CN102147147A - Heating guide pipe - Google Patents

Heating guide pipe Download PDF

Info

Publication number
CN102147147A
CN102147147A CN2010101118021A CN201010111802A CN102147147A CN 102147147 A CN102147147 A CN 102147147A CN 2010101118021 A CN2010101118021 A CN 2010101118021A CN 201010111802 A CN201010111802 A CN 201010111802A CN 102147147 A CN102147147 A CN 102147147A
Authority
CN
China
Prior art keywords
heating
pipe
conservancy diversion
water conservancy
mozzle
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.)
Pending
Application number
CN2010101118021A
Other languages
Chinese (zh)
Inventor
王佳平
谢睿
姜开利
范守善
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.)
Tsinghua University
Hongfujin Precision Industry Shenzhen Co Ltd
Original Assignee
Tsinghua University
Hongfujin Precision Industry Shenzhen Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Tsinghua University, Hongfujin Precision Industry Shenzhen Co Ltd filed Critical Tsinghua University
Priority to CN2010101118021A priority Critical patent/CN102147147A/en
Priority to US12/903,510 priority patent/US20110194845A1/en
Priority to JP2010293188A priority patent/JP2011163748A/en
Publication of CN102147147A publication Critical patent/CN102147147A/en
Pending legal-status Critical Current

Links

Images

Classifications

    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B3/00Ohmic-resistance heating
    • H05B3/40Heating elements having the shape of rods or tubes
    • H05B3/42Heating elements having the shape of rods or tubes non-flexible
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24HFLUID HEATERS, e.g. WATER OR AIR HEATERS, HAVING HEAT-GENERATING MEANS, e.g. HEAT PUMPS, IN GENERAL
    • F24H1/00Water heaters, e.g. boilers, continuous-flow heaters or water-storage heaters
    • F24H1/10Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium
    • F24H1/12Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium
    • F24H1/14Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium by tubes, e.g. bent in serpentine form
    • F24H1/142Continuous-flow heaters, i.e. heaters in which heat is generated only while the water is flowing, e.g. with direct contact of the water with the heating medium in which the water is kept separate from the heating medium by tubes, e.g. bent in serpentine form using electric energy supply

Abstract

The invention relates to a heating guide pipe which comprises a guide inner pipe, a protective outer pipe sleeved outside the guide inner pipe and a heating module, wherein the protective outer pipe and the guide inner pipe are arranged at intervals; a sealing space is formed between the protective outer pipe and the guide inner pipe, the heating module is arranged in the sealing space, and at least one end of the guide inner pipe is provided with a connecting port.

Description

The heating mozzle
Technical field
The present invention relates to a kind of mozzle, particularly relate to a kind of heating mozzle that can convection cell heats.
Background technology
In fields such as daily life, production and scientific researches, usually need convection cell to heat.As, in some medical care precess processes, can heat the intravenous injection feeding usually, so that the temperature of parenteral solution is remained on the rational physiological temp of patient.
A kind of heating mozzle is provided in the prior art, it is connected and composed by two coaxial interior pipes and the outer tube pipe cap component by two tube ends, pipe cap component seals ends of tubes, heating wire is contained in the interior pipe, form a chamber in described between pipe and the outer tube, on pipe cap component, be provided with heating wire lead fairlead, a fluid intake and fluid issuing are set on outer tube wall at interval.
Yet, in the pipe, heated fluid is flow through from the chamber that forms between described interior pipe and the outer tube in this heating wire that can heat mozzle is contained in.Because fluid to be heated also can dispel the heat to the external world by outer tube in the heating process, so it is lower to heat the efficient of mozzle convection cell heating.
Summary of the invention
In view of this, be necessary the heating mozzle that provides a kind of convection cell efficiency of heating surface higher.
A kind of heating mozzle, this heating mozzle comprise pipe in the water conservancy diversion; One is sheathed on the outer protection outer tube of pipe in this water conservancy diversion, and pipe is provided with at interval in this protection outer tube and the described water conservancy diversion; One heating module; Wherein, form a seal cavity in described protection outer tube and the water conservancy diversion between the pipe, this heating module is arranged in the described seal cavity, and at least one end of pipe is provided with a connectivity port in this water conservancy diversion.
Compared to prior art, heating mozzle provided by the present invention will heat module and be arranged between interior pipe of described water conservancy diversion and the protection outer tube, can be connected by the connectivity port when this heating mozzle uses fluid to be heated pipe in the water conservancy diversion is flow through, and heat by heating module convection current fluid to be heated of pipe in this water conservancy diversion.Because fluid to be heated pipe in the water conservancy diversion flows through, and forms a seal cavity in described protection outer tube and the water conservancy diversion between the pipe, dispels the heat to the external world by outer tube so can prevent fluid to be heated, has improved the efficiency of heating surface that heats mozzle.
Description of drawings
The structural representation of the heating mozzle that Fig. 1 provides for first embodiment of the invention.
Fig. 2 is the generalized section of the heating mozzle II-II along the line of Fig. 1.
Fig. 3 is the stereoscan photograph of the CNT membrane in the heating mozzle of first embodiment of the invention.
Fig. 4 is the structural representation of the CNT fragment in the CNT membrane among Fig. 3.
Fig. 5 in the heating mozzle of the present invention first real embodiment the stereoscan photograph of the non-carbon nano tube line that reverses.
Fig. 6 is the stereoscan photograph of the carbon nano tube line that reverses in the heating mozzle of the present invention first real embodiment.
Fig. 7 twines the structural representation that is arranged at the water conservancy diversion inner tube outer surface for the electrode of the heating mozzle that first embodiment of the invention provides.
The schematic diagram of the test macro that Fig. 8 tests for the heating mozzle that first embodiment of the invention is provided.
Fig. 9 is the heating power of the heating mozzle that first embodiment of the invention provided and the linear relationship chart of heating mozzle inner fluid temperature difference.
The structural representation of the heating mozzle that Figure 10 provides for second embodiment of the invention.
The main element symbol description
Heating mozzle 10,20
Pipe 100,200 in the water conservancy diversion
Connectivity port 1002
Protection outer tube 102,202
Heating module 104,204
First electrode 1042,2042
Second electrode 1044,2044
Heating element heater 1046,2046
Power line 106
Attemperating unit 108
Seal 110
Heat-reflecting layer 112,212
Seal cavity 120,220
Insulation material layer 130,230
Retaining element 14
Fluid pump 30
Second container 40
Water 50
First container 60
The specific embodiment
For the present invention being done further explanation, lift the following specific embodiment and conjunction with figs. and be described in detail as follows.
See also Fig. 1 and Fig. 2, the heating mozzle 10 that first embodiment of the invention provided comprises pipe 100 in the water conservancy diversion, one is sheathed on the protection outer tube 102 outside the pipe 100 in this water conservancy diversion, and a heating module 104 that is arranged between interior pipe 100 of described water conservancy diversion and the protection outer tube 102.Form a seal cavity 120 in described protection outer tube 102 and the water conservancy diversion between the pipe 100, and this heating module 104 is arranged in the described seal cavity 120.At least one end of pipe 100 is provided with a connectivity port 1002 in the described water conservancy diversion.Pipe 100 ends that are provided with connectivity port 1002 can extend described protection outer tube 102 in the described water conservancy diversion, also can be positioned at described protection outer tube 102 or hold level with both hands together with one of described protection outer tube 102.In the present embodiment, pipe 100 has an end to extend protection outer tube 102 formation one connectivity port 1002 in the described water conservancy diversion.
Pipe 100 can be connected on the existing mozzle (figure does not show) by link 1002 in the described water conservancy diversion, thereby flow through pipe 100 in this water conservancy diversion and the fluid by pipe 100 in 104 pairs of water conservancy diversion of flowing through of described heating module of fluid to be heated heated.This fluid can be liquid or gas.Described connectivity port 1002 can be the end that pipe 100 extends protection outer tube 102 in the described water conservancy diversion, also can carry out machining by an end that pipe 100 in the water conservancy diversion is extended protection outer tube 102 obtains, as, in water conservancy diversion the pipe 100 extend the protection outer tube 102 an end on machining screw to have the port match of screw thread with existing mozzle.Be appreciated that because an end of the interior pipe 100 of described water conservancy diversion has a connectivity port 1002, make this heating mozzle 10 to dock with existing mozzle very easily.Further, on the described connectivity port 1002 retaining element 14 can also be set.Described retaining element 14 is in order to fixedly connected this connectivity port 1002 with existing mozzle port.In the present embodiment, described retaining element 14 is a stainless steel cutting ferrule joint, and the connectivity port 1002 of pipe 100 is inserted and fixed in this stainless steel cutting ferrule joint in the described water conservancy diversion.This stainless steel cutting ferrule joint has screw thread, can cooperate fixing with the port that existing mozzle has a screw thread.Be appreciated that described connectivity port 1002 also can adopt existing other connected mode.
Pipe 100 adopts the insulating heat-conduction material preparation with certain supportive in the described water conservancy diversion.Preferably, pipe 100 adopts the insulating heat-conduction material preparation that has certain supportive and can bend in the described water conservancy diversion.Described insulating heat-conduction material can be in pottery, glass, resin, quartz and the silicon rubber etc. one or more.Described resin can be acrylic, polypropylene, Merlon, polyethylene, phenolic aldehyde, epoxy, amino, unsaturated polyester (UP), polytetrafluoroethylene (PTFE) or silicon ether resin.Length, diameter and the shape of pipe 100 are not limit in the described water conservancy diversion, can select according to the size of existing mozzle to be connected.In the present embodiment, pipe 100 is a columnar silicon rubber tube in the described water conservancy diversion, and its external diameter is about 5.12 millimeters, and its pipe thickness is about 1.15 millimeters.
Described heating module 104 can be arranged at the outer surface of pipe 100 in the described water conservancy diversion or the inner surface of protection outer tube 102.In the present embodiment, described heating module 104 is arranged at the outer surface of pipe 100 in the described water conservancy diversion, and is provided with at interval with described protection outer tube 102.Described heating module 104 comprises a heating element heater 1046, one first electrode 1042 and one second electrode 1044.Described first electrode 1042 is electrically connected with described heating element heater 1046 with second electrode 1044.Described first electrode 1042 and second electrode 1044 are provided with at interval, avoid short circuit phenomenon to produce so that heating element heater 1046 inserts certain resistance when using.
Described heating element heater 1046 can be metallic resistance silk, alloy resistance wire, carbon fiber or carbon nano tube structure etc.Described carbon nano tube structure is a self supporting structure.So-called " self supporting structure " i.e. this carbon nano tube structure need not by a support body supports, also can keep self specific shape.The carbon nano tube structure of this self supporting structure comprises a plurality of CNTs, and these a plurality of CNTs attract each other by Van der Waals force, thereby makes carbon nano tube structure have specific shape.CNT in the described carbon nano tube structure comprises one or more in SWCN, double-walled carbon nano-tube and the multi-walled carbon nano-tubes.The diameter of described SWCN is 0.5 nanometer~50 nanometers, and the diameter of described double-walled carbon nano-tube is 1.0 nanometers~50 nanometers, and the diameter of described multi-walled carbon nano-tubes is 1.5 nanometers~50 nanometers.This carbon nano tube structure is stratiform or linear structure.Because this carbon nano tube structure has self-supporting, still can keep stratiform or linear structure not by support body supports the time.The unit are thermal capacitance of described carbon nano tube structure is less than 2 * 10 -4Every square centimeter of Kelvin of joule.Preferably, the unit are thermal capacitance of described carbon nano tube structure can be smaller or equal to 1.7 * 10 -6Every square centimeter of Kelvin of joule.
Described carbon nano tube structure comprises the membranaceous structure of at least one CNT, at least one liner structure of carbon nano tube or its combination.When adopting the membranaceous structure of CNT, the outer surface that is arranged at pipe 100 in the described water conservancy diversion directly can be wrapped up or twined to the membranaceous structure of CNT as heating element heater 1046; When adopting single liner structure of carbon nano tube as heating element heater 1046, wrap up or twine the outer surface that is arranged at pipe 100 in the described water conservancy diversion again after this single liner structure of carbon nano tube can being folded or is wound in a stratiform structure, also the direct winding of this single liner structure of carbon nano tube can be arranged at the outer surface of pipe 100 in the described water conservancy diversion; When adopting a plurality of liner structure of carbon nano tube, this a plurality of liner structure of carbon nano tube can be arranged in parallel, arranged in a crossed manner or be woven into after the stratiform structure again parcel or twine to be arranged at and manage 100 outer surface in the described water conservancy diversion as heating element heater 1046.
The membranaceous structure of described CNT comprises at least one carbon nano-tube film.Described carbon nano-tube film comprises a plurality of equally distributed CNTs.CNT in this carbon nano-tube film is arranged or lack of alignment in order.When carbon nano-tube film comprised the CNT of lack of alignment, CNT twined mutually; When carbon nano-tube film comprised orderly carbon nanotubes arranged, CNT was arranged of preferred orient along a direction or a plurality of direction.So-called preferred orientation is meant that most of CNT has bigger orientation probability in the carbon nano-tube film on a certain direction, i.e. axially the extending along same direction substantially of most of CNT in the carbon nano-tube film.When carbon nano tube structure comprises a plurality of CNTs substantially when same direction is arranged in order, these a plurality of CNTs extend to second electrode 1044 from first electrode 1042.Particularly, this carbon nano-tube film can comprise CNT waddingization film, CNT laminate or CNT membrane.
The self supporting structure that described carbon nano-tube film is made up of a plurality of CNTs.Described a plurality of CNT is for to be arranged of preferred orient along same direction.The whole bearing of trend that described preferred orientation is meant most of CNTs in carbon nano-tube film substantially in the same direction.And the whole bearing of trend of described most of CNTs is basically parallel to the surface of carbon nano-tube film.Further, most CNTs are to join end to end by Van der Waals force in the described carbon nano-tube film.Particularly, each CNT joins end to end by Van der Waals force with CNT adjacent on bearing of trend in the most of CNTs that extend substantially in the same direction in the described carbon nano-tube film.Certainly, have the CNT of minority random alignment in the described carbon nano-tube film, these CNTs can not arranged the overall orientation of most of CNTs in the carbon nano-tube film and constitute obviously influence.Described self-supporting is that carbon nano-tube film does not need large-area carrier supported, and as long as the relative both sides power of providing support can be unsettled on the whole and keep self membranaceous state, when being about to this carbon nano-tube film and placing (or being fixed in) at interval on two supporters being provided with of specific range, the carbon nano-tube film between two supporters can the membranaceous state of unsettled maintenance self.Described self-supporting is mainly by existing the continuous Van der Waals force that passes through to join end to end and extend carbon nanotubes arranged and realize in the carbon nano-tube film.
Particularly, the most CNTs that extend substantially in the same direction in the described CNT membrane, and nisi linearity, bending that can be suitable; Perhaps be not fully according to arranging on the bearing of trend, can be suitable depart from bearing of trend.Therefore, can not get rid of between the CNT arranged side by side in the most CNTs that extend substantially in the same direction of carbon nano-tube film and may have the part contact.
See also Fig. 3 and Fig. 4, particularly, described CNT membrane comprise a plurality of continuously and the CNT fragment 143 that aligns.This a plurality of CNT fragment 143 joins end to end by Van der Waals force.Each CNT fragment 143 comprises a plurality of CNTs that are parallel to each other 145, and this a plurality of CNT that is parallel to each other 145 is combined closely by Van der Waals force.This CNT fragment 143 has length, thickness, uniformity and shape arbitrarily.The thickness of described CNT membrane is 0.5 nanometer~100 micron, and width is relevant with the size of the carbon nano pipe array that pulls out this CNT membrane, and length is not limit.CNT 145 in this carbon nano-tube film is arranged of preferred orient along same direction.Described CNT membrane has higher light transmission.The light transmittance of single-layer carbon nano-tube membrane reaches more than 90%.Described CNT membrane and preparation method thereof specifically saw also the applicant on February 9th, 2007 application, in disclosed CN101239712A number Chinese publication application on August 13 " CNT membrane structure and preparation method thereof " in 2008.For saving space, only be incorporated in this, but all technology of above-mentioned application disclose the part that also should be considered as the exposure of the present patent application technology.
When described carbon nano tube structure comprises the multilayer carbon nanotube membrane of stacked setting, form an intersecting angle α between the CNT that is arranged of preferred orient in the adjacent two layers CNT membrane, and α spends (0 °≤α≤90 °) more than or equal to 0 degree smaller or equal to 90.In the present embodiment, described carbon nano tube structure 2022 is a single-layer carbon nano-tube membrane.
Described CNT laminate comprises equally distributed CNT.CNT is arranged of preferred orient along same direction, and CNT also can be arranged of preferred orient along different directions.Preferably, the CNT in the described CNT laminate is parallel to the surface of CNT laminate.CNT in the described CNT laminate overlaps mutually, and attracts each other by Van der Waals force, combines closely, and makes this CNT laminate have good flexible, can bending fold becomes arbitrary shape and does not break.And owing to attract each other by Van der Waals force between the CNT in the CNT laminate, combine closely, making the CNT laminate is the structure of a self-supporting, can need not substrate support.Described CNT laminate can obtain by rolling a carbon nano pipe array.CNT in the described CNT laminate forms an angle β with the surface of the substrate that forms carbon nano pipe array, wherein, β is more than or equal to 0 degree and smaller or equal to 15 degree (0≤β≤15 °), this angle β is with to be applied to the pressure that carbon nano-pipe array lists relevant, pressure is big more, and this angle is more little.The length and the width of described CNT laminate are not limit.Described CNT laminate and preparation method thereof sees also the applicant on June 1st, 2007 application, in disclosed CN101314464A Chinese patent application on December 3 " preparation method of carbon nano-tube film " in 2008, applicant: Tsing-Hua University, Hongfujin Precise Industry (Shenzhen) Co., Ltd..
Length, width and the thickness of described CNT waddingization film are not limit, and can select according to actual needs.The length of the CNT waddingization film that the embodiment of the invention provides is 1~10 centimetre, and width is 1~10 centimetre, and thickness is 1 micron~2 millimeters.Described CNT waddingization film comprises the CNT of mutual winding, and the length of CNT is greater than 10 microns.Attract each other, twine by Van der Waals force between the described CNT, form network-like structure.Even carbon nanotube in the described CNT waddingization film distributes, and random arrangement makes this CNT waddingization film isotropism.Described CNT waddingization film and preparation method thereof sees also the applicant on April 13rd, 2007 application, in disclosed CN101284662A Chinese patent application on October 15 " preparation method of carbon nano-tube film " in 2008, applicant: Tsing-Hua University, Hongfujin Precise Industry (Shenzhen) Co., Ltd..
Described liner structure of carbon nano tube comprises at least one non-carbon nano tube line that reverses, at least one carbon nano tube line that reverses or its combination.When described liner structure of carbon nano tube comprises the many non-carbon nano tube lines that reverse or during the carbon nano tube line that reverses, this non-carbon nano tube line that reverses or the carbon nano tube line that reverses can be parallel to each other and be a pencil structure, or reverse mutually and be the hank line structure.
See also Fig. 5, this non-carbon nano tube line that reverses comprises this non-carbon nano tube line length direction carbon nanotubes arranged of reversing of a plurality of edges.Particularly, this non-carbon nano tube line that reverses comprises a plurality of CNT fragments, and these a plurality of CNT fragments join end to end by Van der Waals force, and each CNT fragment comprises a plurality of CNTs that are parallel to each other and combine closely by Van der Waals force.This CNT fragment has length, thickness, uniformity and shape arbitrarily.This non-CNT line length of reversing is not limit, and diameter is 0.5 nanometer~100 micron.The non-carbon nano tube line that reverses obtains for the CNT membrane is handled by organic solvent.Particularly, organic solvent is soaked into the whole surface of described CNT membrane, under the capillary effect that when volatile organic solvent volatilizees, produces, the a plurality of CNTs that are parallel to each other in the CNT membrane are combined closely by Van der Waals force, thereby make the CNT membrane be punctured into a non-carbon nano tube line that reverses.This organic solvent is a volatile organic solvent, as ethanol, methyl alcohol, acetone, dichloroethanes or chloroform, adopts ethanol in the present embodiment.Compare with the carbon nano-tube film of handling without organic solvent by the non-carbon nano tube line that reverses that organic solvent is handled, specific area reduces, and viscosity reduces.
The described carbon nano tube line that reverses reverses acquisition for adopting a mechanical force in opposite direction with described CNT membrane two ends.See also Fig. 6, this carbon nano tube line that reverses comprises a plurality of around this carbon nano tube line axial screw carbon nanotubes arranged of reversing.Particularly, this carbon nano tube line that reverses comprises a plurality of CNT fragments, and these a plurality of CNT fragments join end to end by Van der Waals force, and each CNT fragment comprises a plurality of CNTs that are parallel to each other and combine closely by Van der Waals force.This CNT fragment has length, thickness, uniformity and shape arbitrarily.The CNT line length that this reverses is not limit, and diameter is 0.5 nanometer~100 micron.Further, can adopt a volatile organic solvent to handle the carbon nano tube line that this reverses.Under the capillary effect that produces when volatile organic solvent volatilizees, adjacent CNT is combined closely by Van der Waals force in the carbon nano tube line that reverses after the processing, and the specific area of the carbon nano tube line that reverses is reduced, and density and intensity increase.
Described liner structure of carbon nano tube and preparation method thereof sees also the applicant on September 16th, 2002 application, CN100411979C number China's bulletin patent " a kind of CNT rope and manufacture method thereof " in bulletin on August 20th, 2008, applicant: Tsing-Hua University, Hongfujin Precise Industry (Shenzhen) Co., Ltd., and on December 16th, 2005 application, in disclosed CN1982209A number Chinese publication application " carbon nano-tube filament and preparation method thereof " on June 20 in 2007, applicant: Tsing-Hua University, Hongfujin Precise Industry (Shenzhen) Co., Ltd..
Because carbon nano tube structure has bigger specific area, good adhesiveness is arranged itself, so can directly being arranged at, the heating element heater of being made of carbon nano tube structure 1046 manages 100 outer surface in the described water conservancy diversion.In addition, described heating element heater 1046 also can be fixed in the outer surface of pipe 100 in the described water conservancy diversion by a binding agent or fixture.Because heating element heater 1046 directly is arranged at the outer surface of pipe 100 in the water conservancy diversion, so this heating element heater 1046 can also be the carbon nanotube layer that forms by methods such as serigraphys, this carbon nanotube layer comprises a plurality of CNT disorder distribution.
Described heating element heater 1046 can also comprise a composite structure of carbon nano tube.Described composite structure of carbon nano tube comprises a carbon nano tube structure and is scattered in packing material in the carbon nano tube structure.Described carbon nano tube structure can be in the above-mentioned carbon nano tube structure any one.Described packing material is filled in the carbon nano tube structure or is compound in the surface of carbon nano tube structure.Described packing material comprises one or more in metal, resin, pottery, glass and the fiber.Selectively, described composite structure of carbon nano tube can comprise that a matrix and a carbon nano tube structure are compound in this matrix.Described carbon nano tube structure can be in the above-mentioned carbon nano tube structure any one.The material of described matrix comprises one or more in metal, resin, pottery, glass and the fiber.Described matrix coats carbon nano tube structure fully, and this matrix material can be infiltrated in this carbon nano tube structure to small part.
Because the heating element heater 1046 of present embodiment mainly is made of CNT, CNT has higher electric conversion efficiency and than higher radiation efficiency, so these heating element heater 1046 electric conversion efficiencies and radiation efficiency are higher.Because the thermal capacitance of carbon nano tube structure is less, so the heating element heater 1046 that is made of this carbon nano tube structure has thermal response speed faster.The high radiation efficiency of this carbon nano tube structure and fast thermal response speed make this heating mozzle 10 can be used for convection cell, and the fluid in especially flowing carries out Fast Heating.And, CNT has higher electric conversion efficiency and than higher radiation efficiency, so adopt the heating element heater 1046 of thinner thickness can reach bigger heating power, thereby make that the interior pipe 100 of water conservancy diversion of this heating mozzle 10 and the distance between the protection outer tube 102 can be less, therefore, feasible heating mozzle 10 microminiaturizations.Wherein, the distance between pipe 100 and the protection outer tube 102 can be 50 microns~500 microns in the water conservancy diversion of heating mozzle 10.In addition, because CNT has stronger chemical stability, thus adopt the resistance stabilization of the heating element heater 1046 of this carbon nano tube structure, thus the stability of heating mozzle 10 improved, make heated fluid remain on stationary temperature.
Described first electrode 1042 and second electrode 1044 can be arranged in the described water conservancy diversion and also can be arranged on the heating element heater 1046 on pipe 100 outer surfaces, and promptly heating element heater 1046 is arranged between interior pipe 100 of water conservancy diversion and the electrode.Can fix by conductive adhesive between described first electrode 1042 and second electrode 1044 and the heating element heater 1046.In the present embodiment, preferred conductive adhesive is an elargol.Described first electrode 1042 and second electrode 1044 are made up of conductive material, and its shape is not limit.This first electrode 1042 and second electrode 1044 can be conductive film, sheet metal or metal lead wire.Preferably, first electrode 1042 and second electrode 1044 are one deck strip conductive film to reduce the thickness of described heating mozzle 10.The thickness of this conductive film is 0.5 nanometer~500 micron.The material of this conductive film can be metal, alloy, indium tin oxide (ITO), antimony tin oxide (ATO), electrocondution slurry or conducting polymer etc.This metal or alloy material can be the alloy of any combination of aluminium, copper, tungsten, molybdenum, gold, titanium, silver, neodymium, palladium, caesium or above-mentioned metal.In the present embodiment, this first electrode 1042 and second electrode 1044 are silver-plated copper cash, and the diameter of this copper cash is 0.25 millimeter.The length of this first electrode 1042 and second electrode 1044 is slightly less than the length of pipe 100 in the water conservancy diversion, and extending axially along pipe 100 in the described water conservancy diversion respectively.The central shaft coplane of pipe 100 is provided with in this first electrode 1042 and second electrode 1044 and the water conservancy diversion.Described heating element heater 1046 is a CNT membrane.This CNT membrane is wrapped in pipe 100 outer surfaces in the described water conservancy diversion.This first electrode 1042 and second electrode 1044 are arranged at the surface of heating element heater 1046 near seal cavity 120.CNT in this CNT membrane is extended to second electrode 1044 by first electrode 1042.
See also Fig. 7, selectively, described first electrode 1042 and second electrode 1044 also can be respectively around the outer surface that is arranged at the relative two ends of pipe in the described water conservancy diversion 100, described CNT membrane is wrapped in pipe 100 outer surfaces in the described water conservancy diversion, and the extending axially along pipe 100 in the described water conservancy diversion of the CNT in this CNT membrane.
Be appreciated that described heating module 104 can also comprise a plurality of first electrodes 1042 and a plurality of second electrodes 1044.Described a plurality of first electrode 1042 and the 1044 alternate intervals settings of a plurality of second electrode, and described a plurality of first electrode 1042 is electrically connected 1044 electrical connections of described a plurality of second electrodes.This structure can realize the parallel connection of the carbon nano tube structure between the adjacent electrode.Carbon nano tube structure after the parallel connection has less resistance, can reduce the operating voltage of described heating module 104.
Be appreciated that, when described heating element heater 1046 is that a single liner structure of carbon nano tube or resistance wire are when twining the outer surface that is arranged at pipe 100 in the described water conservancy diversion, the two ends of this single liner structure of carbon nano tube or the two ends of resistance wire directly can also be electrically connected with a power line 106, and need not special electrode.
Described protection outer tube 102 is used for protection heating module 104, prevents to heat module 104 and is subjected to extraneous the damage, prevents that perhaps this heating mozzle 10 from causing the injury of getting an electric shock in use.The internal diameter of described protection outer tube 102 is greater than the external diameter of pipe 100 in the described water conservancy diversion.Preferably, described protection outer tube 102 and the 100 coaxial settings of the interior pipe of described water conservancy diversion.In the present embodiment, be provided with at interval so that form a hollow structure in protection outer tube 102 and the described water conservancy diversion between the pipe 100 by two seals 110 between the pipe 100 in described protection outer tube 102 and the described water conservancy diversion.Described two seals 110 are arranged near the position at described protection outer tube 102 two ends so that form a seal cavity 120 in protection outer tube 102 and the described water conservancy diversion between the pipe 100.Described seal 110 can be fixed in protection outer tube 102 and the described water conservancy diversion by binding agent manages between 100.Be appreciated that described seal 110 also can be the extension of pipe 100 in described protection outer tube 102 or the water conservancy diversion, promptly seal 110 is one of the forming with protection outer tube 102 or the interior pipe 100 of water conservancy diversion.Can sealing gas in the seal cavity 120 in described protection outer tube 102 and the described water conservancy diversion between the pipe 100, also can be evacuated.Be appreciated that, because formation one is filled with the seal cavity 120 of gas or vacuum between the interior pipe 100 of protection outer tube 102 and described water conservancy diversion, this structure can reduce to heat between module 104 and the protection outer tube 102 and heating module 104 and extraneous heat conduction and thermal convection current, and reduce pipe 100 and extraneous heat conduction and thermal convection current in the water conservancy diversion, thereby the heat that makes heating module 104 produce can effectively pass to fluid to be heated by pipe 100 in the water conservancy diversion.
Described protection outer tube 102 can adopt the material preparation that has certain supportive and have the better heat-resisting performance.The material of described protection outer tube 102 may be selected to be conductive material, as metal or alloy, also can be insulating materials, as pottery, glass, resin, quartz or silicon rubber etc.Described resin can be acrylic, polypropylene, Merlon, polyethylene, phenolic aldehyde, epoxy, amino, unsaturated polyester (UP), polytetrafluoroethylene (PTFE) or silicon ether resin.Preferably, described protection outer tube 102 adopts the insulating materials preparation that has certain supportive and can bend.In the present embodiment, described protection outer tube 102 is a polyfluortetraethylene pipe, and its internal diameter is 6.36 millimeters, and thickness is 1.35 millimeters.Pipe 100 and protection outer tube 102 two ends are by 110 sealings of two plastic seals in the described water conservancy diversion, one of them seal 110 be provided with blast pipe (figure does not show) in case will be in the water conservancy diversion pipe 100 be evacuated with protecting between the outer tube 102.Because the protection outer tube 102 in the present embodiment all adopts the insulating materials preparation that has certain supportive and can bend with the interior pipe 100 of water conservancy diversion, so this heating mozzle 10 can bend to Any shape according to actual needs.
Further, described heating mozzle 10 can also comprise that one is arranged at the inner surface of described protection outer tube 102 and the heat-reflecting layer 112 that is provided with at interval with heating module 104.Because the heat that carbon nano tube structure energising back produces is mainly outwards propagated by thermal-radiating form, so this heat-reflecting layer 112 can effectively protect directive the reflect heat of outer tube 102 and manage 100 to water conservancy diversion, and 100 pass to fluid to be heated by pipe in the water conservancy diversion.The material of described heat-reflecting layer 112 is the white material that a pair of heat radiation has better reflecting effect, as: one or more in metal, metal oxide, slaine and the pottery etc.The thickness of described heat-reflecting layer 112 is 100 microns~0.5 millimeter.In the present embodiment, heat-reflecting layer 112 is preferably aluminium foil, and its thickness is 100 microns.
Further, the outer surface of described protection outer tube 102 can also be provided with an insulation material layer 130.The material of this insulation material layer 130 can be in asbestos, diatomite, perlite, glass fibre, foam glass concrete and the calcium silicates etc. one or more.Described insulation material layer 130 can further prevent to heat mozzle 10 and outwards dispel the heat, thereby guarantees that the heat that heats mozzle 10 effectively utilizes.
When described heating mozzle 10 was worked, its first electrode 1042 was electrically connected with a power supply by a power line 106 respectively with second electrode 1044.Further, described heating mozzle 10 also comprises an attemperating unit 108.This attemperating unit 108 is electrically connected in series with described heating module 104.The voltage that this attemperating unit 108 is loaded into by changing on this heating module 104 is controlled the heat that heating module 104 is produced, thereby reaches the purpose of the heating-up temperature of control heating mozzle 10.In the present embodiment, this attemperating unit 108 is connected on the described power line 106, operates to make things convenient for the user.
When heating mozzle 10 provided by the present invention uses, can directly replace the whole of existing mozzle or replace the part of existing mozzle, be connected between a mozzle one end (as the running water pipe tap) or two mozzles as directly heating mozzle 10, make the mozzle inner fluid pipe 100 in the described water conservancy diversion of flowing through, thereby the fluid of pipe 100 in this water conservancy diversion of flowing through is heated.After applying a constant voltage for heating element heater 1046,,, and then make that the heating-up temperature of managing 100 interior fluids in the water conservancy diversion is constant so the heat that this heating mozzle 10 is produced also is constant because the resistance of this heating element heater 1046 is constant.Certainly can also regulate the heat that this heating mozzle 10 is produced with attemperating unit 108, make it accurately control the temperature that is reached.
Present embodiment is tested the thermal effect that adds of described heating mozzle 10.Wherein, pipe 100 is a columnar silicon rubber tube in the described water conservancy diversion, and its external diameter is about 5.12 millimeters, and pipe thickness is about 1.15 millimeters.Described protection outer tube 102 is a polyfluortetraethylene pipe, and its internal diameter is 6.36 millimeters, and thickness is 1.35 millimeters.Be provided with at interval by a plastic seal 110 between pipe 100 and the protection outer tube 102 in the described water conservancy diversion.Described first electrode 1042 and second electrode 1044 are silver-plated copper cash, and the diameter of this copper cash is for being 0.25 millimeter.Described first electrode 1042 and second electrode 1044 be respectively along pipe 100 extend axially in the described water conservancy diversion, and the central shaft coplane setting of pipe 100 in this first electrode 1042 and second electrode 1044 and the water conservancy diversion.Described heating element heater 1046 is that a width is 5 centimetres a CNT membrane.This CNT membrane is wrapped in pipe 100 outer surfaces in the described water conservancy diversion.This first electrode 1042 and second electrode 1044 are arranged at the surface of heating element heater 1046 near seal cavity 120.CNT in this CNT membrane is extended to second electrode 1044 by first electrode 1042.
See also Fig. 8, can be for convenience, the enough length of described protection outer tube 102 is all extended at the two ends of pipe 100 in the described water conservancy diversion, and an end extends to first container 60 that fills water 50 through a fluid pump 30, second container 40 that the other end has extended to.Effect by the fluid pump makes water 50 manage 100 from first container 60 in water conservancy diversion and flows to second container 40.Can make water 50 in water conservancy diversion, manage smooth flow in 100 by the rotating speed of adjusting fluid pump 30.In this test, the flow velocity of water 50 is set to 3.53ml/min, can simulate the situation of medical infusion.In this test process in the environment and first container 60 temperature at water source be 24 ℃.It is as shown in table 1 that the water temperature that adopts thermocouple that pipe in the water conservancy diversion 100 is exported is carried out measurement result.
The test result of table 1 heating mozzle 10
Applied voltage (V) Conducting electric current (A) Heating power (W) Port of export water temperature (℃)
3.1 0.3 0.93 30
4.5 0.4 1.80 34
6.0 0.6 3.60 41
7.5 0.9 6.75 53
9.0 1.2 10.8 72
As can be seen, with lower voltage, heating mozzle 10 just can carry out abundant preheating to water from above-mentioned data.Whole test process is stable, and the temperature of pipe 100 exit water just can reach predetermined temperature in the water conservancy diversion within 30 seconds, and it is steady and even to add thermal effect.
Fig. 9 is the heating power of heating mozzle 10 and the linear relationship chart of the interior pipe of water conservancy diversion 100 inner fluid temperature differences.As can be seen from Figure 9, the variation of managing water temperature in 100 in the water conservancy diversion becomes linear dependence with the heating power of heating mozzle 10, so the water 50 that flows can be accepted the heat by the electric energy conversion pro rata, the heat of total system dissipates less.
See also Figure 10, the heating mozzle 20 that second embodiment of the invention provided comprises pipe 200 in the water conservancy diversion, one is sheathed on the protection outer tube 202 outside the pipe 200 in this water conservancy diversion, one heat-reflecting layer 212, that is arranged at described protection outer tube 202 inner surfaces is arranged at the heat-reflecting layer 212 that pipe 200 and the heating module 204 and between the protection outer tube 202 in the described water conservancy diversion are arranged at the inner surface that protects outer tube 202.Form a seal cavity 220 in described protection outer tube 202 and the water conservancy diversion between the pipe 200, and this heating module 204 is arranged in the described seal cavity 220.Described heating module 204 comprises a heating element heater 2046.One first electrode 2042 and one second electrode 2044.The structure of the heating mozzle 10 that heating mozzle 20 and the first embodiment of the invention that second embodiment of the invention provided provided is basic identical, its difference is that described heat-reflecting layer 212 is an insulation reflecting layer 212, and described heating module 204 is arranged at the surface of this insulate heat reflecting layer 212 near seal cavity 220.
Heating mozzle provided by the invention can be used for gas or liquid heating, as: preheated air improves reaction yield in the burning boiler at large electric power plant station, to reduce reactor exhaust gas discharging amount; Material in biological experiment in the convection tube carries out the segmentation heating, accurately to control the catalytic action of various enzymes; In medical infusion, ice-cold soup is injected human body heat before, to increase result of treatment; In industry, the life water in the running water pipe is heated, to prevent icing or to satisfy living needs.
In addition, those skilled in the art also can do other variation in spirit of the present invention, as long as it does not depart from technique effect of the present invention, all should be included within the present invention's scope required for protection.

Claims (16)

1. one kind is heated mozzle, and this heating mozzle comprises:
Pipe in one water conservancy diversion;
One is sheathed on the outer protection outer tube of pipe in this water conservancy diversion, and pipe is provided with at interval in this protection outer tube and the described water conservancy diversion;
One heating module;
It is characterized in that form a seal cavity in described protection outer tube and the water conservancy diversion between the pipe, this heating module is arranged in the described seal cavity, at least one end of pipe is provided with a connectivity port in this water conservancy diversion.
2. heating mozzle as claimed in claim 1 is characterized in that, the end that the interior pipe of described water conservancy diversion is provided with the connectivity port extends described protection outer tube.
3. heating mozzle as claimed in claim 1 is characterized in that, sealing gas or be evacuated in the described seal cavity.
4. heating mozzle as claimed in claim 1 is characterized in that, the coaxial setting of pipe in described protection outer tube and the water conservancy diversion.
5. heating mozzle as claimed in claim 1 is characterized in that the inner surface of described protection outer tube further is provided with a heat-reflecting layer.
6. heating mozzle as claimed in claim 5 is characterized in that, described heating module is arranged at the outer surface of pipe in the described water conservancy diversion, and is provided with at interval with described heat-reflecting layer.
7. heating mozzle as claimed in claim 5 is characterized in that, described heat-reflecting layer is an insulate heat reflecting layer, and described heating module is arranged at the surface of this insulate heat reflecting layer near seal cavity.
8. heating mozzle as claimed in claim 1 is characterized in that, described heating module comprises a heating element heater, one first electrode and one second electrode, and this first electrode is with the second electrode gap setting and be electrically connected with described heating element heater respectively.
9. heating mozzle as claimed in claim 8 is characterized in that described heating element heater comprises a carbon nano tube structure, the self supporting structure that this carbon nano tube structure is attracted each other and forms by Van der Waals force by a plurality of CNTs.
10. heating mozzle as claimed in claim 9 is characterized in that, described heating element heater is at least one carbon nano-tube film, and this carbon nano-tube film wraps up or be wound in the outer surface of pipe in the described water conservancy diversion.
11. heating mozzle as claimed in claim 10, it is characterized in that, the self supporting structure that described carbon nano-tube film is made up of some CNTs, and described some CNTs are for to be arranged of preferred orient along same direction, and most CNTs are to join end to end by Van der Waals force in the described carbon nano-tube film.
12. heating mozzle as claimed in claim 11, it is characterized in that, described first electrode and second electrode be extending axially along pipe in the described water conservancy diversion respectively, and the central shaft coplane of pipe is provided with in this first electrode and second electrode and the water conservancy diversion, and the orientation of described end to end CNT is extended to another electrode by one of them electrode.
13. heating mozzle as claimed in claim 11 is characterized in that, described first electrode and second electrode are respectively around the outer surface that is arranged at pipe in the described water conservancy diversion, and the orientation of described end to end CNT extends axially along pipe in the described water conservancy diversion.
14. heating mozzle as claimed in claim 8 is characterized in that, described heating element heater comprises at least one liner structure of carbon nano tube that is wound in described water conservancy diversion inner tube outer surface.
15. heating mozzle as claimed in claim 8 is characterized in that, described heating element heater is a carbon nanotube layer by method for printing screen formation.
16. heating mozzle as claimed in claim 1 is characterized in that, it is characterized in that, it is empty to form a sealing by the seal sealing between the pipe in described protection outer tube and the water conservancy diversion.
CN2010101118021A 2010-02-08 2010-02-08 Heating guide pipe Pending CN102147147A (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
CN2010101118021A CN102147147A (en) 2010-02-08 2010-02-08 Heating guide pipe
US12/903,510 US20110194845A1 (en) 2010-02-08 2010-10-13 Heating pipe
JP2010293188A JP2011163748A (en) 2010-02-08 2010-12-28 Fluid heating pipe

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN2010101118021A CN102147147A (en) 2010-02-08 2010-02-08 Heating guide pipe

Publications (1)

Publication Number Publication Date
CN102147147A true CN102147147A (en) 2011-08-10

Family

ID=44353809

Family Applications (1)

Application Number Title Priority Date Filing Date
CN2010101118021A Pending CN102147147A (en) 2010-02-08 2010-02-08 Heating guide pipe

Country Status (3)

Country Link
US (1) US20110194845A1 (en)
JP (1) JP2011163748A (en)
CN (1) CN102147147A (en)

Cited By (12)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102984835A (en) * 2012-12-06 2013-03-20 常州瑞择微电子科技有限公司 Infrared heater
CN104620672A (en) * 2012-08-16 2015-05-13 广州市拓璞电器发展有限公司 A device for heating and/or vaporizing a fluid such as water
CN105188165A (en) * 2015-09-29 2015-12-23 安徽省宁国市天成电机有限公司 Multifunctional heater
CN106838855A (en) * 2017-02-14 2017-06-13 袁芳革 Rapid saturated steam generator device
WO2017114330A1 (en) * 2015-12-29 2017-07-06 淄博环能海臣环保技术服务有限公司 Metal conductor electric heating dual heat source heating plastic pipe
CN108870747A (en) * 2018-08-29 2018-11-23 浙江格洛维能源科技有限公司 A kind of electric heating equipment of nano electroheating pipe heating quantum energy conduction liquid
CN109237778A (en) * 2018-10-18 2019-01-18 济南大学 Gas-heating apparatus
CN111226069A (en) * 2017-08-22 2020-06-02 哈特奇桑有限公司 Connector for a heatable fluid line, in particular for an SCR system or a water injection system
CN112188659A (en) * 2020-09-30 2021-01-05 东风商用车有限公司 Urea tube with surface heating function and preparation method thereof
CN112268723A (en) * 2020-10-22 2021-01-26 中国石油大学(华东) Boiling heat exchange experimental device for promoting uniform heating of low-temperature mixed working medium
CN112447637A (en) * 2019-08-27 2021-03-05 长鑫存储技术有限公司 Heating pipeline and semiconductor manufacturing equipment
CN114101689A (en) * 2021-11-15 2022-03-01 河北新立中有色金属集团有限公司 High-silicon aluminum alloy melt fluidity and purity control method for gas atomization powder preparation

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN101208565B (en) * 2005-04-15 2012-01-04 汉斯-彼得·比尔鲍默 Method of heat fluid, heat generator, application thereof and corresponding heat device
CN102597596B (en) * 2009-11-04 2015-04-01 东芝三菱电机产业***株式会社 Heat transfer device
CN101880035A (en) 2010-06-29 2010-11-10 清华大学 Carbon nanotube structure
US9133814B2 (en) * 2012-08-07 2015-09-15 Edward R. Fyfe Apparatus for creating electricity from pressure fluctuations in pipes
CN103369748B (en) * 2013-07-25 2016-09-07 吴让攀 Electric heating tube for heating liquid
ITUB20159319A1 (en) * 2015-12-29 2017-06-29 Carlo Rupnik TUBULAR CONCENTRATOR FOR CONCENTRIC RADIATION OF ELECTROMAGNETIC WAVES
US20180139806A1 (en) * 2016-11-16 2018-05-17 William Whitney Burch Method and apparatus for heating fluids
US11583639B2 (en) * 2019-04-23 2023-02-21 Encompass Group, Llc Heating device for medical solutions
CN114680609B (en) * 2020-12-28 2023-08-04 杭州九阳小家电有限公司 Heating container

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE10059885C1 (en) * 2000-12-01 2002-07-04 Tuerk & Hillinger Gmbh Electric through-flow heater for fluid or gas has heating conductor carrier enclosing flattened central section of flow pipe
CN101063545A (en) * 2006-04-25 2007-10-31 黄樟焱 Energy-saving instantaneously heated type electric heater unit
CN201007547Y (en) * 2007-02-16 2008-01-16 黄樟焱 Current liquid electric heater
CN101610613A (en) * 2008-06-18 2009-12-23 清华大学 Line heat source

Family Cites Families (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US1985280A (en) * 1931-09-12 1934-12-25 Nat Electric Heating Company I Electric fluid heater
US2489753A (en) * 1945-06-02 1949-11-29 Cutler Hammer Inc Apparatus for heating granular molding material
JPS5119689Y2 (en) * 1972-03-06 1976-05-24
JP3128325B2 (en) * 1992-06-03 2001-01-29 日本電信電話株式会社 Small electric furnace for optical fiber processing
US6683783B1 (en) * 1997-03-07 2004-01-27 William Marsh Rice University Carbon fibers formed from single-wall carbon nanotubes
TW452826B (en) * 1997-07-31 2001-09-01 Toshiba Ceramics Co Carbon heater
JPH11144849A (en) * 1997-11-07 1999-05-28 Nekken:Kk Tubular heating element
US6501056B1 (en) * 1998-04-28 2002-12-31 E. Tec Corporation Carbon heating element and method of manufacturing the same
JP3587249B2 (en) * 2000-03-30 2004-11-10 東芝セラミックス株式会社 Fluid heating device
CN1282216C (en) * 2002-09-16 2006-10-25 清华大学 Filament and preparation method thereof
US6769487B2 (en) * 2002-12-11 2004-08-03 Schlumberger Technology Corporation Apparatus and method for actively cooling instrumentation in a high temperature environment
US7026432B2 (en) * 2003-08-12 2006-04-11 General Electric Company Electrically conductive compositions and method of manufacture thereof
JP2005072209A (en) * 2003-08-22 2005-03-17 Fuji Xerox Co Ltd Resistive element, its manufacturing method, and thermistor
US7374063B2 (en) * 2004-03-23 2008-05-20 Concept Group Inc. Vacuum insulated structures
JP4804024B2 (en) * 2005-04-14 2011-10-26 キヤノン株式会社 Image heating apparatus and image forming apparatus
WO2007032033A1 (en) * 2005-09-16 2007-03-22 Dayco Fluid Technologies S.P.A. Multi-layer piping for conveying and heating a fluid
SE529417C2 (en) * 2005-12-22 2007-08-07 Volvo Lastvagnar Ab Wiring harness for a vehicle
JP5109168B2 (en) * 2006-03-10 2012-12-26 株式会社アイ.エス.テイ Heat-generating fixing belt, manufacturing method thereof, and image fixing apparatus
JP4822054B2 (en) * 2006-03-28 2011-11-24 ニッタ株式会社 Heating device for fluid heating tube and method for heating fluid heating tube
CN101239712B (en) * 2007-02-09 2010-05-26 清华大学 Carbon nano-tube thin film structure and preparation method thereof
CN101409961B (en) * 2007-10-10 2010-06-16 清华大学 Surface heat light source, preparation method thereof and method for heating object using the same
US20100126985A1 (en) * 2008-06-13 2010-05-27 Tsinghua University Carbon nanotube heater
US20100046934A1 (en) * 2008-08-19 2010-02-25 Johnson Gregg C High thermal transfer spiral flow heat exchanger

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE10059885C1 (en) * 2000-12-01 2002-07-04 Tuerk & Hillinger Gmbh Electric through-flow heater for fluid or gas has heating conductor carrier enclosing flattened central section of flow pipe
CN101063545A (en) * 2006-04-25 2007-10-31 黄樟焱 Energy-saving instantaneously heated type electric heater unit
CN201007547Y (en) * 2007-02-16 2008-01-16 黄樟焱 Current liquid electric heater
CN101610613A (en) * 2008-06-18 2009-12-23 清华大学 Line heat source

Cited By (16)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN104620672A (en) * 2012-08-16 2015-05-13 广州市拓璞电器发展有限公司 A device for heating and/or vaporizing a fluid such as water
CN102984835A (en) * 2012-12-06 2013-03-20 常州瑞择微电子科技有限公司 Infrared heater
CN102984835B (en) * 2012-12-06 2014-10-29 常州瑞择微电子科技有限公司 Infrared heater
CN105188165A (en) * 2015-09-29 2015-12-23 安徽省宁国市天成电机有限公司 Multifunctional heater
WO2017114330A1 (en) * 2015-12-29 2017-07-06 淄博环能海臣环保技术服务有限公司 Metal conductor electric heating dual heat source heating plastic pipe
CN106838855A (en) * 2017-02-14 2017-06-13 袁芳革 Rapid saturated steam generator device
CN111226069A (en) * 2017-08-22 2020-06-02 哈特奇桑有限公司 Connector for a heatable fluid line, in particular for an SCR system or a water injection system
CN111226069B (en) * 2017-08-22 2022-01-28 哈特奇桑有限公司 Connector for a heatable fluid line, in particular for an SCR system or a water injection system
CN108870747A (en) * 2018-08-29 2018-11-23 浙江格洛维能源科技有限公司 A kind of electric heating equipment of nano electroheating pipe heating quantum energy conduction liquid
CN108870747B (en) * 2018-08-29 2023-07-18 浙江格洛维能源科技有限公司 Electric heating equipment for heating quantum energy conduction liquid by using nano electric heating tube
CN109237778A (en) * 2018-10-18 2019-01-18 济南大学 Gas-heating apparatus
CN112447637A (en) * 2019-08-27 2021-03-05 长鑫存储技术有限公司 Heating pipeline and semiconductor manufacturing equipment
CN112188659A (en) * 2020-09-30 2021-01-05 东风商用车有限公司 Urea tube with surface heating function and preparation method thereof
CN112268723A (en) * 2020-10-22 2021-01-26 中国石油大学(华东) Boiling heat exchange experimental device for promoting uniform heating of low-temperature mixed working medium
CN114101689A (en) * 2021-11-15 2022-03-01 河北新立中有色金属集团有限公司 High-silicon aluminum alloy melt fluidity and purity control method for gas atomization powder preparation
CN114101689B (en) * 2021-11-15 2023-11-03 河北新立中有色金属集团有限公司 Method for controlling fluidity and purity of high-silicon aluminum alloy melt for gas atomization powder preparation

Also Published As

Publication number Publication date
JP2011163748A (en) 2011-08-25
US20110194845A1 (en) 2011-08-11

Similar Documents

Publication Publication Date Title
CN102147147A (en) Heating guide pipe
CN102147148A (en) Fluid heater and using method thereof
CN102795613B (en) Preparation method of graphene-carbon nano tube composite structure
CN101848564B (en) Heating element
CN102056353A (en) Heating device and manufacturing method thereof
CN101605409B (en) Surface heat source
CN101610613B (en) Line heat source
CN101868068B (en) Plane heat source
CN101868065B (en) Preparation method of plane heat source
CN101868060B (en) Three-dimensional heat source
CN101868071A (en) Line heat source
CN101868070B (en) Line heat source
CN101616513A (en) Line heat source
CN101868066A (en) Plane heat source
CN101868069A (en) Plane heat source
CN101868058B (en) Preparation method of three-dimensional heat source
CN101868073B (en) Line heat source
TWI428546B (en) Heating pipe
CN101636004B (en) Plane heat source
TWI428547B (en) Heater for heating fluid liquid or gas and method for using the same
CN101868061A (en) Three-dimensional heat source
CN101868072B (en) Preparation method of line heat source
CN101616514B (en) Linear heat source
CN101616516B (en) Line heat source
CN101868057B (en) Three-dimensional heat source

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
C10 Entry into substantive examination
SE01 Entry into force of request for substantive examination
C12 Rejection of a patent application after its publication
RJ01 Rejection of invention patent application after publication

Application publication date: 20110810