoke detector situated inside the tunnel as well as one or more elongated objects such as a rod, a wire, a cable or similar, extending between the fastening means and the activator.
In another preferred embodiment the suspension means comprises one or more first hangers while the retaining means comprises one or more second hangers, wherein the first and second hangers are attached to the tunnel wall or ceiling during use. In this embodiment the second hanger may be attached to the module such that the duct remains suspended in the tunnel wall or ceiling after detachment. The attachment may be directly on the duct itself or on the retaining means
The invention also concerns a smoke extraction system for extracting smoke from tunnels. The system comprises a plurality of smoke extraction modules in accordance with the features disclosed above which are mutually arranged in an end-to-end fashion to form a channel extending along the tunnel during use. The system also comprises an evacuation system arranged at one or both longitudinal ends of the channel for extraction of smoke.
In a preferred embodiment the displacement of the duct within the system causes a longitudinal misalignment relative to adjacent ducts.
In addition to the module and the system mentioned above the invention also concerns a method for displacing a smoke extraction module arranged within a smoke extraction system comprising a plurality of modules arranged in an end-to- end fashion to form a channel extending along the tunnel, where each module comprises a duct for transportation of smoke and a suspension means suspending the duct from the tunnel wall. The method comprises the following steps:
a) detecting a level of smoke exceeding a predetermined level by means of a smoke detector and
b) actuating a detachment mechanism detaching the duct from the suspension means , thereby causing a longitudinal misalignment of the duct relative to adjacent ducts. In a preferred embodiment the method also comprises the step of transmitting signals from the smoke detector to an activator between step a) and step b), where said activator is configured to actuate the displacement mechanism. All method steps may advantageously be controlled by the use of a common control unit.
Brief description of the draw ings:
Fig. 1 is a perspective view of a tunnel situated smoke extraction system in accordance with the invention,
Fig. 2 is a more detailed view of the smoke extraction system of fig. 1 where a fire situation has occurred beneath a smoke extraction module in accordance with the invention,
Fig. 3 is a view of the smoke extraction system of fig. 2 after successful detachment from adjacent modules,
Fig. 4 is a perspective view of the smoke extraction system of fig. 1 after successful detachment of the module from the adjacent modules,
Fig. 5 is a perspective view of a smoke extraction module in accordance with a first embodiment of the invention, prior to detachment,
Figs. 6 (a) and (b) are detailed views of a detachment mechanism arranged on a smoke extraction module in accordance with a first embodiment of the invention, wherein fig. 6 (a) and fig. 6 (b) shows the detachment mechanism before and immediately after detachment, respectively,
Fig. 7 is a view of the smoke extraction module of fig. 4 after completion of a successful detachment,
Fig. 8 is a perspective view of a smoke extraction system in accordance with the invention, including a smoke extraction unit arranged at each longitudinal end of assembly of modules,
Fig. 9 is a perspective view of a smoke extraction module in accordance with a second embodiment of the invention, prior to detachment
Fig. 10 is a view of the smoke extraction module of fig. 9 showing the opposite radial side of the module,
Fig. 11 is a detailed view of a part of a detachment mechanism arranged on a smoke extraction module in accordance with a second embodiment of the invention, prior to detachment,
Figs. 12 (a) and (b) are detailed views of another part of a detachment mechanism arranged on a smoke extraction module in accordance with a second embodiment of the invention, wherein fig. 12 (a) and (b) shows the interior components with and without a detachment activating coil, respectively,
Fig. 13 is a detailed view of the detachment mechanism arranged on a smoke extraction module in accordance with a second embodiment of the invention, immediately after detachment and
Fig. 14 is a perspective view of the smoke extraction module of fig. 9 after completion of a successful detachment.
Detailed description of the invention
Figure 1 shows the inventive smoke extraction system 20 arranged within a road tunnel prior to implementation of any smoke extraction procedure. An extraction unit 21 in form of a vacuum pump is arranged at a longitudinal side of a smoke guiding channel, which channel is composed of a plurality of smoke extraction modules Ι ,Γ with ducts 2,2' arranged in an end-to-end fashion along the entire road tunnel. The pumping capacity of the vacuum pump 21 should be equal or higher than the pumping capacity required to extract smoke from anywhere in the road tunnel to either or both channel ends during at least one fire outbreak. The minimum required pumping capacity will of course vary depending on parameters such as length of road tunnel, mean diameter of smoke guiding channel, number of modules 1 within the channel, etc. A more detailed view of the smoke extraction system 20 is seen in figure 2, where a single fire outbreak has started in a van located immediately beneath a particular module 1, hereinafter defined as the fire module 1. As is apparent from the figure, ducts 2' belonging to adjacent modules Γ are in normal operation arranged in gas flowing connection with the duct 2 of the fire module 1 , that is on each of its longitudinal sides. In order to automatically detect and determine the position(s) of any fire outbreak a plurality of smoke detectors 9 are arranged at specific locations within the tunnel, preferably in regular intervals along the entire tunnel length. In the particular embodiment of figure 2 the smoke detectors 9 are fixed onto the tunnel wall 4, i.e. remote from the ducts 2,2'. However, they may alternatively (or additionally) be fastened to the channel itself. Figures 3 and 4 show similar views of the smoke extraction system 20 as in figures 1 and 2, respectively, where the fire module 1 have been detached from the remaining part of the smoke guiding channel, thereby creating two open channels which extends from the end of the adjacent modules 1 ' situated closest to the position of the fire outbreak to the corresponding vacuum pump 21 ,21 ' . The double arrows 30 indicate the direction of the smoke 6 during pumping.
Details of two different detachment mechanisms 5 detaching the fire module 1 from the adjacent modules 1 ' will now be described.
Figure 5 shows a first embodiment of the inventive module 1 where a stable suspension of the module 1 is ensured by the attachment of two hangers 14, each being at one end fixed to the tunnel roof / wall 4 and the other end to duct enclosing locking collars 10,1 1 arranged near the longitudinal ends of the duct 2. Further, each locking collar 10, 1 1 comprises an upper collar 10, a lower collar 1 1 and a detachment mechanism 5 (indicated within a dotted square in figure 5), where the detachment mechanism provides releasable connection between at least one of the two facing end pairs belonging to the upper and lower collars 10,1 1 during normal / suspended position. The detachment mechanism 5 comprises an activation device 7 arranged inside a cover 28 at the upper collar 10 and a bolt 8 (or any other releasable fastening means) interconnecting the two collars 10,1 1 at their ends. As better illustrated in figures 6 (a) and (b) the facing ends of the upper and lower collars 10,1 1 includes radial protrusions 18,18' with holes 32,33, where at least the upper hole 32 belonging to the upper protrusion 18 has an inner diameter being larger than the outer diameter of the bolts head 8". The stem 8- of the bolt 8 is fixed to the lower protrusion 18' by known means (threads, nuts, etc). When the bolt 8 is fixed to the lower protrusion 18' and extends through the upper hole 32 (figure 6 (a)), an end piece 27 in the form of a fork is arranged to partly enclose the stem 8' of the bolt 8 immediately below the bolt head 8", thereby fixing the bolt 8 also to the upper collar 10. The end piece 27 remains in this locked position by means of a voltage controlled locking relay 34 pressing a spring (not shown) towards the stem 8' of the bolt 8 in absence of any applied voltage. Figure 6 (b) illustrates the situation when the locking relay 34 has been activated by the application of a specific voltage (or any other activation requirements for the specific locking relay). The end piece 27 is retracted due to reduced pressure on the spring set up by a coil in the relay, and the bolt head 8' is dragged through the upper hole 32 by the gravitational force. The upper and lower collars 10,1 1 are hence detached, and the duct 2 of the fire module 1 obtains the desired longitudinal misalignment relative to the ducts 2' of the adjacent modules Γ enabling the commence of smoke extraction. The double arrows 35 in figures 6 (a) and 6 (b) indicate the force direction of end piece 27 without and with applied voltage on the locking relay 34, respectively. Figure 7 shows the equilibrium position after a completed detachment of in total four detachment mechanisms 5, i.e. one detachment mechanism 5 for each end pairs of the upper and lower collars 10,1 1. In this embodiment two hangers 14,15 per longitudinal duct end are used, the first and second hanger 14,15 being fixed to the upper and lower collar 10,1 1 , respectively. Figure 8 shows an illustration of the smoke extraction system 20 comprising
- a smoke guiding channel composed of five modules 1,1 ',
- vacuum pump 21 ,21 ' arranged at each end of the channel to pump out smoke 6,
- a detachment mechanism 5 fixed at both ends of each module 1 ,1 ' to selectively displace one or more corresponding ducts 2,2',
- smoke detectors 9 arranged along the entire length of the channel and - a control unit 35 controlling the operation parameters of the vacuum pumps 21 ,21 ' , the transmission signals of the smoke detectors 9 and the activation of the locking relays 34 situated within the detachment mechanisms 5.
With the particular setup any module 1 may be detached from the adjacent modules 1 ' . For example, if the smoke detectors 9 labeled ii and iv detect smoke 6 indicating one or more fire outbreaks, signals will be sent initiating the activation of the one or more detachment mechanisms 5 connected to the modules 2' situated immediately above the activated smoke detector(s) 9. Hence, in figure 8 only the ducts directly connected to the vacuum pumps 21 ,21 ' and the central module 2 will remain in their original positions. In practice, the number of modules in a road tunnel will be significantly larger.
Figure 9 shows a second embodiment of the inventive smoke extraction module 1 ,1 ' prior to detachment. As for the first embodiment (figure 5) a stable suspension of the module 1 is ensured by the attachment of two hangers 14 being at one end fixed to the tunnel roof / wall 4 and the other end to enclosing locking collars 10,1 1 arranged near the longitudinal ends of the duct 2. Each locking collar 10,1 1 further comprises an upper collar 10, a lower collar 1 1 and a bolt 8 (or any other releasable fastening means) interconnecting the two collars 10,1 1 at their ends. The facing ends of the upper and lower collars 10,1 1 includes upper and lower radial protrusions 18,18' with holes 32,33, where both holes 32,33 have an inner diameter being larger than the outer diameter of the stem 8' of the bolt 8 but smaller than the outer diameter of the bolt head 8". The lower part of the stem 8' displays a radial hole. After arranging the bolt 8 through both holes 32,33 of the radial protrusions 18,18' so that the bolt head 8" rests on the upper radial protrusion 18, a suitable cotter pin 17 is inserted, thereby locking the ends of the two collars 10,1 1. An identical arrangement may be made at the opposite radial side of the duct 2. However, in a preferred embodiment (figure 10) the upper and lower collars 10, 1 1 are at this side interconnected by pivotable hinges 16. In contrast to the first embodiment, the activation of the detachment procedure is achieved by a common activation mechanism 7 situated at a distance from the bolts 8. A cable or rod 12 extends from each of the cotter pins 17 to the activation mechanism 7, as detailed in figure 1 1. Figures 12 (a) and (b) show the innards of the activation mechanism 7, where the ends of the cables / rods 12 are connected to a common voltage controlled coil 24 (figure 12 (a)), the latter enabling a pulling force on the cables 12 in direction towards each other thereby pulling the cables 12 a distance that is sufficient to pull out the respective cotter pins 17. Similarly to the first embodiment the cotter pins 17 remain in place and therefore locks the two collars 10,1 1 in absence of any applied voltage on the coil 24. Figure 12 (b) shows the activation mechanism 7 with the coil 24 removed. A relay 13 is seen arranged beneath the coil 24 which is electrically connected to the coil 24 and a smoke detector 9, the latter via electrical wires 23. Hence, when the smoke detector 9 detects smoke 6 above a predefined smoke density, a signal transmitted through the wires 23 activates the relay 13, which again applies the necessary voltage on the coil 24 in order to pull the cotter pins 17 out of the bolts 8 (figure 13). Figure 14 shows the equilibrium position after a completed detachment of in total two detachment mechanisms 5, i.e. one detachment mechanism 5 for one of two end pairs of the upper and lower collars 10, 1 1. Also in this embodiment two hangers 14,15 per longitudinal duct end are used, the first and second hanger 14,15 being fixed to the upper and lower collar 10,1 1, respectively.
In the preceding description, various aspects of the module, system and method according to the invention have been described with reference to the illustrative embodiment. For purposes of explanation, specific numbers, systems and configurations were set forth in order to provide a thorough understanding of the apparatus and its workings. However, this description is not intended to be construed in a limiting sense. Various modifications and variations of the illustrative embodiment, as well as other embodiments of the apparatus, which are apparent to persons skilled in the art to which the disclosed subject matter pertains, are deemed to lie within the scope of the present invention.

Claims

1. A smoke extraction module (1) for use in a smoke extraction system (20) comprising a plurality of smoke extraction modules enabling extracting of smoke (6) from tunnels,
the module (1) comprising
- a duct (2) for transportation of smoke (6), and
- a suspension means (10) being at least indirectly connected to the duct (2) enabling suspended connection between the duct (2) and the tunnel wall or tunnel ceiling (4), characterized in that the module (1) further comprises
a detachment mechanism (5), which, when activated, is arranged to detach the duct (2) from the suspension means (10) such that, during use in the smoke extraction system, the duct (2) is displaced relative to adjacent ducts.
2. A smoke extraction module (1) in accordance with claim 1, characterized in that displacement of the duct (2) corresponds to a longitudinal misalignment relative to adjacent ducts (2').
3. The module ( ! ) in accordance with claim 1 or 2, characterized in that the duct (2) remains suspended to the tunnel wall or tunnel ceiling (4) after detachment.
4. The module (1) in accordance with one of the preceding claims, characterized in that the detachment mechanism (5) comprises
- an activator (13) configured to receive signals from a smoke detector (9) situated inside the tunnel, the activator (13) being configured to actuate the detachment of the duct (2).
5. The module (1) in accordance with one of the preceding claims, characterized in that the detachment mechanism (5) further comprises a smoke detector (9) for detection of smoke (6) inside the tunnel.
6. The module (1) in accordance with one of the preceding claims, characterized in that
- the detachment mechanism (5) further comprises fastening means (8),
and that
- the module (1) further comprises a retaining means (11),
wherein the suspension means (10) and the retaining means (11) are releasably interconnected by the fastening means (8) .
7. The module (1) in accordance with claim 6, characterized in that the suspension means (10) and the retaining means (1 1) are pivotably interconnected.
8. The module (1) in accordance with claim 6 or 7, characterized in that the detachment mechanism (5) comprising
- an activator (13) configured to receive signals from a smoke detector (9) situated inside the tunnel and
- an elongated object (12) extending between the fastening means (8) and the activator (13).
9. The module (1) in accordance with one of claims 6-8, characterized in that the suspension means (10) comprises a first hanger (14) and the retaining means (1 1) comprises a second hanger (15), wherein the first and second hangers (14,15) are attached to the tunnel wall or ceiling (4) during use.
10. The module (1) in accordance with claim 9, characterized in thai the second hanger (15) is attached to the module (1) such that the duct (2) remains suspended in the tunnel wall or ceiling (4) after detachment.
11. A smoke extraction system (20) for extracting smoke (6) from tunnels, characterized in that the system (20) comprises a plurality of smoke extraction modules (1) in accordance with one of claims 1-10 mutually arranged in an end-to-end fashion to form a channel extending along the tunnel during use, wherein the system (20) further comprising an evacuation system (21,21 ') arranged at at least one longitudinal end of the channel for extraction of smoke (6).
12. The system (20) in accordance with claim 1 1 , characterized in that the displacement of the duct (2) causes a longitudinal misalignment relative to adjacent ducts (2').
13. Method for displacing a smoke extraction module (1) arranged within a smoke extraction system (20) comprising a plurality of modules (1) arranged in an end-to-end fashion to form a channel extending along the tunnel,
where each module (1) comprises a duct (2) for transportation of smoke and a suspension means (10) suspending the duct (2) from the tunnel wall (4), characterized in that the method comprising the following steps:
c) detecting a level of smoke (6) exceeding a predetermined level by means of a smoke detector (9) and
d) actuating a detachment mechanism (5) detaching the duct (2) from the suspension means (10) , thereby causing a longitudinal misalignment of the duct (2) relative to adjacent ducts (2').
14. Method in accordance with claim 13, characterized by - transmitting signals from the smoke detector (9) to an activator (13) between step a) and step b), said activator (13) being configured to actuate the displacement mechanism. (5),
15. Method in accordance with claim 13 or 14, characterized in that the module (1) is in accordance with one of claims 1 -10.
PCT/EP2014/076718 2013-12-06 2014-12-05 System and method for extraction of smoke from road tunnels WO2015082684A2 (en)

Priority Applications (2)

Application Number Priority Date Filing Date Title
US15/102,190 US20160305244A1 (en) 2013-12-06 2014-12-05 System and method for extraction of smoke from road tunnels
EP14806664.0A EP3077623A2 (en) 2013-12-06 2014-12-05 System and method for extraction of smoke from road tunnels

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
NO20131618A NO337239B1 (en) 2013-12-06 2013-12-06 System and method for extracting smoke from road tunnels
NO20131618 2013-12-06

Publications (2)

Publication Number Publication Date
WO2015082684A2 true WO2015082684A2 (en) 2015-06-11
WO2015082684A3 WO2015082684A3 (en) 2015-11-26

Family

ID=52007035

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/EP2014/076718 WO2015082684A2 (en) 2013-12-06 2014-12-05 System and method for extraction of smoke from road tunnels

Country Status (4)

Country Link
US (1) US20160305244A1 (en)
EP (1) EP3077623A2 (en)
NO (1) NO337239B1 (en)
WO (1) WO2015082684A2 (en)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112879655A (en) * 2020-12-25 2021-06-01 成都建工工业设备安装有限公司 Installation method for fire damper of parallel air pipe

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012013992A1 (en) * 2010-07-27 2012-02-02 Pavetic Josip Method and system for tunnel ventilation in normal conditions and in conditions of fire

Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE7524273U (en) 1975-07-31 1976-05-06 Hoelter, Heinz, 4390 Gladbeck TELESCOPICABLE, COMBINED, RIGID-FLEXIBLE SUCTION LUTE FOR TRACK DRIVING MACHINES, PRESENTLY FOR SUBMINING
DE3117147A1 (en) 1981-04-30 1982-11-18 Daimler-Benz Ag, 7000 Stuttgart Road tunnel with forced ventilation
US4361079A (en) 1979-09-04 1982-11-30 Ruhrkohle Ag Apparatus for extending ventilating conduits
DE19825420A1 (en) 1998-06-06 1999-12-09 Hartmut Ewald Process and device for smoke and heat extraction and for operating ventilation for traffic structures and rooms
EP1398461A1 (en) 2002-09-03 2004-03-17 TLT-Turbo GmbH Method and device for ventilating a tunnel
EP1544408A1 (en) 2003-12-16 2005-06-22 Vid ApS A system for exhausting flue gases in a tunnel
DE102004027761A1 (en) 2004-06-01 2006-01-05 Thumm Gmbh Intermediate ceiling for use in road tunnels, includes controllable closing components for plugging or opening intermediate ceiling to release air or flue gases from inside road tunnel
DE102007040237A1 (en) 2007-08-25 2009-02-26 Horst-Dieter Dipl.-Ing. Rector Air extraction system for active combating of fire in traffic tunnel creates oppositely-directed airflows from both directions after outbreak of fire and directs these to source of fire or smoke at calculated speed
KR101088341B1 (en) 2010-09-27 2011-11-30 주식회사 진우엔지니어링 A double direction ventilation system for tunnel and method for it

Family Cites Families (21)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2466247A (en) * 1947-03-14 1949-04-05 John A Land Pipe hanger
US2586797A (en) * 1947-06-21 1952-02-26 Westinghouse Electric Corp Fire protection system
US3826180A (en) * 1972-07-28 1974-07-30 T Hayashi Ventilation fan system with smoke detector speed control
EP0025862B1 (en) * 1979-09-04 1983-07-20 Maschinenfabrik Korfmann GmbH Device for extending colliery air ducts
SU1035235A1 (en) * 1980-11-19 1983-08-15 Всесоюзный научно-исследовательский институт горноспасательного дела Arrangement for airing a blind working face
US4463896A (en) * 1982-03-11 1984-08-07 Schaus Herbert J Methods and apparatus for the control of smoke and fire in buildings
US4805835A (en) * 1982-03-11 1989-02-21 Schaus Herbert J Methods and apparatus for the control of smoke and fire in buildings
US4867376A (en) * 1986-10-17 1989-09-19 Arceneaux Henry M Air control system
US4818970A (en) * 1987-08-13 1989-04-04 Gpac, Inc. Fire condition detection and control system for air moving and filtering units
SU1543088A1 (en) * 1987-12-29 1990-02-15 Vnii Bezopasnosti Truda V Gorn Method of airing mine workings in operation of self-propelled machines with ic-engines
JPH03106378A (en) * 1989-09-20 1991-05-02 Showa Electric Wire & Cable Co Ltd Fire extinguisher device in tunnel
JP3586013B2 (en) * 1995-09-08 2004-11-10 株式会社アカギ Hanging band for piping
JPH1061653A (en) * 1996-08-12 1998-03-06 Nichiei Intec Kk Integrated piping suspending band to install suspsnding bolt
US6053809A (en) * 1997-03-13 2000-04-25 Arceneaux; Henry M. Smoke detection and ventilation system
US5855510A (en) * 1997-08-12 1999-01-05 Mckenzie; James System for exhausting smoke and controlling fires within a building
DE29904088U1 (en) * 1999-03-08 1999-06-10 Hilti Ag, Schaan Pipe clamp
JP4127766B2 (en) * 2002-05-08 2008-07-30 株式会社谷沢製作所 Wind pipe sag hanger and wind pipe with sag hanger
US6776708B1 (en) * 2003-01-27 2004-08-17 Rick Daoutis Smoke extraction system
JP4008001B2 (en) * 2005-08-29 2007-11-14 株式会社阪本商会 Pipe for purification
CN201292859Y (en) * 2008-11-28 2009-08-19 山东理工大学 Mine ventilation air oxidation apparatus
US8816843B2 (en) * 2012-02-27 2014-08-26 Coopers Fire Ltd. Smoke or fire barrier

Patent Citations (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE7524273U (en) 1975-07-31 1976-05-06 Hoelter, Heinz, 4390 Gladbeck TELESCOPICABLE, COMBINED, RIGID-FLEXIBLE SUCTION LUTE FOR TRACK DRIVING MACHINES, PRESENTLY FOR SUBMINING
US4361079A (en) 1979-09-04 1982-11-30 Ruhrkohle Ag Apparatus for extending ventilating conduits
DE3117147A1 (en) 1981-04-30 1982-11-18 Daimler-Benz Ag, 7000 Stuttgart Road tunnel with forced ventilation
DE19825420A1 (en) 1998-06-06 1999-12-09 Hartmut Ewald Process and device for smoke and heat extraction and for operating ventilation for traffic structures and rooms
EP1398461A1 (en) 2002-09-03 2004-03-17 TLT-Turbo GmbH Method and device for ventilating a tunnel
EP1544408A1 (en) 2003-12-16 2005-06-22 Vid ApS A system for exhausting flue gases in a tunnel
DE102004027761A1 (en) 2004-06-01 2006-01-05 Thumm Gmbh Intermediate ceiling for use in road tunnels, includes controllable closing components for plugging or opening intermediate ceiling to release air or flue gases from inside road tunnel
DE102007040237A1 (en) 2007-08-25 2009-02-26 Horst-Dieter Dipl.-Ing. Rector Air extraction system for active combating of fire in traffic tunnel creates oppositely-directed airflows from both directions after outbreak of fire and directs these to source of fire or smoke at calculated speed
KR101088341B1 (en) 2010-09-27 2011-11-30 주식회사 진우엔지니어링 A double direction ventilation system for tunnel and method for it

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112879655A (en) * 2020-12-25 2021-06-01 成都建工工业设备安装有限公司 Installation method for fire damper of parallel air pipe
CN112879655B (en) * 2020-12-25 2022-06-21 成都建工工业设备安装有限公司 Installation method for fire damper of parallel air pipe

Also Published As

Publication number Publication date
WO2015082684A3 (en) 2015-11-26
NO20131618A1 (en) 2015-06-08
EP3077623A2 (en) 2016-10-12
US20160305244A1 (en) 2016-10-20
NO337239B1 (en) 2016-02-22

Similar Documents

Publication Publication Date Title
CN105637175B (en) Winding pipe implanter with cutting load testing pipe guiding piece
CN106167228B (en) Method for inspecting an interior of a ship and/or performing work in an interior
US20140375464A1 (en) Electronic Gas Sensor System and Methods of Operation
EP3014050B1 (en) Subsea landing string with autonomous emergency shut-in and disconnect
CN103424054B (en) A kind of stay wire sensor and guard method, engineering machinery
EP3077623A2 (en) System and method for extraction of smoke from road tunnels
JP6582135B2 (en) Rebar break detection device for utility poles
CN102064497A (en) Special pulley for automatic suspension and method for suspending insulating flexible ladder using the same
CN102582633B (en) Rope-breakage protection device for mine large-angle man cable car
CN111247309A (en) Method and system for pipe conveyed logging
US20160061033A1 (en) Method and apparatus for providing controlled atmosphere in mobile mine refuges
CN209510661U (en) A kind of submersible pump auxiliary device
CN205391499U (en) A safety belt for high altitude special equipment detects
NO20131607A1 (en) Sealing material for underground wells.
US9677395B2 (en) Device and method for fast deployment of downhole tool
CN105874166A (en) Integrated inspection and maintenance raise boring method and an associated drill string arrangement
CN104453987A (en) Rescue capsule used for mining emergency rescue
CN110168189B (en) Underground hanger for umbilical cable deployment type electric submersible pump
WO2015012429A1 (en) Self-standing cable tray facility equipped with cable escape prevention unit
RU2449117C1 (en) Method of pumping unit bypassing and bypassing system for its implementation
EP3049579B1 (en) Suction anchor
US20170247984A1 (en) Weak link arrangement and a method comprises a weak link arrangement
CN104319721B (en) High-voltage power grid telescopic guide connection device
CN204041102U (en) Life rescue device
RU2614280C2 (en) Fluid flow heating system in pipes

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 14806664

Country of ref document: EP

Kind code of ref document: A2

NENP Non-entry into the national phase

Ref country code: DE

REEP Request for entry into the european phase

Ref document number: 2014806664

Country of ref document: EP

WWE Wipo information: entry into national phase

Ref document number: 15102190

Country of ref document: US

Ref document number: 2014806664

Country of ref document: EP

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 14806664

Country of ref document: EP

Kind code of ref document: A2