一种高效热能动力节能设备
By introducing spiral heat source cores and solar heat exchange chambers into high-efficiency thermal power energy-saving equipment, the problems of insufficient energy-saving effect and inconvenient cleaning in the heat exchange process are solved, and the efficient integration of external heat sources and stable operation are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- SHAANXI YULIN ENERGY GRP YUSHEN COAL POWER CO LTD
- Filing Date
- 2025-09-02
- Publication Date
- 2026-07-17
AI Technical Summary
Existing high-efficiency thermal power energy-saving equipment has insufficient energy-saving effect in the heat exchange stage, cannot efficiently integrate external heat sources, and is not easy to disassemble and clean scale or grease, which leads to reduced heat exchange efficiency and affects the long-term stable operation and energy-saving performance of the equipment.
The design incorporates a spiral heat source core, a solar heat exchange chamber, low-iron ultra-white tempered glass, heat-absorbing copper plates, and a locking mechanism to increase the heat exchange area, integrate external heat sources, improve heat exchange efficiency, and facilitate disassembly and cleaning of dirt through the limiting and locking mechanisms, while preventing leakage and vibration.
It achieves efficient absorption of external heat energy, enhances heat exchange efficiency, prevents efficiency reduction caused by dirt, ensures stable equipment operation, and facilitates cleaning and maintenance.
Smart Images

Figure CN224517483U_ABST
Abstract
Claims
1. A high efficiency thermal power energy saving device comprising a housing (1), characterized in that, The shell (1) is threaded with side covers (2) at both ends. The side walls of the side covers (2) at both ends are provided with stepped sealing slots (3). A spiral heat source core (4) is snapped between the stepped sealing slots (3) at both ends. The two ends of the spiral heat source core (4) pass through the corresponding stepped sealing slots (3) and are threaded with inlet and outlet buffer chambers (5). A solar heat exchange chamber device (6) is fixedly connected to the top of the shell (1). A transfer chamber (7) is fixedly connected to one side wall of the housing (1), and a heat exchange medium inlet pipe (8) is fixedly connected to the side wall of the transfer chamber (7). Control valves (9) are fixedly connected to both ends of the other side wall of the transfer chamber (7), and output pipes (10) are fixedly connected to the output ends of both ends of the control valves (9). A limiting mechanism is provided between the housing (1) and the side covers (2) at both ends. A low-iron ultra-white tempered glass (11) is sealed to the top of the solar heat exchange chamber device (6) through an opening. A heat-absorbing copper plate (12) is fixedly connected to the inner side wall of the shell (1). A heat exchange pipe assembly (13) is fixedly connected to the bottom of the heat-absorbing copper plate (12). The other ends of the output pipes (10) at both ends are fixedly connected to the input end of the shell (1) and the input end of the heat exchange pipe assembly (13) respectively. The output port of the heat exchange pipe assembly (13) is fixedly connected to the top input port of the shell (1). The inlet and outlet buffer chambers (5) at both ends are provided with a locking mechanism between them and the spiral heat source core (4). A discharge control valve (14) is fixedly connected to the bottom of the shell (1).
2. The high-efficiency thermal power energy-saving device according to claim 1, characterized in that, The limiting mechanism includes a support plate (15), a threaded limiting sleeve (16), and a limiting bolt (17). The top and bottom of the side walls at both ends of the housing (1) are fixedly connected to the support plate (15), and the top and bottom of the side covers (2) at both ends are fixedly connected to the threaded limiting sleeve (16). Each support plate (15) has an opening through which a limiting bolt (17) is inserted. One end of each limiting bolt (17) passes through the support plate (15) and is threadedly connected to the corresponding threaded limiting sleeve (16).
3. The high-efficiency thermal power energy-saving device according to claim 1, characterized in that, The locking mechanism includes a connecting chamber (18), a locking rod (19), a locking hole (20), and a spring (21). The side walls of the side covers (2) at both ends are fixedly connected to the connecting chamber (18). The locking rod (19) is slidably connected inside the cavity of the connecting chamber (18) at both ends. The side walls of the side covers (2) at both ends and the side walls at both ends of the spiral heat source core (4) are provided with corresponding locking holes (20). The rod wall of the locking rod (19) at both ends is slidably sleeved with the spring (21). The locking rod (19) at both ends is inserted into the corresponding locking hole (20).
4. The high-efficiency thermal power energy-saving device according to claim 1, characterized in that, The spiral heat source core (4) includes a spiral tube section (22), and both ends of the spiral tube section (22) are fixedly connected to stepped sealing clamp tube sections (23). Both ends of the stepped sealing clamp tube sections (23) are fixedly connected to threaded connection tube sections (24), and the threaded connection tube sections (24) at both ends are threadedly connected to the inlet and outlet buffer chambers (5).
5. The high-efficiency thermal power energy-saving device according to claim 1, characterized in that, Both ends of the buffer chamber (5) are provided with buffer chambers (25) and are fixedly connected with honeycomb guide plates (26).
6. The high-efficiency thermal power energy-saving apparatus according to claim 1, characterized in that, The inner layer of nano-aerogel felt (27) and the outer layer of centrifugal glass wool (28) are provided in the side wall cavity of the shell (1) and the solar heat exchange chamber device (6). The surface of the heat-absorbing copper plate (12) is provided with a magnetron sputtered black chromium coating.