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(11) | EP 0 268 432 A2 |
(12) | EUROPEAN PATENT APPLICATION |
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(54) | An atomizing nozzle assembly |
(57) An atomizing nozzle assembly is provided having an outwardly diverging frustrum of
a cone shaped, deflector core (1) of wear resistant ceramic, a nozzle rim (8) of
wear resistant ceramic encircling the core and coextensive with a downstream portion
thereof to form a mixing zone (16) therewith for receiving liquid-to-be-atomized
therein from an unobstructed passage (56) and atomizing fluid directing the liquid-to-be-atomized
away from the core. The mixing zone leads to a nozzle orifice outlet (18). The core
is mounted in a core holder (20) and is adjustable by a screw thread, in close proximity
to the mixing zone, to adjust the width (W) of the mixing zone, and the liquid-to-be-atomized
(e.g. a coal slurry fuel) and the atomizing fluid (e.g. air) are fed along coaxial
tubes (72,68) which are slidably mounted by glands (106) to accommodate differential
expansions. With this combination it is possible to set the width of the gap between
the deflector core and the nozzle rim even before the operating temperature is reached,
because negligible changes in this width will occur due to differential expansions
between the nozzle components. Furthermore, accommodating differential thermal expansions
by the slidable glands avoids any damage occurring to the ceramic parts due to differential
thermal expansion. |
a) a frustum of a cone shaped, deflector core of a wear resistant ceramic material, said deflector having an outwardly diverging surface leading to a chamfered extremity, in a downstream direction for liquid-to-be-atomized, an outer portion of the diverging surface of the deflector core forming an outwardly deflecting surface for, in operation, an atomizing fluid jet to flow in an unobstructed manner along the whole length thereof,
b) a nozzle rim of a wear resistant ceramic material, the rim having a wedge-shaped inward protrusion with a downstream side of the wedge shape protrusion having an outwardly flared, inner surface which is substantially parallel to, and co-extensive with, a downstream portion of the outwardly diverging surface of the deflector core to form therewith a mixing zone leading to an atomizing nozzle orifice outlet so that, in operation, liquid-to-be-atomized will be held against the surfaces bounding the mixing zone, until it is substantially completely mixed, and atomized as it emerges from the orifice outlet,
c) a deflector core holder having a screw threaded upstream end and a flared socket portion at a downstream end, the flared socket portion having an outer, cylindrically shaped extremity, the flared socket having an upstream portion of the deflector core closely fitting and aligned therein, the flared socket portion, in operation, providing a smooth outer surface for guiding atomizing fluid towards and along the outwardly deflecting suface of the outer portion of the deflector core protruding from the flared socket portion,
d) securing means securing the deflector core in the flared socket portion,
e) an inner, cylindrical sleeve having a screw threaded, inner, upstream end portion which is in close proximity to the mixing zone and is in threaded engagement in an adjustable manner, with the screw threaded, upstream end portion of the deflector core holder and having a downstream end portion with an enlarged bore and terminating at a downstream end having inner and outer chamfers, the downstream end portion being around the flared socket portion to form a fluid passage around the cylindrically shaped extremity of the deflector core holder having a substantially constant cross-sectional area for, in operation, passing a substantially constant stream of atomizing fluid therealong to an atomizing fluid orifice formed between the inner chamfer and the outer deflecting surface of the flared socket so that, in operation, a jet of the atomizing fluid will issue from the atomizing fluid orifice and be directed along the outer portion of the outwardly deflecting surface of the deflector core,
f) an upstream collar forming a mounting means on the front end of the inner cylindrical sleeve,
g) an outer, cylindrical sleeve sealed and secured against relative movement by the upstream collar on the front end of the inner sleeve and having a stepped, annular recessed portion at the downstream end with the nozzle rim mounted therein and protruding radially inwardly therefrom, a portion of the outer sleeve having a relatively larger bore diameter than the outside diameter of the inner sleeve and forming therearound an unobstructed, liquid passage having a cross-sectional area for, in operation, conveying liquid-to-be-atomized at a predetermined mass flow rate towards the upstream side of, and inwardly around, the wedge-shaped protrusion of the nozzle rim,
h) means securing the nozzle rim in the stepped, annular recessed portion,
i) an adjustment means connected to the deflector core holder for adjusting the screw threaded engagement between the deflector core holder and the inner cylindrical sleeve to thereby adjust the width (W) of the mixing zone,
j) means for delivering atomizing fluid to the fluid passage,
k) means for delivering liquid-to-be-atomized to the liquid-to-be-atomized passage, and
l) a differential thermal expansion accommodating gland slidably mounting an intermediate portion of the inner, cylindrical sleeve in a rear end portion of the outer, cylindrical sleeve.
Figure 1 is a sectional side view of an atomizing nozzle, and
Figure 2 is an enlarged sectional side view of the nozzle components of the nozzle assembly shown in Figure 1.
a) a frustum of a cone shaped, deflector core 1 of a wear resistant ceramic material, said deflector having an outwardly diverging surface 2 leading to a chamfered extremity 4, in a downstream direction for liquid-to-be-atomized, an outer portion 5 of the diverging surface of the deflector core forming an outwardly deflecting surface 6 for, in operation, an atomizing fluid jet to flow in an unobstructed manner along the whole length thereof.
b) a nozzle rim 8 of a wear resistant ceramic material, the rim having a wedge-shaped inward protrusion 10 with a downstream side 12 of the wedge-shaped protrusion 10 having an outwardly flared, inner surface 14 which is substantially parallel to, and co-extensive with, a downstream portion of the outwardly diverging surface 2 of the deflector core 1 to form therewith a mixing zone 16 leading to an atomizing nozzle orifice outlet 18 so that, in operation, liquid-to-be-atomized will be held against the surfaces 2 and 14 bounding the mixing zone 16, until it is substantially completely mixed, and then atomized as it emerges from the orifice outlet 18,
c) a deflector core holder 20 having a screw threaded upstream end portion 22 and a flared socket portion 24 at a downstream end, the flared socket portion 24 having an outer, cylindrically shaped extremity 26, the flared socket portion 24 having an upstream portion 28 of the deflector core 1 closely fitting and aligned therein, the flared socket portion 24, in operation, providing a smooth outer surface 24 for guiding atomizing fluid towards and along the outwardly deflecting surface 6 of the outer portion 5 of the deflector core 1 protruding from the flared socket portion 24,
d) securing means in the form of a cap 32 and bolt 34 securing the deflector core 1 in the flared socket portion 24,
e) an inner, cylindrical sleeve 36 having a screw threaded, inner, upstream end portion 38 in threaded engagement in an adjustable manner, with the screw threaded, upstream end portion 22 of the deflector core holder 20 and having a downstream end portion 40 with an enlarged bore and terminating at a downstream end having inner and outer chamfers 42 and 44 respectively, the downstream end portion 46 being around the flared socket portion 24 to form a fluid passage 46 around the cylindrically shaped extremity 26 of the deflector core holder 20 for, in operation, passing a substantially constant stream of atomizing air therealong to an atomizing fluid orifice formed between the inner chamfer 42 and the outer deflecting surface 6 of the flared socket so that, in operation, a jet of the atomizing fluid will issue from the atomizing fluid orifice and be directed along the outer portion 5 of the outwardly deflecting surface of the deflector core 1,
f) an upstream collar 50 forming a mounting means on the front end of the inner, cylindrical sleeve 36,
g) an outer, cylindrical sleeve 48 sealed on, and secured against relative movement by the upstream collar 50 on the front end of the inner sleeve 36 and having a stepped, annular recessed portion 52 at the downstream end with the nozzle rim 8 mounted therein and protruding radially inwardly therefrom, a portion 54 of the outer sleeve 48 having a relatively larger bore diameter than the outside diameter of the inner sleeve 36 and forming therearound an unobstructed, liquid passage 56 for, in operation, conveying liquid-to-be-atomized towards the upstream side of, and inwardly around, the wedge-shaped protrusion 10 of the nozzle rim 8,
h) means, in the form of a threaded collar 58, securing the nozzle rim 8 in the stepped, annular recessed portion 52,
i) an adjustment means, in the form of shaft 64 and barrel 66 (Figure 1), connected to the deflector core holder 20 for adjusting the screw threaded engagement between the deflector core holder 20 and the inner cylindrical sleeve 36 to thereby adjust the width (W) of the mixing zone,
j) means, in the form of a tube 68, forming in this embodiment an intermediate portion of the cylindrical sleeve 36, and ports such as port 70, for delivering atomizing fluid to the fluid passage 46,
k) means, in the form of tube 72, forming in this embodiment a rear end portion of the outer, cylindrical sleeve 49, and ports such as port 74 in the collar 50, for delivering liquid-to-be-atomized to the liquid-to-be-atomized passage, and
l) a differential thermal expansion accommodating gland 106 slidably mounting the intermediate portion 68 of the inner, cylindrical sleeve 36 in the rear end portion 72 of the outer, cylindrical sleeve 48.
i) an inner, cylindrical sleeve having a screw threaded, inner upstream end portion, which is in close proximity to the mixing zone and is in threaded engagement in an adjustable manner with the screw threaded, upstream end of the deflector core holder;
ii) an upstream collar forming a mounting means on the front end of the inner, cylindrical sleeve for the outer cylindrical sleeve; and
iii) a differential thermal expansion accommodating gland slidably mounting an intermediate portion of the inner, cylindrical sleeve in a rear end portion of the outer, cylindrical sleeve;
it is possible to set the width W of the mixing zone to the desired gap, even before the operating temperature of the nozzle components is reached, because negligible change will occur to the width W due to differential thermal expansion occurring to the nozzle components. Furthermore, the features ii) and iii), by causing a substantial amount of the differential thermal expansion to be accommodated by the differential thermal expansion accommodating gland, avoid any damage by differential thermal expansion occurring to the ceramic, cone shaped, deflector core and the ceramic nozzle rim.a) a frustum of a cone shaped, deflector core of a wear resistant ceramic material, said deflector having an outwardly diverging surface leading to a chamfered extremity, in a downstream direction for liquid-to-be-atomized, an outer portion of the diverging surface of the deflector core forming an outwardly deflecting surface for, in operation, an atomizing fluid jet to flow in an unobstructed manner along the whole length thereof,
b) a nozzle rim of a wear resistant ceramic material, the rim having a wedge-shaped inward protrusion with a downstream side of the wedge-shaped protrusion having an outwardly flared, inner surface which is substantially parallel to, and co-extensive with, a downstream portion of the outwardly diverging surface of the deflector core to form therewith a mixing zone leading to an atomizing nozzle orifice outlet so that, in operation, liquid-to-be-atomized will be held against the surfaces bounding the mixing zone, until it is substantially completely mixed, and atomized as it emerges from the orifice outlet,
c) a deflector core holder having a screw threaded upstream end and a flared socket portion at a downstream end, the flared socket portion having an outer, cylindrically shaped extremity, the flared socket having an upstream portion of the deflector core closely fitting and aligned therein, the flared socket portion, in operation, providing a smooth outer surface for guiding atomizing fluid towards and along the outwardly deflecting surface of the outer portion of the deflector core protruding from the flared socket portion,
d) securing means securing the deflector core in the flared socket portion,
e) an inner, cylindrical sleeve having a screw threaded, inner, upstream end portion, which is in close proximity to the mixing zone and is in threaded engagement in an adjustable manner with the screw threaded, upstream end portion of the deflector core holder, the inner cylindrical sleeve having a downstream end portion with an enlarged bore and terminating at a downstream end having inner and outer chamfers, the downstream end portion being around the flared socket portion to form a fluid passage around the cylindrically shaped extremity of the deflector core holder for, in operation, passing a substantially constant stream of atomizing fluid therealong to an atomizing fluid orifice formed between the inner chamfer and the outer deflecting surface of the flared socket so that, in operation, a jet of the atomizing fluid will issue from the atomizing fluid orifice and be directed along the outer portion of the outwardly deflecting surface of the deflector core,
f) an upstream collar forming a mounting means on the front end of the inner, cylindrical sleeve,
g) an outer, cylindrical sleeve sealed on, and secured against relative movement by the upstream collar on the front end of the inner sleeve and having a stepped, annular recessed portion at the downstream end with the nozzle rim mounted therein and protruding radially inwardly therefrom, a portion of the outer sleeve having a relatively larger bore diameter than the outside diameter of the inner sleeve and forming therearound an unobstructed, liquid passage for, in operation, conveying liquid-to-be-atomized towards the upstream side of, and inwardly around, the wedge-shaped protrusion of the nozzle rim,
h) means securing the nozzle rim in the stepped, annular recessed portion,
i) an adjustment means connected to the deflector core holder for adjusting the screw threaded engagement between the deflector core holder and the inner cylindrical sleeve to thereby adjust the width (W) of the mixing zone,
j) means for delivering atomizing fluid to the fluid passage,
k) means for delivering liquid-to-be-atomized to the liquid-to-be-atomized passage, and
l) a differential thermal expansion accommodating gland slidably mounting an intermediate portion of the inner, cylindrical sleeve in a rear end portion of the outer cylindrical sleeve.