US20130037628A1 - Externally mixing multi-component nozzle - Google Patents

Externally mixing multi-component nozzle Download PDF

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Publication number
US20130037628A1
US20130037628A1 US13/641,280 US201113641280A US2013037628A1 US 20130037628 A1 US20130037628 A1 US 20130037628A1 US 201113641280 A US201113641280 A US 201113641280A US 2013037628 A1 US2013037628 A1 US 2013037628A1
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Prior art keywords
nozzle
annular slot
fluid
atomizing gas
distribution piece
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Abandoned
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US13/641,280
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English (en)
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Dieter Wurz
Stefan Hartig
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Publication of US20130037628A1 publication Critical patent/US20130037628A1/en
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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/0012Apparatus for achieving spraying before discharge from the apparatus
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/02Spray pistols; Apparatus for discharge
    • B05B7/06Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane
    • B05B7/062Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane with only one liquid outlet and at least one gas outlet
    • B05B7/065Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane with only one liquid outlet and at least one gas outlet an inner gas outlet being surrounded by an annular adjacent liquid outlet
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/02Spray pistols; Apparatus for discharge
    • B05B7/06Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane
    • B05B7/062Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane with only one liquid outlet and at least one gas outlet
    • B05B7/066Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane with only one liquid outlet and at least one gas outlet with an inner liquid outlet surrounded by at least one annular gas outlet
    • B05B7/067Spray pistols; Apparatus for discharge with at least one outlet orifice surrounding another approximately in the same plane with only one liquid outlet and at least one gas outlet with an inner liquid outlet surrounded by at least one annular gas outlet the liquid outlet being annular
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/02Spray pistols; Apparatus for discharge
    • B05B7/08Spray pistols; Apparatus for discharge with separate outlet orifices, e.g. to form parallel jets, i.e. the axis of the jets being parallel, to form intersecting jets, i.e. the axis of the jets converging but not necessarily intersecting at a point
    • B05B7/0807Spray pistols; Apparatus for discharge with separate outlet orifices, e.g. to form parallel jets, i.e. the axis of the jets being parallel, to form intersecting jets, i.e. the axis of the jets converging but not necessarily intersecting at a point to form intersecting jets
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B05SPRAYING OR ATOMISING IN GENERAL; APPLYING FLUENT MATERIALS TO SURFACES, IN GENERAL
    • B05BSPRAYING APPARATUS; ATOMISING APPARATUS; NOZZLES
    • B05B7/00Spraying apparatus for discharge of liquids or other fluent materials from two or more sources, e.g. of liquid and air, of powder and gas
    • B05B7/02Spray pistols; Apparatus for discharge
    • B05B7/10Spray pistols; Apparatus for discharge producing a swirling discharge

Definitions

  • the invention refers to an externally mixing multi-component nozzle for spraying fluids with the aid of an atomizing gas, especially steam or hot gas, which is hot in relation to the fluids which are to be sprayed.
  • a primary fluid especially flue gas
  • the aim is to mix a secondary fluid, especially water, as homogeneously as possible into the primary fluid and frequently also to evaporate it over the shortest distance.
  • a secondary fluid especially water
  • two-component nozzles are frequently used.
  • the fluid is atomized by means of a gaseous or vaporous auxiliary medium.
  • These two-component nozzles are distinguished by a particularly fine droplet spectrum and also by a very good partial load behavior.
  • steam is made available. It can then be sensible, for cost reasons, to use the steam as auxiliary atomizing medium because the provision of a corresponding amount of compressed air would be associated with high investment- and operating costs.
  • nozzles For atomizing with two-component nozzles, two basic types of nozzle are available, specifically internally mixing nozzles on the one hand and, on the other hand, externally mixing nozzles. Examples of internally mixing and externally mixing nozzles are described in Nasr, Jule and Bendig, Industrial Sprays and Atomization, Springer Publishing House, 2002, on page 24, for example.
  • a spray drying nozzle in which an atomizing gas is distributed to two concentric annular slots, is known from U.S. printed Pat. No. 3,770,207.
  • An annular slot for the solution to be dried is arranged between the two annular slots for the atomizing gas.
  • the innermost annular slot for the atomizing gas is formed by inserting a conical piece into the central discharge opening.
  • German unexamined specification DE 195 26 404 A1 is a two-component nozzle for atomizing paste-like fluids, or fluids containing solids, for example slurry, in which the fluid to be atomized is fed through a central, cylindrical passage and at the end of this passage, by means of individual nozzles arranged in a ring-like manner, the atomizing gas is blown into the fluid to be atomized.
  • German printed patent specification DE 85 79 24 is a drying nozzle in which the fluid to be atomized is atomized between an inner and an outer conical flow consisting of gaseous auxiliary atomizing medium.
  • an externally mixing multi-component nozzle for spraying fluids is to be improved.
  • an externally mixing multi-component nozzle for spraying fluids with the aid of an atomizing gas, especially steam of hot gas, which is hot in comparison to the fluids to be sprayed which nozzle has a housing, wherein the housing has a discharge opening for the atomizing gas, a first annular slot, encompassing the discharge opening, for fluid to be sprayed, and a second annular slot, encompassing the first annular slot, for the atomizing gas, and also a distribution piece, wherein the distribution piece has at least one flow passage for fluid to be sprayed from a connecting line to the first annular passage, and at least one flow passage from an atomizing gas connecting line to the discharge opening for atomizing gas.
  • the provision of such a distribution piece inside the nozzle housing ensures that fluid to be sprayed and atomizing gas are conducted to the first annular slot, or to the discharge opening, and to the second annular slot over a short distance.
  • an only low heat transfer from fluid to be sprayed to the atomizing gas is achieved.
  • the hot atomizing gas being able to already cool down, and possibly even to condense, before leaving the housing can be prevented. Consequently, a much better atomizing effect is achieved.
  • the distribution piece is preferably produced from solid material and the flow passages are provided inside the solid material.
  • the housing has an annular passage for atomizing gas, which at least in sections encompasses the distribution piece.
  • the atomizing gas can be conducted from the annular passage over a short distance into the second annular slot and, since the flow passage of the distribution piece for the atomizing gas advantageously originates from the annular passage, the atomizing gas can also be directed to the discharge opening over a short distance.
  • a new-type of nozzle concept is proposed, in which the atomizing gas, inside a small distributor which is integrated into the nozzle housing, is distributed to a central atomizing gas flow through the discharge opening and also to an outer annular slot flow.
  • the fluid to be atomized is also apportioned to an annular slot which is arranged between the central flow and the outer annular slot flow of the atomizing gas.
  • This distributor or the flow passages in the distributor, are dimensioned so that it is passed both by fluid to be atomized and by the atomizing gas at relatively high velocity so that hardly any time remains for heat transfer.
  • the surfaces which lead to the heat transfer between atomizing gas and fluid are of very small dimensions and the distances between the individual flow passages, which conduct the cold fluid and the hot atomizing gas respectively, are dimensionally as large as possible. Therefore, for construction related reasons the internal heat transfer from the hot atomizing gas, especially steam, to the fluid to be atomized is minimized or limited to an advantageous value.
  • a certain preheating of the fluid can be quite advantageous because with this, in the interests of good atomization, the surface stress and the viscosity of the fluid to be atomized can be reduced.
  • a thermal insulation is provided, at least in sections, between the flow passage for fluid to be atomized in the distribution piece and said distribution piece.
  • the flow passage for fluid to be atomized in the distribution piece is formed, at least in sections, by means of a tube which is inserted into the distribution piece.
  • the connecting line for fluid to be atomized is of double-walled design, at least in the connecting region to the distribution piece.
  • a thermal insulation coating is provided between the first annular slot and the housing and also between the first annular slot and the second annular slot.
  • the discharge opening for the atomizing gas has the form of a third annular slot.
  • the fluid to be atomized is consequently received between two annular slot flows of the hot atomizing gas so that a very good atomizing effect is achieved.
  • the third annular slot can be formed, for example, by the insertion of a conical piece into the discharge opening.
  • the boundary of the first annular slot is arranged in front of an outer boundary of the second annular slot.
  • the fluid to be atomized discharges from the first annular slot and comes into contact with the atomizing gas from the second annular slot just before the atomizing gas has left the nozzle mouth at the end of the second annular slot.
  • the atomizing gas from the second annular slot cannot consequently deviate to the side so that an acceleration of the fluid, which is to be atomized, by means of the flanking gas flows is carried out just before leaving the nozzle mouth. In this way, a finer atomization of the fluid to be sprayed can be achieved.
  • the boundary of the first annular slot is arranged by one to ten times the width of the first annular slot in front of the outer boundary of the second annular slot, as seen in the flow direction.
  • At least one distribution piece is formed from a material, especially high-alloy high-grade steel, with a coefficient of thermal conductivity which is significantly reduced, especially by the factor of 8 , compared with brass.
  • the provision of a material with low thermal conductivity for the distribution piece can already significantly reduce a heat transfer between the fluid to be sprayed and the hot atomizing gas.
  • a section—lying directly upstream of the discharge opening—of the flow passage for the hot atomizing gas is formed in the housing so that it first of all tapers and after passing a constriction widens again up to the discharge opening, as seen in the flow direction.
  • a discharge nozzle for the atomizing gas can be of convergent/divergent design.
  • this discharge nozzle can be designed as a Laval nozzle so that the hot atomizing gas then discharges from the discharge opening at supersonic velocity.
  • FIG. 1 shows an externally mixing multi-component nozzle according to the invention in a sectional view according to a first preferred embodiment
  • FIG. 2 shows an enlarged detail of the multi-component nozzle of FIG. 1 ,
  • FIG. 3 shows a multi-component nozzle according to the invention according to a second preferred embodiment
  • FIG. 4 shows a detail of a multi-component nozzle according to the invention according to a third embodiment.
  • FIG. 1 shows a multi-component nozzle 1 according to the invention.
  • the object of largely overcoming premature enthalpy losses of the atomizing gas as a result of heat transfer to the fluid to be atomized and of preventing deposits forming in the nozzle as a result of temperature-dependent depositing of components of the fluids which are dissolved at low temperature is achieved in the following way.
  • the steam flow 10 which is fed via the steam feed line to the multi-component nozzle 1 is split into two partial flows in a new-type distribution piece 18 of small dimensions which can therefore be integrated into the nozzle 1 .
  • An outer partial flow 30 and a central partial flow 28 of steam or hot atomizing gas are produced.
  • the outer partial flow 30 is blown out via an outer annular slot 29
  • the central partial flow 28 is blown out via a central nozzle 62 which ends at a discharge opening 60
  • An annular slot nozzle 20 for discharging the fluid to be sprayed, especially water which is to be atomized, is arranged between the central nozzle 62 having the discharge opening 60 and an outer annular slot nozzle 31 .
  • the approach of atomization of the fluid via a central flow and an outer annular slot flow of the auxiliary atomizing medium make the atomization easier.
  • Essential for the invention is the design of the distribution piece 18 for distributing fluid to be sprayed and hot atomizing gas to the individual discharge openings of the nozzle 1 .
  • a characteristic feature of the nozzle 1 is that the fluid to be atomized is not discharged via a central nozzle but via an annular slot.
  • This annular slot can be of relatively large dimensions because in this case a high discharge velocity of the fluid is not necessary.
  • the atomization is carried out according to the invention by the fluid film being introduced between two high-velocity atomizing gas flows. As a result of the shear stress effect of these high-velocity flows, the fluid film is extracted from the annular slot to form a thin fluid lamella which disintegrates into small droplets.
  • the central nozzle 62 for hot atomizing gas having the discharge opening 60 is designed according to FIG. 1 as a convergent/divergent nozzle in the flow direction. If, for example, steam is delivered with a supercritical pressure ratio, this configuration operates as a Laval nozzle and the steam then discharges at supersonic velocity from the central nozzle 62 at the discharge opening 60 . It is also important, however, that the nozzle 1 does not have an end face which is washed by industrial water. This is achieved by the very narrowly formed boundaries of the annular slot 21 . Therefore, the problem of stalactite-like deposits, as is to be monitored in end faces of nozzles according to the prior art, does not occur either in this case.
  • Essential features of the nozzle 1 according to the invention concern the thermal decoupling of the hot atomizing gas, especially steam, from the cold water at the nozzle connection and inside the nozzle.
  • the feed line 4 for the water 5 is of double-walled design.
  • through-holes via which the water 5 is fed to the annular slot 21 and the steam is fed to the central nozzle 62 having the discharge opening 60 or to the outer annular slot 29 , are arranged in the distribution piece 18 with the greatest possible distance apart.
  • inner tubes 38 Inserted into the holes 19 for the feed of the water to the outer part of the nozzle 1 are inner tubes 38 which on the outer side, that is to say at their start and end, are relieved so that a wall contact, which centers the inner tubes 38 in the hole in the distribution piece 18 , exists only in the narrow sections.
  • an air-filled cavity which serves as a thermal insulation, is created between the water-conducting inner tube 38 and the distribution piece 18 .
  • the outer surface of the central nozzle 62 having the discharge opening 60 and the inner surface of the annular slot nozzle 20 having the annular slot 21 are also lined with a thermally insulating layer 35 , 36 so that the fluid to be atomized, practically over its entire passage through the nozzle 1 to the direct proximity of the nozzle mouth, is equipped with a thermal insulation against the nozzle housing and especially against the distribution piece 18 , and therefore also against the flow of the hot atomizing gas.
  • the effect achieved in this way is that the fluid is only slightly heated, or that the hot atomizing gas, especially the hot steam, suffers only small enthalpy losses as a result of cooling.
  • a further interesting possibility is to use a material with low thermal conductivity, at least for the distribution piece 18 , which material, on the other hand, is suitable for the predetermined operating temperature of 300° C., for example.
  • FIG. 1 , and FIG. 2 as a detail enlargement of FIG. 1 show the nozzle 1 in a sectional view.
  • the nozzle 1 is intended for being arranged inside a duct 3 which conducts a primary fluid, for example flue gas, into which a fluid to be atomized is to be injected.
  • the duct 3 is only schematically represented by one of its boundaries. The nozzle 1 is therefore located inside the flow of the primary fluid in the duct 3 .
  • the fluid 5 to be atomized is fed via a connecting line 4 , via a central connection 17 of the nozzle housing 2 , to the distribution piece 18 of the nozzle 1 .
  • the fluid 5 finds its way into an annular chamber of the annular slot nozzles 20 which inwardly is delimited by a central nozzle piece 27 and outwardly by an intermediate cap 34 . From this annulus, the fluid finds its way over the shortest distance to the fluid outlet at the annular slot 21 .
  • the atomizing gas e.g. hot steam 10
  • the atomizing gas is first of all fed to an annulus 23 in the nozzle housing 2 via a pipe 11 which, like the connecting line 4 , leads out of the duct 3 .
  • the atomizing gas finds its way into a central chamber 26 in the distribution piece 18 via at least one milled out portion 24 and via at least one hole 25 in the distribution piece 18 .
  • the hole 25 is of such dimensions that a defined apportioning of the hot steam 10 to two partial flows is carried out, specifically once via the hole 25 to the discharge opening 60 of the central nozzle 62 and once via the annulus of the annular slot nozzle 31 to the annular slot 29 at the nozzle mouth.
  • the central nozzle piece 27 is screwed into the distribution piece 18 and forms the central nozzle 62 for the central steam jet 28 .
  • a flow path of the central nozzle 62 then extends to the central chamber in the distribution piece 18 first of all convergently in a first conically tapering section.
  • a cylindrical section adjoins this first conically tapering section, forming a constriction. Adjoining this, a conically widening section to the discharge opening 60 follows.
  • the central nozzle 62 therefore extends first of all convergently and then divergently, and the cross-sectional dimensions of the central nozzle 62 are also responsible for the distribution of the steam flow 10 to the central nozzle 62 and to the outer annular gap nozzle 31 .
  • the outer steam flow also referred to as annular slot steam flow 30 , is fed via the milled out portion 24 first of all to the annulus of the annular slot nozzle 31 and from here finds its way into the outer annular slot 29 .
  • the steam therefore discharges both as a central steam jet 28 from the central nozzle 62 and from the outer annular slot 29 .
  • the outer annular slot 29 is formed between an outer cap 49 and the intermediate cap 34 .
  • the steam at high velocity right up to high supersonic velocities, discharges from the outer annular slot 29 and from the discharge opening 60 , as is illustrated by arrows 32 , 33 in FIG. 2 .
  • a droplet spray jet with the boundary 22 is created, as is shown by the dashed lines in FIG. 1 .
  • the connecting line 4 for the fluid 5 is of double-walled design in which provision is made for an inner tube 37 up to the connection to the distribution piece 18 .
  • the connecting line 4 is therefore of double-walled design and provided with a thermally insulating air gap 44 .
  • the connecting line can also be constructed with a graphite sleeve in order to achieve a thermal insulation.
  • the flow passage in the at least one hole 19 in the distribution piece 18 for the feed of water to the annulus of the annular slot nozzle 20 is also of double-walled design with the inner tube 38 , wherein, as was explained, an air gap lies between the inner tube 38 and the hole 19 in the distribution piece 18 .
  • the water-conducting annulus of the annular slot nozzle 20 is thermally insulated by layers 35 , 36 of suitable material towards the central nozzle piece 27 as well as towards the intermediate cap 34 .
  • These insulating layers 35 , 36 for example can consist of metal with poor thermal conductivity or from a ceramic material.
  • a disk 40 produced from a thermally insulating material is provided on a bottom face 39 of the distribution piece 18 to which the connecting line 4 for fluid 5 is attached.
  • the disk 40 is provided with through-holes in order to direct fluid 5 into the at least one hole 19 or into the inner tube 38 in the distribution piece 18 .
  • the nozzle housing 2 is of multi-piece design and has a first, approximately cup-shaped component 64 having the connecting line 11 for hot steam and having the connection 17 for the connecting line 4 for fluid 5 .
  • the distribution piece 18 is inserted into the cup-shaped component 64 and is screwed onto the connecting line 4 , which is also inserted into the component 64 , and is supported in the radial direction on the inner wall of the cup-shaped component 64 via ribs 66 . Provision is made between the ribs 66 for the milled-out portions 24 via which hot steam 10 finds its way into the flow passage, formed by the hole 25 , in the distribution piece 18 and to the outer annular slot 31 .
  • the outer cap 49 is screwed onto the cup-shaped component 64 .
  • the intermediate cap 34 which is screwed onto the distribution piece 18 .
  • the outer annular slot nozzle 31 for hot atomizing gas is therefore formed between the outer cap 49 and the intermediate cap 34 and ends at the nozzle mouth on the outer annular slot 29 .
  • the central nozzle piece 27 is screwed into the distribution piece 18 .
  • the annular slot nozzle 20 for fluid to be atomized is formed between the central nozzle piece 27 and the intermediate cap 34 and ends at the nozzle mouth on the annular slot 21 .
  • an outer side of the central nozzle piece 27 which delimits the annular slot nozzle 20 on one side, is lined, at least in sections, with an insulating layer 35 . Only directly upstream of the annular slot 21 is there no longer provision for an insulating layer 35 in order to be able to design the annular slot 21 narrow.
  • An inner side of the intermediate cap 34 which outwardly delimits the annular slot nozzle 20 , is also lined in sections with an insulating layer 36 . Only directly upstream of the annular slot 21 is there no longer provision for an insulating layer 36 .
  • the nozzle 1 according to the invention is obviously of a very compact construction and particularly effects a distribution of the hot steam 10 to the central nozzle 62 and to the outer annular slot nozzle 31 inside the housing 2 of the nozzle 1 over a short distance.
  • the flow passage for hot steam in the distribution piece 18 formed by the hole 25 , via which hot steam finds its way to the central nozzle 62 , is arranged at an angle to the flow passage for fluid 5 to be atomized—also provided in the distribution piece 18 —which is formed by the hole 19 and the inner tube 38 .
  • the flow passage for hot steam and the flow passage for fluid are therefore arranged inside the distribution piece 18 in a crosswise manner. In the depicted embodiment, an angle of about 45° lies between the center longitudinal axes of the flow passage for hot steam and of the flow passage for fluid.
  • the distribution piece 18 is produced from high-alloy high-grade steel which has low thermal conductivity. Compared with conventional brass nozzles, a heat transfer from the hot steam 10 to the cold fluid 5 , which is reduced by a factor of about 8, is already achieved as a result.
  • the inner tube 38 which is inserted into the hole 19 of the distribution piece 18 , forms a flow passage for the fluid 5 through the distribution piece 18 .
  • the inner tube 38 is constructed as a turned part and bears against the inner wall of the hole 19 only in the regions 68 , 70 . Outside the regions 68 , 70 , which are shown in black in FIG. 1 , an insulating air gap 72 lies between the inner tube 38 and the distribution piece 18 .
  • FIG. 2 shows the nozzle mouth having the discharge opening 60 of the nozzle 1 in an enlarged view. It is to be seen that the discharge opening 60 of the central nozzle 62 , the end of the annular slot 21 of the annular slot nozzle 20 , and the annular slot 29 which defines the outlet of the annular slot nozzle 31 , are located exactly at the same height, as seen transversely to the flow direction. Consequently, mixing of the hot steam jets from the annular slot nozzle 31 and from the central nozzle 62 with the annular slot flow of fluid to be atomized from the annular slot nozzle 20 is carried out just outside the nozzle 1 .
  • FIG. 3 shows a further multi-component nozzle 80 according to the invention according to a second preferred embodiment.
  • the multi-component nozzle 80 is to a great extent constructed identically to the multi-component nozzle 1 in FIG. 1 so that only the features which differ from the nozzle 1 in FIG. 1 are explained.
  • a central body 41 which extends through a central nozzle 82 for hot steam, is screwed into the distribution piece 18 .
  • the central body 41 is therefore completely exposed to circumflow by hot steam from the central chamber 26 in the distribution piece 18 .
  • the central body is designed in the form of a widening cone 42 so that the discharge opening 60 is of ring-like design and an inner annular slot 43 is formed for the discharge of the proportion of hot steam 10 which is fed via the hole 25 .
  • the ring-like flow of fluid 5 to be atomized is therefore enclosed between two also ring-like hot steam flows.
  • the central steam also discharges via the annular slot 43 .
  • the central cone 42 in this case, however, is only exposed to circumflow by hot steam which is free of solids as far as possible so that no relevant risk of deposits forming on the cone 42 exists.
  • the steam consumption of the nozzle 80 can be reduced a little more compared with the nozzle 1 without this having a negative effect upon the atomization quality.
  • the central nozzle 82 can be constructed as a Laval nozzle. This, however, is not the case in the view of FIG. 3 .
  • the flow cross section of the annular slot between the central body 41 and the discharge section of the central nozzle 82 must have a divergent progression towards the nozzle mouth.
  • FIG. 4 shows section-wise a multi-component nozzle 90 according to the invention according to a third preferred embodiment.
  • the nozzle is formed to a great extent identically to the nozzle 1 in FIG. 1 so that only the features which differ from the nozzle 1 are described.
  • the nozzle 90 has an outer cap 92 which is extended compared with the outer cap 49 of the nozzle 1 .
  • the discharge opening 60 of the central nozzle 62 and the annular slot 21 of the annular slot nozzle 20 for fluid to be atomized are set back in relation to the nozzle mouth.
  • the nozzle mouth is formed in this case by the downstream-disposed end of the outer cap 92 .
  • contact consequently already occurs inside the nozzle housing between the ring-like fluid flow from the annular slot 21 and the hot gas flows from the discharge opening 60 and from the annular slot 29 .
  • the setting back of the outlet of the fluid nozzle in relation to the position of the nozzle mouth is advantageously one to ten times the width of the annular slot 21 of the annular slot nozzle 20 for the fluid at the nozzle mouth.
  • the width of the annular slot 21 for the fluid is about 1 mm and this annular slot is set back in relation to the nozzle mouth by about 5 mm, that is to say five times the width of the annular slot 21 .
  • an externally mixing multi-component nozzle in which a minimum internal heat transfer between the fluid to be sprayed and the atomizing gas is realized.
  • the distribution of the fluid to be atomized and of the atomizing gas is undertaken in a distributor which is integrated into the nozzle body or the nozzle housing.
  • the effect achieved as a result of this design according to the invention is that the heat transfer from the hot atomizing gas to the fluid to be atomized inside the nozzle, especially inside the nozzle housing, is minimized or limited to an advantageous value.
  • the externally mixing multi-component nozzles according to the invention are used in flue gas ducts or in flue gas scrubbing plants in power plants or in the cement industry.

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US13/641,280 2010-04-16 2011-04-15 Externally mixing multi-component nozzle Abandoned US20130037628A1 (en)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
DE102010015497.0 2010-04-16
DE102010015497A DE102010015497A1 (de) 2010-04-16 2010-04-16 Außen mischende Mehrstoffdüse für minimalen inneren Wärmeübergang
PCT/EP2011/055995 WO2011128433A1 (de) 2010-04-16 2011-04-15 Aussen mischende mehrstoffdüse

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US (1) US20130037628A1 (de)
EP (1) EP2558217B1 (de)
CN (1) CN102858466A (de)
DE (1) DE102010015497A1 (de)
ES (1) ES2637981T3 (de)
HU (1) HUE035691T2 (de)
PL (1) PL2558217T3 (de)
WO (1) WO2011128433A1 (de)

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US10215769B1 (en) * 2016-09-20 2019-02-26 The Florida State University Research Foundation, Inc. Multi-fluid jet nozzle for sensor calibration
CN109773200A (zh) * 2019-03-22 2019-05-21 浙江亚通焊材有限公司 一种用于制备活性金属粉末的气雾化喷嘴
US10399247B1 (en) * 2018-12-27 2019-09-03 Qatar University Compound nozzle for cement 3D printer to produce thermally insulated composite cement
CN113399135A (zh) * 2021-06-22 2021-09-17 中国科学院过程工程研究所 一种用于合成橡胶凝聚脱挥的薄片式喷嘴及使用方法

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WO2013077849A1 (en) * 2011-11-21 2013-05-30 King Saud University Nozzle apparatus and method
US9579669B2 (en) 2011-11-21 2017-02-28 King Saud University Nozzle apparatus and method
CN102560326B (zh) * 2012-02-24 2014-05-21 中国科学院金属研究所 一种制备准晶涂层的温喷涂方法
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CN106345297B (zh) * 2016-09-30 2022-11-18 上海守望者喷雾智能***有限公司 新型脱硝喷嘴底座、多喷嘴脱硝喷枪枪杆及脱硝喷枪
CN106694261B (zh) * 2016-11-25 2018-11-13 东北农业大学 一种基于异形孔气流助力拢形的外混式雾化喷雾器
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HUE035691T2 (en) 2018-05-28
EP2558217A1 (de) 2013-02-20
ES2637981T3 (es) 2017-10-18
WO2011128433A1 (de) 2011-10-20
CN102858466A (zh) 2013-01-02

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