Claims
- 1. In a chilled water system having a primary circuit which includes at least one chiller, primary pump, supply line and return line, a secondary circuit which includes at least one secondary pump, system load, supply line and return line, and a bypass circuit which includes a manifold that connects to the primary supply line, the secondary return line, and lines feeding the primary and secondary pumps, a primary-secondary circuit hydraulic interface, comprising:
- (a) means for receiving supply primary chilled water into said primary-secondary circuit hydraulic interface without incurring a significant pressure loss;
- (b) means for receiving return secondary chilled water into said primary-secondary circuit hydraulic interface without incurring a significant pressure loss;
- (c) means for blending said supply primary chilled water and return secondary chilled water without the use of moving parts,
- (d) means for discharging from said primary-secondary circuit hydraulic interface said primary chilled water and return secondary chilled water after they have been substantially blended said means for blending being further configured so as to create a uniform temperature profile along the cross-section of the manifold downstream of said means for discharging.
- 2. A chilled water system as recited in claim 1, wherein said means for receiving supply primary chilled water into said primary-secondary circuit hydraulic interface comprises a large opening in the primary-secondary circuit hydraulic interface.
- 3. A chilled water system as recited in claim 1, wherein said means for receiving return secondary chilled water into said primary-secondary circuit hydraulic interface comprises a large opening in the primary-secondary circuit hydraulic interface.
- 4. A chilled water system as recited in claim 1, wherein said means for blending said supply primary chilled water and return secondary chilled water includes the use of turbulent flow mixing created by sudden collision of the supply primary chilled water and return secondary chilled water within said primary-secondary circuit hydraulic interface, in which said means for blending is further enhanced by the use of large inlet openings that direct the supply primary chilled water and return secondary chilled water into one another, and by the use of small outlet openings which tend to contain said supply primary chilled water and return secondary chilled water within said primary-secondary circuit hydraulic interface until substantial blending occurs.
- 5. A chilled water system as recited in claim 1, wherein said means for discharging from said primary-secondary circuit hydraulic interface said substantially blended primary chilled water and return secondary chilled water comprises a plurality of small openings within said primary-secondary circuit hydraulic interface.
- 6. In a hot water system having a primary circuit which includes at least one boiler, primary pump, supply line and return line, a secondary circuit which includes at least one secondary pump, system load, supply line and return line, and a bypass circuit which includes a manifold that connects to the primary supply line, the secondary return line, and lines feeding the primary and secondary pumps, a primary-secondary circuit hydraulic interface, comprising:
- (a) means for receiving supply primary hot water into said primary-secondary circuit hydraulic interface without incurring a significant pressure loss;
- (b) means for receiving return secondary hot water into said primary-secondary circuit hydraulic interface without incurring a significant pressure loss;
- (c) means for blending said supply primary hot water and return secondary hot water without the use of moving parts,
- (d) means for discharging from said primary-secondary circuit hydraulic interface said primary hot water and return secondary hot water after they have been substantially blended said means for blending being further configured so as to create a uniform temperature profile along the cross-section of the manifold downstream of said means for discharging.
- 7. A hot water system as recited in claim 6, wherein said means for receiving supply primary hot water into said primary-secondary circuit hydraulic interface comprises a large opening in the primary-secondary circuit hydraulic interface.
- 8. A hot water system as recited in claim 6, wherein said means for receiving return secondary hot water into said primary-secondary circuit hydraulic interface comprises a large opening in the primary-secondary circuit hydraulic interface.
- 9. A hot water system as recited in claim 6, wherein said means for blending said supply primary hot water and return secondary hot water includes the use of turbulent flow mixing created by sudden collision of the supply primary hot water and return secondary hot water within said primary-secondary circuit hydraulic interface, in which said means for blending is further enhanced by the use of large inlet openings that direct the supply primary hot water and return secondary hot water into one another, and by the use of small outlet openings which tend to contain said supply primary hot water and return secondary hot water within said primary-secondary circuit hydraulic interface until substantial blending occurs.
- 10. A hot water system as recited in claim 6, wherein said means for discharging from said primary-secondary circuit hydraulic interface said substantially blended primary hot water and return secondary hot water comprises a plurality of small openings within said primary-secondary circuit hydraulic interface.
- 11. A method for blending a first fluid with a second fluid by use of a hydraulic interface, said hydraulic interface having means for receiving said first and second fluids, said hydraulic interface additionally having a plurality of small openings for discharging a fluid, the method comprising the steps of:
- (a) receiving the first fluid into said hydraulic interface from a first direction without significant pressure loss;
- (b) receiving the second fluid into said hydraulic interface from a second direction without significant pressure loss;
- (c) thereafter, forcing the first fluid and the second fluid to collide with one another in a manner which creates a turbulent mixing of said first fluid and second fluid, thereby creating a third mixed fluid; and
- (d) thereafter, forcing the third mixed fluid to exit said hydraulic interface through a plurality of small openings in the hydraulic interface, thereby enhancing the turbulent mixing process and creating a fourth substantially blended fluid which has a substantially uniform temperature profile as said fourth fluid passes downstream from the hydraulic interface.
- 12. A method for blending a first fluid with a second fluid by use of a hydraulic interface as recited in claim 11, wherein the first fluid and the second fluid are forced to collide with one another at a substantially right angle.
- 13. A method for blending a first fluid with a second fluid by use of a hydraulic interface as recited in claim 11, wherein said hydraulic interface has no moving parts.
- 14. A method for blending a first fluid with a second fluid by use of a hydraulic interface as recited in claim 11, wherein said first and second fluids are substantially blended together under varying flow, pressure, and temperature conditions, without significant change in performance of said hydraulic interface.
- 15. A method for blending a first fluid with a second fluid by use of a hydraulic interface as recited in claim 11, wherein said hydraulic interface is constructed of schedule 40 black carbon steel, and wherein said hydraulic interface can be used in both chilled water system and hot water system applications.
Parent Case Info
This is a divisional of application Ser. No. 07/976,262 filed Nov. 13, 1992 now U.S. Pat. No. 5,316,384.
US Referenced Citations (5)
Divisions (1)
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Number |
Date |
Country |
Parent |
976262 |
Nov 1992 |
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