CN112983047B - Static cutting demolition method suitable for blasting demolition - Google Patents

Static cutting demolition method suitable for blasting demolition Download PDF

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Publication number
CN112983047B
CN112983047B CN202110187997.6A CN202110187997A CN112983047B CN 112983047 B CN112983047 B CN 112983047B CN 202110187997 A CN202110187997 A CN 202110187997A CN 112983047 B CN112983047 B CN 112983047B
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Prior art keywords
cutting
blasting
detonation
column
building
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CN202110187997.6A
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CN112983047A (en
Inventor
贺五一
谭雪刚
田伟
龙源
阎子君
赵柏霖
何作强
卓广华
黄俊忠
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Tianjin Zhuzong Construction Engineering General Contracting Co ltd
Jiangxi Rongda Blast New Technology Development Co ltd
Southeast University
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Tianjin Zhuzong Construction Engineering General Contracting Co ltd
Jiangxi Rongda Blast New Technology Development Co ltd
Southeast University
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Publication of CN112983047A publication Critical patent/CN112983047A/en
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Classifications

    • EFIXED CONSTRUCTIONS
    • E04BUILDING
    • E04GSCAFFOLDING; FORMS; SHUTTERING; BUILDING IMPLEMENTS OR AIDS, OR THEIR USE; HANDLING BUILDING MATERIALS ON THE SITE; REPAIRING, BREAKING-UP OR OTHER WORK ON EXISTING BUILDINGS
    • E04G23/00Working measures on existing buildings
    • E04G23/08Wrecking of buildings
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28DWORKING STONE OR STONE-LIKE MATERIALS
    • B28D1/00Working stone or stone-like materials, e.g. brick, concrete or glass, not provided for elsewhere; Machines, devices, tools therefor
    • B28D1/02Working stone or stone-like materials, e.g. brick, concrete or glass, not provided for elsewhere; Machines, devices, tools therefor by sawing
    • B28D1/04Working stone or stone-like materials, e.g. brick, concrete or glass, not provided for elsewhere; Machines, devices, tools therefor by sawing with circular or cylindrical saw-blades or saw-discs
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28DWORKING STONE OR STONE-LIKE MATERIALS
    • B28D1/00Working stone or stone-like materials, e.g. brick, concrete or glass, not provided for elsewhere; Machines, devices, tools therefor
    • B28D1/02Working stone or stone-like materials, e.g. brick, concrete or glass, not provided for elsewhere; Machines, devices, tools therefor by sawing
    • B28D1/06Working stone or stone-like materials, e.g. brick, concrete or glass, not provided for elsewhere; Machines, devices, tools therefor by sawing with reciprocating saw-blades
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B28WORKING CEMENT, CLAY, OR STONE
    • B28DWORKING STONE OR STONE-LIKE MATERIALS
    • B28D7/00Accessories specially adapted for use with machines or devices of the preceding groups
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42DBLASTING
    • F42D1/00Blasting methods or apparatus, e.g. loading or tamping
    • F42D1/04Arrangements for ignition
    • F42D1/045Arrangements for electric ignition
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42DBLASTING
    • F42D3/00Particular applications of blasting techniques
    • F42D3/02Particular applications of blasting techniques for demolition of tall structures, e.g. chimney stacks
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42DBLASTING
    • F42D5/00Safety arrangements
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F42AMMUNITION; BLASTING
    • F42DBLASTING
    • F42D5/00Safety arrangements
    • F42D5/04Rendering explosive charges harmless, e.g. destroying ammunition; Rendering detonation of explosive charges harmless
    • F42D5/045Detonation-wave absorbing or damping means

Abstract

The invention discloses a static force cutting dismantling method suitable for blast dismantling, which comprises the following steps: after the blasting and slag removal of the building are finished, dividing the parts needing to be cut for dismantling the unit layers into a top plate structure, a wall body structure and a column body structure; the cutting of the top plate structure is performed according to the sequence of firstly cutting the floor slab, then cutting the secondary beam and then cutting the main beam; before the wall structure is cut, a supporting scaffold is erected around the wall structure to prevent the wall from inclining, a rope penetrating hole is drilled in the wall, and the rope penetrating hole is fixedly connected with other undetached walls through a fixing structure; the cutting of the column structure firstly blocks the column, and the weight of a single block of the block must be less than the rated lifting capacity of the tower crane. The rope saw or the disc saw is used for cutting the concrete member, the noise, the dust and the like of the rope saw or the disc saw have relatively small influence on the surrounding environment, and the influence can be reduced to the minimum by various measures.

Description

Static cutting demolition method suitable for blasting demolition
Technical Field
The invention relates to a static force cutting demolition method suitable for blast demolition, and belongs to the field of building demolition.
Background
In recent years, with the increase of municipal and traffic reconstruction projects, more and more demolition blasting projects are provided, and the demolition blasting is required to determine the general scheme of demolition blasting according to project requirements and surrounding environment characteristics by considering the structural characteristics of buildings.
With the increasing demand for demolition of ultrahigh-rise buildings at the exhibition of cities, the traditional demolition methods are generally integral blasting demolition and static cutting demolition. The integral blasting demolition has great defects, and the integral blasting demolition selects part of floor bearing members of the building to blast, so that the structure is damaged and unstable to form in-situ or directional collapse; and various harmful effects of blasting need to be strictly controlled, and a little carelessness is caused, so that various blasting accidents are easy to form, and irreversible risks are caused to the surrounding environment. The higher the building height, the more complex the surrounding environment, and the higher the technical risk. In addition, the influence range of the integral blasting demolition is large, the control is difficult, and the possibility of integral blasting is realized only by collecting nearby houses.
In addition, the concrete structure is required to be blocked by static force cutting and dismantling, and because the super high-rise building is large in size and the floors are super high, the requirement on the super high-rise hoisting safety can be met by splitting a single-layer concrete member of each building into a plurality of blocks in consideration of the safety; the process depends heavily on large vertical transport machinery, so the cutting amount and the use cost of various machinery are greatly increased, and the cost is increased and the manufacturing cost is higher no matter the process, the time occupation of various equipment and the allocation of various measures are taken.
Disclosure of Invention
The purpose of the invention is as follows: in order to overcome the defects in the prior art, the invention provides a static cutting demolition method suitable for blasting demolition, which is characterized in that a rest top plate structure, a wall body structure and a column body structure are subjected to static cutting after a building is blasted, a rope saw or a disc saw is used for cutting a concrete member, the influence of noise, dust and the like on the surrounding environment is relatively small, and the influence can be reduced to the minimum through various measures. According to the surrounding environment and the field situation, the applicability of static cutting is better.
The technical scheme is as follows: in order to solve the technical problem, the invention discloses a static cutting demolition method suitable for use in blast demolition, which is characterized by comprising the following steps:
s1, after blasting and slag removal of the building are finished, building a temporary support frame, and dividing the part needing to be cut for dismantling the unit layer into a top plate structure, a wall body structure and a column body structure;
s2, cutting the top plate structure according to the sequence of firstly cutting the floor slab, then cutting the secondary beam and then cutting the main beam;
s3, checking and calculating the load of the beam body and the load of the support frame on the layer according to the structure of the beam body, the position of the cutting surface and the position of the lifting point when the main beam and the secondary beam are cut, and ensuring the stability of the lower layer of the beam body and the floor slab;
s4, tightly attaching the support frame to the lower surfaces of the main beam body and the secondary beam body to ensure that the beams can fall on the support frame after being separated; the cut blocks are lifted away from the support frame in time and are transported out of the building;
s5, before cutting, erecting a supporting scaffold around the wall structure in order to prevent the wall from inclining, drilling a rope-threading hole on the wall, and fixedly connecting the rope-threading hole with other undetached walls through a fixing structure;
s6, when the block is hoisted after cutting, at least two hoisting holes are formed in the block;
s7, cutting the column structure, namely, blocking the column, wherein the weight of a blocked single block must be less than the rated lifting capacity of the tower crane.
Further, the diameter of the hoisting hole in the step S6 is 108mm, which is at least 800mm away from the top end of the wall body and at least 400mm away from the side edge.
Further, in step S7, if the column structure is a frame column, steel tube supports are first arranged on the side edges of the frame column to prevent overturning, and then cutting is performed to divide the column structure into column blocks.
Further, after cutting, arranging steel pipe supports on two sides of the column block; when the column block is hoisted, at least four hoisting holes are formed in the column block.
A method for dismantling a super high-rise building comprises the following steps:
step 1, building a peripheral operation platform of a building: a convenient safety protection frame which has four layers and can move up and down is built on the periphery of a super high-rise building, and the convenient safety protection frame mainly comprises a steel pipe, a baffle, a protective net, hoisting equipment and the like;
step 2, pre-dismantling: taking every two floors as a dismantling unit, and dividing the dismantling unit into a first dismantling unit and a second dismantling unit from top to bottom, and so on until the first floor of the building is reached; and then, pre-dismantling the first dismantling unit, and according to the groined principle, symmetrically reserving partial upright posts of the inner layer of the frame without blasting so as to ensure the integral stability of the building body in the blasting process.
Step 3, perforating and charging: dividing the first dismantling unit into a blasting area and a static cutting area, wherein the blasting area is divided into an inner core cylinder area and a frame inner layer upright area; the inner-layer upright post of the frame comprises a supporting upright post and a bearing upright post; the upright columns in the inner core tube area and the inner layer upright column area of the frame are divided into concrete upright columns and stiff columns, and the wall body is divided into a common-size shear wall and a common-size shear wall; dividing the internal core barrel area into a group of detonation areas by taking the transverse axis and the longitudinal axis of the internal core barrel area as separation lines, selecting all stand columns positioned on the core barrel main body and support stand columns positioned on the inner layer of the frame as blasting objects, distinguishing the blasting objects according to the blasting objects, namely concrete stand columns and stiffness columns, common-size shear walls and shear walls, drilling blast holes on the blasting objects and placing explosive charges on the common-size shear walls;
step 4, safety protection: lay dustproof and noise reduction pipeline and material equipment in blasting region, lay protector in blasting region and building body outside and periphery, mainly include:
(1) covering protection: the covering protection comprises the step of covering and protecting a building floor and an exploded body by using a covering protection layer to prevent flying stones and dust from flying from a cavity at the top of the core cylinder;
(2) protection against the near body: the near body protection comprises a door and a window which are used for sealing a non-blasting area by using a safety protection device and blocking flying stones and smoke dust;
(3) conservative protection: the conservative protection comprises the steps that a damping ditch is arranged on the outer side of a building body of a building, and two layers of steel wire meshes are arranged on the periphery of the climbing frame operation platform for protection to isolate flying stones.
According to the safety protection requirement and the size of a building body, considering the universality of standard components, the height and width of the special safety protection device are designed to be 2.8 multiplied by 1.5m, the thickness is 11cm, and the weight is about 35 kg. The member is composed of 5 layers of protective materials, and the safety protection device is provided with an explosive pore channel and a pressure sensor. The method mainly comprises the following steps:
the 1 st layer is a reinforcing mesh layer, is made of phi 6mm reinforcing steel bars with the transverse and vertical intervals of 10cm and weighs about 17.6 kg;
the second layer 2 is a high-density flame-retardant foam board layer, the foam board material is flame-retardant phenolic foam, and the volume weight is 40kg/m35cm in thickness and about 8.4kg in weight;
the 3 rd layer is a steel wire mesh layer with the size of 10 multiplied by 0.6 mm;
the 4 th layer is a glass wool layer with the volume weight of 40kg/m3The glass wool of (2) has a thickness of 5cm and a weight of about 8.4 kg;
the 5 th layer is a thin steel plate layer, and a steel plate with the thickness of 0.6mm is selected.
The special safety protection standard component reserves 10cm wide concatenation mouth in both sides, and the concatenation mouth is located two perpendicular limits departments of third layer safety layer, is provided with 5 at least concatenation holes on the concatenation mouth, fixes through fixing device between the concatenation hole. The design of the splicing port can be used for nondestructively disassembling and assembling the protective component in the installation and connection processes, is easy to connect and disassemble, and can realize the reutilization of the invention. The splicing port is composed of 3 layers of protective materials, the number of the layers at one side of the splicing position is 1-3, and the number of the layers at the other side of the splicing position is 3-5. 5 holes with the diameter of 15mm are reserved in the splicing openings on the two sides so as to be convenient for subsequent splicing and fixing, and the hole distance is 65 cm. After splicing is completed, the spliced part is composed of 6 layers of materials (two steel wire mesh layers). The protective component is not damaged in the installation and connection process, the protective component is easy to connect and detach, and the protective component can be reused.
And arranging a protection device capable of being spliced at the position of 1-2 m around the blasting area to shield the impact wave effect and prevent flying stones from flying. The size of a single protection device capable of being spliced is 60 x 60cm, and the structural block material consists of 5 layers of protection materials, including a 0.6cm protection net, a 5 cm-thick high-density flame-retardant foam board layer, a 0.6cm protection net, a 5 cm-thick glass wool layer and 0.6cm color steel plate intervals. The explosive and the pressure sensor are arranged on the single protection component block, and when the pressure applied to the protection block sensor exceeds a certain value, the explosive on the protection block is subjected to self-explosion so as to resist shock waves and flying rocks generated during the blasting of a building from flying.
The protection device capable of being spliced is formed by hinging and connecting protection blocks capable of being spliced, and after splicing is completed, the cross supporting device is added, so that the overall structural rigidity of the protection device is ensured. The protection piece accessible hinge of protector top layer and side is fixed with the environment wall body, and the bottom protection piece can be connected with the universal wheel, realizes that the protective member moves as a whole.
The outer side of the blasting component is directly coated with 2 layers of high-fiber curtain nets and bound by iron wires to serve as a first protective net for flying stone protection.
Step 5, dust fall and noise reduction protection: laying a dust settling and noise reducing device in the blasting area and the static cutting area; in order to reduce the overlarge dust amount in the blasting process, water is sprayed inside the blasting area structure before blasting is started. The peripheral climbing frame is provided with a spraying device, and the spraying water pipe networks are arranged in a transverse, longitudinal and vertical cross mode, and the distance between every two adjacent spraying water pipe networks is 10 m. A layer of canvas covers the upper part of the spraying pipe network. 5 dust concentration parameter detection modules of shower network installation, adopt the light-sensitive principle to carry out dust concentration and detect, spray the water yield according to real-time dust concentration adjustment, the maximize is practiced thrift and is sprayed the water.
Step 6, detonating the explosive: setting electronic detonators in the detonation areas divided in the step 3, connecting all the electronic detonators to a blasting bus in a parallel mode, connecting the bus to a special detonator, and detonating according to the detonation sequence through the special detonator;
step 7, after blasting is finished, the slag removing team enters the field to remove slag soil: reform transform into movable rubbish dog-house with the elevator well entrance to a cave, scarfing cinder team gets into from not blasting the region through the construction elevator, utilizes the elevator well as the perpendicular transport corridor of dregs, and other floor core section of thick bamboo elevator mouths all use the building block to seal, avoid the dregs to drop a large amount of dusts and the noise of production and protection constructor safety, wet moist building rubbish in the floor simultaneously, avoid directly throwing into the well with dry rubbish. The shock absorption steel plate slope is arranged at the discharge port of the first layer for shock absorption, and the rubber plate is laid on the shock absorption steel plate, so that the gravitational potential energy can be effectively released, the impact force at the falling point of the material can be buffered, and the functions of safety and environmental protection can be achieved.
Step 8, after slag removal is finished, building a temporary support layer, and cutting, lifting and transferring the top plate structure of the first dismantling unit; specifically, the floor slab is cut off firstly, and then the secondary beam and the main beam are cut off. When the beam structure is cut, the stability of the load of the beam body, the load of the supporting structure, the load of the lower layer of beam body and the floor slab is checked and calculated according to the beam body structure, the position of the cutting surface and the position of the lifting point, and the support is reasonable in layout. During cutting, the supporting points need to be tightly attached to the lower bottom surface of the beam body, the beam body can be guaranteed to stably fall on the support after being separated, the block body after cutting needs to be lifted out of the supporting frame in time, and the block body is forbidden to be placed on the supporting frame for a long time. According to the bearable load of the tower crane, the quality of the split component is controlled, so that the lifting safety is ensured. The beam member hoisting holes are not less than 4, and the distance from the two ends of the beam plate is 1/6 of the beam length and is not less than 600 mm.
Step 9, carrying out static cutting dismantling and lifting and lowering on the static cutting area; when the wall body is cut, supporting scaffold for preventing the wall body from inclining needs to be erected on the periphery. In order to prevent the cutting block from deviating to influence cutting, a rope threading hole needs to be drilled in advance before cutting, and a steel pipe is installed through the rope threading hole to be connected and fixed with other undetached wall bodies, so that the effect of balancing the demolition block is achieved. During hoisting, the number of the hoisting holes of the shear wall member is not less than two, the diameter of each hoisting hole is 108mm, the distance from the free surface at the top end is not less than 800mm, and the distance from the 1/6 position of the horizontal length of the lateral free surface is not less than 400 mm.
When the column is cut, the column structure units need to be divided, and the weight of a single block after the division must be smaller than the rated lifting capacity of the tower crane. When the frame column is cut, the steel pipe support is arranged in the lateral direction of the column to prevent overturning, and then cutting construction is carried out. After cutting, drilling holes by using a diamond thin-wall drilling machine, drilling holes on two sides of the frame column, inserting steel bars, drilling 4 holes with the diameter of 108mm in each concrete plate after cutting the column body, and penetrating the column body by using a hoisting steel wire rope for hoisting.
And step 10, finishing the slag removal procedure handover, switching to a second dismantling unit, constructing according to the construction circulation mode until the ground is one floor, and finishing.
Further, the pre-demolition in the step 2 comprises demolishing all non-bearing steam pressurized concrete walls and doors and windows in the blasting area, and cutting off water, electricity, gas, heat supply, communication pipelines and metal garbage channels.
Further, the perforating and charging of the concrete column in the step 3 comprises the following steps:
(1) two longitudinal rows of through holes are arranged on the longitudinal section of the concrete column, the distance of the central axis of the two longitudinal rows of through holes is 40cm, the height difference of the through holes corresponding to each other on the two longitudinal rows is 50cm, and the depth of the through hole channel is as follows:
L=B-δ/2
wherein δ is the column thickness; b is the maximum side length of the upright column;
(2) explosive packages and detonating cords are arranged in the pore passage at intervals, the interval distance of the explosive packages is 0.3 m, digital detonators and water bags are sequentially arranged at the outlet of the pore passage from inside to outside, and thenFilling; net length of blast hole after charging1The requirements are as follows:
L1≥(1.1~1.2)W
wherein, W is the minimum resistant line and is 35 mm.
Further, the perforating charge of the stiff columns in step 3 comprises the following steps:
s1, arranging two longitudinal rows of through holes on the longitudinal section of the stiff column, wherein the distance of central axes of the two longitudinal rows of through holes is 40cm, the height difference of the through holes corresponding to each other on the two longitudinal rows is 50cm, and the depth of pore channels of the through holes is as follows:
L=B-δ/2
wherein, δ is the thickness of the upright column; and B is the maximum side length of the upright column.
S2, arranging explosive bags and detonating cords in the pore channels at intervals, wherein the interval distance between the explosive bags is 0.3 m, and arranging a digital detonator and a water bag at the outlet of the pore channel in sequence for filling; net length of blast hole after charging1The requirements are as follows:
L1≥(1.1~1.2)W
wherein, W is the minimum resistance line, and is half of the length of the short side of the stiff column;
s3, the stiff columns contain internal steel, inclined pore canals are arranged at the positions adjacent to the internal steel, and linear energy-gathering cutters are arranged in the inclined pore canals; the inclined pore passage consists of two pore passages, the longitudinal sections of the two pore passages are in a V shape, the tips of the V-shaped pore passages are positioned at the inner steel, and the inlets and the outlets of the V-shaped pore passages are positioned on the outer surface of the stiffness column; an included angle is formed between two duct channels of the V-shaped duct channel, and the included angle ranges from 30 degrees to 45 degrees.
Further, the perforating charge of the shear wall in the step 3 comprises the following steps:
firstly, digging an arch-shaped wall hole on a shear wall;
secondly, two through holes are formed in the top and the bottom of the shear wall, the distance between the top hole and the upper floor slab is 0.5m, the distance between the bottom hole and the lower floor slab is 0.5m, and X-shaped energy-gathering cutters are arranged in the top hole and the bottom hole;
a group of horizontal pore channels are arranged between the top pore channel and the bottom pore channel, a part of horizontal pore channels enter from the left wall body, and a horizontal pore channel entering from the right wall body is arranged between every two adjacent horizontal pore channels entering from the left side;
fourthly, explosive charges and detonating cords are arranged in the horizontal pore passage at intervals, the interval distance of the explosive charges is 0.3 m, and a digital detonator and a water bag are sequentially arranged at the outlet of the pore passage from inside to outside and are stuffed; the net blocking length L1 after the blast hole is charged needs to satisfy the following conditions:
L1≥(1.1~1.2)W
wherein W is the minimum resistance line, and is half of the wall thickness of the section of the shear wall.
Further, the perforating and charging of the common-size shear wall in the step 3 comprises the following steps:
A. two through holes are formed in the top and the bottom of the common-size shear wall, the distance between the top hole and the upper floor slab is 0.5m, the distance between the bottom hole and the lower floor slab is 0.5m, and X-shaped energy gathering cutters are arranged in the top hole and the bottom hole;
B. two sides of a common-size shear wall are respectively provided with a W-shaped double-layer energy gathering cutter which is fixed through a limiting plate; when blasting demolition is carried out, the lower layer of energy-gathering cutters generate blade-shaped jet flow firstly, the blade-shaped jet flow firstly acts on the common-size shear wall concrete to break the surface of the structural concrete, and then the upper layer of cutters generate the blade-shaped jet flow to further cut the steel bars in the common-size shear wall.
Further, the detonation sequence in step 6 is to divide the detonation zone into 12 detonation units, wherein 8 detonation units form an internal zone and are divided into two rows, the serial numbers of the first row of units are respectively No. 5, No. 3, No. 1 and No. 8 from left to right, and the serial numbers of the second row of units are respectively No. 7, No. 2, No. 4 and No. 6 from left to right; in addition, 4 detonating units are respectively positioned at the upper left corner, the upper right corner, the lower left corner and the lower right corner of the internal area, the upper left corner is numbered as No. 9, the upper right corner is numbered as No. 11, the lower left corner is numbered as No. 12, and the lower right corner is numbered as No. 10; the initiation sequence is in the sequence of No. 1 to No. 12, and the delayed initiation is carried out in sequence; when the detonation of the detonation unit on the upper layer is finished, the detonation unit entering the lower layer starts to detonate until all the detonation units are finished; the delayed detonation method is characterized in that each detonation unit is detonated with a delay of 0.5s compared with the last detonation unit, and the interval time between the detonation of the upper floor and the detonation of the lower floor is 2 s. The delayed detonation method is characterized in that each detonation unit is detonated with a delay of 0.5s compared with the last detonation unit, and the interval time between the detonation of the upper floor and the detonation of the lower floor is 2 s.
Further, the explosive quantity calculation method in the step 3 is according to the savofsky formula, and the allowable explosive quantity calculation formula of the maximum single initiation unit obtained after deformation is as follows:
Qmax=(Vc/K)3/α×R3
in the formula, Qmax is the maximum single-stage explosive quantity, kg;
vc-the safe allowable particle vibration speed of the protected object, cm/s.
R is the distance from the blasting central point to the protected target, m;
K. alpha is coefficient and earthquake wave attenuation index related to blasting terrain, geological condition and the like, and the specific numerical values of K and alpha can be obtained by table lookup.
Further, the safety protection in step 4 is classified into (1) coverage protection: the covering protection comprises the steps that a covering protection layer is used for covering and protecting a building floor slab and an exploded body, and flying stones and dust are prevented from flying from a cavity at the top of the core cylinder; (2) protection against close body: the close body protection comprises the steps of utilizing a safety protection device to seal doors and windows in a non-blasting area and block flying stones and smoke dust; (3) conservative protection: conservative protection includes that the damping ditch is arranged on the outer side of a building body, and two layers of steel wire meshes are arranged on the periphery of the climbing frame operation platform for protection, so that flying stones are isolated.
Further, the static force cutting method in the step 8 is as follows:
a. after the building is exploded and the slag is removed, a temporary support frame is erected, and the part needing to be cut for dismantling the unit layer is divided into a top plate structure, a wall body structure and a column body structure;
b. the cutting of the top plate structure is performed according to the sequence of firstly cutting the floor slab, then cutting the secondary beam and then cutting the main beam;
c. when the main beam and the secondary beam are cut, the load of the beam body and the load of the support frame on the layer are checked and calculated according to the structure of the beam body, the position of the cutting surface and the position of the lifting point, and the stability of the beam body and the floor on the lower layer is ensured;
d. the support frame is tightly attached to the lower surfaces of the main beam body and the secondary beam body, so that the beams can fall on the support frame after being separated; the cut blocks are lifted away from the support frame in time and are transported out of the building;
e. before the wall structure is cut, a supporting scaffold is erected around the wall structure in order to prevent the wall from inclining, a rope threading hole is drilled in the wall, and the rope threading hole is fixedly connected with other undetached walls through a fixing structure;
f. when the block body is hoisted after being cut, at least two hoisting holes are formed in the block body;
g. the cutting of the column body structure firstly blocks the column body, and the weight of a single block of the block is necessarily smaller than the rated lifting capacity of the tower crane.
The invention adopts the means of 'implosion and exo-excision', realizes the complementary advantages of the efficacy and the safety of two operation modes, the inner layer blasting has good efficacy, and the outer layer cutting has double safety functions. (2) And during blasting operation, the reserved part of the shear wall and the frame layer stand column in the core barrel are used as supports, the floor slab and the connecting beam do not collapse after blasting, the whole structure of the unit layer is unchanged, the safety of the outer wall body is protected, and the outer wall body is used as a protective barrier for blasting flying stones, shock waves, noise and dust. (3) The advanced blasting equipment is selected, the micro-differential control blasting technology is applied, the blast hole explosive quantity and the detonation time difference are accurately designed, the accurate blasting effect is realized, the blasting vibration and the impact wave are controlled to influence the self structure and the surrounding environment of the building, and the blasting safety, the high efficiency and the green environmental protection are realized through the scientific technical design and the novel protection design.
Has the beneficial effects that: (1) the invention uses the rope saw or the disk saw to cut the concrete member, the noise and the dust have relatively small influence on the surrounding environment, and the influence can be reduced to the minimum by various measures. And (2) the applicability of static cutting is better according to the surrounding environment and the field situation. (3) The static force cutting demolition method can make a strict partitioning plan for the super high-rise large-volume building, control the volume and the weight of the concrete member, ensure the safety requirement of demolition and lifting of the super high-rise building through strict large-scale mechanical type selection and various protection measures, and control the risk.
Detailed Description
The present invention will be further described below.
Example 1
A static force cutting dismantling method suitable for blasting dismantling is characterized by comprising the following steps:
s1, after blasting and slag removal of the building are finished, building a temporary support frame, and dividing the part needing to be cut for dismantling the unit layer into a top plate structure, a wall body structure and a column body structure;
s2, cutting the top plate structure according to the sequence of firstly cutting the floor slab, then cutting the secondary beam and then cutting the main beam;
s3, checking and calculating the load of the beam body and the load of the support frame on the layer according to the structure of the beam body, the position of the cutting surface and the position of the lifting point when the main beam and the secondary beam are cut, and ensuring the stability of the lower layer of the beam body and the floor slab;
s4, tightly attaching the support frame to the lower surfaces of the main beam body and the secondary beam body to ensure that the beams can fall on the support frame after being separated; the cut blocks are lifted away from the support frame in time and are transported out of the building;
s5, before cutting, erecting a supporting scaffold around the wall structure to prevent the wall from inclining, drilling a rope penetrating hole on the wall, and fixedly connecting the rope penetrating hole with other undetached walls through a fixing structure;
s6, when the block is hoisted after cutting, at least two hoisting holes are formed in the block; the diameter of the hoisting hole in the step S6 is 108mm, the distance between the hoisting hole and the top end of the wall is at least 800mm, and the distance between the hoisting hole and the side edge is at least 400 mm.
S7, cutting the column structure, namely, blocking the column, wherein the weight of a blocked single block must be less than the rated lifting capacity of the tower crane. If the column structure is a frame column in step S7, a steel pipe support is arranged on the side of the frame column to prevent overturning, and then cutting is performed to divide the column structure into column blocks. After cutting, arranging steel pipe supports on two sides of the column block; when the column block is hoisted, at least four hoisting holes are formed in the column block.
Example 2
A method for demolishing a super high-rise building comprises the following steps:
step 1, building a peripheral operation platform of a building: a convenient safety protection frame which has four layers and can move up and down is built on the periphery of a super high-rise building, and the convenient safety protection frame mainly comprises a steel pipe, a baffle, a protective net, hoisting equipment and the like;
step 2, pre-dismantling: taking every two floors as a dismantling unit, dividing the dismantling unit into a first dismantling unit and a second dismantling unit from top to bottom, and so on until the first floor of the building is reached; and then, pre-dismantling the first dismantling unit, and according to a groined principle, not blasting partial upright columns symmetrically reserved in the inner layer of the frame so as to ensure the overall stability of the building body in the blasting process.
Step 3, dividing the first dismantling unit into a blasting area and a static cutting area, wherein the blasting area is divided into an inner core cylinder area and a frame inner layer upright post area; the inner-layer upright post of the frame comprises a supporting upright post and a bearing upright post; the upright columns in the inner core tube area and the inner layer upright column area of the frame are divided into concrete upright columns and stiff columns, and the wall body is divided into a common-size shear wall and a common-size shear wall; dividing the inner core barrel area into a group of detonation areas by taking the transverse axis and the longitudinal axis of the inner core barrel area as separation lines, selecting all stand columns positioned on the core barrel main body and support stand columns positioned on the inner layer of the frame as blasting objects, distinguishing the blasting objects according to the blasting objects, namely concrete stand columns and stiff columns, common-size shear walls and shear walls, drilling blast holes on the blasting objects and placing explosive charges on the shearing walls;
step 4, safety protection: lay dustproof and noise reduction pipeline and material equipment in blasting region, lay protector in blasting region and building body outside and periphery, mainly include:
(1) covering protection: the covering protection comprises the step of covering and protecting a building floor and an exploded body by using a covering protection layer to prevent flying stones and dust from flying from a cavity at the top of the core cylinder;
(2) protection against close body: the near body protection comprises a door and a window which are used for sealing a non-blasting area by using a safety protection device and blocking flying stones and smoke dust;
(3) conservative protection: the conservative protection comprises the steps that a damping ditch is arranged on the outer side of a building body of a building, and two layers of steel wire meshes are arranged on the periphery of the climbing frame operation platform for protection to isolate flying stones.
According to the safety protection requirement and the size of a building body, considering the universality of standard components, the height and width of the special safety protection device are designed to be 2.8 multiplied by 1.5m, the thickness is 11cm, and the weight is about 35 kg. The member is composed of 5 layers of protective materials, and the safety protection device is provided with an explosive pore channel and a pressure sensor. The method mainly comprises the following steps:
the 1 st layer is a reinforcing mesh layer, is made of phi 6mm reinforcing steel bars with the transverse and vertical intervals of 10cm and weighs about 17.6 kg;
the second layer 2 is a high-density flame-retardant foam board layer, the foam board material is flame-retardant phenolic foam, and the volume weight is 40kg/m35cm in thickness and 8.4kg in weight;
the 3 rd layer is a steel wire mesh layer with the size of 10 multiplied by 0.6 mm;
the 4 th layer is a glass wool layer with the volume weight of 40kg/m3The glass wool of (2) has a thickness of 5cm and a weight of about 8.4 kg;
the 5 th layer is a thin steel plate layer, and a steel plate with the thickness of 0.6mm is selected.
10cm wide splicing openings are reserved on two sides of the special safety protection standard component, the splicing openings are located at two vertical edges of the third layer safety layer, at least 5 splicing holes are formed in the splicing openings, and the splicing holes are fixed through fixing devices. The design of the splicing port can be used for nondestructively disassembling and assembling the protective component in the installation and connection processes, is easy to connect and disassemble, and can realize the reutilization of the invention. The splicing port is composed of 3 layers of protective materials, the number 1-3 layers of materials are formed on one side of the splicing position, and the number 3-5 layers of materials are formed on the other side of the splicing position. 5 holes with the diameter of 15mm are reserved in the splicing openings on the two sides so as to be convenient for subsequent splicing and fixing, and the hole distance is 65 cm. After splicing is completed, the spliced part is composed of 6 layers of materials (two steel wire mesh layers). The protective component is not damaged in the installation and connection process, the protective component is easy to connect and detach, and the protective component can be reused.
And arranging a protection device capable of being spliced at the position of 1-2 m around the blasting area to shield the impact wave effect and prevent flying stones from flying. The size of a single splicing protective device is 60 multiplied by 60cm, and the structural block material consists of 5 layers of protective materials, including a 0.6cm protective net, a 5 cm-thick high-density flame-retardant foam board layer, a 0.6cm protective net, a 5 cm-thick glass wool layer and 0.6cm color steel plates at intervals. The explosive and the pressure sensor are arranged on the single protection component block, and when the pressure applied to the protection block sensor exceeds a certain value, the explosive on the protection block is subjected to self-explosion so as to resist shock waves and flying rocks generated during the blasting of a building from flying.
The protection device capable of being spliced is formed by hinging and connecting protection blocks capable of being spliced, and after splicing is completed, the cross supporting device is added, so that the overall structural rigidity of the protection device is ensured. The protection piece accessible hinge of protector top layer and side is fixed with the environment wall body, and the bottom protection piece can be connected with the universal wheel, realizes that the protective member moves as a whole.
The outer side of the blasting component is directly coated with 2 layers of high-fiber curtain nets and bound by iron wires to serve as a first protective net for flying stone protection.
Step 5, dust fall and noise reduction protection: laying a dust settling and noise reducing device in a blasting area and a static cutting area; in order to reduce the overlarge dust amount in the blasting process, water is sprayed inside the blasting area structure before blasting. The peripheral climbing frame is provided with a spraying device, and the spraying water pipe networks are arranged in a transverse, longitudinal and vertical cross mode, and the distance between every two adjacent spraying water pipe networks is 10 m. A layer of canvas covers the upper part of the spraying pipe network. 5 dust concentration parameter detection modules of shower network installation, adopt the light-sensitive principle to carry out dust concentration and detect, spray the water yield according to real-time dust concentration adjustment, the maximize is practiced thrift and is sprayed the water.
And 6, detonating the explosive: setting electronic detonators in the detonation areas divided in the step 3, connecting all the electronic detonators to a blasting bus in a parallel mode, connecting the bus to a special detonator, and detonating according to the detonation sequence through the special detonator;
step 7, after blasting is finished, the slag removing team enters the field to remove slag soil: reform transform into movable rubbish dog-house with the elevator well entrance to a cave, scarfing cinder team gets into from not blasting the region through the construction elevator, utilizes the elevator well as the perpendicular transport corridor of dregs, and other floor core section of thick bamboo elevator mouths all use the building block to seal, avoid the dregs to drop a large amount of dusts and the noise of production and protection constructor safety, wet moist building rubbish in the floor simultaneously, avoid directly throwing into the well with dry rubbish. The shock absorption steel plate slope is arranged at the discharge port of the first layer for shock absorption, and the rubber plate is paved on the shock absorption steel plate, so that the gravitational potential energy can be effectively released, the impact force at the falling point of the material can be buffered, and the functions of safety and environmental protection can be achieved.
Step 8, after slag removal is finished, building a temporary support layer, and cutting, lifting and transferring the top plate structure of the first dismantling unit; specifically, the floor slab is firstly cut off, and then the secondary beam and the main beam are cut off. When the beam structure is cut, the stability of the load of the beam body, the load of the supporting structure, the load of the lower layer of beam body and the floor slab is checked and calculated according to the beam body structure, the position of the cutting surface and the position of the lifting point, and the support is reasonable in layout. During cutting, the supporting points need to be tightly attached to the lower bottom surface of the beam body, the beam body can stably fall on the support after being separated, the cut block body needs to be lifted out of the support frame in time, and the block body is forbidden to be placed on the support frame for a long time. According to the bearable load of the tower crane, the quality of the split component is controlled, so that the lifting safety is ensured. The beam member hoisting holes are not less than 4, and the distance from the two ends of the beam plate is 1/6 of the beam length and is not less than 600 mm.
Step 9, carrying out static cutting dismantling and hoisting and transferring on the static cutting area; when the wall body is cut, supporting scaffold for preventing the wall body from inclining needs to be erected on the periphery. In order to prevent the cutting block from deviating to influence cutting, a rope threading hole needs to be drilled in advance before cutting, and a steel pipe is installed through the rope threading hole to be connected and fixed with other undetached walls, so that the effect of balancing the demolition block is achieved. When the shear wall component is hoisted, the number of the hoisting holes of the shear wall component is not less than two, the diameter of each hoisting hole is 108mm, the distance between each hoisting hole and the top free surface is not less than 800mm, and the distance between each hoisting hole and the 1/6 of the horizontal length of the lateral free surface is not less than 400 mm.
When the column body is cut, the column body structure units need to be divided, and the weight of a single block after the block division is necessarily smaller than the rated lifting capacity of the tower crane. When the frame column is cut, the steel pipe support is arranged in the lateral direction of the column to prevent overturning, and then cutting construction is carried out. After cutting, drilling holes by using a diamond thin-wall drilling machine, drilling holes on two sides of the frame column, inserting steel bars, drilling 4 holes with the diameter of 108mm in each concrete plate after cutting the column body, and penetrating the column body by using a hoisting steel wire rope for hoisting.
And step 10, finishing the slag removal procedure handover, switching to a second dismantling unit, constructing according to the construction circulation mode until the ground is one floor, and finishing.
The pre-demolition in the step 2 comprises demolishing all non-bearing steam pressurized concrete walls and doors and windows in the blasting area, and cutting off water, electricity, gas, heating, communication pipelines and metal garbage channels.
The perforating and charging of the concrete upright column in the step 3 comprises the following steps:
(1) two longitudinal rows of through holes are arranged on the longitudinal section of the concrete column, the distance of the central axis of the two longitudinal rows of through holes is 40cm, the height difference of the through holes corresponding to each other on the two longitudinal rows is 50cm, and the depth of the through hole channel is as follows:
L=B-δ/2
wherein, δ is the thickness of the upright column; b is the maximum side length of the upright post;
(2) explosive packages and detonating cords are distributed in the pore passage at intervals, the interval distance of the explosive packages is 0.3 m, and a digital detonator and a water bag are sequentially arranged at the outlet of the pore passage from inside to outside and are stuffed; net blocking length L after charging blast hole1The requirements are as follows:
L1≥(1.1~1.2)W
wherein, W is the minimum resistant line and is 35 mm.
The perforating and charging of the stiff column in the step 3 comprises the following steps:
s1, arranging two longitudinal rows of through holes on the longitudinal section of the stiff column, wherein the distance of central axes of the two longitudinal rows of through holes is 40cm, the height difference of the through holes corresponding to each other on the two longitudinal rows is 50cm, and the depth of pore channels of the through holes is as follows:
L=B-δ/2
wherein, δ is the thickness of the upright column; and B is the maximum side length of the upright column.
S2, arranging explosive bags and detonating cords in the pore channels at intervals, wherein the interval distance between the explosive bags is 0.3 m, and arranging a digital detonator and a water bag at the outlet of the pore channel in sequence for filling; net length of blast hole after charging1The requirements are as follows:
L1≥(1.1~1.2)W
wherein W is the minimum resistance line and is half of the length of the short side of the stiff column;
s3, the stiff columns contain internal steel, inclined pore canals are arranged at the positions adjacent to the internal steel, and linear energy-gathering cutters are arranged in the inclined pore canals; the inclined pore passage consists of two pore passages, the longitudinal sections of the two pore passages are in a V shape, the tips of the V-shaped pore passages are at the inner steel, and the inlets and the outlets of the V-shaped pore passages are on the outer surface of the stiff column; an included angle is formed between two duct channels of the V-shaped duct channel, and the included angle ranges from 30 degrees to 45 degrees.
The perforating and charging of the shear wall in the step 3 comprises the following steps:
firstly, digging an arch-shaped wall hole on a shear wall;
secondly, two through holes are formed in the top and the bottom of the shear wall, the distance between the top hole and the upper floor slab is 0.5m, the distance between the bottom hole and the lower floor slab is 0.5m, and X-shaped energy gathering cutters are arranged in the top hole and the bottom hole;
a group of horizontal ducts are arranged between the top duct and the bottom duct, a part of the horizontal ducts enter from the left wall body, and a horizontal duct entering from the right wall body is arranged between every two adjacent horizontal ducts entering from the left side;
fourthly, explosive packages and detonating cords are arranged in the horizontal pore channels at intervals, the interval distance of the explosive packages is 0.3 m, and digital detonators and water bags are sequentially arranged at the outlet of the pore channels from inside to outside and are stuffed; the net blocking length L1 after the blast hole is charged needs to satisfy the following conditions:
L1≥(1.1~1.2)W
wherein W is the minimum resistance line, and is half of the wall thickness of the section of the shear wall.
The perforating and charging of the shear wall with the common size in the step 3 comprises the following steps:
A. two through holes are formed in the top and the bottom of the shear wall with the common size, the distance between the top hole and the upper floor slab is 0.5m, the distance between the bottom hole and the lower floor slab is 0.5m, and X-shaped energy-gathering cutters are arranged in the top hole and the bottom hole;
B. two sides of a common-size shear wall are respectively provided with a W-shaped double-layer energy gathering cutter which is fixed through a limiting plate; when blasting demolition is carried out, the lower layer of energy gathering cutters generate blade-shaped jet flow firstly, the blade-shaped jet flow acts on the concrete of the shear wall with the common size to crush the surface of the concrete of the structure, and then the upper layer of cutters generate the blade-shaped jet flow to further cut the internal reinforcing steel bars of the shear wall with the common size.
The detonation sequence in the step 6 is to divide the detonation zone into 12 detonation units, wherein 8 detonation units form an internal zone and are divided into two rows, the serial numbers of the first row of units are respectively No. 5, No. 3, No. 1 and No. 8 from left to right, and the serial numbers of the second row of units are respectively No. 7, No. 2, No. 4 and No. 6 from left to right; the other 4 initiation units are respectively positioned at the upper left corner, the upper right corner, the lower left corner and the lower right corner of the internal area, the upper left corner is numbered as 9, the upper right corner is numbered as 11, the lower left corner is numbered as 12, and the lower right corner is numbered as 10; the initiation sequence is in the sequence of No. 1 to No. 12, and the delayed initiation is carried out in sequence; when the detonation of the detonation unit on the upper layer is finished, the detonation unit entering the lower layer starts to detonate until all the detonation units are finished; the delayed detonation method is that each detonation unit detonates in 0.5s time delay compared with the last detonation unit, and the interval time between the detonation of the upper floor and the detonation of the lower floor is 2 s. The delayed detonation method is characterized in that each detonation unit is detonated with a delay of 0.5s compared with the last detonation unit, and the interval time between the detonation of the upper floor and the detonation of the lower floor is 2 s.
The explosive quantity calculation method in the step 3 is that according to the Sutavski formula, the allowable maximum explosive quantity calculation formula of the single initiation unit obtained after deformation is as follows:
Qmax=(Vc/K)3/α×R3
in the formula, Qmax is the maximum single-stage explosive quantity, kg;
vc-the safe allowable particle vibration speed of the protected object, cm/s.
R is the distance from the blasting central point to the protected target, m;
K. alpha is coefficient and earthquake wave attenuation index related to blasting terrain, geological condition and the like, and specific numerical values of K and alpha can be obtained by table lookup.
The safety protection in the step 4 is divided into (1) coverage protection: the covering protection comprises the steps of covering and protecting a building floor slab and an exploded body by using a covering protection layer, and preventing flying stones and dust from flying from a cavity at the top of the core barrel; (2) protection against close body: the close body protection comprises the steps of utilizing a safety protection device to seal doors and windows in a non-blasting area and block flying stones and smoke dust; (3) conservative protection: conservative protection includes that the damping ditch is arranged on the outer side of a building body, and two layers of steel wire meshes are arranged on the periphery of the climbing frame operation platform for protection, so that flying stones are isolated.
The static force cutting method in the step 8 comprises the following steps:
a. after the blasting and slag removal of the building are finished, building a temporary support frame, and dividing the part needing to be cut for dismantling the unit layer into a top plate structure, a wall body structure and a column body structure;
b. the roof structure is cut according to the sequence of cutting the floor slab, the secondary beam and the main beam;
c. when the main beam and the secondary beam are cut, checking and calculating the load of the beam body and the load of the support frame on the layer according to the structure of the beam body, the position of the cutting surface and the position of the lifting point, and ensuring the stability of the beam body and the floor slab on the lower layer;
d. the support frame is tightly attached to the lower surfaces of the main beam body and the secondary beam body, so that the beams can fall on the support frame after being separated; the cut blocks are lifted away from the support frame in time and are transported out of the building;
e. before the wall structure is cut, a supporting scaffold is erected around the wall structure to prevent the wall from inclining, a rope penetrating hole is drilled in the wall, and the rope penetrating hole is fixedly connected with other undetached walls through a fixing structure;
f. when the block body is hoisted after being cut, at least two hoisting holes are formed in the block body;
g. the cutting of the column body structure firstly blocks the column body, and the weight of a single block of the block is necessarily smaller than the rated lifting capacity of the tower crane.
The invention adopts the means of 'implosion and exo-excision', realizes the complementary advantages of the efficacy and the safety of two operation modes, the inner layer blasting has good efficacy, and the outer layer cutting has double safety functions. (2) And during blasting operation, the reserved part of the shear wall and the frame layer stand column in the core barrel are used as supports, the floor slab and the connecting beam do not collapse after blasting, the whole structure of the unit layer is unchanged, the safety of the outer wall body is protected, and the outer wall body is used as a protective barrier for blasting flying stones, shock waves, noise and dust. (3) Select for use advanced blasting equipment, utilize the differential control blasting technique, accurate design big gun hole dose and detonation time difference realize accurate blasting effect, control blasting vibration, shock wave have realized blasting safety, high efficiency and green through scientific technical design and novel protection design to building self structure and surrounding environment influence.
The foregoing illustrates and describes the principles, general features, and advantages of the present invention. It should be understood by those skilled in the art that the above embodiments do not limit the present invention in any way, and all technical solutions obtained by using equivalents or equivalent changes fall within the protection scope of the present invention.

Claims (4)

1. A static force cutting dismantling method suitable for blast dismantling is characterized by comprising the following steps:
step 1, building a peripheral operation platform of a building: constructing a convenient and fast safety protection frame which has four layers of height and can move up and down on the periphery of the super high-rise building;
step 2, pre-dismantling: taking every two floors as a dismantling unit, dividing the dismantling unit into a first dismantling unit and a second dismantling unit from top to bottom, and so on until the first floor of the building is reached; then, pre-dismantling the first dismantling unit;
step 3, perforating and charging: dividing the first dismantling unit into a blasting area and a static force cutting area, wherein the blasting area is divided into an inner core tube area and a frame inner layer upright post area; the inner-layer upright post of the frame comprises a supporting upright post and a bearing upright post; the upright columns in the inner core tube area and the inner layer upright column area of the frame are divided into concrete upright columns and stiff columns, and the wall body is divided into a common-size shear wall and a common-size shear wall; dividing the inner core barrel area into a group of detonation areas by taking the transverse axis and the longitudinal axis of the inner core barrel area as separation lines, selecting all stand columns positioned on the core barrel main body and support stand columns positioned on the inner layer of the frame as blasting objects, distinguishing the blasting objects according to the blasting objects, namely concrete stand columns and stiff columns, common-size shear walls and shear walls, drilling blast holes on the blasting objects and placing explosive charges on the shearing walls;
step 4, safety protection: safety protection devices are arranged at the blasting area, the outer side of the stair and the periphery of the stair; the safety protection is divided into (1) coverage protection: the covering protection comprises the step of covering and protecting a building floor and an exploded body by using a covering protection layer to prevent flying stones and dust from flying from a cavity at the top of the core cylinder; (2) protection against the near body: the near body protection comprises a door and a window which are used for sealing a non-blasting area by using a safety protection device and blocking flying stones and smoke dust; (3) conservative protection: the conservative protection comprises the steps that a damping ditch is arranged on the outer side of a building body of a building, and two layers of steel wire meshes are arranged on the periphery of a climbing frame operation platform for protection to isolate flying stones;
step 5, dust fall and noise reduction protection: laying a dust settling and noise reducing device in the blasting area and the static cutting area;
and 6, detonating the explosive: setting electronic detonators in the detonation areas divided in the step 3, connecting all the electronic detonators to a blasting bus in a parallel mode, connecting the bus to a special detonator, and detonating according to the detonation sequence through the special detonator; the detonation sequence is that the detonation zone is divided into 12 detonation units, wherein 8 detonation units form an internal zone and are divided into two rows, the serial numbers of the first row of units are respectively No. 5, No. 3, No. 1 and No. 8 from left to right, and the serial numbers of the second row of units are respectively No. 7, No. 2, No. 4 and No. 6 from left to right; the other 4 detonating units are respectively positioned at the upper left corner, the upper right corner, the lower left corner and the lower right corner of the internal area, the upper left corner is numbered as No. 9, the upper right corner is numbered as No. 11, the lower left corner is numbered as No. 12, and the lower right corner is numbered as No. 10; sequentially delaying the initiation according to the sequence of No. 1-No. 12; when the detonation of the detonation unit on the upper layer is finished, the detonation unit entering the lower layer starts to detonate until all the detonation units are finished; the delayed detonation method is that each detonation unit detonates in 0.5s time delay compared with the last detonation unit, and the interval time between the detonation of the upper floor and the detonation of the lower floor is 2 s;
step 7, after blasting is finished, the slag removing team enters the field to remove slag soil: the opening of the elevator shaft is reformed into a movable garbage feeding opening, a slag removing team enters from an unexploded area through a construction elevator, and the elevator shaft is used as a slag soil vertical transportation channel;
step 8, after slag removal is finished, building a temporary support layer, and carrying out static cutting and lifting transfer on a top plate structure of the first dismantling unit;
step 9, carrying out static cutting dismantling and lifting and lowering on the static cutting area; the static force cutting method comprises the following steps:
the method comprises the following steps:
s1, after blasting and slag removal of the building are finished, building a temporary support frame, and dividing the part needing to be cut for dismantling the unit layer into a top plate structure, a wall body structure and a column body structure;
s2, cutting the top plate structure according to the sequence of firstly cutting the floor slab, then cutting the secondary beam and then cutting the main beam;
s3, checking and calculating the load of the beam body and the load of the support frame on the layer according to the structure of the beam body, the position of the cutting surface and the position of the lifting point when the main beam and the secondary beam are cut, and ensuring the stability of the lower layer of the beam body and the floor slab;
s4, tightly attaching the support frame to the lower surfaces of the main beam body and the secondary beam body to ensure that the beams can fall on the support frame after being separated; the cut blocks are lifted away from the support frame in time and are transported out of the building;
s5, before cutting, erecting a supporting scaffold around the wall structure to prevent the wall from inclining, and drilling a rope penetrating hole in the wall, wherein the rope penetrating hole is fixedly connected with other undetached walls through a fixing structure;
s6, when the block is hoisted after cutting, at least two hoisting holes are formed in the block;
s7, cutting the column structure, and firstly blocking the column, wherein the weight of a single block of the blocking must be less than the rated lifting load of the tower crane.
2. A static cut demolition method suitable for use in blast demolition as claimed in claim 1 wherein: the diameter of the hoisting hole in the step S6 is 108mm, and the hoisting hole is at least 800mm away from the top end of the wall body and at least 400mm away from the side edge.
3. A static cut demolition method suitable for use in blast demolition as claimed in claim 1 wherein: if the column structure is a frame column in step S7, a steel pipe support is arranged on the side of the frame column to prevent overturning, and then cutting is performed to divide the column structure into column blocks.
4. A static cut demolition method, suitable for use in blast demolition, according to claim 3, characterized in that: after cutting, arranging steel pipe supports on two sides of the column block; when the column block is hoisted, at least four hoisting holes are formed in the column block.
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