Claims
- 1. An open recirculating evaporative cooling system comprising:
- a cooling tower having a heated water inlet and a water collection basin;
- a heat exchanger coupled to said cooling tower basin for receiving water therefrom, for removing waste heat from heat producing equipment, and for supplying the heated water to said cooling tower heated water inlet;
- sources of water treatment coupled to said cooling tower for supplying anti-fouling and biologically controlling additives thereto;
- a blowdown mechanism coupled between said basin and a drain for draining water from said cooling tower basin during a blowdown process to remove accumulated mineral build up following a number of cycles of concentration;
- a water supply for supplying a volume of water to said cooling tower to make up for water drained and evaporated therefrom;
- a water supply measuring device coupled between said cooling tower and said water supply, for measuring the volume of the make-up water supplied to said cooling tower from said water supply and for providing pulse information corresponding to the volume of water supplied; and
- a microprocessor controller connected to said water supply measuring device, said blowdown mechanism and said water treatment sources for receiving the pulse information from said water measuring device in terms of volume per pulse, and for coordinated control of both said water treatment sources for the supply of the anti-fouling and biologically controlling additives to said cooling tower and said blowdown mechanism, said microprocessor being programmed to automatically calculate the times and duration for opening said blowdown mechanism and, in coordination with the draining of water, for the supply of the anti-fouling and biologically controlling additives.
- 2. An open recirculating evaporative cooling system comprising:
- a cooling tower having a heated water inlet and a water collection basin;
- a heat exchanger coupled to said cooling tower basin for receiving water therefrom, for removing waste heat from heat producing equipment, and for supplying the heated water to said cooling tower heated water inlet;
- sources of water treatment coupled to said cooling tower for supplying anti-fouling and biologically controlling additives thereto;
- a blowdown mechanism coupled between said basin and a drain for draining water from said cooling tower basin during a blowdown process to remove accumulated mineral build up following a number of cycles of concentration;
- a water supply for supplying a volume of water to said cooling tower to make up for water drained and evaporated therefrom;
- a water supply measuring device coupled between said cooling tower and said water supply, for measuring the volume of the make-up water supplied to said cooling tower from said water supply and for providing pulse information corresponding to the volume of water supplied; and
- a microprocessor controller connected to said water supply measuring device, said blowdown mechanism and said water treatment sources for receiving the pulse information from said water measuring device in terms of volume per pulse, and for coordinated control of both said water treatment sources for the supply of the anti-fouling and biologically controlling additives to said cooling tower and said blowdown mechanism, said microprocessor controller being programmed to operate according to the following relationship ##EQU7## where BDT=time of blowdown, MU=make-up (volume per pulse), BDR=blowdown rate (volume per minute), and CC=cycles of concentration.
- 3. An open recirculating evaporative cooling system comprising:
- a cooling tower having a heated water inlet and a water collection basin;
- a heat exchanger coupled to said cooling tower basin for receiving water therefrom, for removing waste heat from heat producing equipment, and for supplying the heated water to said cooling tower heated water inlet;
- sources of water treatment coupled to said cooling tower for supplying anti-fouling and biologically controlling additives thereto;
- a blowdown mechanism coupled between said basin and a drain for draining water from said cooling tower basin during a blowdown process to remove accumulated mineral build up following a number of cycles of concentration;
- a water supply for supplying a volume of water to said cooling tower to make up for water drained and evaporated therefrom;
- a water supply measuring device coupled between said cooling tower and said water supply, for measuring the volume of the make-up water supplied to said cooling tower from said water supply and for providing pulse information corresponding to the volume of water supplied; and
- a microprocessor controller connected to said water supply measuring device, said blowdown mechanism and said water treatment sources for receiving the pulse information from said water measuring device in terms of volume per pulse, and for coordinated control of both said water treatment sources for the supply of the anti-fouling and biologically controlling additives to said cooling tower and said blowdown mechanism system said microprocessor controller including
- a microcontroller unit,
- a control panel for providing an interface between an operator and said microcontroller unit to enable programming information to be entered therein,
- a multiplexer-demultiplexer coupled to said water measuring device and between said micro controller unit and said control panel,
- latches and a relay driver coupled between said microcontroller unit and said respective water treatment sources and said blowdown mechanism, and
- a display for displaying instructions and results of controller operations.
- 4. A system according to claim 3 in which said microprocessor controller further includes a read-only memory for storing a controller code and a data memory for receiving the programming information coupled to said microcontroller unit.
- 5. A system according to claim 4 in which said microprocessor controller is programmed to operate according to the following relationship: ##EQU8## where BDT=time of blowdown, MU=make-up (volume per pulse), BDR=blowdown rate (volume per minute), and CC=cycles of concentration.
- 6. A system according to claim 5 in which said heat exchanger is coupled to said cooling tower basin for receiving water therefrom, said blowdown mechanism includes a solenoid valve operated by said microprocessor controller, and said sources of water treatment include means for supplying corrosion, scale and biological fouling controlling additives thereto.
- 7. In an open recirculating evaporative cooling system having a cooling tower, a drain coupleable to the tower and operable during a tower blowdown process to bleed off accumulated mineral build up following a number of cycles of concentration, water treatment sources for supplying anti-fouling additives to the tower, and a supply for feeding make-up water to the tower, a microprocessor for controlling the system, comprising:
- a microcontroller unit programmed to operate according to the following relationship: ##EQU9## where BDT=time of blowdown, MU=make-up (volume per pulse), BDR=blowdown rate (volume per minute), and CC=cycles of concentration.
- 8. A microprocessor according to claim 7 wherein the system includes a water measuring device for measuring the volume of supplied make-up water (in terms of volume per pulse group), further comprising:
- a control panel for providing an interface between an operator and said microcontroller unit;
- a multiplexer-demultiplexer coupled to the water measuring device and between said microcontroller unit and said control panel;
- latches and a relay driver coupled between said microcontroller unit and the respective water treatment sources and the drain; and
- a display for displaying instructions and results of microprocessor operations.
- 9. A microprocessor according to claim 8 for programming thereof, further comprising:
- means for initiating the programming to enter a general password;
- means for entering current date and time information;
- means for entering the cycles of concentration with related bleed and feed cycle time calculations;
- means for entering make-up information with related bleed and feed cycle time calculations;
- means for entering blowdown rate information with related bleed and feed cycle time calculations;
- means for entering information related to the number of pulses in the group;
- means for entering biocide schedules and related times for locking out the blowdown process; and
- means for customizing the password.
- 10. A microprocessor according to claim 9 for execution of the program, further comprising:
- means for receiving and counting the pulse groups after a predetermined volume of make-up water is supplied to the cooling tower;
- means for determining whether a pulse group event has occurred;
- if none has occurred, means for inquiring if time for a prebleed operation has occurred;
- if a pulse group event has occurred, means for inquiring if a prebleed operation is in progress;
- if a prebleed operation has occurred, means for inquiring if time for a prebleed has occurred;
- if a prebleed operation has not occurred, means for inquiring if insertion of a biocide is in progress;
- if biocide insertion is in progress, means for inquiring if time for a prebleed operation has occurred;
- if biocide insertion is not in progress, means for inquiring if a lockout is in progress;
- if lockout is in progress, means for inquiring if a prebleed operation is in progress;
- if lockout is not in progress, means for commencing bleed and feed operations and for inquiring if the time for a prebleed is to occur;
- means for determining whether or not the times for prebleed, biocide insertion or lockout are to occur, with negative or positive responses determining timing and execution of prebleed, biocide, lockout, and subsequent return to restart of execution.
- 11. In an open recirculating evaporative cooling system where water is lost through evaporation and through bleed off during a blowdown process, apparatus for replacing the lost water with make-up water, comprising:
- a pulse group detecting mechanism that detects each pulse group of the number of pulses reflecting the volume of the make-up water;
- a calculator that calculates the time of bleed off that reflects the volume of bled off water; and
- an executor that executes a timed program for bleed off by correlating the pulse groups and the water bled off.
- 12. In an open recirculating evaporative cooling system having a cooling tower, a drain coupleable to the tower and operable during a tower blowdown process to bleed off accumulated mineral build up following a number of cycles of concentration, water treatment sources for supplying anti-fouling additives to the tower, a supply for feeding make-up water to the tower, and a mechanism which generates pulses that reflects the volume of the make-up water, a microprocessor for controlling the system, a method for programming the system comprising the steps of:
- initiating programming to enter a general password;
- entering current date and time information;
- entering the cycles of concentration with related bleed and feed cycle time calculations;
- entering make-up information with related bleed and feed cycle time calculations;
- entering blowdown rate information with related bleed and feed cycle time calculations;
- entering information related to the number of the pulses in a group thereof;
- entering biocide schedules and related lockout duration; and
- customizing the password.
- 13. In an open recirculating evaporative cooling system having a cooling tower, a drain coupleable to the tower and operable during a tower blowdown process to bleed off accumulated mineral build up following a number of cycles of concentration, water treatment sources for supplying anti-fouling additives to the tower, a supply for feeding make-up water to the tower, and a mechanism which generates pulses that reflects the volume of the make-up water, a microprocessor for controlling the system, a method for executing the system comprising the steps of:
- receiving and counting groups of the pulses after a predetermined volume of make-up water is fed to the cooling tower;
- determining whether a pulse group event has occurred;
- if none has occurred, inquiring if time for a prebleed operation has occurred;
- if a pulse group event has occurred, inquiring if a prebleed operation is in progress;
- if a prebleed operation has occurred, inquiring if time for a prebleed operation has occurred;
- if a prebleed operation has not occurred, inquiring if insertion of a biocide is in progress;
- if biocide insertion is in progress, inquiring if time for a prebleed operation has occurred;
- if biocide insertion is not in progress, inquiring if a lockout of the blowdown process is in progress;
- if lockout is in progress, inquiring if a prebleed operation is in progress;
- if lockout is not in progress, commencing bleed and feed operations and for inquiring if the time for a prebleed operation is to occur;
- determining whether or not the times for prebleed, biocide insertion or lockout are to occur, with negative or positive responses determining timing and execution of prebleed, biocide, lockout, and subsequent return to restart of execution.
- 14. In an open recirculating evaporative cooling system, a method for replacing evaporated water and bled off cooling water with dissolved minerals and anti-fouling chemicals with make-up water and fresh anti-fouling chemicals, comprising the steps of:
- detecting the number of pulses in a group that reflects the volume of the replaced make-up water;
- calculating the time of bleed off that reflects the volume of bled off water; and
- correlating the cycles of concentration permitted with the volume per pulse of the replaced make-up water and the volume of water per unit of time of the water bled off in said detecting and calculating steps, in which the cycles of concentration (CC) is determined by the equation ##EQU10## wherein TDS is the total dissolved mineral solids.
- 15. A method according to claim 14 further comprising the step of programming the microprocessor controller to operate according to the following relationship: ##EQU11## where BDT=time of blowdown, MU=make-up (volume per pulse), BDR=blowdown rate (volume per minute), and CC=cycles of concentration.
- 16. In an open recirculating evaporative cooling system where water is lost through evaporation and through bleed off during a blowdown process, a method for replacing the lost water with make-up water, comprising the steps of:
- detecting each pulse group of the number of pulses that reflect the volume of the make-up water;
- calculating the time of bleed off that reflects the volume of bled off water; and
- executing a timed program for bleed off by correlating the pulses and the time that reflects the volume of the water bled off.
- 17. An open recirculating evaporative cooling system comprising:
- a cooling tower having a heated water inlet and a water collection basin;
- a heat exchanger coupled to said cooling tower basin for receiving water therefrom, for removing waste heat from heat producing equipment, and for supplying the heated water to said cooling tower heated water inlet;
- sources of water treatment coupled to said cooling tower for supplying anti-fouling and biologically controlling additives thereto;
- a blowdown mechanism coupled between said basin and a drain for draining water from said cooling tower basin during a blowdown process to remove accumulated mineral build up following a number of cycles of concentration;
- a water supply for supplying a volume of water to said cooling tower to make up for water drained and evaporated therefrom;
- a water supply measuring device coupled between said cooling tower and said water supply, for measuring the volume of the make-up water supplied to said cooling tower from said water supply and for providing pulse information corresponding to the volume of water supplied; and
- a microprocessor controller connected to said water supply measuring device, said blowdown mechanism and said water treatment sources for receiving the pulse information from said water measuring device in terms of volume per pulse, for converting the volume per pulse measurement to a minutes of blowdown per pulse using programmed cycles of concentration data and blowdown rate data in terms of gallons per minute, and for coordinated control of both said water treatment sources for the supply of the anti-fouling and biologically controlling additives to said cooling tower and said blowdown mechanism.
Parent Case Info
This is a continuation-in-part of application Serial No. 08/678/636 filed 10 Jul. 1996, now abandoned.
US Referenced Citations (21)
Continuation in Parts (1)
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Number |
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678636 |
Jul 1996 |
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