High-efficiency thermal energy-driven lithium bromide cooling device
Patent Information
- Application Number
- TW115205617
- Authority / Receiving Office
- TW · TW
- Patent Type
- Utility models
- Current Assignee / Owner
- Filing Date
- 2026-06-18
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2036-06-17
Smart Images

Figure TWG2TB001911299_001 
Figure TWG2TB001911299_002 
Figure TWG2TB001911299_003
Abstract
Claims
1. A high-efficiency thermal energy driven lithium bromide cooling device, comprising: a heat source input module (10) for receiving external heat energy; a generator module (20) connected to the heat source input module (10) to drive refrigerant circulation using the received heat energy; a condensing module (30) connected to the generator module (20) to condense the refrigerant; an evaporating module (40) connected to the condensing module (30) to generate a cooling effect; and an absorption module (50) connected to the evaporating module (40) and the generator module (20) to absorb the refrigerant and form a circulation. A refrigerant circulation module (60) is connected to the generator module (20), the condenser module (30), the evaporator module (40), and the absorption module (50) to circulate and deliver refrigerant; and a control module (70) is connected to the heat source input module (10), the generator module (20), the condenser module (30), the evaporator module (40), the absorption module (50), and the refrigerant circulation module (60) to monitor and control the operating status of each module.
2. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The heat source input module (10) includes a heat medium delivery unit (11) and a flow regulation unit (12) to deliver external heat energy to the generator module (20).
3. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The generator module (20) includes a heat exchange unit (21) for heating the refrigerant using external thermal energy.
4. The high-efficiency thermally driven lithium bromide cooling device as described in claim 3, wherein, The generator module (20) further includes a refrigerant separation unit (22) to separate refrigerant vapor and absorbent liquid.
5. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The condensing module (30) includes a condensing unit (31) and a heat dissipation unit (32) to condense refrigerant vapor into liquid refrigerant.
6. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The evaporation module (40) includes an evaporation unit (41) and a cooling output unit (42) to generate chilled water or cooling fluid.
7. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The absorption module (50) includes an absorption unit (51) and an absorbent circulation unit (52) to absorb refrigerant and form an absorbent circulation.
8. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The refrigerant circulation module (60) includes a circulation pipeline unit (61) and a delivery unit (62) for delivering refrigerant in a circulation flow between the generator module (20), the condenser module (30), the evaporator module (40) and the absorption module (50).
9. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The control module (70) includes a processing unit (71), a memory unit (72) and a communication unit (73) to monitor and control the operating status of each module.
10. The high-efficiency thermally driven lithium bromide cooling device as described in claim 1, wherein, The heat energy received by the heat source input module (10) comes from one of the following: the heat recovery system of the natural gas power generation equipment, the industrial waste heat system, the steam system, or the hot water system.