The present invention pertains to the technical field of refrigeration and relates to a multipurpose energy supply system based on energy storage CO2 refrigeration circulation, in particular to a 3-level standing cooling and domestic hot water and heating supply and firefighting servo system composed of a CO2 compression refrigeration circulation based on three-stage compression and multi-stage energy storage and an operation method thereof.
Compression refrigeration circulation is the most proven and widely-used refrigeration technology, prevailing in various social production and life sectors. At present, the organic working medium used in high-efficiency refrigeration units has ozone destruction potential (ODP) and global warming potential (GWP) to a certain extent, according to the Montreal Protocol, a large number of traditional organic working media will be restricted, but there is currently a lack of high-efficiency alternative working media to choose from, so the development of natural working media has once again attracted the attention of the industry in the face of huge market demands.
Among many natural working media, CO2 has features of non-toxicity, non-destructiveness to the ozone layer, non-flammability, non-explosiveness, high density and suchlike, and has great advantages in replacement of a refrigeration working medium. However, CO2 has a critical temperature of only 31.1° C., a critical pressure as high as 7.38 MPa, and a large throttling loss in a trans-critical circulation, which cause low system energy efficiency, which limits its popularization and application. Due to the good flow capacity of CO2, the CO2 refrigeration technology comes by a new development opportunity by means of an improvement to back heating technology and expansion equipment, in particular, a CO2 green refrigeration technology is popularized and applied in the Winter Olympics, so this technology will play an increasingly important role in the technical field of refrigeration.
In addition, a CO2 firefighting system can be widely used in suffocating firefighting conditions, and can also be applied to firefighting places with dangerous gas whose source can cut off. The CO2 refrigeration system can be used to provide a firefighting standby for application scenarios and provide users with a safety protection, especially in an electronic product equipment room, a mechanical and electrical equipment room, an unattended intelligentized workshop and suchlike.
A patent application number (201910739370.X) has disclosed a refrigeration system and a method for achieving a firefighting function, and a combination of a CO2 trans-critical refrigeration technology and a fire protection system for the first time. However, this system adopts a simple trans-critical circulation, and the problem such as large system throttling loss has not been solved; in addition, this system is restricted to a CO2 infusion volume, which limits the radiation scope of firefighting, and it can only be supplied to firefighting in an air conditioning equipment room.
Moreover, the simple CO2 trans-critical refrigeration circulation is restricted to a limited single-stage compression capacity, which makes it difficult to realize refrigeration with a large temperature difference. Therefore, in order to further popularize the CO2 trans-critical refrigeration circulation, it is necessary to develop a new system process with adjustable working conditions, flexible output, energy saving and high efficiency.
The present invention aims to provide a multipurpose system of cooling and heating supply and firefighting servo-control based on energy-storage CO2 circulation and an operation method thereof, the system adopts a process of three-stage compression in combination with split-flow and back heating to effectively solve the problem such as large system energy loss, adopts three-stage cooling capacity storage to achieve flexible use of electric energy and greatly enhance the flexibility of the system, and uses the CO2 storing tank as a firefighting servo-device to add a firefighting standby to the application scenario; in addition, the system concentrates heat for winter heating and domestic hot water, so as to form a new multipurpose energy supply system that concurrently has flexibility and adjustability, energy-saving, high-efficiency and safety.
In order to achieve the above object, the present invention adopts the following technical solutions: a multipurpose system of cooling and heating supply and firefighting servo-control based on energy-storage CO2 circulation, comprising a first-stage CO2 compression refrigeration circulation system, a second-stage CO2 compression refrigeration circulation system, a third-stage CO2 compression refrigeration circulation system, an accessory cold network, an accessory hot network, an accessory firefighting network and an accessory control system, wherein the accessory cold network is a three-stage cold network including a low-temperature range, a freezing-point temperature range and a room temperature range.
The first-stage CO2 compression refrigeration circulation system is composed of a first-stage expander, a first-stage compressor, a first-stage gas-liquid separation device, a first-stage liquid CO2 storing tank, a first-stage liquid CO2 working medium pump, a first-stage CO2 evaporator, a first-stage back heater, a first-stage ejector, a condenser, a 1st 3-way valve group, a 2nd 3-way valve group, a 1st bypass valve group, a 2nd bypass valve group, a 3rd bypass valve group and a 4th bypass valve group;
the CO2 circulating medium is successively compressed by the first-stage compressor, cooled by the condenser, releases heat via the first-stage back heater, dilates via the first-stage expander, and performs gas-liquid separation via the first-stage gas-liquid separation device, a gaseous CO2 circulating medium absorbs heat via the first-stage back heater, a liquid CO2 circulating medium is stored by the first-stage liquid CO2 storing tank, raises pressure via the first-stage liquid CO2 working medium pump, evaporates and absorbs heat via the first-stage CO2 evaporator, and flows convergently at the 2nd 3-way valve group, then a high-pressure gaseous CO2 circulating medium is ejected to a low-pressure CO2 circulating medium in the second-stage CO2 compression refrigeration circulation system via the first-stage ejector to enter the first-stage compressor for compression, finally ends the first-stage CO2 compression refrigeration circulation;
the 1st 3-way valve group is configured to allocate and adjust the flow of the liquid CO2 circulating medium entering the first-stage CO2 storing tank and the second-stage CO2 compression refrigeration circulation system;
the 1st bypass valve group is connected in parallel on both sides of the first-stage gas-liquid separation device to allocate the flow entering the first-stage gas-liquid separation device and the heat-absorbing side of the first-stage back heater, the 2nd bypass valve is connected in parallel at the inlet of the first-stage back heater and the inlet pipeline entering the second-stage CO2 compression refrigeration circulation system, the 3rd bypass valve group is connected in parallel at the outlet of the first-stage compressor and the low-pressure inlet side of the first-stage ejector, so as to adjust or bypass the second-stage CO2 compression refrigeration circulation system.
The second-stage CO2 compression refrigeration circulation system is composed of a second-stage expander, a second-stage compressor, a second-stage gas-liquid separation device, a second-stage liquid CO2 storing tank, a second-stage liquid CO2 working medium pump, a second-stage CO2 evaporator, a second-stage back heater, a second-stage ejector, a 3rd 3-way valve group, a 4th 3-way valve group, a 5th bypass valve group, a 6th bypass valve group, a 7th bypass valve group and 8th bypass valve group;
the CO2 circulating medium is successively compressed by the second-stage compressor, and ejected to the first-stage CO2 compression refrigeration circulation system by a first-stage ejector, then the CO2 entering the second-stage CO2 compression refrigeration circulation system is separated to release heat via the second-stage back heater, dilates via the second-stage expander, and performs gas-liquid separation via the second-stage gas-liquid separation device, a gaseous CO2 circulating medium absorbs heat via the second-stage back heater, a liquid CO2 circulating medium is stored by the second-stage liquid CO2 storing tank, raises pressure via the second-stage liquid CO2 working medium pump, evaporates and absorbs heat via the second-stage CO2 evaporator, and flows convergently at the 4th 3-way valve group, then a high-pressure gaseous CO2 circulating medium is ejected to a low-pressure CO2 circulating medium in the third-stage CO2 compression refrigeration circulation system via the second-stage ejector to enter the second-stage compressor for compression, finally ends the second-stage CO2 compression refrigeration circulation;
the 3rd 3-way valve group is configured to allocate and adjust the flow of the liquid CO2 circulating medium entering the second-stage CO2 storing tank and the third-stage CO2 compression refrigeration circulation system; the 5th bypass valve group is connected in parallel on both sides of the second-stage gas-liquid separation device to allocate the flow entering the second-stage gas-liquid separation device and the heat-absorbing side of the second-stage back heater, the 6th bypass valve is connected in parallel to the both ends of the heat-releasing side of the second-stage back heater, the 7th bypass valve is connected in parallel at the outlet of the second-stage compressor and the inlet of the low-pressure side of the second-stage ejector, so as to adjust or bypass the second-stage CO2 compression refrigeration circulation system in combination with the 3rd 3-way valve.
The third-stage CO2 compression refrigeration circulation system is composed of a third-stage expander, a third-stage compressor, a third-stage gas-liquid separation device, a third-stage liquid CO2 storing tank, a third-stage liquid CO2 working medium pump, a third-stage CO2 evaporator, a third-stage back heater, a 5th 3-way valve group, a 9th bypass valve group, a 10th bypass valve group and a 11th bypass valve group;
the CO2 circulating medium is successively compressed by the third-stage compressor, and ejected to the second-stage CO2 compression refrigeration circulation system by a second-stage ejector, then the CO2 entering the third-stage CO2 compression refrigeration circulation system is separated to release heat via the third-stage back heater, dilates via the third-stage expander, and performs gas-liquid separation via the third-stage gas-liquid separation device, a gaseous CO2 circulating medium absorbs heat via the third-stage back heater, a liquid CO2 circulating medium is stored by the third-stage liquid CO2 storing tank, raises pressure via the third-stage liquid CO2 working medium pump, evaporates and absorbs heat via the third-stage CO2 evaporator, and flows convergently at the 5th 3-way valve group, then enters the third-stage compressor for compression, finally ends the third-stage CO2 compression refrigeration circulation;
the 9th bypass valve group is connected in parallel on both sides of the third-stage gas-liquid separation device to allocate the flow entering the third-stage gas-liquid separation device and the heat-absorbing side of the third-stage back heater, the 10th bypass valve is connected in parallel to the both ends of the heat-releasing side of the third-stage back heater.
The accessory cold network is divided into a first-stage cold network, a second-stage cold network and a third-stage cold network, the first-stage cold network is configured to provide cool volume for the room temperature range, and consists of the first-stage CO2 compression refrigeration circulation system, a first-stage CO2 evaporator, a second air cooler and a 12th bypass valve group; the second-stage cold network is configured to provide cool volume for the freezing-point temperature range, and consists of the second-stage CO2 compression refrigeration circulation system and a second-stage CO2 evaporator, the third-stage cold network is configured to provide cool volume for the low-temperature range, and consists of the third-stage CO2 compression refrigeration circulation system and a third-stage CO2 evaporator.
The accessory hot network is composed of a cooler, a heat-storing tank, a first air cooler and a 13th bypass valve group;
the heat-storing tank is configured to enable heat production and heat supply to match with each other, and when loads have insufficient heat absorption capacity, the first air cooler is configured to discharge heat to environment, and bypassed by the 13th bypass valve group.
The accessory firefighting network is composed of a 4th bypass valve group, a 8th bypass valve group, a 11th bypass valve group, a first-stage liquid CO2 storing tank, a second-stage liquid CO2 storing tank, a third-stage liquid CO2 storing tank, a CO2 vaporization device, and a main body and a terminal end of firefighting servo control;
the liquid CO2 in the first-stage liquid CO2 storing tank of the first-stage CO2 compression refrigeration circulation system, the second-stage liquid CO2 storing tank of the second-stage CO2 compression refrigeration circulation system, and the third-stage liquid CO2 storing tank of the third-stage CO2 compression refrigeration circulation system is led to the accessory firefighting network via the 4th bypass valve, the 8th bypass valve and the 11th bypass valve, used to perform suffocating firefighting on fire sites such as occurrence of electrical sparks, unattended machine rooms, and gas sources that can be cut off; the CO2 vaporization device is arranged before the terminal end of the firefighting network, and its interior is electrically heated, and the liquid CO2 is used in an order of precedence of the first-stage, the second-stage, and third-stage.
The accessory control system consists of a controller and a corresponding actuator, the actuator includes a 1st bypass valve group, a 2nd bypass valve group, a 3rd bypass valve group, a 4th bypass valve group, a 5th bypass valve group, a 6th bypass valve group, a 8th bypass valve group, a 9th bypass valve group, a 11th bypass valve group, a 1st 3-way valve group, a 3rd 3-way valve group, a 4th 3-way valve group, a 5th 3-way valve group, a variable frequency motor and a transmission matched with a first-stage expander, a variable frequency motor and a transmission matched with a second-stage expander, a variable frequency motor and a transmission matched with a third-stage expander, a variable frequency motor matched with a first-stage compressor, a variable frequency motor matched with a second-stage compressor and a variable frequency motor matched with a third-stage compressor.
CO2 is used as a refrigerant of the CO2 compression refrigeration circulation system in each stage and stored in liquid form in multi-stages; CO2 or aqueous solution of ethylene glycol is used as a cool-carrying medium of the accessory cool network.
An operating method of the multipurpose system of cooling and heating supply and firefighting servo-control based on energy-storage CO2 circulation, comprising the following 3 operating modes formed by controlling corresponding actuators to achieve various operating modes and multipurpose utilization of energy by means of the controller of the accessory control system:
The present invention has the following beneficial effects:
We will further describe the present invention in combination with the drawings and examples as follows.
Where, 1a—first-stage expander; 2a—first-stage compressor, 3a—first-stage gas-liquid separation device; 4a—first-stage liquid CO2 storing tank; 5a—first-stage liquid CO2 working medium pump; 6a—first-stage CO2 evaporator, 7a—first-stage back heater, 8a—first-stage ejector, 9—condenser; 31—1st 3-way valve group; 33—2nd 3-way valve group; 21a—1st bypass valve group; 22a—2nd bypass valve group; 23a—3rd bypass valve group; 24a—4th bypass valve group; 1b—second-stage expander; 2b—second-stage compressor, 3b—second-stage gas-liquid separation device; 4b—second-stage liquid CO2 storing tank; 5b—second-stage liquid CO2 working medium pump; 6b—second-stage CO2 evaporator; 7b—second-stage back heater; 8b—second-stage ejector; 32—3rd 3-way valve group; 34—4th 3-way valve group; 21b—5th bypass valve group; 22b—6th bypass valve group; 23b—7th bypass valve group; 24b—8th bypass valve group; 1c—third-stage expander; 2c—third-stage compressor; 3c—third-stage gas-liquid separation device; 4c—third-stage liquid CO2 storing tank; 5c—third-stage liquid CO2 working medium pump; 6c—third-stage CO2 evaporator, 7c—third-stage back heater; 35—5th 3-way valve group; 21c—9th bypass valve group; 22c—10th bypass valve group; 24c—11th bypass valve group.
We will further describe the embodiments of the present invention in combination with the drawings as follows.
As shown in
Further, the first-stage CO2 compression refrigeration circulation system is composed of a first-stage expander 1a, a first-stage compressor 2a, a first-stage gas-liquid separation device 3a, a first-stage liquid CO2 storing tank 4a, a first-stage liquid CO2 working medium pump 5a, a first-stage CO2 evaporator 6a, a first-stage back heater 7a, a first-stage ejector 8a, a condenser 9, a 1st 3-way valve group 31, a 2nd 3-way valve group 33, a 1st bypass valve group 21a, a 2nd bypass valve group 22a, a 3rd bypass valve group 23a and a 4th bypass valve group 24a; the CO2 circulating medium is successively compressed by the first-stage compressor 2a, cooled by the condenser 9, releases heat via the first-stage back heater 7a, dilates via the first-stage expander 1a, and performs gas-liquid separation via the first-stage gas-liquid separation device 3a, a gaseous CO2 circulating medium absorbs heat via the first-stage back heater 7a, a liquid CO2 circulating medium is stored by the first-stage liquid CO2 storing tank 4a, raises pressure via the first-stage liquid CO2 working medium pump 5a, evaporates and absorbs heat via the first-stage CO2 evaporator 6a, and flows convergently at the 2nd 3-way valve group 33, then a high-pressure gaseous CO2 circulating medium is ejected to a low-pressure CO2 circulating medium in the second-stage CO2 compression refrigeration circulation system via the first-stage ejector 8a to enter the first-stage compressor 2a for compression, finally ends the first-stage CO2 compression refrigeration circulation;
Further, the 1st 3-way valve group 31 is configured to allocate and adjust the flow of the liquid CO2 circulating medium entering the first-stage CO2 storing tank 4a and the second-stage CO2 compression refrigeration circulation system;
Further, the 1st bypass valve group 21a is connected in parallel on both sides of the first-stage gas-liquid separation device 3a to allocate the flow entering the first-stage gas-liquid separation device 3a and the heat-absorbing side of the first-stage back heater 7a; the 2nd bypass valve 22a is connected in parallel at the inlet of the first-stage back heater 7a and the inlet pipeline entering the second-stage CO2 compression refrigeration circulation system, the 3rd bypass valve group 23a is connected in parallel at the outlet of the first-stage compressor 2a and the low-pressure inlet side of the first-stage ejector 8a, so as to adjust or bypass the second-stage CO2 compression refrigeration circulation system.
Further, the second-stage CO2 compression refrigeration circulation system is composed of a second-stage expander 1b, a second-stage compressor 2b, a second-stage gas-liquid separation device 3b, a second-stage liquid CO2 storing tank 4b, a second-stage liquid CO2 working medium pump 5b, a second-stage CO2 evaporator 6b, a second-stage back heater 7b, a second-stage ejector 8b, a 3rd 3-way valve group 32, a 4th 3-way valve group 34, a 5th bypass valve group 21b, a 6th bypass valve group 22b, a 7th bypass valve group 23b and 8th bypass valve group 24b; the CO2 circulating medium is successively compressed by the second-stage compressor 2b, and ejected to the first-stage CO2 compression refrigeration circulation system by a first-stage ejector 8a, then the CO2 entering the second-stage CO2 compression refrigeration circulation system is separated to release heat via the second-stage back heater 7b, dilates via the second-stage expander 1b, and performs gas-liquid separation via the second-stage gas-liquid separation device 3b, a gaseous CO2 circulating medium absorbs heat via the second-stage back heater 7b, a liquid CO2 circulating medium is stored by the second-stage liquid CO2 storing tank 4b, raises pressure via the second-stage liquid CO2 working medium pump 5b, evaporates and absorbs heat via the second-stage CO2 evaporator 6b, and flows convergently at the 4th 3-way valve group 34, then a high-pressure gaseous CO2 circulating medium is ejected to a low-pressure CO2 circulating medium in the third-stage CO2 compression refrigeration circulation system via the second-stage ejector 8b to enter the second-stage compressor 2b for compression, finally ends the second-stage CO2 compression refrigeration circulation;
Further, the 3rd 3-way valve group 32 is configured to allocate and adjust the flow of the liquid CO2 circulating medium entering the second-stage CO2 storing tank 4b and the third-stage CO2 compression refrigeration circulation system; the 5th bypass valve group 21b is connected in parallel on both sides of the second-stage gas-liquid separation device 3b to allocate the flow entering the second-stage gas-liquid separation device 3b and the heat-absorbing side of the second-stage back heater 7b, the 6th bypass valve 22b is connected in parallel to the both ends of the heat-releasing side of the second-stage back heater 7b, the 7th bypass valve 23b is connected in parallel at the outlet of the second-stage compressor 2b and the inlet of the low-pressure side of the second-stage ejector 8b, so as to adjust or bypass the second-stage CO2 compression refrigeration circulation system in combination with the 3rd 3-way valve.
Further, the third-stage CO2 compression refrigeration circulation system is composed of a third-stage expander 1c, a third-stage compressor 2c, a third-stage gas-liquid separation device 3c, a third-stage liquid CO2 storing tank 4c, a third-stage liquid CO2 working medium pump 5c, a third-stage CO2 evaporator 6c, a third-stage back heater 7c, a 5th 3-way valve group 35, a 9th bypass valve group 21c, a 10th bypass valve group 22c and a 11th bypass valve group 24c; the CO2 circulating medium is successively compressed by the third-stage compressor 2c, and ejected to the second-stage CO2 compression refrigeration circulation system by a second-stage ejector 8b, then the CO2 entering the third-stage CO2 compression refrigeration circulation system is separated to release heat via the third-stage back heater 7c, dilates via the third-stage expander 1c, and performs gas-liquid separation via the third-stage gas-liquid separation device 3c, a gaseous CO2 circulating medium absorbs heat via the third-stage back heater 7c, a liquid CO2 circulating medium is stored by the third-stage liquid CO2 storing tank 4c, raises pressure via the third-stage liquid CO2 working medium pump 5c, evaporates and absorbs heat via the third-stage CO2 evaporator 6c, and flows convergently at the 5th 3-way valve group 35, then enters the third-stage compressor 2c for compression, finally ends the third-stage CO2 compression refrigeration circulation;
Further, the 9th bypass valve group 21c is connected in parallel on both sides of the third-stage gas-liquid separation device 3c to allocate the flow entering the third-stage gas-liquid separation device 3c and the heat-absorbing side of the third-stage back heater 7c, the 10th bypass valve 22c is connected in parallel to the both ends of the heat-releasing side of the third-stage back heater 7c.
Further, the accessory cold network is divided into a first-stage cold network, a second-stage cold network and a third-stage cold network, the first-stage cold network is configured to provide cool volume for the room temperature range, and consists of the first-stage CO2 compression refrigeration circulation system, a first-stage CO2 evaporator 6a, a second air cooler 13 and a 12th bypass valve group 26; the second-stage cold network is configured to provide cool volume for the freezing-point temperature range, and consists of the second-stage CO2 compression refrigeration circulation system and a second-stage CO2 evaporator 6b; the third-stage cold network is configured to provide cool volume for the low-temperature range, and consists of the third-stage CO2 compression refrigeration circulation system and a third-stage CO2 evaporator 6c.
Further, the accessory hot network is composed of a cooler 9, a heat-storing tank 10, a first air cooler 12 and a 13th bypass valve group 25;
Further, the heat-storing tank 10 is configured to enable heat production and heat supply to match with each other, and when loads have insufficient heat absorption capacity, the first air cooler 12 is configured to discharge heat to environment, and bypassed by the 13th bypass valve group 25.
Further, the accessory firefighting network is composed of a 4th bypass valve group 24a, a 8th bypass valve group 24b, a 11th bypass valve group 24c, a first-stage liquid CO2 storing tank 4a, a second-stage liquid CO2 storing tank 4b, a third-stage liquid CO2 storing tank 4c, a CO2 vaporization device 11, and a main body and a terminal end of firefighting servo control; the liquid CO2 in the first-stage liquid CO2 storing tank 4a of the first-stage CO2 compression refrigeration circulation system, the second-stage liquid CO2 storing tank 4b of the second-stage CO2 compression refrigeration circulation system, and the third-stage liquid CO2 storing tank 4c of the third-stage CO2 compression refrigeration circulation system is led to the accessory firefighting network via the 4th bypass valve 24a, the 8th bypass valve 24b and the 11th bypass valve 24c, used to perform suffocating firefighting on fire sites such as occurrence of electrical sparks, unattended machine rooms, and gas sources that can be cut off; the CO2 vaporization device 11 is arranged before the terminal end of the firefighting network, and its interior is electrically heated, and the liquid CO2 is used in an order of precedence of the first-stage, the second-stage, and third-stage.
Further, the accessory control system consists of a controller 14 and a corresponding actuator, the actuator includes a 1st bypass valve group 21a, a 2nd bypass valve group 22a, a 3rd bypass valve group 23a, a 4th bypass valve group 24a, a 5th bypass valve group 21b, a 6th bypass valve group 22b, a 8th bypass valve group 24b, a 9th bypass valve group 21c, a 11th bypass valve group 24c, a 1st 3-way valve group 31, a 3rd 3-way valve group 32, a 4th 3-way valve group 34, a 5th 3-way valve group 35, a variable frequency motor and a transmission matched with a first-stage expander 1a, a variable frequency motor and a transmission matched with a second-stage expander 1b, a variable frequency motor and a transmission matched with a third-stage expander 1c, a variable frequency motor matched with a first-stage compressor 2a, a variable frequency motor matched with a second-stage compressor 2b and a variable frequency motor matched with a third-stage compressor 2c.
Further, CO2 is used as a refrigerant of the CO2 compression refrigeration circulation system in each stage and stored in liquid form in multi-stages; CO2 or aqueous solution of ethylene glycol is used as a cool-carrying medium of the accessory cool network.
The operation method of the multipurpose system of cooling and heating supply and firefighting servo-control based on energy-storage CO2 circulation, controls corresponding actuators to achieve various operating modes and multipurpose utilization of energy by means of the controller 14 of the accessory control system, and forms 3 operating modes as follows.
When a cooling load is large in summer or when a cooling demand in a low-temperature range is high, the system operates in Operating Mode 1.
At this time, the first-stage CO2, second-stage CO2 and third-stage CO2 compression refrigeration circulation systems are all actuated, due to frequent occurrence of cyclical loads, the first-stage CO2, second-stage CO2 and third-stage CO2 compression refrigeration circulation systems preferably store liquid CO2 to the first-stage liquid CO2 storing tank 4a, the second-stage liquid CO2 storing tank 4b, and the third-stage liquid CO2 storing tank 4c in a situation of a low electricity price or a low load demand at night; when it is necessary to extract cool volume, the first-stage compressor 2a, the second-stage compressor 2b and the third-stage compressor 2c within the first-stage CO2, second-stage CO2 and third-stage CO2 compression refrigeration circulation systems carry out frequency conversion adjustment in a range of preferable economy; when the loads are low or high, the liquid CO2 stored in the first-stage liquid CO2 storing tank 4a, the second-stage liquid CO2 storing tank 4b, and the third-stage liquid CO2 storing tank 4c is extracted by the first-stage liquid CO2 working medium pump 5a, the second-stage liquid CO2 working medium pump 5b, and the third-stage liquid CO2 working medium pump 5c; among them, the circulating high-pressure CO2 in the last stage is ejected to the circulating low-pressure CO2 in the next stage via the first-stage ejector 8a and the second-stage ejector 8b, respectively, the heat emitted from the system is preferably stored in the heat-storing tank 10 via the cooler 9 for domestic hot water or heating.
As shown in
When the cooling load in the low-temperature range is insufficient, referring to
When the cooling load in the freezing-point temperature range is insufficient, referring to
When the outdoor temperature is low in winter or the cooling load in the room temperature range is insufficient, referring to
When the cool volume of the low-temperature range is preferably provided or prepared, referring to
When the cool volume of the freezing-point temperature range is preferably provided or prepared, referring to
When the cool volume of the room temperature range is preferably provided or prepared, referring to
The system can realize the preparation and output of cool volume at two levels by means of the adjustment of the controller 14, and the separate preparation and output of cold volume at three levels by means of the adjustment of corresponding equipment. Similarly, the first-stage CO2, second-stage CO2 and third-stage CO2 compression refrigeration circulation systems preferably store liquid CO2 to the first-stage liquid CO2 storing tank 4a, the second-stage liquid CO2 storing tank 4b, and the third-stage liquid CO2 storing tank 4c in a situation of a low electricity price or a low load demand at night; when it is necessary to extract cool volume, the first-stage compressor 2a, the second-stage compressor 2b and the third-stage compressor within the first-stage CO2, second-stage CO2 and third-stage CO2 compression refrigeration circulation systems 2c carry out frequency conversion adjustment in a range of preferable economy, when the loads are low or high, the liquid CO2 stored in the first-stage liquid CO2 storing tank 4a, the second-stage liquid CO2 storing tank 4b, and the third-stage liquid CO2 storing tank 4c is extracted by the first-stage liquid CO2 working medium pump 5a, the second-stage liquid CO2 working medium pump 5b, and the third-stage liquid CO2 working medium pump 5c; among them, the circulating high-pressure CO2 in the last stage is ejected to the circulating low-pressure CO2 in the next stage via the first-stage ejector 8a and the second-stage ejector 8b, respectively; the heat emitted from the system is preferably stored in the heat-storing tank 10 via the cooler 9 for domestic hot water or heating.
As shown in
When risks such as a fire and a dangerous gas leakage occur, especially at the fire site such as occurrence of electrical sparks, unattended machine rooms, and gas sources that can be cut off, the refrigeration system can stop or not stop according to the danger level; when the fire is in an early stage, the fire can be put out under active manual control by means of an arranged firefighting terminal interface; when the fire has reached a certain scale, the liquid CO2 stored in the first-stage liquid CO2 storing tank 4a, the second-stage liquid CO2 storing tank 4b and the third-stage liquid CO2 storing tank 4c can be extracted successively via the first-stage liquid CO2 working medium pump 5a, the second-stage liquid CO2 working medium pump 5b and third-stage liquid CO2 working medium pump 5c, then vaporized by the CO2 vaporization device 11, so as to keep high-pressure gas releasing to the danger cites until the risk disappears; when the fire situation is severe or the volume of stored CO2 is insufficient, the water firefighting system is jointly activated to suppress the fire situation in a full range.
Number | Date | Country | Kind |
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202011578241.6 | Dec 2020 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2021/121539 | 9/29/2021 | WO |