[0001] The invention relates to the field of ground development, in particular to the walls
of the building and installations, namely, wall panels, ceilings, floors, and can
be used in the construction of multi-storey buildings with supporting concrete, metal
and wooden framing for large scale and individual building, buildings reconstruction,
additional storeys.
[0002] There is a construction of structural panel with communications, containing a series-connected
inside magnesite panel, insulation film, sound-absorbing tape, metal frame, including
a U-shaped and C-shaped profiles made of galvanized steel sheets, perforated and connected
by self-drilling screws, rivets, brazing or welding, water-resistant layer of a waterproofing
film, cellulose insulation Yunizol, external magnesite panel and facade finishing
layer of mineral wool placed inside. Where the height of building panels is up to
8 m, and thickness is 150 - 250 mm [Patent BY 5130 for useful model «Structural panel»,
IPC : E04B 1/02].
[0003] However, the well-known construction panel contains an vapor proof over cover - vapor
barrier facade of mineral wool, which increases moisture-formation between the steam
proof warmth-keeping lagging and the paneling, up to 7 times the thermal conductivity
of the insulation, which is confirmed with studies of thermal conductivity dependence
on the water content of the mineral wool insulation [
V. Rudenko, A. Panin, A. Zholudev and others «Thermally insulation in goods-producing
industries. - M., Publishing office "BSG ", 1996]. And according to the data [Application of expanded polystyrene in goods-producing
industries. Seminar data on xpandable polystyrene - S. Petersbourg, 1998], moisturizing
expanded polystyrene insulation for every 1% leads to an increase in thermal conductivity
by 4%, which undoubtedly impairs the performance and durability of these panels and
the environment in which collected from homes, as used in this panel, rock wool at
least than 2 times the price of cellulose insulation, it used polymeric binder fibers
based on phenol formaldehyde that makes the connection unstable and short-lived life
of the mineral wool is not more than 25-26 years old [
V. Rudenko, A. Panin, A. Zholudev and others «Thermally insulation in goods-producing
industries. - M., Publishing office "BSG ", 1996] and a pair of phenol formaldehyde adversely affect human health [
A. Uvarov. Laminal enclosure structure with application of ragstone fiber composite
material and its technology of manufactoring . - Dis. PhD in Technical Sciences -
M., 1995, p. 116]. The most appropriate for the application is the ventilated walls design.
[0004] Besides vapor-proof waterproof film has no fire resistance and durability (up to
25 years taking into account required 50 years) [Regulations on the organization and
reconstruction, repair and buildings, facilities and utilities of social and cultural
services maintenance. BCH-58-88 (p), Goskomarhitektury. - M, Stroyizdat, 1990].
[0005] There is the structural system for the low-rise buildings construction with metal
frames, including the external supporting walls, interior supporting walls, partitions,
construction of inter floors and attic floor with a framework of steel sections, load-bearing
trusses or beams, roof and wall beams made of steel profiles, wherein said structural
elements are formed on the basis of a rack made of thin-walled steel sections connected
by a detachable connection, thin-walled profiles frame exterior walls and attic floors
contain a perforated wall and the heat-sound-insulating material in the walls and
floors located within the height of the cross section frame members. It'protected
from the inside with vapor barrier film and from the outside with the diffusion waterproofing
film. And the side wall framing, partitions and ceilings are lined inside with plasterboard
or gypsum sheets. The system additionally contains the foundation where side framing
is mounted [Patent
RU 62128 for useful model «Structural design for construction of low-rise building with metal
frame», IPC : E04B 1/24].
[0006] But the specificity of thin-walled structures is such that with its real loading
due to mismatch of shear center and centroid of the resulting load there is the so-called
torsional bending, leading to cross section warping (flatness) and additional normal
and shear stresses appearance in the shelves and rod elements walls. Plane-sections
hypothesis for these profiles calculations is incorrect. In addition, there is the
the possibility of profiles walls local buckling. It should be also taken into account
when designing and calculating the panels on the basis of cold-formed profiles.
[0007] While such panels design there shall more carefully analyze the elements stress-strain
state and select profiles with some notorious reserve or apply additional amplifiers
in the node joints and planes.
[0008] Besides of that insufficient corrosion protected steel-walled lightweight construction,
made of cold-formed sections, may disintegrate at a rate of 0.004 mm / year in a short
time due to electromechanical corrosion. It is caused by electrolytes aqueous solutions
and is result of micro elements [Yan Brudka, Mechislav Lubinski, edited by PhD in
Technical Sciences S. Karmilov «Light constructional steel work»]. Perforation is
also performed incorrectly: according to the Finnish technology - perforation and
punching hardening, is undoubtedly more expensive than the Russian equivalent of punching:
broaching and extrusion with single notching of extruded burrs that not only makes
more distractions on protective zinc coating, but also forms the molded bumps in the
walls collecting dust and moisture. It greatly forces the corrosion.
[0009] The electrolyte is the atmospheric moisture containing CO2, but more often there
are other chemical compounds. Water containing some salts condenses on the metal.
Small electrolyte solution layer creates conditions conducive electrochemical corrosion.
[0010] As a result, despite the fact that most of the metallic element remains almost not
corrated, the construction may rapidly be damaged due to the occurrence of some deep
pitting. Torsional stress further increase the rate of corrosion cracking over percentage.
In this case thin-walled steel parts shall not touch materials containing gypsum,
magnesium chloride, coal or coke ash, slag and coke, as it may cause rapid steel corrosion
[Yan Brudka, Mechislav Lubinski, edited by PhD in Technical Sciences S. Karmilov «Light
constructional steel work»]. Elements stress-strain state analysis and profiles selection
with some reserve or additional amplifiers in the nodes and in the planes application
shall be more careful while panels designing, but it's not done in this case. The
profiles additionally have no centering holes and special lugs to reduce assembly
and durability accuracy. Profiles connection allowance is 1 - 3 mm, which results
to gaps formation between the joined profiles and increases the risk for self-tapping
screws to cut-off, greatly reduces the product reliability and lifetime. Such allowance
and absence of significant profiles marking do not allow collecting the framework
without selection and fit. Technological scheme to assemble the framework and walls
made on site without strict amount control of self-tapping screws, clear attaching
points adherence, screw tightening step compliance may reduce the strength, reliability
and durability. There are sheet materials, gypsum boards used in the mentioned case,
but not individual parts facing
[0011] There is known cold-formed profiles of galvanized steel set for prefabricated buildings
«Nordalfa», having at least one C-shaped profile formed between a continuously connected
against each other C-shaped profile wall, with width determining the width of the
C-shaped profile, and two symmetrically disposed about the longitudinal axis perpendicular
profile and wall shelves of C-profiles of equal height, which determines the height
of the C-shaped profile, the free end of each of which is bent through an angle α
towards the free end opposite the shelves and makes the corresponding linear linear
angle stiffener width L
c of the C-shaped profile. And at least one run roofing profile formed continuously
interconnected roof profile wall and two flanges perpendicular to the wall of the
roofing profile of equal height, with the free end of each is bent outwardly at an
angle β in the opposite free end of the flange opposite direction and generates a
corresponding T-shaped angle stiffener roof profile. Wherein shelf C-shaped profile
is provided with at least two additional longitudinal stiffening angle stiffener s,
each of which is formed as a corrugation, each wall and the coupling flange of the
C-profile are rounded with a radius of curvature R
c. Each transition between the flange and the angle stiffener of C-profiles made rounded
with a radius of curvature r
c, and each paired wall and shelf roof profile are rounded with a radius of curvature
R
k, each bridge between the flange and the roof angle stiffener profile formed rounded
with a curvature radius r
k, and roof angle stiffener profile has two mutually perpendicular portion, the first
of which determines the width and the second is the angle stiffener height. The thickness
of each profile is from 0.55 to 1.5 mm [Patent BY 7651 for useful model «Profile set
for rapifly erected low-rising building", IPC : E04C 3/07].
[0012] This cold-bent profile set is suitable for creating buildings frameworks and for
the construction of low-rise buildings up to 3 storeys only. There are three or at
least two types of profiles in this construction set - C-shaped and roof sections,
which increases the metal content and the amount of thermally conductive inclusions.
It deteriorates the products characteristics insulating. Thickness up to 1.5 mm is
ineffective for building profiles bearing structure as the manufacturing process steps
busy pillars and beams in the form of insulation frames, particularly frame members
of the type with inclined roof truss profiles types and total value with appropriate
suppressants compared with rational design solutions chosen designs in the form of
solid wood, metal rolling model or concrete elements of the base plate. Supporting
frame reinforcement is a roofing profile, it increases metal content, and as a result,
thermal conductivity and thermal resistance worsens. There is known as multi-layer
construction panel, adopted as the prototype of the claimed element of structural
panel light multilayer unit having its inner frame made as a collapsible frame, the
unconstructive and plating insulation, with the frame made of galvanized perforated
therm profiles and containing the lower and upper slide the U-shaped profile with
limb edges made in one direction, installed between the vertical edges of C-shaped
profile arranged in a row at equal distances from each other in the longitudinal direction
of the guide and rigidly connected with them by fastening elements and thermo perforation
made in the form of elongated holes arranged profiles in the longitudinal holes, wherein
the holes in different areas are located across the width of the profiles disposed
on mutually alternating manner. As the material of the inner cladding there is applied
double gypsum sheets, and the outer cladding material is the fiber cement board "Fibrit"
or other finishing material. The non-structural insulation material is the heat insulation
slab or cellulose mineral wool insulating "Ecowool." As the fasteners there are used
galvanized self-tapping screws for therm profiles. The authors point out that the
structural panel is designed for high-rise building [Patent
RU 55393 for useful model «Multilayer structural panel », IPC : E04C 2/26].
[0013] In fact, this structure has so many defects to make it dangerous and unsuitable for
high-rise construction.
[0014] Calculations for therm profiles primarily stated in the reduction of the geometric
characteristics of the cross-sectional profiles for the perforation length, depending
on the profile height and thickness.
[0015] Such a perforation, leading to strength decrease and substantial decrease in wall
profiles estimated length coefficient, angle stiffener utes to the local stability
loss. Therefore, the effect of the therm profiles walls perforation is considered
in the wall thickness reduction calculation for a factor kr = 0, 7 under bending and
for compressive ratio k
r = 0, 7 under bending and for compressive ratio k
rn = 0, 45... 0, 65 as cutting off. When cross-section calculating the perforated part
is calculated as the universal hole in the whole volume. The calculation is made with
graphs on the basis of standard loads. Total results safety factor is 1.7. In addition,
it is very difficult to predict how perforated construction will act over time, showing
its plastic and fatigue characteristics.
[0016] Perforation advantage as the possibility of reducing heat and eliminating the so-called
"thermal (cold) bridge" is very disputable from the point of view of theoretical physics,
as most of the metal characteristics s, particularly high electrical and thermal conductivity,
are caused mainly traffic free (valence) electrons. In addition, the thermo perforation
technology as the way of forging method "thermo cutting through "(thermo perforation)
adopted in the prior example does not consider covering the edges of the through-holes
with a protective layer while perforating, as was originally intended by perforation
equipment developer SAMESOR (Finland). Consequently, sufficient corrosion-resistant
lightweight steel structures made from cold-formed sections may deteriorate in a short
period due to electromechanical corrosion caused by aqueous solutions of electrolytes,
which is result of microelements.
[0017] Thus, therm profiles are not reliable in corrosion resistance conditions. The application
of facing plates with magnesite without insulating gaskets and seals to protect the
metal frame panel from corrosion and mineral wool made of glass fibers or strength
rock wool with organic binder affects the durability and reliability as chlorides
and oxides of magnesium, as well as chemical compounds such heaters in conjunction
with moisture form the aggressive environment, accelerating the corrosion process.
[0018] In this construction, the building panel is provided per floor structure reinforcement,
with taken into account increased wind loads directly proportional to the building
floor height as to by construction norms and rules. Not taking into account the fact
that number of building storeys there shall be applied the strengthened structures.
From the description it can be assumed that the amplifiers are not provided at all.
Correspondingly, the amount of deformation in which cracks form in a galvanized coating
and corrosion resistance is broken.
[0019] Fiber cement slab constructions "Fibrit" used for the siding are heavy, which increases
the load on the construction and the screws, and leads to instability and fragility,
moreover, these plates are harder and more brittle than magnesium oxide boards, increasing
the structures fragility. There are compounds and profiles of the cladding panels
used for construction in the calculations, but not engineering approvals, compliance
with which to increase the structures reliability and durability, applicable only
for factory-built structures.
[0020] In addition, this structure is intended to be assembled on the construction site,
while there are large variations and inaccuracies in the assembly, as there are no
knot turndowns, having no centering holes and special lugs to reduce the "human factor"
for speed, accuracy and panel assembly, which also deteriorates strength and durability
of the building.
[0021] Frame sections are connected to this design self-tapping screws in the panels for
any number of storeys of buildings, at the time, it is known that the upper floors
of high-rise buildings may arise additional shear load resonant vibrations from the
construction of ground tremors and wind speed, with the increase in number of storeys
increases proportionately and wind load, and so the impact of destructive factors.
Accordingly mounting profiles on the screws connecting the panels with a tolerance
is from 1 to 3 mm, working on the cut, does not provide the required building envelope
strength, showing clear fragility of the panel structure.
[0022] Furthermore, due to the ecowool high hygroscopicity, it can be used for solid insulation
layer without compensating devices and wicking inserts. There is no such a device
in the descangle stiffener ed structure. For the reason there is the condensation
and internal moisture in the insulation increases, whereby the therm profiles rust,
reducing durability.
[0025] Also in this structure , the question of the condensation drainage and the man-triggered
of moisture flow isn't solved (in case of an accident), became a wet heat-insulating
layer can be chilled in the winter, and that would significantly worsen the panels
service property.
[0026] As the prototype way of production of the sandwich panels construction as a primary
standard, and as a declared way of production is taken as an element of the structural
panel. They are punched, collected as frameworks of construction panels, quilted with
taptites (screwed up with self-drilling screws), then shoot them, and cover a framework
with a frost-protecting material, protect it within with the vapor proof firm and
internal stave, and from outside with a g-sort film, a warmth-keeping jacket and an
external mat. Thus, for the erection grating of a wall panels on the mounting table
the top and U-typed gage material bottom, fix them horizontally, to the U-typed gage
material bottom the vertical racks is set from the C-shaped profile to which the short
breastplate from the U-typed gage material for the device window and doorways are
fixed, stitch all broach units and connections by taptites or bullets, and for assembly
of a floor slab at the mounting table stack C-typed gage material horizontally, and
U-typed gage materials - pedimental, uniting two C-typed gage materials in the I-beam
with the help of a self-drilling screws and placing two-I-beams in a parallel to each
other horizontally, after that, on a site of an assembly, the unilateral construction
panels are placed together, establishing a waterproofing film, covering a framework
with a magnetite plate and connecting it to a framework with the self-drilling screws,
and for assembly of two-sided panels in a ready-unilateral panels on the erection
side of communications the occur aged arm is put within the inner conductor for drawing
on a building site of electric cables, cables of communication, heating pipes. After
the communications installation, they move on a heat-insulating site where the densely
fill emptiness of the construction panel with a cellulose heat insulation, then a
noise-attenuating belt is establish , a vapor barrier film and a magnetite plate,
sewing up with the self-drilling screws, further unilateral and two-sided construction
panels are placed on a site of an external finishing where they are decorated with
the front finishing materials. Yunizol is used as a cellulose insulant. Unilateral
panels are decorated with an Icenin isolation. As front finishing materials there
is used the mineral cotton facade, acrylic plaster, hinged ventilated facades, wooden
bars, a siding, a brick, a stone [Patent
UA 38599 for useful model «Structural panel method of manufacture», IPC : E04B 2/02].
[0027] However, in the known structure insufficiently saved from the corrosion the easy
steel thin-walled structure s executed from the cold-bent section, can collapse with
a speed from 0,004 mm/year soon, because of the electro mechanic attack , which is
caused by aqua system and exists as a result of an action of micro elements.
[0028] The electrolyte is the atmospheric moisture containing CO2, but most often other
chemical compounds. On metal water is condensed ,which contains a quantity of salts.
The small layer of the electrolyte solutions creates the conditions promoting electrochemical
corrosion.
[0029] As a result, despite of that, the prevailing part of a metal element remains almost
untouched with corrosion, the structure can be quickly collapsed owing to the emergence
even in some places of deep corrosion ulcers. In addition , tension from torsion increases
the speed of corrosion, cracking by some tens percent. Besides, a thin-walled steel
elements can't adjoin to the construction materials containing plaster, magnesium
chloride, coal or coke ashes, and also a coke slag , as they cause a fast steel corrosion.
[0030] It is necessary to analyze the intense of a deformed condition of elements at structure
of such panels treat more carefully and to select the profiles with some notorious
stock or to apply an additional amplifiers both, in knots and in the planes, that
is not done in the known structure [Yan Brudka, Mechislav Lubinski, edited by PhD
in Technical Sciences S. Karmilov «Light constructional steel work»].
[0031] In a known way, a vapor resistance insulates are applied. Therefore without a compensating
devices and a moisture water-wicking filling pieces , in the described structure ,such
devices are absent, the moisture in them, that will lead to the shrinkage and deprivation
of a thermal covering capacity [
V. Rudenko, A. Panin, A. Zholudev and others «Thermally insulation in goods-producing
industries. - M., Publishing office "BSG ", 1996]. The formation of the condensed water vapor and an increasing gain in the moisture
of an insulant, leads to corrosion development therefore profiles corrosion, that
reduces the stain of a gauge material. Besides, in a known way the performance of
the connecting elements isn't provided; the number of the technological repartitions
are of more amount, the profiles are made not of coil, but of the plate steel that
is irrationally and less technologically. Processes of profiles connection , connections
of lining of facings with a grating and drawings in an external heat-insulation layer
aren't automated. Also in one of the known ways of a computer-assisted control of
the technological processes and a computer quality control isn't applied.
[0032] As in a known structural panels, the ways of their production and erection, the main
technological processes are burdened with the increased costs of a man-handling materials,
a customizations and mechanisms on an assembly building (or to a floor), the technological
pauses are connected with the drying desiccation of the surface, a numerous dubbing
and smooth machining, are directly depend on a professional level and the qualification
of the personnel, acceleration of such processes are impossible without the cardinal
change of the way of production of building envelops, allowing significantly to reduce
the number of technological operations, connected with the damp processes and their
input in hours of labour. Besides, the use of the vapor resistance warming systems
increases a permanent water content, that leads to the impedance factor of a heat
transfer process.
[0033] Proceeding from the above, the task was to put the real invention in a basis of:
to offer a Structural panel light sandwich unit, to uniform the walls, coverings and
the floor structure, - not interfering diffusion and a moisture vapor transmission,
completed with the system of the removal and other liquid condensing, for decrease
in an indicator of the residual humidity, supplied with the system of the connecting
elements, having a full external finishing for a year-round erection of the elements
of panels, and thus, having the reduced thickness, the smaller weight allowing significantly
to reduce hours of labor input and energy, intensity of the production and installation,
at the expense of decrease in the number of technological operations connected with
the damp processes, cars and the mechanisms, giving the chance of reduction the terms
of structuring and construction, with the indicators of fire resisting property raised,
sound stripping and a frost protection, and also the way of production of an element
of the easy sandwich structural panel, allowing to unite in the program structuring
product, production with the monitoring system and audit of the technological effectiveness
of an each process, the analysis of the terms observance, qualities, operational factors
for the improvement system, a decrease in intensity and intensity of energy of construction
material, creation of an efficient power buildings and constructions with possibility
to control automatically the indoor climate of rooms and the solutions of the problem
of a natural flushing streams of air providing, a removal of a condensed and other
liquids for the decrease in an indicator of a retentively water content , taking into
account, that the requirements of standards so-called «energetically passive house»
(germ. Passiv haus) and the structure of an active house ,is helping to function in
harmony with buildings, with the nature and people to be in a message with them in
ecologically rational way of life. The good architecture, internal microclimate and
ecologically safety structure s aren't less important, than the decrease in consumption
of energy resources [
W.Feist Das kostengünstige Passivhaus - Proektbeschreibung/ Arbeitkreis kostengünstige
Passivhäuser. Protokolband Nºr 1 Darmstadt 1996. s. 9 - 21,
W.Feist Gestaltungsgrundladen Passivhäuser/ Verlag das Beispiel, 2001. Passivhäuser].
[0034] Invention is the problem to solve, because in the element of the multilayered easy
construction panel, containing an internal framework, executed in the form of the
steel dismountable iron frame containing transpierce horizontal bottom and top guide
member elements between which the punched vertical stud elements rowed in the fore/aft
direction of directing elements and rigidly related by means of transferring elements
and joint connections are established, and also an inside heat-insulation layer, both
external and internal facing work, thus, a horizontal and vertical elements are executed
in the shape of steel profiles, and profiles of vertical elements have C-typed sections.
[0035] The framework elements are represents the finished details, thus the horizontal details
are also executed in the shape of the profiles of a C-typed section and also include
the horizontal cofferdam, thus the vertical and horizontal details are connected and
have in joining junctions in the additional perpendicular turnover of a short shelves
of a trapezoid shape, the perforation of the details is executed in the form of cross
and longitudinal carvings under the shaped section, metal, rolled or wooden elements
of gaining of a grating, and also in the form of technological break-through and the
directing pins - for strengthening of docking device by an additional edges of stiffening
rib, the inside heat-insulation layer is three-layered executed, in the form of two
layers of a cellulose heat insulation between which an internal temperature filling
piece is located and inserted with an internal vertical blast chambers, by drainage
channels and the condensate-collector channels, connected among themselves in the
uniform system, an internal and external facing work are executed by the national
teams, in the shape of a fish joint and the constructional fastening knots, an external
laid on joints and the horizontal P-typed profiles are covered with an external heat-insulation
layer and attached to an external surface of an external facing. Thickness of the
steel details of a framework is 0,5 - 1,2 mm. Frame details can be covered with at
least one of the additional protective demolition.
[0036] Fastening elements of the joint connections are made as the shape of screwed connections,
and also connections on rivets, on the basis of the bonding and welding or connections
by means of cold punching with formation of geometrical and force closure.
[0037] Structural panel light multilayer unit contains additional intensifying elements
- metal profiles, wooden elements and elements of details of lining- attached to regiments
of details of a frame in the form of the C-typed profile by means of curved and inverted
«long tab», and also carvings, break-through and guiding rail pins of the frame part.
[0038] The connections of the punched technological cross and the longitudinal carvings
(«long tab») with an augmenter of a frame structure is reached at the expense of an
application of glue, screw connections, and for metal amplifiers profile, also at
the expense of the bonding, welding and cold punching with the formation of the geometrical
and force closure. On details of external and internal fixing holes precast claddings
fastening knots with an additional shaping are executed. In the knot of a fastening
details of the external and internal national team of facing the hollow metal core
with a bonnet in which the through a full-length bore is installed.
[0039] Details of the external and internal national teams facing work of the moisture resistant,
fire-resistant and heat-insulating sealants are supplied with. The inside heat-insulation
layer consists of two external layers of the cellulose insulant, which have been strongly
connected with an internal temperature and a moisture-regulating is inserted. Condensate
collector fairways have a moisture vapor transmission material with the twisted filament
with the metalized coatings into them. There are the connecting elements in an element
of structural panel, tapping point are executed for mating with. The structural panel
light multilayer unit has on perimeter connecting grooves under connecting gains are
: vertical, horizontal, angular. The knot of the panel element connection and connecting
element forms the «Pressure breakdown labyrinth».
[0040] Assigned task is determined by the method of the light multilayer structural panel
production according to which steel framework produced in the form of C-shaped profile,
perforate them, cut and then make the frame of the structural panel element in the
shape of stripped frame. Then connect blocks of the frame. Inside the frame inner
heat-insulating layer is installed and outer panel is covered with external insulating
layer.
[0041] As the framework elements completed details produced in a form of C-shaped profiles
with perforation in the form of punching, carvings and embossing on the one rolling
mill with one industrial process operated by the bundled software. Framework is built
from horizontal details (directed: top and bottom seals) and transverse details (balusters).
For all that horizontal and transverse details - balusters in a form of C-shaped profiles
are covered with fireproof, waterproof and heat-insulating consolidators. Then transverse
details gradually fixed with horizontal elements (seals and guiding). Inner heat-insulating
layer is three-layered. There are two layers of cellulose heat-insulating material
between which temperature-humidity regulating insert is situated fulfilled with inner
transverse air chambers, drain and condensate-collecting channels connected into unified
system. This heat-insulating layer is inserted within seals gradually fixed transverse
elements-balusters. After that these elements fixed on an assembly table by horizontal
elements (guiding and seals) and heavily fixed by the fasteners , nodal connections
and at least one automated industrial process. Inner and outer lining is combined.
And the inner lining elements are put on the one frame's face and then fix it with
the frame using at least one industrial process. After that structural panel light
multilayer unit is inverted lined side down and attached through consolidator to the
second frame's face with the usage of at least one industrial process. On its external
face outer fish joints and P-shaped profile is fixed. On the external face of exterior
cladding with P-shaped profile heat-insulating layer is applied. Then frame's element
is scrolled to the exterior cladding segment where its final external decoration is
made.
[0042] Transverse rack-mount elements guiding's and seals of C-shaped profiles are made
of 0,5-1,2 mm width steel with possible future application with at least one additional
protective layer. On the horizontal details' flanges - guiding and seals of C-shaped
profile at the junction additional transverse trapeziform bends are made. Fixing systems
of nodal connections are made in a form of screwed connection and clinker connection
on the base of soldering and welding and also cold forming connection with formation
of form and force closure. Additional amplifying elements on the pane attached to
the flanges of C-shaped horizontal and transverse frame's details with the help of
the bow and inverted lugs (nibbling's), and also nochings and guiding details embossing
of the C-shaped frame's profiles- profiled metallic and wooden elements of revetment
details with at least one automized industrial process. Performing technological diametrical
and axial carvings (lugs) are connected with additional frame's amplifying elements
by the use of soldering, welding and cold forming with the form closure formation.
In the in the frame of structural pane's element composed mounting sockets for attachment
with connection elements. In the inner heat-insulating layer external layers of cellulose
heat-insulating material are fixed with inner temperature-humidity insert. On the
details of external and inner precast linings attachment fillings with additional
millings and securement apertures are made. External heat-insulating layer is made
of ecocotton and caulked with the junction pressing with at least one zero-emissioned
automized connection. At the attachment fitting of the detail of precast lining hollow
metal core with a cap. In which central reach-through hole is installed. Assemblages
of external and inner precast linings implemented with waterproof, fireproof and heat-insulating
consolidators. In condensate-collecting channels there are stretches from vapour permeability
material with interwoven strings with metalized covering. Identification mark is on
every detail. In ready-made attachment nodes of connection grooving of the structural
pane's elements are installed in line with designation without selection and fitting
of connection elements including transverse, horizontal and angular.
[0043] Pane's nod and element connection is made with the formation of the pressure breakdown
labyrinth. The design of the element of structural pane, prepared frame filling, production
of frame's elements and coating details, administrating the connection process, the
attachment of the details to the frame. Control over the consistency of laying of
inner and external heat-insulating layers and quality control of all industrial processes
and operations exercised by at least one automated bundled software.
[0044] The invention character is explained by drafts. There is the structural panel light
multilayer unit with connecting elements, the communication chart of the connecting
details in Fig. 1
Fig. 2 - same, scheme of the horizontal section.
Fig. 3 - same, scheme of the vertical section.
Fig. 4 - same, application scheme of the frame amplifier element, metal and wooden
Fig. 5 - same, application scheme of the sheet frame amplifier element.
Fig. 6 - same, connecting scheme of structural panel with corner connecting element,
coin.
Fig. 7 - same, connecting scheme of structural panel with horizontal element connection
and finishing strip.
Fig. 8 same, connecting scheme of structural panel with horizontal element connection.
Fig. 9 same, connecting scheme of structural panel with corner connecting element
(inside corner).
Fig. 10 same, frame elements connecting scheme.
Fig. 11 same, frame elements connecting scheme by cold punching making form and force
closure.
Fig. 12 same, cladding unit fastening scheme.
Fig. 13 same, cladding attachment point fastening scheme.
[0045] Structural panel light multilayer unit consist of the basic construction and external
laminated protective decorative coating. Basic construction is a basis of the structural
panel light multilayer unit implemented in a shape of demountable frame 1, which consists
of horizontal bottom fence 2 and horizontal upper fence 3, between which traversed
seals are installed 4, ranked in lengthwise direction of horizontal fences 2,3 that
are connected by horizontal seals 5, and horizontal details 2,3,5 braced with transverse
seals details by the use of fastening elements 6 and/or nod connections 7.
[0046] All these frame details 1 are made of perforated steel profiles of C-shaped cut with
short flanges 8, on which nodded connection is perpendicular to flanges 8 folding
lines 9 of trapeziform are made. On horizontal elements in a form of C-shaped profile
bottom 2, upper3 guiding's and seals 5 and vertical rack-mount element in a form of
C-shaped profile perforation is made in a form of technological opening 10, diametrical
and lengthwise 12 carvings (lugs) under profiled metallic 13a, foliated 13b and wooden
elements 13c of the frame strengthening and also in a shape of guiding stamping 14
and industrial notching's 15 for nodded connections 7 strengthening by additional
elements 13 of frame strengthening fig,3.
[0047] Horizontal details - bottom 2 and upper 3 guiding's and seals 5 and also transverse
frame's 1 rack-mount details 4, connected with the help of steel clinkers, threaded
screw, soldering or by the use of cold forming with the formation of form and force-closure
16a, round 16b and squared shape.
[0048] To the frame's details 3, 4 lifting lugs attached.
[0049] Structural panel light multilayer unit may contain additional element 13, frame's
strengthening construction, attached to the flange 8 horizontal elements 2,3,5 and
transverse elements 4 in a form of C-shaped profile is also with the help of cambered
11 and inverted 12 "lugs" and notching's 15 of horizontal elements 2,3,5 and transverse
frame's 1 elements 14,5, flat-pattern parts 18 connected with perforating technological
diametrical 11 and axial 12 notching's ("lugs") and also operational opening 10, notching's
15 by the usage of sizing, spiral connections and for profiled metallic strengthening
elements 13 also with the use of soldering, welding and cold forming with the formation
of form and force closure 16.
[0050] Between shot flanges 8 of horizontal elements 2,3,5 and transverse elements 4 C-shaped
frame's 1 profile situated inner heat-insulating material layer 19, which is three-layered
in a form of two-layers 20 of cellulose heat-insulating material and between them
situated temperature-humidity regulating insert 21 fixed with the layers 20. Insert
21 has inner vertical air boxes 2, drain 23 and condensate-collecting channels 24
that form a uniform system. Condensate-collecting channels 24 include stretchers 25
that are produced from vapor-permeable material interweaved with threads with metalized
covering.
[0051] Inner 26 and outer 27 covering pane's element is made of separate details 18 that
are supplied with the waterproof, fireproof and heat-insulating compactors 28 according
to the State Standard 481-90, and they include fish joints 29 and attachment fitting
30 with additional millings 31 and mounting hole 32. In attachment fitting 30 external
27 and inner 26 split basques metal core 33 with a cap 34 where implemented a reach-through
central hole is situated.
[0052] To the external surface of the external split basques 27 attached horizontal P-shaped
profile 36 and external fish joints 37, that are covered with heat-insulating layer
38, that consists of heater 39 (ecocotton) and fixed system 40 to foliated element
18 and basque detail 27 and/or suspension system 41 for the attachment of hinged system
42 , including aerated systems, that are attached through foliated elements 18 of
basques 26, 27 to the metal framework 1 in accordance with project documentation (architectural
decisions).
[0053] Structural panel light multilayer unit has connection nodes in which connective elements
44 and also transverse connection 45, horizontal connection 46, angular connecting
elements 47 are situated. In perimeter of the structural panel light multilayer unit
has connecting grooving's 48 for elements connection 44, vertical elements 45, horizontal
elements 46, corner elements 47a and 47b and nod connector 43 of the structural panel
light multilayer unit and connection element 44, 45, 46, 47 form " pressure breakdown
labyrinth"
[0054] Nodal connections 43 of structural panel light multilayer unit hardware used for
technological cells 49 production that are necessary for stringing, additional heat-insulating,
filling with lightweight concretes and other mixtures. From the inner front face of
the structural multilayer unit under coating elements 26,27 there is a layer 50 made
of polyethylene vapor-tight film.
[0055] Connecting grooves 48 are also used to connect to finishing strips 51.
[0056] Fig. 3 shows the basic structure 52, a multilayer light structural panel, and an
external protective and decorative laminate coating 53 of multilayer light construction
panel unit.
[0057] External (inner) or obverse surfaces of these panes can be supplied with the embossed
productive coating, heat-insulating (façade), hinged system (crate) and also include
the option of extra input for many anchoring elements on façade and facing part of
structural panel units of exterior walls.
[0058] Production of frame's details in a form of coldbented metallic C-shaped profiles
of structural panel light multilayer unit is made by using of rolling method. Roll-fed
galvanized steel or colored steel with or without protective coating. Additionally
on the rolling mill, with the usage of stamping method on the C-shaped horizontal
2,3,5, transverse 4 manufacturing holes 10 performed. Diametrical 11, lengthwise 12
notching's ("lugs"), guiding stamping 14 and notching's 15 are made. Then details
are cut to the length. For the steel dismountable frame 1 production with the usage
of horizontal bottom 2 , upper 3 guiding details and for transverse rack-mount detail
4 , only C-shaped profiles are used. On the short flanges 8 bends 9 are of trapeziform.
All these operations are made at one-rolling mill and as one producing process.
[0059] During the frame's 1 adjustment transverse rack-mount details 4 C-shaped profile
gradually fixed to the horizontal elements- squinches 5 and upper guiding elements
3 of C-shaped profiles. These elements are put in a line in lengthwise direction of
bottom guiding elements 2 of C-shaped profile and heavily fixed by the fixing elements
6 and/or by the nodded connections 7.
[0060] Technological perforations 10, diametrical 11 an axial 12 ("lugs") are performed
for the profiled metal, flat-pattern or wooden elements 13 of profile's strengthening.
And also stampings 14 and technological notching's 15 for nodal connections 7 strengthening.
[0061] Horizontal bottom 2, upper 3 guiding profiles and transverse frame's 1 rack-mount
profiles 4 fixed by the use of steel rivets, threaded screws, soldering (welding)
or with the use of cold forming with the formation of form and force closure 16.
[0062] To the frame elements 3, 4 lifting lags are fastened 17 structural panel light multilayer
unit supplied with additional amplifying framework elements 13 fastened to the C-shaped
flanges 8 and to cambered 11 and inverted 12 "lugs". And to the horizontal 2,3,5 ,
transverse elements 4 in a form of C-shaped frame profiles notching's.
[0063] These profiled metal, wooden amplifying 13, frame elements 14,15 and sheet details
18 connected with perforating manufacturing diametric 11 lengthwise notching ("lugs"),
manufacturing holes 10 and notching's 15 by the usage of adhesion and screwed connection.
And profiled metallic amplifying elements 13 by the usage of soldering, welding and
cold forming with the form and force closure 16 formation.
[0064] Inner heat-insulating layer 19 is made to be three-ply in the form of two exterior
layers 20 cellulose heat-insulating wool - cellulose wool between which there is an
inner moisture and water regulating insert 21, made according to an extrusion technique
and having inner vertical air-chambers 22, drain canals 23, as well as condensate
collectors 24, in addition to it there are zones made of vapour-permeable material
stranded with threads with metallized coating 24 in condensate collectors 25. Inner
vertical air-chambers 22, drain canals 23 and condensate collectors build up an integrated
system 24. The layers of cellulose wool with moist coating and sealing 20 are connected
to the inner insert 21.
[0065] Details of the inner 26 and outer linings 27 are made to be assembled and also it
is provided with water- and fire-proof heat-insulating sealing's 28, in addition there
are fish joints and mount fittings with additional shaping and fixation holes made
on the inner 26 and outer 27 lining details, there is a metallic hollow core with
a head in the detail fixation of the outer and inner assembly linings. There is a
central hole in the hollow core head 35.
[0066] There are U-channels 36 and outer fish joints 37 fixed to the outer surface of the
lining 27, then there is a heat-insulating coating 38 applied on the outer surface
of the lining 27. This coating consists of heat retainer 39 and mount systems 40 to
the sheet articles 18, lining details 26, 27 and/or for attached system 42 fixation.
The fixation is made through the sheet articles 18 and lining details 26, 27 to the
metal structure of the frame 1 according to the design documentation (architectural
decisions).
[0067] There are connections 43 on the light multilayer structural panel. There are connecting
pieces 44, 45, 46, 47 on this panel, and there are dadoes 48 along the element perimeter
for connecting elements 44 also there are vertical connecting elements 45, horizontal
connecting elements 46, angular connecting elements 47a and 47. The element connection
43 of the light multilayer structural panel and connecting elements 44, 45, 46, 47
are made with "labyrinth ring" formation.
[0068] Fitting connections 43 of the main element construction of the light multilayer construction
panel serve for technological vacuum 49 for laying of communication, additional heating,
filling with light concrete and other mixtures. There is a layer 50 of polyethylene
vapor-tight coat on the inner, face sides of light multilayer construction panel element
under the lining details 26 and 27.
[0069] Panel facial (internal) or outside surfaces may be supplied with a protective coating,
insulation (facade), mounted system (furring) and there is also the variant of anchor
items of structural elements facing parts on the facade and building exterior wall
panels. Connecting grooves 48 are also used to connect the finishing strips 51.
[0070] Fig. 3 shows the basic structure 52 multi layer light structural panel with covered
outer protective and decorative laminate coating 53 element multi-layer light structural
panel.
[0071] There is a marking made on all the panel elements for convenience of identification
and assembly. According to the first «prefabricated» variant suggested in invention
of the light construction panel element (of the main construction and connecting elements)
manufacturing method suggested, details are manufactured view of an assembly set.
Then elements of the light multilayer construction panel are supplied to the stationery
assembly facilities and (or) mobile, located on the building site or districts of
compartment building, where final assembly into the large panel elements of building
envelopes for the subsequent delivery to the construction site is performed (with
protective and decorative layer or without it). Thus, all main technological operations
are carried out with application of conveying principle, at the same time operations
connected to damp processes are performed as a rule in the horizontal position at
the temperature conditions effective for each technological process, which decreases
thrice the ratio of labour to output, to reduce the time of light multilayer construction
panel elements manufacture. The existence of the typical connections and junctions
of the connecting elements as well as technological channels for communication laying
including sprag tube (hose) for inner engineering communication laying, additionally
increases degree of completion of the light multilayer construction panel.
[0072] Assembly set is a set of assembly details of the main construction of the light multilayer
construction panel details and details of protective and decorative layer of the mounting
unit - one panel, produced according to the design documentation in the sufficient
transportation packing. There are connecting, fixing, mating and mounting elements
(angle staff, battens, cantilevers) are included into the complement of the assembly
set, also there are connecting elements with element-by element, detail-by-detail
and nod-by-nod marking made on the surface according to the assembly scheme. They
are assembled and packed into the unit load on the same facility.
[0073] According to the second "industrial" variant the assembly hall of the parent enterprise,
manufacturing assembly sets there are large-panel elements of the building envelopes
- elements of the light multilayer construction panels assembled and loaded to the
building site. Elements are loaded with outer protective and decorative laminated
coating: heating system, hinged prefabricated system or with protective and decorative
coating (or without it).
[0074] The rayon of delivery by the first variant is unrestrained, by the second it is not
more than 300 km. Light construction panels in the final condition ready for mounting
are fixed in the in the hermetical unit load (provided with packing list): in an unit
load and returnable container are ready for «just in time» mounting.
[0075] There are unit loads unpacked, additional element fixing is performed and formed
elements of pane are hanged on the building site. Those additional elements ensure
maximum lock on of all the horizontal and vertical elements. Mounting scheme and flow
diagram are sent to the construction and mounting organization. Light construction
panel ready for montage and assembled form light multilayer construction panel elements
is mounted in all seasons also at low temperatures up to -15 °C, montage is performed
by 3 - 4 assemblers into the position mentioned in the erection drawing. It takes
up to four times faster than the assembly of a wall construction from brick of blocks.
Such an erection drawing allows to reduce intensivity of the facade decoration, there
are link up points of the light multilayer construction panels, façade connecting
elements are hanged, finishing coating layer is applied (colouring). Intensivity of
the assembly process of the building envelope is reduced up to four times, heavy-weight
machines and mechanisms up to 5 times, it allows to speed up the building process
in average up to 2-3 months. The reduction of large-panel product weight in not less
than five times (in comparison to the traditional blocks, concrete panels and products
made of bricks) allows not to use special vehicles for transportation (CSU and PC
systems), with restrictions in weight and quantity (up to 6 large-panel units). Light
construction panels are transported by truck-trailers and truck-semitrailers (up to
20 large-panel units in assembled condition).
[0076] After assembly the building envelopes from light multilayer construction panels connected
with each other by special connecting elements form a regulated ventilation system
(cooling system)in summer period and condensable and other liquid withdrawal (formed
or got to the system of drainage canal) in autumn and winter. This system is applied
to reduce the residual moisture indicator and possibility of heat insulating properties
of the building envelopes at the expense of convective currents controlled by special
valves (plugging the system during winter period of operation) in the buildings erected
using light multilayer construction panel elements.
[0077] In addition, there are no thermal profiles with perforated walls used, because it
prevents cold joint formation, as it is in one of analogues [Patent
RU 62128 for useful model «Structural design for construction of low-rise building with metal
frame», IPC : E04B 1/24] also it prevents "thermo perforation" in the view of lengthened
holes across the width of the profile, as in prototype [Patent
RU 55393 for useful model «Multilayer structural panel », IPC : E04C 2/26].
[0078] Number of floors with use of light multilayer construction panel is restricted by
carrying capability of the frame only: steel frames, formed and fabricated sections,
frames with wooden beams, reinforced metallic ledgers (for buildings and constructions
up to 4 floors, reinforced-concrete, one-piece or assembly frames, as well as combinated
frames: with reinforced-concrete struts and metallic beams, it allows to make the
number of floors unlimited. It is more rational constructive decision then [Patent
RU 62128 for useful model «Structural design for construction of low-rise building with metal
frame», IPC : E04B 1/24] and [Patent BY 7651 for useful model «Profile set for rapifly
erected low-rising building", IPC : E04C 3/07].
[0079] According to the «industrial» and «prefabricated» variants there are used the following
details in the quality of lining: lining details manufactured from sheet material
with milled fixation holes. Additionally there can be made joint "quarter bat" on
the lining details by the milling. In the known solutions there are sheet materials
used, not lining details. So in analogue [Patent
RU 62128 for useful model «Structural design for construction of low-rise building with metal
frame», IPC : E04B 1/24] (there are used gypsum wall boards double gypsum-fiber sheets
and in prototype [Patent
RU 55393 for useful model «Multilayer structural panel », IPC : E04C 2/26] there are used
additional fiber-cement sheets "Fibrit".
[0080] The presence of assembly scheme and marking on the lining details allows to speed
up the SKD assembly of the light multilayer construction panels, perform the assembly
of conveyor and ensure additional possibility structural reinforcement - recovery
of calculated and operating characteristics of light multilayer construction panels
and details.
[0081] To improve sound proofing properties of the large-panel elements of the building
envelope that structural panel light multilayer unit is made stratified and with inner
air chambers 22. In the quality of inner heat insulating layer there is used 3-layer
heat insulating layer 19, consisting of two outer layers 20 of cellulose wool, covering
inner temperature and moisture regulating insert 21, used to improve sound-insulation

to regulate temperature and moisture regime, to collect and derivate condensate stream
to the inner drainage system of inner (steam pressure) and outer ("dew point"). Also
it is used to derivate any emergency leakages from within and from without of the
building envelopes.
[0082] The main construction of the light multilayer construction panel element at cost
of use of moisture-resistant, fire-resistant and heat-insulating sealer 28, 3-layer
heat-insulating layer 19, inner air chambers 22, "labyrinth box" effect in element
connections, at cost of "mortise and tenon" connection of connecting elements, lining
details 26 and 27 (glass-magnesite sheet), allow to reach the impedance factor of
heat transmission 3,2 M
2·°C/Vt, isolation index of air noise 50 dB, noise isolation 45dBA at main construction
thickness 190 mm.
[0083] To improve heat-insulating properties of large-panel elements of building envelopes
in the multilayer structure of the main construction of the claimed element of the
light multilayer construction panel perform the outer vapor-permeable heat-insulating
layer 38 of the thickness not less than 30 mm, resistance of heat transmission of
the glass-magnesite sheet, used for lining details 26 and 27 , not more than 0,26
Vt/m°C at density not less than 900 kg/m
3 for outer lining elements manufacture 27 and not less than 600 kg/m
3 for lining detail manufacture 26 facial (inner) areas.
[0084] Lining details 26 and 27 of the claimed element of the light multilayer construction
panel is made from magnesite or glass-magnesite sheet (glass magnesium board, dolomitic-fibrous
sheet, xylolite-fibrous sheet, KWL), as a material, possessing high moisture-resistance,
fire-resistance, elasticity (flexibility) and less weight at increased density in
comparison to cement-and-wood-particle slab and its analogues made on the base of
milled plant material - "wood and fabric" concrete. Lining details 26 and 27 of the
claimed light multilayer construction panel element form face (inner) ad outer surfaces
of the main construction.
[0085] Application in the connections of mortise and tenon, joggle joint types prevents
moisture penetration and formation of the "cold joint" effect. "Fraggles" and "fillets"
are formed by the outer fish joints 37 from strips of glass-magnesite sheet, fixed
to the lining details 26, 27 through the sealer 28 to the "fraggle" details (to form
a mounting fit) between lining detail stud 27 or 26 in the view of "mortise" and "tenon".
[0086] In the quality of sound deadening, moisture resistant, heat insulating and fire-resistant
sealing 28 there are used details made fireproof elastic material according to GOST
481-90, additionally treated with special matter or without treatment, in the form
of angle staff and/or stripes, fixed between metallic frame and lining details from
outer side and metallic frame and inner lining details.
[0087] The light multilayer construction panel elements can be delivered with all the types
of protective and decorative cover, heating systems, exterior finish (plaster, decorative
coatings, with protective cover in the view of paints. Also as additional it is possible
to use additional firring of the main construction - hinged systems (including "ventilated")
from within and on the inside (from room side) according to the design documentation
requirements.
[0088] The main advantages of the ready product manufactured according to the given invention
is ecological cleanliness, complete reprocessability of the main used materials, significant
decrease of the area of connection to the base and to the floor panels (semimounted
bonding technique)n and wall thickness in 2 and more times (minimum thickness with
winterization 190 mm). In comparison to the traditional small-piece products (from
300 mm without winterization and from 400 mm with it), at the expense of significant
increase of heat transition resistance factor at less thickness, taking into consideration
all the requirements of the applied standards of the so-called "energetically passive
house" (germ . Passivhaus).
[0089] The thickness of the main construction elements of the light construction panels
and building envelopes assembled from them, as well as their overall dimensions in
complete condition can vary according to the design requirements to durability and
heat-isolating properties of fire-resistance and fire risk.
[0090] From the light construction panels of the main construction, protective and decorative
layer cover suggested in the invention of elements there can be assembled dividing
walls, interior and exterior walls of buildings, self-supporting floor elements and
panels covering. And the face or outer surface of the walls can be supplied with protective
coating, insulation (facade), mounted by the system (crate) and there is also possible
an option for additional input of multiple anchoring elements on the facade and the
front of the building elements of the exterior wall panels.
[0091] The main construction of the light multilayer construction panel can be used in the
combination with all types of protective and decorative coverings.
[0092] Protective and decorative coating of the multilayer prefabrication element construction
of the light multilayer construction panels in the form of a curtain wall systems
is performed as internal and external subsystems and systems that are attached to
the main structure. As a protective, decorative and technological layers there are
used: "ventilated" systems, winterization systems with outer and facade decoration:
decorative coatings, moldings and wall facade elements: the granite-cement facade
products, granite, ashlar, siding (plastic and metal), metallic facades, composite
panels.
[0093] Guiding lug, centering holes and marking allow you to assembly the items on the free
selection and fitting (detail connection: stand-jumper, rack-rail). All parts are
connected to the effect of mounting - tension, which provides increased strength.
[0094] The proposed method allows to make separated internal and external air chambers in
the element structure of a multilayer light building panel. The difference in density
of the used material - the outer and inner layers of insulation, and air chambers
allow to increase rates of noise and heat insulation with reduced thickness of the
inner insulating layer.
[0095] Marking applied to all parts of the element details speeds up the assembly process
according to the assembly diagrams and without any time delay to determine the location
of each part according to the assembly diagram and to control the correct assembly
by the scan method.
[0096] Labor costs and manufacturing costs are reduced through the use of low energy materials
and processes, the complexity of installation is reduced due to the fact that at the
construction site there are products supplied of full operational readiness, with
exterior trim and fill openings, as well as through the use of fasteners in the corner
of vertical and horizontal docking sites, and reducing construction time due to the
rapid installation of all-season will bring the construction industry to a new technological
level.
1. Multilayer light structural panel unit, having the framework, containing an internal
framework, executed in the form of the steel dismountable iron frame containing transpierce
horizontal bottom and top guide member elements between which the punched vertical
stud elements rowed in the fore/aft direction of directing elements and rigidly related
by means of transferring elements and joint connections are established, and also
an inside heat-insulation layer, both external and internal facing work, thus, a horizontal
and vertical elements are executed in the shape of steel profiles, and profiles of
vertical elements have C-typed sections. The framework elements are represents the
finished details, thus the horizontal details are also executed in the shape of the
profiles of a C-typed section and also include the horizontal cofferdam, thus the
vertical and horizontal details are connected and have in joining junctions in the
additional perpendicular turnover of a short shelves of a trapezoid shape, the perforation
of the details is executed in the form of cross and longitudinal carvings under the
shaped section, metal, rolled or wooden elements of gaining of a grating , and also
in the form of technological break-through and the directing pins - for strengthening
of docking device by an additional edges of stiffening rib, the inside heat-insulation
layer is three-layered executed, in the form of two layers of a cellulose heat insulation
between which an internal temperature filling piece is located and inserted with an
internal vertical blast chambers, by drainage channels and the condensate-collector
channels, connected among themselves in the uniform system, an internal and external
facing work are executed by the national teams, in the shape of a fish joint and the
constructional fastening knots, an external laid on joints and the horizontal P-typed
profiles are covered with an external heat-insulation layer and attached to an external
surface of an external facing.
2. Multilayer light structural panel unit according to p.1, characterized in that the frame parts are made of steel framework thickness is 0.5 - 1.2 mm.
3. Multilayer light structural panel unit according to p. 1 - 2, characterized in that frame details can be covered with at least one of the additional protective demolition.
4. Multilayer light structural panel unit according to p. π. 1 - 2, characterized in that fastening elements of the joint connections are made as the shape of screwed connections,
and also connections on rivets, on the basis of the bonding and welding or connections
by means of cold punching with formation of geometrical and force closure.
5. Multilayer light structural panel unit according to p. π. 1 - 2, characterized in that it contains additional intensifying elements - metal profiles, wooden elements and
elements of details of lining- attached to regiments of details of a frame in the
form of the C-typed profile by means of curved and inverted «long tab», and also carvings,
break-through and guiding rail pins of the frame part.
6. Multilayer light structural panel unit according to p. 1 - 2, characterized in that the connections of the punched technological cross and the longitudinal carvings
(«long tab») with an augmenter of a frame structure is reached at the expense of an
application of glue, screw connections, and for metal amplifiers profile, also at
the expense of the bonding, welding and cold punching with the formation of the geometrical
and force closure.
7. Multilayer light structural panel unit according to p. n. 1 - 2, characterized in that on details of external and internal fixing holes precast claddings fastening knots
with an additional shaping are made.
8. Multilayer light structural panel unit according to p. π. 1 - 2, characterized in that in the knot of a fastening details of the external and internal national team of
facing the hollow metal core with a bonnet in which the through a full-length bore
is installed.
9. Multilayer light structural panel unit according to p. 1 - 2, characterized in that details of the outer and inner prefabricated linning and facing are equipped with
water-resistant and fire-resistant seals.
10. Multilayer light structural panel unit according to p. 1 - 2, characterized in that in the inner three heat-insulating layer external layers of cellulose heat-insulating
material are fixed with inner temperature-humidity insert
11. Multilayer light structural panel unit according to p. 1 - 2, characterized in that condensate collector fairways have a moisture vapor transmission material with the
twisted filament with the metalized coatings into them.
12. Multilayer light structural panel unit according to p. n. 1 - 2, characterized in that there are mounting sockets for attachment with connection elements.
13. Multilayer light structural panel unit according to p. π. 1 - 2, characterized in that there are on perimeter connecting grooves under connecting gains: vertical, horizontal,
angular
14. Multilayer light structural panel unit according to p. 1 - 2, characterized in that the knot of the panel element connection and connecting element forms the «Pressure
breakdown labyrinth».
15. Multilayer light structural panel unit production method, whereby as the framework
elements completed details produced in a form of C-shaped profiles with perforation
in the form of punching, carvings and embossing on the one rolling mill with one industrial
process operated by the bundled software, characterized in that framework is built from horizontal details (directed: top and bottom seals) and transverse
details (balusters). For all that horizontal and transverse details - balusters in
a form of C-shaped profiles are covered with fireproof, waterproof and heat-insulating
consolidators. Then transverse details gradually fixed with horizontal elements (seals
and guiding). Inner heat-insulating layer is three-layered. There are two layers of
cellulose heat-insulating material between which temperature-humidity regulating insert
is situated fulfilled with inner transverse air chambers, drain and condensate-collecting
channels connected into unified system. This heat-insulating layer is inserted within
seals gradually fixed transverse elements-balusters. After that these elements fixed
on an assembly table by horizontal elements (guiding and seals) and heavily fixed
by the fasteners , nodal connections and at least one automated industrial process.
Inner and outer lining is combined. And the inner lining elements are put on the one
frame's face and then fix it with the frame using at least one industrial process.
After that structural panel light multilayer unit is inverted lined side down and
attached through consolidator to the second frame's face with the usage of at least
one industrial process. On its external face outer fish joints and P-shaped profile
is fixed. On the external face of exterior cladding with P-shaped profile heat-insulating
layer is applied. Then frame's element is scrolled to the exterior cladding segment
where its final external decoration is made.
16. Multilayer light structural panel unit production method according to p.15, characterized in that transverse rack-mount elements guidings and seals of C-shaped profiles are made of
0,5-1,2 mm width steel with possible future application with at least one additional
protective layer.
17. Multilayer light structural panel unit production method according to p. π. 15 - 16,
characterized in that on the short horizontal details' flanges - guiding and seals of C-shaped profile
at the junction additional transverse trapeziform bends are made.
18. Multilayer light structural panel unit production method according to p. 15 - 16,
characterized in that fixing systems of nodal connections are made in a form of screwed connection and
clinker connection on the base of soldering and welding and also cold forming connection
with formation of form and force closure.
19. Multilayer light structural panel unit production method according to p. 15 - 16,
characterized in that on the framework of the multilayer light structural panel unit there are instolled
the additional amplifying elements on the pane attached to the flanges of C-shaped
horizontal and transverse frame's details with the help of the bow and inverted lugs
(nibblings), and also nochings and guiding details embossing of the C-shaped frame's
profiles- profiled metallic and wooden elements of revetment details with at least
one automized industrial process.
20. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that perforating technological cross and lateral holes («lugs») are connected
to the additional strengthening frame elements owing to the glued and fastener joints
and for the contour metal amplifiers owing to the soldering, welding and cold forging
with form and force closure formation.
21. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that there are assembly mounting sockets made for connecting element coupling
in the element frame of the structural panel.
22. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that there are closely connected outer layers of cellulose heat insulation
and inner temperature and moisture regulating insert in the inner heat-insulating
layer.
23. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that there are attachment fitting with additional milling and fixation
holes made on the details of the outer and inner assembly linings.
24. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that in the attachment fitting of the assembly lining details there is
a hollow metallic core fixed with a cap where through center hole.
25. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that outer heat-insulating layer is performed from cellulose wool and is
thickened plane pressing at least with one automated process.
26. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that assembly details of outer and inner assembly linings are supplied
with moisture-resistant and fire-resistant seal.
27. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that in the condensate-collecting mains there are sheets made from vapor-permeable
material stranded with threads with metallized coating.
28. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that all the details and elements are marked with identification.
29. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that in the assembly mounting sockets of the element frame dadoes of the
multilayer light structural panel there are connecting elements are disposed according
to the marking on the free selection and fitting: vertical, horizontal, angular, included
in the scope of supply with multilayer light structural panel units.
30. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that the knot of the panel element connection and connecting element forms
the «Pressure breakdown labyrinth».
31. Production method of the multilayer structural panel unit according to par. No. 15
16, is characterized by that fact that multilayer light structural panel unit and complete building envelope
designing, frame and lining detail manufacture, frame detail connection process management,
lining detail and frame fixing process management, control of density of internal
and external thermal insulation layer application, quality control of all processes
and operations carried out in at least one automated software system.