Claims
- 1. A desuperheat flow control valve comprising:
- a liquid flow passage for receiving a supply of desuperheat liquid;
- a first flow control means of variable geometry disposed in said passage and selectively operable to vary the flow of liquid permitted through the passage through a first flow range up to a predetermined first maximum flow;
- A second flow control means of fixed geometry disposed in said passage and selectably operable to vary the flow of liquid received by the first flow control means through a second range from said first maximum up to a second maximum flow which exceeds said first maximum;
- spin flow means downstream from the first flow control means so as to receive the liquid flowing through said first and second flow control means;
- a spray nozzle of fixed geometry downstream from the spin flow means and operative to produce a predetermined spray pattern in response to flow rates in the second range, but not in response to flow rates less than the first maximum flow, said spin flow means imparting to said liquid flow a spin motion sufficient to exit the spray nozzle as a hollow cone spray; and wherein
- the variable geometry of said first flow control means is operative to increase the velocity of liquid flowing therethrough in response to operation of the second flow control means to reduce the flow rate below the first maximum flow, so that the liquid flows to said spin flow means at an increased velocity sufficient to provide said spin motion throughout said first range of flows and the spray nozzle can produce the spray pattern in the first range of flows.
- 2. A desuperheat flow control valve comprising:
- spray-nozzle means of fixed geometry receiving a liquid inflow and delivering a certain spray dispersion pattern in response to liquid flowing at a certain flow rate producing at least a minimum back pressure across the spray nozzle means;
- flow control means associated with said spray nozzle means for selectively delivering liquid thereto over a range of flow rates including rates insufficient to maintain said minimum pressure at the spray nozzle means;
- means downstream from the flow control means to receive the liquid flowing past said flow control means and impart a spin movement to the liquid flowing to said spray nozzle means, so that the spray nozzle means disperses a spray pattern in the shape of a hollow cone; and
- said flow control means comprising variable geometry means operative to increase the velocity of liquid flowing therethrough in response to decreasing the flow rate to said insufficient rates, so that the liquid flows through said spin imparting means to reach the spray nozzle means at an increased velocity which provides the desired dispersion pattern notwithstanding the insufficient rate of flow.
- 3. A desuperheat flow control valve as in claim 2, wherein:
- said spin imparting means comprises a hollow cylindrical flow passage axially aligned at a substantial angle to the direction of liquid entering the cylindrical flow passage through said flow control means;
- said liquid flow entering said cylindrical flow passage substantially tangent to the cylindrical passage, thereby imparting spin movement to the liquid flow; and
- said cylindrical flow passage leading to said spray nozzle means.
- 4. A desuperheat flow control valve as in claim 3, wherein said cylindrical flow passage constricts to accelerate the spinning liquid flowing to said spray nozzle means, thereby further increasing the velocity of the liquid for the hollow cone dispersion pattern produced by the spray nozzle means.
- 5. A desuperheat flow control valve as in claim 3, further comprising:
- a conical deflector axially disposed in said cylindrical flow passage to axially deflect the liquid tangentially entering the flow passage.
- 6. A desuperheat flow control valve as in claim 2, wherein:
- said variable geometry means selectively varies the velocity of liquid flow in response to liquid delivery by the flow control means over a lower first range of flows at least up to an intermediate flow sufficient to maintain said minimum back pressure at the spray nozzle means; and wherein
- said flow control means further comprises a fixed geometry means selectively operative when the flow through the variable geometry means reaches said intermediate flow to vary the rate of liquid flow over a second range of flows higher than said first range.
- 7. A desuperheat flow control valve as in claim 6, wherein:
- said variable geometry means and said fixed geometry means comprise separate control surfaces of a control element selectively movable to control liquid flow seriatim through said first and second ranges; and
- the variable geometry means increases the velocity of liquid flow in inverse relation to the volume of liquid flow, in response to movement of the control element to control liquid flow through the first range.
- 8. A desuperheat flow control valve as in claim 2, wherein:
- said variable geometry means comprises an orifice through which passes the liquid flowing to said spray nozzle means;
- a control element selectively movable to vary the effective flow area of said orifice while in said insufficient rates of flow; and
- said orifice and control element providing flow areas which maintain the liquid velocity through the orifice at said increased velocity providing the desired spray dispersion over a range of insufficient rates of liquid flowing through the orifice.
- 9. A desuperheat flow control valve as in claim 8,
- further comprising:
- a flow control valve upstream of the orifice and control element;
- a second control element selectively movable to vary the volume of liquid flowing through said flow control valve; and
- said first and second control elements being operatively interconnected so that the first control element provides the maximum flow area for the first orifice when the second control means provides a flow rate through the flow control valve at least sufficient to maintain said minimum back pressure at the spray nozzle means.
- 10. A desuperheat flow control valve as in claim 3, wherein:
- said variable geometry means comprises an orifice through which passes the liquid tangentially entering said cylindrical flow passage; and further comprising
- a control element selectively movable to vary the effective flow area of said orifice in said insufficient rates of flow; and
- said control element cooperating with the orifice to provide flow areas which maintain the liquid velocity through the orifice at least at said increased velocity, for a range of the insufficient rates of liquid flowing through the orifice.
- 11. A desuperheat flow control valve as in claim 10,
- further comprising: a flow control valve upstream of the orifice;
- a second control element selectively movable to vary the volume of liquid flowing through said flow control valve; and
- said first and second control elements being operatively interdependent so that the first control element provides the maximum flow area for the orifice when the second control means provides flow rates through the flow control valve at least sufficient to maintain said minimum velocity back pressure at the spray nozzle means.
- 12. A desuperheat flow control valve comprising:
- means defining an elongated chamber having an outlet end;
- a water manifold surrounding said elongated chamber;
- a first control element disposed within the elongated chamber for selective movement ranging between first and second positions relative to said outlet end;
- means establishing liquid flow communication from said water manifold to the interior of said elongated chamber at plural inlet locations between said first and second positions;
- said first control element at said first position substantially blocking flow from said inlet locations, and progressively unblocking said flow means and permitting progressively increased liquid flow from the inlet locations into the elongated chamber as the first control element moves progressively from the first position to said second position;
- a variable geometry orifice in liquid flow communication with the outlet end of the elongated chamber and including a second control element operatively associated with said first control element to vary the flow area of said orifice in response to movement of the first control element over a first portion of said movement range;
- said orifice being at maximum flow area as the first control element moves over a second portion of said movement range;
- a cylindrical flow passage downstream from the variable geometry orifice to receive the liquid flow through said orifice in a direction substantially tangent to the cylindrical passage, thereby imparting a spin movement to the liquid flowing through the cylindrical passage; and
- a spray nozzle of fixed geometry downstream from the cylindrical flow passage and receiving the spinning liquid flow so as to produce a certain spray dispersion pattern in response to liquid flowing at a minimum back pressure across the spray nozzle;
- the variable flow controlled by said first control element over said first portion of the movement range being too low to produce said spray dispersion pattern and over the second portion of said movement range being sufficient to produce said spray dispersion pattern at said spray nozzle; and
- said second control element varying the geometry of said orifice to increase the liquid velocity flowing therethrough as the first control element moves over the first portion of the movement range to decrease the liquid flow,
- thereby increasing the velocity of flow at said spray nozzle so as to maintain the spray dispersion pattern.
- 13. A desuperheat flow control valve as in claim 12, further comprising:
- a conical deflector axially disposed in said cylindrical flow passage for deflecting the spinning flow of liquid toward said spray nozzle.
- 14. A desuperheat flow control valve as in claim 13, wherein:
- said cylindrical flow passage constricts leading to said spray nozzle, so as to further increase the velocity of the spinning liquid flow to the nozzle.
- 15. A desuperheat flow control valve comprising:
- a spray nozzle operative to produce a predetermined pattern of liquid spray in response to at least a predetermined minimum liquid flow supplied to the spray nozzle;
- an orifice of predetermined size located upstream in a liquid flow path to the spray nozzle;
- a spin chamber disposed downstream from the orifice and upstream from the spray nozzle and operative to impart an axial spinning movement to the liquid flowing from the orifice toward the spray nozzle;
- a flow control valve located upstream of the orifice and selectively operative to vary the flow of liquid supplied to the orifice over a range of flows including flows less than said predetermined minimum flow required by the spray nozzle;
- an orifice control element operatively associated with the flow control valve to selectively restrict the orifice in response to selected flows less than the predetermined minimum, so that the restriction of the orifice increases the velocity of the lessened flow to the spray nozzle sufficiently to maintain the liquid spray pattern produced by the spray nozzle in response to flow rates less than the predetermined minimum flow; wherein,
- the spray nozzle produces the spray pattern in response to a minimum liquid flow operative to provide at least a minimum pressure drop across the nozzle; and
- the orifice control element is operative to enter the orifice and restrict liquid flow therethrough in response to operation of the flow control valve which reduces the liquid flow below the minimum flow, thereby increasing the velocity of liquid flowing to the spin chamber so as to maintain the spray pattern.
Parent Case Info
This is a continuation of application Ser. No. 088,573, filed Aug. 24, 1987, now abandoned.
US Referenced Citations (6)
Continuations (1)
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Number |
Date |
Country |
Parent |
88573 |
Aug 1987 |
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