Generator with high stability

By setting up multi-directional shock absorbing components and support mechanisms in the generator, the problem of generator vibration damage is solved, stability and safety are improved, and high-temperature damage is prevented through auxiliary heat dissipation mechanisms, which improves the service life and operating efficiency of the generator.

CN120281135AInactive Publication Date: 2025-07-08SHANTOU POWER PLANT OF HUANENG (GUANGDONG) ENERGY DEVELOPMENT CO LTD
View PDF 3 Cites 0 Cited by

Patent Information

Application Number
CN202510764749.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-10
Publication Date
2025-07-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing generator lacks shock absorption mechanism, which causes internal parts to vibrate and damage during long-term operation, affecting operating efficiency and safety, and generating noise.

Method used

The first, second and third shock absorbing components and support mechanisms in the shock absorbing seat are adopted to achieve multi-directional shock absorption through the combination of shock absorbing dampers and shock absorbing springs, and are equipped with support mechanisms to adapt to different grounds, combining with auxiliary heat dissipation mechanisms to accelerate heat dissipation.

Benefits of technology

The multi-directional shock absorption of the generator is realized to ensure operational stability and safety. At the same time, the support mechanism is used to adapt to different grounds to ensure the stability of the generator placement, and the auxiliary heat dissipation mechanism prevents high-temperature damage and improves service life.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120281135A_ABST
    Figure CN120281135A_ABST
Patent Text Reader

Abstract

The invention provides a generator with high stability, and relates to the technical field of generators, the generator comprises a damping seat, a mounting plate is arranged in an inner cavity of the damping seat, a mounting groove is formed in the top wall of the mounting plate, and a generator body is fixedly mounted in the mounting groove; a first damping assembly and a second damping assembly are symmetrically arranged on the peripheral side of the mounting plate, a plurality of third damping assemblies are symmetrically arranged at the bottom of the mounting plate, and supporting mechanisms are symmetrically arranged on the outer side wall of the damping seat. According to the damping device, the first damping assembly, the second damping assembly and the third damping assemblies are arranged in the damping seat, multi-directional damping of the generator body can be achieved in the use process of the generator, and meanwhile the supporting mechanism arranged on the side wall of the damping seat is matched, so that the stability of the generator during operation can be effectively guaranteed.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of generators, and in particular to a generator with high stability. Background Art

[0002] A generator is a mechanical device that converts mechanical energy into electrical energy. It is driven by a water turbine, steam turbine, diesel engine or other power machinery, and converts the energy generated by water flow, air flow, fuel combustion or nuclear fission into mechanical energy and transmits it to the generator, which then converts it into electrical energy. However, during long-term operation, a generator will generate vibrations. If these vibrations are not effectively controlled, they will cause damage to the equipment itself and also generate a lot of noise.

[0003] In the prior art, such as the generator set of the invention patent CN110630380B, this generator set lacks a shock-absorbing mechanism and cannot provide effective buffering during the operation of the generator. If it operates for a long time, vibrations will be generated during the operation of its internal parts, resulting in the overall vibration of the generator. At the same time, long-term vibrations will also cause damage to the internal parts of the generator, thus affecting the operation efficiency, safety and service life of the generator. Therefore, it is urgent to design a generator with high stability to solve the above problems. Summary of the Invention

[0004] The present invention provides a generator with high stability to solve the problems raised in the above background art.

[0005] To solve the above technical problems, the present invention discloses a generator with high stability, including: a shock-absorbing base, an installation plate is arranged in the inner cavity of the shock-absorbing base, an installation groove is opened on the top wall of the installation plate, a generator body is fixedly installed in the installation groove, a first shock-absorbing component and a second shock-absorbing component are symmetrically arranged on the periphery of the installation plate respectively, a plurality of third shock-absorbing components are symmetrically arranged at the bottom of the installation plate, and a support mechanism is symmetrically arranged on the outer side wall of the shock-absorbing base.

[0006] Preferably, the first shock-absorbing component includes: a first shock-absorbing damper and a first connecting block. Both ends of the first shock-absorbing damper are fixedly installed with the first connecting block. The two first connecting blocks are respectively fixedly connected with the inner side wall of the shock-absorbing base and the side wall of the installation plate. A first shock-absorbing spring is sleeved on the first shock-absorbing damper, and both ends of the first shock-absorbing spring are fixedly connected with the two first connecting blocks respectively.

[0007] Preferably, the second shock absorption assembly includes: a second shock absorption damper and a second connection block. Second connection blocks are fixedly installed at both ends of the second shock absorption damper. A second shock absorption spring is sleeved on the second shock absorption damper. The two ends of the second shock absorption spring are respectively fixedly connected to the two second connection blocks. The two second connection blocks are respectively fixedly connected to the shock absorption seat and the mounting plate.

[0008] Preferably, the third shock absorption assembly includes: a third shock absorption damper and a third connection block. Third connection blocks are fixedly connected to both ends of the third shock absorption damper. A third shock absorption spring is sleeved on the third shock absorption damper. The two ends of the third shock absorption spring are respectively fixedly connected to the two third connection blocks. The two third connection blocks are respectively fixedly connected to the inner wall of the bottom side of the shock absorption seat and the bottom wall of the mounting plate.

[0009] Preferably, the support mechanism includes a fixed seat. The fixed seat is fixedly installed on the shock absorption seat. A through groove is formed in the fixed seat. A threaded sliding sleeve is fixedly installed in the through groove. A stud is threadedly connected in the threaded sliding sleeve.

[0010] Preferably, a support pad is further fixedly installed at the bottom end of the stud. A hand wheel is fixedly installed at the top end of the stud. A plurality of heat dissipation grooves are formed at the bottom of the installation groove.

[0011] Preferably, it further includes a power generation performance detection device for detecting the working state of a generator with high stability during power generation operation. The power generation performance detection device includes: A temperature sensor one for detecting the temperature of the inner wall of the generator chassis of a generator with high stability during power generation operation; A temperature sensor two for detecting the temperature of the outer wall of the generator chassis of a generator with high stability during power generation operation; A temperature sensor three for detecting the temperature of the air outside the generator chassis of a generator with high stability during power generation operation; An air velocity sensor for detecting the air velocity of the air outside the generator chassis of a generator with high stability during power generation operation; A controller and an alarm. The controller is electrically connected to the temperature sensor one, the temperature sensor two, the temperature sensor three, the air velocity sensor and the alarm. The controller controls the alarm to work based on the temperature sensor one, the temperature sensor two, the temperature sensor three and the air velocity sensor.

[0012] Preferably, the controller controls the alarm to work based on the temperature sensor one, the temperature sensor two, the temperature sensor three and the air velocity sensor, including: According to the detection values of the formula, temperature sensor 1, temperature sensor 2, temperature sensor 3, and wind speed sensor, calculate the actual power output by the current highly stable generator during power generation operation. The controller compares the actual power output by the current highly stable generator during power generation operation. With the preset output power range, when the actual power output by the highly stable generator during power generation operation Is lower than the preset output power range, the controller controls the alarm to sound an alarm. ; Wherein, Is the actual power output by the current highly stable generator during power generation operation, Is the theoretical power output by the highly stable generator during power generation operation, Is the cross-sectional area of the generator chassis, Is the thermal conductivity of the generator chassis material, Is the detection value of temperature sensor 1 for the inner wall temperature of the generator chassis during power generation operation of the highly stable generator, Is the detection value of temperature sensor 2 for the outer wall temperature of the generator chassis during power generation operation of the highly stable generator, Is the convective heat transfer coefficient between the air and the outer wall of the generator chassis, Is the adiabatic index of the gas, Is the gas constant, Is the molar mass of air under normal temperature and pressure, Is the detection value of temperature sensor 3 for the outside air temperature of the generator chassis during power generation operation of the highly stable generator, Is the height of the generator chassis, Is the detection value of the wind speed sensor for the outside air wind speed of the generator chassis during power generation operation of the highly stable generator, Is the specific heat capacity of air, Is the density of the outside air of the generator chassis, Is the Boltzmann constant.

[0013] A highly stable generator provided by the present invention, compared with the prior art, the present invention has the following beneficial effects: 1. During the use of the present invention, the cooperation of the first shock absorber, the first connecting block and the first shock spring can reduce the vibration of the generator body in the left - right direction. The cooperation of the second shock absorber, the second connecting block and the second shock spring can reduce the vibration of the generator body in the front - back direction. The cooperation of the third shock absorber, the third connecting block and the third shock spring can reduce the vibration of the generator body in the up - down direction, thus realizing multi - directional shock absorption of the generator body and ensuring the stability of the generator during operation.

[0014] 2. The support mechanism provided by the present invention can stably support the shock - absorbing seat. The handwheel can rotate the screw rod, enabling the screw rod to move up and down on the threaded sliding sleeve to adjust the position of the support pad, facilitating the placement of the generator on uneven ground and ensuring the stability of the generator placement. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the technical solutions in the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0016] Figure 1 FIG. 1 is a schematic structural diagram of a generator with high stability provided by an embodiment of the present invention; Figure 2 FIG. 2 is a schematic structural diagram of the connection between the mounting plate and the shock - absorbing seat of a generator with high stability provided by an embodiment of the present invention; Figure 3 FIG. 3 is a schematic structural diagram of the inside of the shock - absorbing seat of a generator with high stability provided by an embodiment of the present invention; Figure 4 FIG. 4 is a schematic structural diagram of the connection between the auxiliary heat - dissipation mechanism and the shock - absorbing seat of a generator with high stability provided by an embodiment of the present invention; Figure 5 FIG. 5 is a schematic top - view structural diagram of the connection between the auxiliary heat - dissipation mechanism and the shock - absorbing seat of a generator with high stability provided by an embodiment of the present invention.

[0017] Reference Numerals: 1. Shock absorber seat; 2. Mounting plate; 3. Mounting groove; 4. Generator body; 5. First shock damping device; 6. First connection block; 7. First shock spring; 8. Second shock damping device; 9. Second connection block; 10. Second shock spring; 11. Third shock damping device; 12. Third connection block; 13. Third shock spring; 14. Support mechanism; 15. Fixed seat; 16. Through groove; 17. Threaded sliding sleeve; 18. Stud; 19. Support pad; 20. Handwheel; 21. Heat dissipation groove; 22. Auxiliary heat dissipation mechanism; 23. Water tank; 24. Biaxial drive motor; 25. Threaded rod; 26. First fixing plate; 27. Driving pulley; 28. Threaded sleeve; 29. First connecting rod; 30. Second connecting rod; 31. Third connecting rod; 32. Groove; 33. Slide bar; 34. Slide block; 35. First spring; 36. Stirring rod; 37. Second fixing plate; 38. Rotating shaft; 39. Fan; 40. Driven pulley; 41. Belt. Detailed implementation manner

[0018] To make the objectives, technical solutions and advantages of the present invention clearer, the technical solutions in the present invention will be clearly and completely described below with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present invention without creative efforts shall fall within the protection scope of the present invention.

[0019] The present invention provides the following embodiments Embodiment 1 The embodiment of the present invention provides a generator with high stability, as Figures 1 - 3 shown, including: a shock absorber seat 1, a mounting plate 2 is arranged in the inner cavity of the shock absorber seat 1, a mounting groove 3 is opened on the top wall of the mounting plate 2, a generator body 4 is fixedly installed in the mounting groove 3, a first shock absorption assembly and a second shock absorption assembly are symmetrically arranged on the periphery of the mounting plate 2 respectively, a plurality of third shock absorption assemblies are symmetrically arranged at the bottom of the mounting plate 2, and a support mechanism 14 is symmetrically arranged on the outer side wall of the shock absorber seat.

[0020] Preferably, the first shock absorption assembly includes: a first shock damping device 5 and a first connection block 6, both ends of the first shock damping device 5 are fixedly installed with the first connection block 6, the two first connection blocks 6 are respectively fixedly connected with the inner side wall of the shock absorber seat 1 and the side wall of the mounting plate 2, a first shock spring 7 is sleeved on the first shock damping device 5, and both ends of the first shock spring 7 are fixedly connected with the two first connection blocks 6 respectively.

[0021] Preferably, the second shock absorption assembly includes: a second shock absorption damper 8 and a second connection block 9. Both ends of the second shock absorption damper 8 are fixedly installed with a second connection block 9. A second shock absorption spring 10 is sleeved on the second shock absorption damper 8. Both ends of the second shock absorption spring 10 are fixedly connected to the two second connection blocks 9 respectively. The two second connection blocks 9 are respectively fixedly connected to the shock absorption seat 1 and the mounting plate 2.

[0022] Preferably, the third shock absorption assembly includes: a third shock absorption damper 11 and a third connection block 12. Both ends of the third shock absorption damper 11 are fixedly connected to a third connection block 12. A third shock absorption spring 13 is sleeved on the third shock absorption damper 11. Both ends of the third shock absorption spring 13 are fixedly connected to the two third connection blocks 12 respectively. The two third connection blocks 12 are respectively fixedly connected to the inner wall of the bottom side of the shock absorption seat 1 and the bottom wall of the mounting plate 2.

[0023] Preferably, the support mechanism 14 includes a fixed seat 15. The fixed seat 15 is fixedly installed on the shock absorption seat 1. A through groove 16 is opened on the fixed seat 15. A threaded sliding sleeve 17 is fixedly installed in the through groove 16. A stud 18 is threadedly connected in the threaded sliding sleeve 17.

[0024] Preferably, a support pad 19 is further fixedly installed at the bottom end of the stud 18. A handwheel 20 is fixedly installed at the top end of the stud 18. A plurality of heat dissipation grooves 21 are opened at the bottom of the installation groove 3.

[0025] The working principle and beneficial effects of the above technical solution are as follows: In the generator with high stability of the present invention, the first shock absorption assembly, the second shock absorption assembly and the third shock absorption assembly arranged between the shock absorption seat 1 and the mounting plate 2 cooperate with each other to achieve multi-directional shock absorption of the generator body 4 and ensure the stability of the generator during operation. At the same time, a number of support mechanisms 14 arranged around the shock absorption seat 1 can provide reliable support for the generator, and can adapt to different working environments through adjustment, enabling the generator to be stably placed on uneven ground.

[0026] During the use of the above generator with high stability, the vibration of the generator body 4 in the left-right direction can be damped by the cooperation of the first shock absorber damper 5, the first connecting block 6 and the first shock spring 7. The vibration of the generator body 4 in the front-back direction can be damped by the cooperation of the second shock absorber damper 8, the second connecting block 9 and the second shock spring 10. The vibration of the generator body 4 in the up-down direction can be damped by the cooperation of the third shock absorber damper 11, the third connecting block 12 and the third shock spring 13, so as to realize multi-directional damping of the generator body 4 and ensure the stability during the operation of the generator. The provided support mechanism 14 can support the shock absorber seat 1. The handwheel 20 can rotate and screw the stud 18, so that the stud 18 moves up and down on the threaded sliding sleeve 17 to adjust the position of the support pad 19, which is convenient for placing the generator on the uneven ground and effectively ensures the stability of the generator placement.

[0027] Embodiment 2 Based on Embodiment 1, as Figures 4 - 5 shown, it further includes an auxiliary heat dissipation mechanism 22. The auxiliary heat dissipation mechanism 22 is arranged inside the shock absorber seat 1. The auxiliary heat dissipation mechanism 22 includes a water tank 23. The bottom of the water tank 23 is fixedly installed at the bottom of the installation groove 3. The double-shaft drive motor 24 is fixedly installed on the rear inner wall of the shock absorber seat 1. The output shafts on both sides of the double-shaft drive motor 24 are respectively fixedly installed with threaded rods 25. The fixing plate one 26 is fixedly installed on the rear side wall of the shock absorber seat 1. One end of the threaded rod 25 rotates through the fixing plate one 26 and is fixedly installed with a driving pulley 27. Two sets of stirring components are respectively arranged on the two threaded rods 25; The left stirring component includes a threaded sleeve 28. The threaded sleeve 28 is slidably connected to the threaded rod 25. The connecting rod one 29 is fixedly connected to the threaded sleeve 28. One ends of the connecting rod two 30 and the connecting rod three 31 are hinged to the inner wall of the water tank 23. One end of the connecting rod one 29 is slidably connected to the groove 32 embedded in the connecting rod two 30. The two ends of the sliding rod 33 are fixedly connected to the inner wall of the water tank 23. The other ends of the connecting rod two 30 and the connecting rod three 31 are respectively connected to the sliding rod 33 through sliders 34. A first spring 35 is connected between the two sliders 34. A number of stirring rods 36 are arranged on the connecting rod two 30 and the connecting rod three 31.

[0028] Preferably, it further includes two fixing plates two 37. The two fixing plates two 37 are symmetrically fixedly installed on the bottom of the shock absorber seat 1. One ends of the two rotating shafts 38 respectively rotate through the fixing plates two 37 and are fixedly installed with fans 39. The other ends of the two rotating shafts 38 are fixedly installed with driven pulleys 40. The driven pulley 40 is connected to the driving pulley 27 through a belt 41.

[0029] The working principle and beneficial effects of the above technical solution are as follows: The auxiliary heat dissipation mechanism 22 provided inside the shock absorber seat 1 can form a heat dissipation air duct inside the shock absorber seat 1 where the generator is installed, accelerating the heat dissipation at the bottom of the generator, effectively avoiding damage to the internal components of the generator body 4 caused by high-temperature operation of the generator, and thus affecting the power generation efficiency. When the auxiliary heat dissipation mechanism 22 needs to perform heat dissipation operation, the double-shaft drive motor 24 is started. The double-shaft drive motor 24 rotates forward and backward to drive the fixedly connected threaded rod 25 to rotate forward and backward, causing the threaded sleeve 28 threadedly connected to the threaded rod 25 to move left and right. At the same time, the drive pulley 27 fixedly installed on the threaded rod 25 rotates synchronously, causing the driven pulley 40 connected by the belt 41 to rotate synchronously. The rotating shaft 38 fixedly connected to the driven pulley 40 rotates synchronously, driving the fixedly connected fan 39 to rotate. The fans 39 provided on the left and right side walls of the shock absorber seat 1 form an air duct, accelerating the air flow inside the shock absorber seat 1; meanwhile, the connecting rod one 29 fixedly installed on the threaded sleeve 28 drives the connecting rod two 30 and the connecting rod three 31 to slide up and down along the sliding rod 33 under the action of the slider 34. At the same time, the first spring 35 can provide buffering and reset, enabling the several stirring rods 36 fixedly installed on the connecting rod two 30 and the connecting rod three 31 to stir the water body in the water tank 23, thereby accelerating the heat exchange between the air and the water body, and thus making the heat dissipation effect at the bottom of the generator better.

[0030] Embodiment 3 On the basis of Embodiment 1 or 2, it further includes a power generation performance detection device for detecting the working state of a highly stable generator during power generation operation. The power generation performance detection device includes: A temperature sensor one for detecting the temperature of the inner wall of the generator chassis of a highly stable generator during power generation operation. Among them, the generator having a chassis is prior art, such as CN220505181U and CN220822740U; A temperature sensor two for detecting the temperature of the outer wall of the generator chassis of a highly stable generator during power generation operation; A temperature sensor three for detecting the temperature of the air outside the generator chassis of a highly stable generator during power generation operation; An air velocity sensor for detecting the air velocity of the air outside the generator chassis of a highly stable generator during power generation operation; A controller and an alarm. The controller is electrically connected to the temperature sensor one, the temperature sensor two, the temperature sensor three, the air velocity sensor and the alarm. The controller controls the alarm to work based on the temperature sensor one, the temperature sensor two, the temperature sensor three and the air velocity sensor.

[0031] Preferably, the controller controls the alarm to work based on the temperature sensor 1, the temperature sensor 2, the temperature sensor 3 and the wind speed sensor, including: According to the formula and the detection values ​​of temperature sensor 1, temperature sensor 2, temperature sensor 3 and wind speed sensor, the actual output power of the generator with high stability during power generation operation is calculated. The controller compares the actual power output of the generator with high stability during power generation operation. Compared with the preset output power range, the actual output power of the generator with high stability when performing power generation operation When the output power is lower than the preset range, the controller controls the alarm to sound an alarm; ; in, It is the actual power output of the generator with high stability during power generation operation. The theoretical output power of a generator with high stability during power generation. is the cross-sectional area of ​​the generator case, is the thermal conductivity of the generator case material (in units ), A pair of temperature sensors with high stability are used to detect the temperature of the inner wall of the generator case when the generator is generating electricity. The temperature sensor is the detection value of the outer wall temperature of the generator case when the generator is in power generation operation. is the convection heat dissipation coefficient between the air and the outer wall of the generator (usually 5-25 ), is the gas adiabatic index (usually 1.3-1.4), is the gas constant (usually taken as 8.314 ), The temperature sensor is the detection value of the air temperature outside the generator chassis when the generator is in power generation operation. is the molar mass of air at room temperature and pressure (usually 28.97 ), is the height of the generator chassis, The wind speed sensor detects the wind speed outside the generator chassis when the generator is in power generation operation. is the specific heat capacity of air, is the Boltzmann constant (usually taken as 1.3×10 -23 ), is the density of the air outside the generator case.

[0032] The beneficial effects of the above technical solution are as follows: First, according to the formula and the detection values of Temperature Sensor 1, Temperature Sensor 2, Temperature Sensor 3 and the wind speed sensor, calculate the actual power output by the current highly stable generator during power generation operation. , through comprehensive consideration, is the theoretical power output by the highly stable generator during power generation operation, the cross-sectional area of the generator chassis, the thermal conductivity of the generator chassis material, the temperature of the inner wall of the generator chassis when the highly stable generator is performing power generation operation, the temperature of the outer wall of the generator chassis when the highly stable generator is performing power generation operation, the convective heat dissipation coefficient between the air and the outer wall of the generator, the gas adiabatic index, the gas constant, the temperature of the air outside the generator chassis when the highly stable generator is performing power generation operation, the molar mass of air under normal temperature and pressure, the height of the generator chassis, the wind speed of the air outside the generator chassis when the highly stable generator is performing power generation operation detected by the wind speed sensor, the specific heat capacity of air, the Boltzmann constant, and the density of the air outside the generator chassis, which makes the calculation result more accurate and reliable.

[0033] Secondly, the controller controls the alarm to work based on Temperature Sensor 1, Temperature Sensor 2, Temperature Sensor 3 and the wind speed sensor. If the actual power output by the current highly stable generator during power generation operation is lower than the preset output power range, the controller controls the alarm to give an alarm, thereby reminding the staff to check the generator in time, and maintaining the internal part of the generator according to the actual inspection results to meet the usage requirements of the generator for power generation operation, while ensuring the normal operation of the overall generator and the stability of the power generation operation, and effectively improving the service life of the generator, further meeting the usage requirements of the generator for the reliability and stability of power generation operation. By monitoring the working state of the generator in real time during the power generation process, it is ensured that the generator can be quickly detected and repaired in time after a failure.

[0034] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A generator with high stability, characterized in that, Including: A shock-absorbing seat (1), in the inner cavity of which there is a mounting plate (2). An installation groove (3) is provided on the top wall of the mounting plate (2), and a generator body (4) is fixedly installed in the installation groove (3). A first shock-absorbing component and a second shock-absorbing component are symmetrically arranged on the periphery of the mounting plate (2) respectively, and a number of third shock-absorbing components are symmetrically arranged at the bottom of the mounting plate (2). Support mechanisms (14) are symmetrically arranged on the outer side wall of the shock-absorbing seat (1); The support mechanism (14) includes a fixed seat (15), the fixed seat (15) is fixedly installed on the shock-absorbing seat (1), a through groove (16) is provided on the fixed seat (15), and a threaded sliding sleeve (17) is fixedly installed in the through groove (16), and a stud (18) is threadedly connected in the threaded sliding sleeve (17).

2. The generator with high stability according to claim 1, characterized in that, The first shock-absorbing component includes: a first shock-absorbing damper (5) and a first connecting block (6). Both ends of the first shock-absorbing damper (5) are fixedly installed with the first connecting block (6), and the two first connecting blocks (6) are respectively fixedly connected with the inner side wall of the shock-absorbing seat (1) and the side wall of the mounting plate (2). A first shock-absorbing spring (7) is sleeved on the first shock-absorbing damper (5), and both ends of the first shock-absorbing spring (7) are respectively fixedly connected with the two first connecting blocks (6).

3. A generator with high stability according to claim 1, characterized in that, The second shock-absorbing component includes: a second shock-absorbing damper (8) and a second connecting block (9). Both ends of the second shock-absorbing damper (8) are fixedly installed with the second connecting block (9), a second shock-absorbing spring (10) is sleeved on the second shock-absorbing damper (8), and both ends of the second shock-absorbing spring (10) are respectively fixedly connected with the two second connecting blocks (9). The two second connecting blocks (9) are respectively fixedly connected with the shock-absorbing seat (1) and the mounting plate (2).

4. A generator with high stability according to claim 1, characterized in that, The third shock-absorbing component includes: a third shock-absorbing damper (11) and a third connecting block (12). Both ends of the third shock-absorbing damper (11) are fixedly connected with the third connecting block (12), a third shock-absorbing spring (13) is sleeved on the third shock-absorbing damper (11), and both ends of the third shock-absorbing spring (13) are respectively fixedly connected with the two third connecting blocks (12). The two third connecting blocks (12) are respectively fixedly connected with the inner wall of the bottom side of the shock-absorbing seat (1) and the bottom wall of the mounting plate (2).

5. A generator with high stability according to claim 1, characterized in that, A support pad (19) is fixedly installed at the bottom end of the stud (18), a hand wheel (20) is fixedly installed at the top end of the stud (18), and a plurality of heat dissipation grooves (21) are provided at the bottom of the installation groove (3).

6. A generator with high stability according to claim 1, characterized in that, It also includes a power generation performance detection device for detecting the working state of a generator with high stability during power generation operation. The power generation performance detection device includes: A first temperature sensor for detecting the temperature of the inner wall of the generator chassis when the generator with high stability is performing power generation operation; A second temperature sensor for detecting the temperature of the outer side wall of the generator chassis when the generator with high stability is performing power generation operation; Temperature sensor three, which is used to detect the temperature of the air outside the generator chassis when the generator with high stability is performing power generation operations; Wind speed sensor, which is used to detect the wind speed of the air inside the generator chassis when the generator with high stability is performing power generation operations; A controller and an alarm. The controller is electrically connected to temperature sensor one, temperature sensor two, temperature sensor three, the wind speed sensor and the alarm. The controller controls the operation of the alarm based on temperature sensor one, temperature sensor two, temperature sensor three and the wind speed sensor.

7. A generator with high stability according to claim 6, characterized in that, The controller controls the operation of the alarm based on temperature sensor one, temperature sensor two, temperature sensor three and the wind speed sensor, including: According to the detection values of formula, temperature sensor 1, temperature sensor 2, temperature sensor 3 and wind speed sensor, calculate the actual output power of the current highly stable generator during power generation operation , the controller compares the actual output power of the current highly stable generator during power generation operation with the preset output power range. When the actual output power of the highly stable generator during power generation operation is lower than the preset output power range, the controller controls the alarm to give an alarm; Wherein, is the actual power output by a generator with high stability during power generation operation, is the theoretical power output by a generator with high stability during power generation operation, is the cross-sectional area of the generator chassis, is the thermal conductivity of the material of the generator chassis, is the detected value of the inner wall temperature of the generator chassis by temperature sensor one for a generator with high stability during power generation operation, is the detected value of the outer wall temperature of the generator chassis by temperature sensor two for a generator with high stability during power generation operation, is the convective heat dissipation coefficient between the air and the outer wall of the generator chassis, is the adiabatic index of the gas, is the gas constant, is the molar mass of air under normal temperature and pressure, is the detected value of the air temperature outside the generator chassis by temperature sensor three for a generator with high stability during power generation operation, is the height of the generator chassis, is the detected value of the air velocity outside the generator chassis by the wind speed sensor for a generator with high stability during power generation operation, is the specific heat capacity of air, is the density of the air outside the generator chassis, is the Boltzmann constant.

Citation Information

Patent Citations

  • generator set

    CN110630380B

  • Generator set case capable of cooling generator set in time

    CN220505181U

  • Efficient heat dissipation generator box and generator

    CN220822740U