EP1800080A1 - Paroi hybride composite, panneau de plafond ou de plancher ou element de construction destines a des fonctions de chauffage, refroidissement, ventilation, climatisation et a d'autres fonctions interieures - Google Patents

Paroi hybride composite, panneau de plafond ou de plancher ou element de construction destines a des fonctions de chauffage, refroidissement, ventilation, climatisation et a d'autres fonctions interieures

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Publication number
EP1800080A1
EP1800080A1 EP05817727A EP05817727A EP1800080A1 EP 1800080 A1 EP1800080 A1 EP 1800080A1 EP 05817727 A EP05817727 A EP 05817727A EP 05817727 A EP05817727 A EP 05817727A EP 1800080 A1 EP1800080 A1 EP 1800080A1
Authority
EP
European Patent Office
Prior art keywords
panel
air
composite hybrid
composite
layer
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP05817727A
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German (de)
English (en)
Inventor
Birol Kilkis
Alphan Manas
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Individual
Original Assignee
Individual
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Filing date
Publication date
Application filed by Individual filed Critical Individual
Publication of EP1800080A1 publication Critical patent/EP1800080A1/fr
Withdrawn legal-status Critical Current

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Classifications

    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F28HEAT EXCHANGE IN GENERAL
    • F28FDETAILS OF HEAT-EXCHANGE AND HEAT-TRANSFER APPARATUS, OF GENERAL APPLICATION
    • F28F3/00Plate-like or laminated elements; Assemblies of plate-like or laminated elements
    • F28F3/12Elements constructed in the shape of a hollow panel, e.g. with channels
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F13/00Details common to, or for air-conditioning, air-humidification, ventilation or use of air currents for screening
    • F24F13/02Ducting arrangements
    • F24F13/06Outlets for directing or distributing air into rooms or spaces, e.g. ceiling air diffuser
    • F24F13/068Outlets for directing or distributing air into rooms or spaces, e.g. ceiling air diffuser formed as perforated walls, ceilings or floors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F5/00Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater
    • F24F5/0089Systems using radiation from walls or panels
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F5/00Air-conditioning systems or apparatus not covered by F24F1/00 or F24F3/00, e.g. using solar heat or combined with household units such as an oven or water heater
    • F24F5/0089Systems using radiation from walls or panels
    • F24F5/0092Systems using radiation from walls or panels ceilings, e.g. cool ceilings
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24TGEOTHERMAL COLLECTORS; GEOTHERMAL SYSTEMS
    • F24T10/00Geothermal collectors
    • F24T10/30Geothermal collectors using underground reservoirs for accumulating working fluids or intermediate fluids
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E10/00Energy generation through renewable energy sources
    • Y02E10/10Geothermal energy

Definitions

  • COMPOSITE HYBRID PANEL OR BUILDING ELEMENT FOR COMBINED HEATING, COOLING, VENTILATING AND AIR-CONDITIONING
  • This invention relates to composite, integrated, sandwiched, multi-role, hybrid radiant-convective panel or building element, which optimally integrates heating, cooling ventilating, air-conditioning functions and any other indoor function like air pressure control, thermo-electric effect, energy recovery, and energy storage functions at very moderate temperatures such that it can directly utilize renewable and waste energy resources with very low exergy.
  • HVAC Heating, ventilating and air-conditioning
  • a central forced convection air-conditioning system or unitary air-conditioners, or hydronic heating/cooling systems (like convective fan- coils or radiant panels).
  • HVAC heating/cooling systems
  • radiant panels or chilled beams alone cannot control indoor humidity and cannot satisfy latent thermal loads. They can only satisfy sensible thermal loads.
  • Building elements, walls, ceilings and floors may be more cost effective and energy efficient if they are directly used for HVAC and other indoor functions and satisfy both sensible and latent loads. m particular, forced convection air-conditioning through a single duct system compromises the efficiency and comfort functions, which are not truly compatible and sometimes contradictory. Ducts of a central air-conditioning system spanning the entire building are expensive and they are energy, premium space, and material intensive, they need frequent, if not continuous maintenance and inspection for indoor air quality reasons for human health and other functional requirements like clean rooms, hospitals, schools etc, to name a few.
  • Hydronic systems like radiators or radiant panels are more energy distribution efficient but cannot handle latent loads without a secondary air system.
  • DOE Department of Energy
  • a recent DOE (Department of Energy) study classifies ceiling panel cooling as the most energy efficient system (DE-ACOl -96CE23798) but requires a secondary air system in order to satisfy latent loads (humidity control of indoor air).
  • HVAC systems are designed to use high-exergy energy resources, commonly fossil fuel based, at very low-exergy efficiency, like 6%.
  • HVAC equipment and terminal units need to be either over sized or resource temperature need to be conditioned, or both, each of which are costly penalties and often diminish the environmental and exergetic advantages of utilizing renewable and waste energy resources.
  • conventional HVAC systems which fundamentally remained unchanged for over a century are incompatible with low-exergy renewable and waste energy resources and require substantial equipment over sizing and/or conditioning of the resource temperature with boilers, heat pumps, and chillers.
  • HVAC system is a co-location of at least two different types of heating and a cooling system like a radiant panel and a convective system like a condensing type fan-coil in the same indoor space.
  • the hybrid HVAC system seems to be a possible candidate for better utilization of low-exergy renewable and waste energy resources, it can only optimize the equipment over sizing and temperature conditioning instead of eliminating these costly measures, which diminish major advantages of low-exergy energy resources.
  • a fan-coil and radiant panel combination using 45°C waste water for space heating requires 60% equipment over sizing and a boiler to peak the resource temperature from 45 °C to 55 0 C.
  • This example shows that whichever engineering ingenuity and mathematical tools are employed, the feasibility of coupling conventional HVAC systems directly with low-exergy energy resources is quite limited and remains uneconomical.
  • the apparatus of this invention overcomes these problems mentioned above by combining all HVAC functions into a single terminal unit that can directly couple with low- exergy energy resources.
  • This invention houses all HVAC elements in it or this invention may also be used with any central HVAC system, heat pump system or central heating or cooling system as an n efficient and multi-role terminal unit without housing any HVAC element like dehumidifier etc.
  • the present apparatus of invention which is a composite hybrid radiant and convective panel takes the hybrid HVAC concept one big step further and combines different and essential radiant and convective components of HVAC physically into a composite, single terminal unit for total human comfort, and any other building functions and eliminates the four major problems of conventional HVAC system.
  • the same system may equally be effective for animal shelters, greenhouses and storage buildings, libraries, and museums.
  • the invention comprises a thermally active and hydrodynamically porous diffuser plate, which acts as both a radiant and forced/natural convection heat exchange surface and a latent air diffusion surface for total comfort service from such a single surface.
  • This surface is encased in a wall, ceiling or floor panel, encased in an office cubicle partition, or embedded to a section of the building structure or any building element.
  • Heating and cooling of the air diffusing into the indoor space from the composite hybrid panel can be pre-conditioned in a central system or by the panel itself by hydronic pipes or electric cables (heating only) or thermo-electric effect wires (cooling only) or any combination of all these placed behind the porous diffuser plate.
  • These cables, wires, pipes also heat or cool the diffuser plate surface to make it a radiant panel surface at the same time.
  • pre-conditioned air may also make the diffuser plate surface thermal radiation-wise active without pipes, wires, or electric cables.
  • diffusing air is heated or cooled and humidity conditioned by different systems in a part of the same encasement or air is pre-conditioned by other external systems outside the encasement.
  • the thermal mass of apparatus stores heat or cold thus shaves-off the peak sensible thermal loads. It may also incorporate a building exterior integrated feature, which collects energy.
  • the same encasement of the apparatus may also house other sanitary, comfort and utility functions like air filtering, air sanitization, ionization, air-pressure control, indoor lighting, electrical power supply lines and or bus-bars, plumbing pipes, internet, wired or wireless communication systems.
  • the invention also comprises an apparatus and method for dynamically optimum operation control for minimum cost and maximum efficiency, and an operation control algorithm for different objective functions.
  • a unified, single apparatus that can operate stand-alone (by itself) or can be optimally modulated into other conventional systems.
  • Fig IA shows cross sectional side view of the innovative composite hybrid panel (in wall position for demonstration purposes) having three layers and a decorative, porous, hybrid radiant, forced/natural convection functional cover.
  • Fig IB shows front view of a preferable embodiment with heating and/or cooling elements of innovative wall panel (surface porosity not shown).
  • the geometry of the composite hybrid panel may be any suitable geometry like rectangle, square, parallelogram, circular, oval etc.
  • Fig. 1 C shows front sectional view of a preferable embodiment of a porous layer of innovative wall panel, where the degree of porosity, thus air-flow resistance changes both in lateral and transverse directions in order to compensate the asymmetric air intake and fan location (porosity holes not to scale in the figure).
  • Fig 2 A shows cross sectional side view of the innovative composite hybrid panel without diffuser layer and heating and/or elements.
  • Fig 2B shows front view of the preferable embodiment of hybrid wall panel without heating and or cooling elements (no pipes, cables or wires).
  • Fig 3A shows cross sectional side view of the innovative splittable composite hybrid panel when the air intake and conditioning-filtering etc duct is separated.
  • Fig 3B shows front view of the innovative splittable composite hybrid panel without air duct.
  • Fig 3C shows an embodiment of an air duct splittable from composite hybrid panel.
  • Fig 4 shows an embodiment of breathing system composed of placing two composite hybrid panels (in this case wall panels for demonstration purposes) while one of two includes a diffuser layer and the other does not.
  • Fig 5 shows an example application for completely Green, Alternative Building HVAC Technology using a heat pump.
  • Fig 6 shows an example application of completely Green, Alternative Building HVAC Technology using heat pipes.
  • Fig 7 shows an algorithm of control apparatus that optimizes the load split PR.
  • Composite hybrid panel shown in 12.
  • Dehumidifier unit preferably liquid wall position desiccant
  • Thermal insulator (preferably from 15. Solar Photovoltaic Cells recycled organic material)
  • FIG. 1A A preferred embodiment of the composite hybrid panel 1 of the present invention is illustrated in Fig IA and Fig IB.
  • the innovative composite hybrid panel 1 comprises three layers 2, 3, 4 and a decorative, porous, and other functional front cover 6. From the front cover, the composite hybrid panel surface exchanges heat with the indoor space by thermal radiation and natural thermal convection. At the same time, conditioned air is diffused to the indoor space through the pores of the panel surface, thus establishing a forced convection heat transfer.
  • Diffuser 2 which is air diffusing and thermally conducting layer of any porous material like stainless steel wool made from metal scrap or metal waste from any machine shop and then treated with anti-bacterial agents like silver-based anti-microbial agent or any other environmentally friendly antibacterial material.
  • Hydronic tubing or capillary tubes for heating and or cooling or electrical heating cable, electrical mat or thermo-electric cooling wire or wire mat 5.
  • Hydronic tubing (like thermoplastic tubing) or piping (like any metal pipe) or any capillary tubing is preferably made from fossil fuel by products or any other recycled or suitable scrap material.
  • This layer 2 enhances heat transfer to/from the panel surface and helps o maintain a uniform surface temperature for even thermal radiation and convection.
  • the porous layer 3 is made from any material; preferably, recycled or inverse engineered product like spray glued wood chips or shredded auto tires with pre-engineered variation of its degree of porosity in three dimensions in order to provide uniform air diffusion to the room over the entire panel surface.
  • This porous layer may have a constant width (thickness) like shown in the relevant figures or may have a variable thickness in order to facilitate the uniformity of air diffusion. For example, this layer may taper along the height of the panel.
  • Back and side thermal insulation preferably from recycled organic material with fire-resistant properties 4 minimizes energy losses.
  • the composite hybrid panel 1 is preferably framed by recycled, environment safe, chemical free wood profiles and it is simply attached to the building wall. All material is fire-resistance compliant. Total panel thickness is typically and preferably, 6 inch (15 cm).
  • Composite hybrid panels 1 may be combined and interconnected with each other or other building panels and plumbing elements with air and hydronic connectors. A dynamically active control apparatus controls all indoor functions.
  • a heating and or cooling element 5 may be placed into the diffuser 2 of the innovative composite hybrid panel 1.
  • the heating and or cooling element 5 can be for example PEX tubing for warm or cold fluid circulation or electrical heating wires, electric mats, or thermo-electric effect (cooling) wires or mats.
  • the shape and type of the heating element do not limit the scope.
  • the important point is heating or cooling the panel surface when required with a dynamically controlled system (see fig 7).
  • the fan 9 inhales or brings fresh air into the air duct 8. Location, type, capacity, number and dimensions of the fan 9 used in the panel can be altered or changed.
  • Fans may be located symmetrically or asymmetrically in any number, in any type or a combination of types and at any level of the panel and or in the air duct.
  • the air filter 7 typically electrostatic type strains the air introduced to the air duct 8.
  • the UV lamps 10 clean and disinfect the air.
  • a humidifier 11 and dehumidifier 12 can be placed into the air duct to control air relative humidity of the diffusing air for maximum human comfort and required levels.
  • the arrows in fig IB shows the typical directions of air circulation from air duct 8 to diffuser 2 and porous layer 3 in a uniform pattern. Because of the location of the fan(s) 9, a sample position shown in fig IB, air diagonally moves and advances from air duct 8 to porous wall 3 and -if exists- to diffuser 2. Therefore the pores of the porous layer can be accordingly arranged, in this sample case diagonally, which is in a manner that the smallest pore is the nearest to the fan 9 and pores are less populated in order to increase the airflow resistance in this
  • FIG. 2A shows the innovative composite and hybrid panel without heating or cooling pipes or electric cables/wires.
  • This arrangement establishes a passive composite hybrid panel or building element structure, which is a part of the invented continuous air breathing system. Passive and active panels continuously breathe air except at off periods of the system if an on-off control is used.
  • the preferable control apparatus and algorithm (fig 7) is a dynamic, temperature and airflow modulated control by varying the radiant/convective split and fluid temperatures.
  • Side sectional view of this passive panel (in wall position) is displayed in fig 2B.
  • the passive panel exhausts the air from the indoor space in a project-suitable manner or feeds it to re-circulation.
  • the configuration shown in fig 2B for a passive panel may also be used for active panel configuration if the panel surface temperature control is also going to be accomplished by the conditioned air diffusing to the room through the panel pores.
  • Figures 3A to C show a splittable composite hybrid panel where the panel 1 and the air duct 8 can be separated for any reason like maintenance, repair or mounting.
  • the splittable composite hybrid panel 1 may also be separately marketed if it will be serviced by a separate central system.
  • a single air duct 8 may service a plurality of composite hybrid panels 1 with conditioned air, electricity, hot water or heating or cooling.
  • Fig 4 shows the air breathing system composed of mutually located panels 1.
  • one of the panels has diffuser layer and heating and or cooling elements, which is named active panel.
  • the other panel is called passive panel, as it does not include diffuser and heating and or cooling elements.
  • Passive panel is used only for air exhaust, energy recovery and other indoor functions desired at that indoor location. While active wall exhales fresh, conditioned air into indoors, passive wall inhales.
  • the connecting pipe 23 at the bottom in fig 4 shows a case where capillary tubes are used to bring liquid desiccant fluid from the active panel air duct 8 and to charge it at the passive panel air duct using the reclaimed (recovered) heat at the passive panel from the warm exhaust air and return the charged desiccant fluid back to active panel air duct 8 for continuing its dehumidifying function.
  • Figs. 5 and 6 Applications of Preferred Embodiments
  • a water to air heat exchanger heats, the incoming air, and the remaining energy in the warm water circulates through typically PEX tubing of heating element 5, typically and preferably 0.75 inch (13 mm) in diameter. Tube spacing is determined according to the required thermal capacity. If the energy is derived from warm air, like from a solar air collector, the exchanger becomes air to water. Heat exchangers may be in every floor or tiny flat plate heat exchangers can be incorporated into the air duct of each composite hybrid radiant/forced and natural convection panel 1. The advantage of the latter is that one type of fluid circulates in the system.
  • Heating or cooling elements 5 transfer heat to/from the indoors through the decorative front cover 6, which acts as a radiant panel surface.
  • Radiant panel surface temperature which controls the radiant and natural convection heat transfer at the entire panel surface is adjusted with respect to thermal loads by the fluid temperature circulating through the heating or cooling elements, or the electrical power of the electrical cables, mats or wires, or diffusing air temperature or both.
  • Air diffusing through the thermal energy storing air diffuser 2 is further heated or cooled before entering the indoor space by the heating or cooling elements -if present.
  • Air diffusion provides the forced convection component and satisfies all the latent thermal loads (humidity control).
  • a dedicated control algorithm precisely maintains the best radiant/convective split for human comfort.
  • a similar composite hybrid panel 1 without air diffuser 2 and heating element 5 is mounted on preferably an opposite side of the indoor space like the opposite wall if panels are located at walls, in order to to draw air from indoors and to deliver it back for re-circulation or exhaust all or part of it.
  • This is the "passive" composite hybrid panel.
  • Composite hybrid panel 1 may be serviced by a flexible mini-duct system to deliver externally conditioned air-to-air duct 8. Air passes through a re-usable electrostatic, plasma, ionic, or HEPA air filter 7, pass through UV lamps for sterilization and then diffuses through the porous layer 3. A pre-filter may also be used at the upstream of the fan.
  • This invention can be directly coupled with a cluster of other green energy components like wind turbines (WT) 14, solar photovoltaic (PV) arrays 15, solar water panels 16, ground source heat pumps (GSHP) 17, and energy storage systems 22 (fig 3). Any combination of such a cluster derives a completely green building technology and can eliminate fossil fuel dependency.
  • WT wind turbines
  • PV solar photovoltaic
  • GSHP ground source heat pumps
  • fig 3 energy storage systems 22
  • Composite hybrid panel 1 itself is short-term thermal energy storage medium due to its relatively large thermal mass.
  • a medium-term TES 21 shaves-off the peaks of the load and the green energy supply, and further shaves-off the demand.
  • Solar water panels 16 deliver additional heat. Due to decreased, coincident loads, all green components have minimal size and peak performance.
  • a further application of the invention is shown in fig 7, where heating element 5 directly transfer heat from/to the ground by the use of capillary tubes.
  • Composite hybrid panel 1 may also be integrated into a Trombe wall section on the outside or incorporate phase change materials for energy storage. Other plumbing and building control and energy supply elements may be pre-engineered and pre-fabricated into these panels too, depending upon the need and production options to be marketed.
  • the composite hybrid panel 1 operates with a heat pump and satisfies the total sensible indoor space comfort load by radiant and convective components of heat transfer from its porous surface 6.
  • the load split is defined by the symbol PR, which needs to be optimized continuously in order to minimize the cost of the system.
  • An optimum sensible load split control apparatus was invented which continuously optimizes PR by continuously calculating the indoor sensible comfort load q. In cooling, q is negative and in heating q is positive by sign convention.
  • PR is the optimum, instantaneous sensible load split between the radiant and convective components of the composite hybrid panel 1, depending upon the instantaneous total sensible load q.
  • Equation 1 the absolute value of q is used.
  • C is a performance characteristic constant:
  • Equation 2 x is -1.5
  • Q ⁇ is the life-cycle-cost of the heat pump coupled to the composite hybrid panel system whose life-cycle cost factor is C p .
  • a is a constant between 0.001 and 7.0.
  • C / is constant depending upon the fluid temperature required from the heat pump.
  • the control apparatus is schematically shown in Figure 7.
  • the control apparatus continuously monitors the mean radiant temperature t m -, average dry-bulb air temperature of the indoor space t a , and AUST (Area weighted uncontrolled indoor surfaces of the indoor space). Using these values, the outdoor temperature and the heat overall load loss (gain in cooling) U of the indoor space. Control is based on two steps. The first step modulates the temperatures of the diffusing air and fluid temperature depending upon the magnitude of q. The second step determines PR, which means how much of the sensible load is going to be satisfied by the radiant surface compared to the total sensible load. Thus, Pi? is a ratio. If the optimum PR needs to adjust the fluid temperatures, they are adjusted accordingly. If t a , W, or AUST are not in acceptable ranges, then the optimum solution is re-adjusted. Fan speeds are also controlled and adjusted.
  • the indoor air pressure in every zone may be independently adjusted for premium human comfort. For example, when the outdoor air pressure is low, migraine headaches are aggravated in certain people, hi such cases, an indoor pressure conditioning may reduce or even eliminate these symptoms. Positive pressurization of indoors on a zone-by-zone basis is also very important for homeland security. If an outside CBR risk evolves, positive pressurization of the building is possible. If and indoor CBR risk evolves, the risk can be isolated by adjusting the indoor air pressures of each zone independently. Active panel "exhales” and passive panel "inhales.” This breathing system spread over the entire large surface area of the panel generates a uniform indoor environment and surrounding.
  • the invention relies on air exfiltration from the conditioned indoor space.
  • the same invention may also embed air ionizing technique or plasma filtration method, hi air ionization air is ionized in a controlled manner in the active panel, and pollutants are collected on the passive panel. On the passive panel, decorative cover is replaced periodically. Because the airflow is slow, dust problem in indoors are generally minimized by this invention.
  • the same invention may be applied to floors, ceilings, roofs, attic panels, or indoor partitioning walls in part or whole of the invention.
  • the same invention may be used for office cubicles to generate local/personal microenvironment climate, lighting and hub for electronic components, computers etc.
  • This invention may be applied to any kind of building like but not limited to residential, commercial, industrial, etc.
  • the same invention may be used in ground transportation and sea vessels and aircrafts with the exception in this case that these hybrid composite panels 1 may have no outside connection.
  • the same invention may also be employed in spacecrafts where energy is limited and human comfort is a premium especially in emergency cases: in an emergency, the use of energy can be minimized in the composite hybrid panel 1 simply switching to radiant mode only.
  • All passive and active panels, ceiling, or even floor panels may incorporate artificial lighting elements over a wide surface area in particular but not limited to new low temperature, low energy, and closer to natural day lighting type lighting fixtures such as LED or similar lamp devices.
  • Low intensity lighting over a larger surface area is more energy efficient and closer to natural lighting.
  • These fixtures may be color and intensity variable in order to emulate a complete cycle of day lighting. In particular, this emulation may be useful in aircraft and spacecraft cabins to minimize the rapid earthly time zone changes to emulate the usual 24 hour cycle for astronauts in spacecrafts.
  • this invention may be used in other functions and applications like but not limited to animal shelters or pens, sport facilities (like outdoor tennis courts in winter), outdoor applications for cafes, greenhouses, public areas, restaurants, zoos, warehouses, controlled climate pharmaceutical and electronics buildings, storage rooms, hospitals, schools, offices, apartments, micro-climate control systems etc.
  • Another important application of these active and passive panels may be in museums or libraries to generate temporary or permanent display areas with zone control and independent HVAC application such that museum personnel, patrons, and artifacts books etc are maintained in an environment with maximum benefits without any compromise.
  • the air temperature must be low, while the humans must be thermally comfortable. Due to the dual control nature of the composite hybrid panel such that radiant surface temperature and the flowing air temperature can be independently controlled, the air temperature is kept minimal while human thermal comfort requirements are satisfied by the radiant heat transfer component of the composite hybrid panel 1.
  • This Invention may also be coupled, integrated, and made compatible and able to integrate with new building construction technologies like building, panels for walls, floors, and roofs.
  • the invention may be embedded into such building panels too.
  • This Invention may also incorporate natural ventilation through outdoors with a controlled or pre-engineered degree of porosity/permeability of outdoor air. Exhaust of air may be accomplished at the passive panel in a similar fashion. This combination eliminates ducts for indoor air ventilation requirements. These panels may have additional air filter layers for outdoor air.
  • this technology operates at very moderate temperatures, so that it can be directly coupled to low-exergy energy resources such as solar, waste, and ground heat.
  • This complete compatibility eliminates the conventional HVAC plants, terminal units, and associated energy losses, may increase the exergetic efficiency from about 15% to 80%, and proportionally eliminates environmental degradation.
  • This technology improves the HVAC thermal efficiency by about 12% points and reduces heating and cooling loads by up to 40%.
  • Fossil fuel dependence may be reduced by up to 90%, and electrical power demand is reduced by about 85%..
  • the combined result is a substantial decrease in oil and gas dependency and increased energy security.
  • the building sector will significantly save energy and fossil fuel with the proposed technology and saved fossil fuels will be allocated to uses that are more rational.
  • the invention is a complete package of integrated, composite hybrid radiant/forced and natural convection heat transfer wall panel for hybrid HVAC, which can be directly coupled to renewable or waste energy sources. This is an important step for environmental issues and energy economy.
  • the invention has its own dedicated dynamic control apparatus (fig 7) and optimization algorithm, which makes the invention also adaptable and affordable.
  • the invention may also be coupled to several other green component cluster options as typically shown in fig 5 and fig 6, in order to suit every need, building type, geographic location, and energy market. Because a simple shop technology and a waste material supply are sufficient, production investment shall be minimal and attractive. With a combination of strong commercial and industrial interest among homeowners, contractors, and decision-makers, and ease of manufacturing, commercialization of the proposed technology is feasible and will be seamless with the HVAC market.
  • An invention of composite, integrated, sandwiched, multi-role composite radiant wall panel optimally integrates heating, cooling, ventilating, air-conditioning, thermo ⁇ electric, energy recovery, and energy storage functions at very moderate temperatures such that it can directly utilize renewable and waste energy resources having very low exergy.
  • the same panel may also modularly integrate or connect with/to other building functions, plumbing functions, electric/electronic functions, and indoor air pressure control functions. The above-mentioned functions may all be present or only some of these functions may be present.
  • the panel may be completely opaque, completely transparent, or semi-transparent. Direct compatibility with low-exergy energy resources eliminates costly equipment over sizing and resource temperature conditioning associated with conventional HVAC systems.
  • This invention optimally combines radiant and convective heat transfer and collectively maximizes all human comfort requirements by integrating HVAC functions with all other building functions into a single element in energy efficient, economically effective, innovative, single-source manners. More uniform, mold-free, and healthier indoor air distribution and complete zoning capability improves the indoor air quality, human comfort, and reduces risks of airborne CBR agents (Chemical, Biological, and Radiological) from homeland security perspectives.
  • This system is easy to install, operate, and maintain both in existing and new buildings.
  • a simple shop using 100% recyclable waste material and fossil fuel by-products can manufacture the composite hybrid panel structure, hi a typical house this system can reduce HVAC loads by 40%, increase overall thermal efficiency by 12% points, improve exergetic efficiency from 15% to 80%, eliminate fossil fuel dependency by 90%, and reduce bio-terror risk.
  • the investment cost will be 70% cheaper and the operating cost will be one-fifth when waste heat is used.
  • the composite hybrid wall panel may replace conventional boilers, furnaces, and chillers at the plant level, bulky air-conditioning ducts and terminal HVAC units at the terminal level, adds a desiccant cooling system at an intermediate level, and precisely embeds radiant and connective heat transfer at the 60% by 40% split, that may also be adjusted with an innovative control algorithm.
  • Ground source heat pumps (GSHP), solar panels (SP), and wind turbines (WT) may mutually enhance their attributes with the invention. This invention primarily targets walls, which have the same heating and cooling effectiveness.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Life Sciences & Earth Sciences (AREA)
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  • Thermal Sciences (AREA)
  • Sustainable Energy (AREA)
  • Building Environments (AREA)

Abstract

L'invention concerne un panneau (1) composite, intégré, alterné, polyvalent à convection hybride naturelle et forcée/par rayonnement qui intègre de manière optimale les fonctions de chauffage, refroidissement, ventilation, climatisation, effet thermoélectrique, récupération d'énergie et stockage d'énergie à des températures de fonctionnement très modérées de sorte que le panneau selon l'invention peut directement utiliser des ressources d'énergie ayant une très faible énergie. Le panneau hybride composite ou l'élément construction (1) ayant une couche de diffusion (2) qui est thermoconductrice, une couche poreuse (3) assurant une diffusion d'air uniforme, une couche d'isolation thermique (4) simplement fixée, encastrée ou intégrée à une paroi, un plafond, un plancher ou simplement des supports de construction afin de diviser un espace intérieur.
EP05817727A 2004-10-14 2005-08-31 Paroi hybride composite, panneau de plafond ou de plancher ou element de construction destines a des fonctions de chauffage, refroidissement, ventilation, climatisation et a d'autres fonctions interieures Withdrawn EP1800080A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US61812204P 2004-10-14 2004-10-14
PCT/TR2005/000039 WO2006041418A1 (fr) 2004-10-14 2005-08-31 Paroi hybride composite, panneau de plafond ou de plancher ou element de construction destines a des fonctions de chauffage, refroidissement, ventilation, climatisation et a d'autres fonctions interieures

Publications (1)

Publication Number Publication Date
EP1800080A1 true EP1800080A1 (fr) 2007-06-27

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EP05817727A Withdrawn EP1800080A1 (fr) 2004-10-14 2005-08-31 Paroi hybride composite, panneau de plafond ou de plancher ou element de construction destines a des fonctions de chauffage, refroidissement, ventilation, climatisation et a d'autres fonctions interieures

Country Status (3)

Country Link
US (1) US20080086981A1 (fr)
EP (1) EP1800080A1 (fr)
WO (1) WO2006041418A1 (fr)

Families Citing this family (54)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE102005034970A1 (de) 2005-07-22 2007-01-25 Krecké, Edmond Dominique Gebäudewandung mit Fluiddurchführung als Energiebarriere
US10866014B2 (en) 2007-06-27 2020-12-15 Racool, L.L.C. Building designs and heating and cooling systems
US10082317B2 (en) 2007-06-27 2018-09-25 Racool, L.L.C. Building designs and heating and cooling systems
US20100198414A1 (en) * 2007-06-28 2010-08-05 Kroll Steven C Systems and methods for controlling interior climates
US7789927B2 (en) 2007-07-06 2010-09-07 Kimberly-Clark Worldwide, Inc. Portable breathable dust partition system
EP2310752B1 (fr) * 2008-06-24 2020-02-12 Camfil Ab Système de ventilation
CN101624853B (zh) * 2008-07-10 2011-06-01 严继光 辐射换热天花板及含有该辐射换热天花板的空调
ES2402381T3 (es) * 2008-08-05 2013-05-03 Climastar Global Company, S.L. Placa de acumulación-transmisión térmica y su procedimiento de obtención
DE102008045180A1 (de) * 2008-08-30 2010-03-04 Solarnext Ag Gebäudeintegrierter Wärmetauscher
DE102008052792B4 (de) * 2008-10-22 2010-11-04 Airbus Deutschland Gmbh Luftführungselement und Luftführungselementanordnung für eine Flugzeugklimaanlage
KR100915499B1 (ko) * 2008-12-16 2009-09-03 천열에너지 주식회사 난방패널의 생산방법
DE202009003205U1 (de) * 2009-03-05 2009-08-06 Zehnder Verkaufs- Und Verwaltungs Ag Plattenelement für ein Deckenheizungs- und/oder Kühlungselement
WO2011024084A2 (fr) * 2009-08-26 2011-03-03 Hunt Robert D Matériau de construction concentrant l'énergie thermique solaire
TW201239586A (en) * 2011-03-24 2012-10-01 Hon Hai Prec Ind Co Ltd Container data center
BR112013032839B1 (pt) * 2011-06-22 2021-08-03 Fresenius Medical Care Deutschland Gmbh Clínica de diálise com rede de emissão zero, clínica médica e método para implementação de um prédio com rede de emissão zero
DE102012106994B4 (de) * 2011-08-26 2022-05-19 Weiss-Doppelbodensysteme GmbH System von Bodenplatten für ein Doppelbodensystem und ein Doppelbodensystem
US20140113536A1 (en) * 2012-10-23 2014-04-24 Visteon Global Technologies, Inc. Zonal airflow system for a vehicle
US9587849B2 (en) 2013-03-01 2017-03-07 Stephen Schlesinger Heating, ventilation, and air conditioning system
US20160073621A1 (en) * 2013-03-15 2016-03-17 Scott Nielson Enclosure for Killing Insects
CN103334567A (zh) * 2013-07-22 2013-10-02 中国建筑西北设计研究院有限公司 一种多功能的辐射供冷供热地板
CN103398411A (zh) * 2013-08-21 2013-11-20 中国建筑西北设计研究院有限公司 一种内置柔性塑料管用于辐射供冷供热的透水橡胶地板
JP6163047B2 (ja) * 2013-08-22 2017-07-12 株式会社ササクラ 空調用輻射パネル及びこれを備えた空調用輻射ユニット
EP2871422B2 (fr) * 2013-11-07 2020-07-29 Grundfos Holding A/S Distributeur hydraulique pour un système de chauffage et/ou de refroidissement hydraulique
CN104975654A (zh) * 2014-04-14 2015-10-14 郁华斌 建筑智能复合外隔热调温系统
DE202015009384U1 (de) 2014-10-20 2017-05-10 Architectural Applications P.C. Regenschutz mit integriertem Wärme- und Feuchtigkeitsaustauscher
US10295220B1 (en) 2014-11-13 2019-05-21 Acme Manufacturing Corporation Snow removal assembly, apparatus and method for air handling units
US9273463B1 (en) 2015-03-24 2016-03-01 Curtis Kossman Curtain wall building environmental control systems and methods
US10704794B2 (en) * 2015-04-07 2020-07-07 Brown University Apparatus and method for passively cooling an interior
WO2016205634A1 (fr) * 2015-06-19 2016-12-22 Surna Inc. Bâtiment hybride
WO2016207898A1 (fr) * 2015-06-24 2016-12-29 Zchori Dror Collecte d'énergie à partir de variations d'humidité
TWI595194B (zh) * 2016-05-27 2017-08-11 Air conditioning unit
CN106440129B (zh) * 2016-07-08 2019-05-21 苏州暖舍节能科技有限公司 一种多孔介质辐射板
CN107525118A (zh) * 2017-08-09 2017-12-29 安徽省建筑科学研究设计院 一种建筑采暖辐射系统
CN107524256A (zh) * 2017-08-09 2017-12-29 安徽省建筑科学研究设计院 一种建筑采暖保温隔声系统
CN107543232A (zh) * 2017-08-09 2018-01-05 安徽省建筑科学研究设计院 一种建筑节能系统
CA3072275A1 (fr) * 2017-08-24 2019-02-28 Vertical Air Solutions LLC Systeme et procede pour produire du dioxyde de carbone et faire circuler l'air dans un systeme de jardinage vertical
US10806099B2 (en) 2017-08-24 2020-10-20 Vertical Air Solutions LLC System and method for providing carbon dioxide and circulating air for a vertical gardening system
US10694682B2 (en) 2017-08-24 2020-06-30 Vertical Air Solutions LLC System and method for providing carbon dioxide and circulating air for a vertical gardening system
WO2019099834A1 (fr) * 2017-11-16 2019-05-23 The Trustees Of Princeton University Procédé et appareil de rayonnement thermique
EP3546854B1 (fr) 2018-03-26 2022-08-31 Mitsubishi Electric R&D Centre Europe B.V. Dégivrage d'un système de pompe à chaleur par chaleur perdue
CN113396260A (zh) 2018-08-31 2021-09-14 泰克斯蒂勒材料公司 用于被动式热和水管理的多功能系统
US20200149748A1 (en) * 2018-11-14 2020-05-14 Francesco Giovanni Longo Building System
CN109255560B (zh) * 2018-11-20 2022-10-28 成都大学 一种基于冷热电负荷比例的cchp系统评估优化方法
US11732924B2 (en) 2019-02-08 2023-08-22 Johnson Controls Tyco IP Holdings LLP Air intake filter assemblies with a multi-level fine filter for heating, ventilation, and/or air conditioning (HVAC) systems
US11759742B2 (en) 2019-02-08 2023-09-19 Johnson Controls Tyco IP Holdings LLP Air intake filter assemblies with actuatable filter slats for heating, ventilation, and/or air conditioning (HVAC) systems
RU191076U1 (ru) * 2019-02-18 2019-07-23 Федеральное государственное бюджетное образовательное учреждение высшего образования "Кубанский государственный аграрный университет им. И.Т. Трубилина" Универсальная теплонасосная установка для сельскохозяйственных помещений
WO2020208456A1 (fr) 2019-04-10 2020-10-15 Ecole Polytechnique Federale De Lausanne (Epfl) Module d'échangeur de chaleur et procédés d'utilisation associés
DE102019129115A1 (de) * 2019-10-29 2021-04-29 Thomas Friedrich Verfahren und eine Vorrichtung zur Klimatisierung von Räumen
CN110663422B (zh) * 2019-11-11 2021-12-28 皖西学院 一种农业用流水蓄能大棚
CN111923593B (zh) * 2020-08-17 2022-04-05 劲佳包装有限公司 一种纸箱满底印刷装置及印刷办法
CN112609891A (zh) * 2020-12-15 2021-04-06 山东开杰环保科技有限公司 一种多功能水性木塑墙板
WO2022187522A1 (fr) * 2021-03-04 2022-09-09 Mimic Systems Inc. Système thermoélectrique à impulsions efficace sur le plan énergétique
DE202021106284U1 (de) 2021-11-17 2022-02-09 Petra Benthien Modulare Schauwand
FI130907B1 (fi) * 2022-03-22 2024-05-23 Kvc Finance Oue Rakennuselementti

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2251663A (en) * 1938-05-02 1941-08-05 Burgess Battery Co Ventilating construction
US2751198A (en) * 1951-01-05 1956-06-19 Houdaille Industries Inc Ceiling plenum and air conditioning system
US2988980A (en) * 1957-07-01 1961-06-20 Hans R Tschudin Heat distribution panel
US3719136A (en) * 1970-09-21 1973-03-06 Nat Defence Method and means for providing a clean area
EP0207718B1 (fr) * 1985-07-05 1990-12-27 Atlas Air (Australia) Pty. Limited Conditionnement de l'air agissant sur une zone limitée
DE19500670C1 (de) * 1995-01-11 1996-02-08 Krantz Tkt Gmbh Kühlvorrichtung
DE10243196B4 (de) * 2002-09-18 2007-03-22 Kaindl Flooring Gmbh Paneele mit Verbindungsklammer

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See references of WO2006041418A1 *

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