A CONTAINER TYPE FREQUENCY CONVERSION PRY
20230008191 · 2023-01-12
Inventors
- XIANZHOU SUN (QINGDAO, SHANDONG PROVINCE, CN)
- YIMIN SHEN (QINGDAO, SHANDONG PROVINCE, CN)
- CHENGLIN SONG (QINGDAO, SHANDONG PROVINCE, CN)
Cpc classification
H05K7/1432
ELECTRICITY
H05K7/20909
ELECTRICITY
International classification
Abstract
A container type variable-frequency drive skid includes a container body, wherein a containing space is provided in the container body, a wiring unit, a voltage transformation unit and a frequency conversion unit are arranged in the containing space, a first cooling unit and a second cooling unit are further arranged in the containing space, the first cooling unit comprises an air duct and a first heat dissipation fan arranged in the air duct, the voltage transformation unit is located in the air duct, air flows through the air duct under the action of the first heat dissipation fan to cool the voltage transformation unit, the second cooling unit comprises a cold guide assembly and a second heat dissipation fan, and the cold guide assembly abuts against the frequency conversion unit. The first cooling unit cools the voltage transformation unit in an air-cooling manner, and the second cooling unit cools the frequency conversion unit in an air cooling and water-cooling combined manner, such that the situation that the voltage transformation unit and the frequency conversion unit cannot operate normally due to too high a temperature is avoided, and the operation efficiency and reliability of the whole machine are improved.
Claims
1. A container type variable-frequency drive skid comprising a container body with an accommodation space formed therein, the power transformation unit is provided with a wiring unit, a power transformation unit and an inverter unit, wherein the skid further comprises: a first cooling unit arranged in the accommodation space, which comprises: an air duct in which the power transformation unit is disposed; and a first cooling fan arranged in the air duct, which is configured to drive air pass the air duct for cooling of the power transformation unit; and a second cooling unit arranged in the accommodation space including a cooling conductive assembly disposed close to the inverter unit and a second cooling fan which are configured to cool down the inverter unit.
2. The container type variable-frequency drive skid according to claim 1, wherein the air duct comprises: a vertical air duct, within which the power transformation unit is disposed; a horizontal air duct disposed above the vertical air duct and communicated with the vertical air duct, within which the first cooling fan is arranged; the first cooling unit further comprises: an air inlet and an air outlet which are communicated with the air duct; wherein the air inlet is in communication with the vertical air duct and the air outlet is in communication with the horizontal air duct.
3. The container type variable-frequency drive skid according to claim 2, wherein the air inlet is disposed at a lower position on a rear side of the container body and the air outlet is disposed at an upper position on a front side of the container body.
4. The container type variable-frequency drive skid according to claim 2, wherein the air inlet and the air outlet are provided with rain-proof shutters.
5. The container type variable-frequency drive skid according to claim 1, wherein in the cooling conductive assembly refrigerant circulates; the cooling conductive assembly comprise: a refrigerant containment box arranged on the second cooling fan; and a cooling conductive plate assembly disposed close to the inverter unit, which is fluid communicated with the refrigerant containment box through a first pipe.
6. The container type variable-frequency drive skid according to claim 5, wherein a discharge port is formed on the first pipe.
7. The container type variable-frequency drive skid according to claim 5, wherein the cooling conductive plate assembly comprises a plurality of cooling conductive plate sub units arranged side by side, each cooling conductive plate sub unit includes a plurality of cooling conductive plates arranged side by side and two adjacent cooling conductive plates within one cooling conductive plate sub unit are in communication with each other through a second pipe.
8. The container type variable-frequency drive skid according to claim 7, wherein the cooling conductive plates are detachably connected to the inverter unit.
9. The container type variable-frequency drive skid according to claim 5, wherein the refrigerant containment box and the second cooling fan are located at an end side of the accommodation space and the cooling conductive plate assembly is located at a rear area of the accommodation space.
10. The container type variable-frequency drive skid according to claim 9, wherein the container body is close to the second cooling fan and heat dissipation protective meshes are provided at positions of the container body close to the second cooling fan, the refrigerant containment box and the cooling conductive plate assembly, respectively.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] In order to provide a clearer explanation of the present invention or technical solution in the prior art, a brief introduction of the drawings that are used is followed. It should be noted that obviously those drawings correspond to merely some embodiments of the present invention. For those of ordinary skill in the art, other drawings could be obtained without creative work.
[0021]
[0022]
[0023]
[0024]
[0025]
[0026]
[0027]
[0028] Wherein,
[0029] 100—first cooling unit, 110—air duct, 111—vertical air duct, 112—horizontal air duct, 120—air inlet, 130—air outlet, 140—first cooling fan, 150—connecting plate, 160—lifting ring;
[0030] 200—second cooling unit, 210—cooling conductive assembly, 211—refrigerant containment box, 212—cooling conductive plate assembly, 2121—cooling conductive plate, 2122—cooling conductive plate sub unit, 213—first pipe, 2131—inlet pipe, 2132—outlet pipe, 2131—discharge port, 214—second pipe, 220—second cooling fan, 230—hinge;
[0031] 300—wiring unit;
[0032] 400—power transformation unit, 410—bracket;
[0033] 500—inverter unit, 510—mounting plate;
[0034] 600—container body, 610—accommodation space, 620—rain-proof shutters, 630—heat dissipation protective mesh.
DETAILED DESCRIPTION OF THE EMBODIMENTS OF THE INVENTION
[0035] To make objectives, technical solutions and advantages clearer, embodiments of the present invention will be described in conjunction with the accompanying drawings. Obviously, the described embodiments are merely a part based on the present invention and other embodiments obtained by those of ordinary skill in the art without creative work shall fall within the protection scope of the present invention.
[0036] It should be noted that in the description of the present invention, terms ‘upper’, ‘lower’, ‘left’, ‘right’, ‘vertical’, ‘horizontal’, ‘inner’, ‘outer’ and the like only indicate directions or positional relationship shown in the drawings, which is only for a clear description and does not indicate or imply that devices or elements must have, or be constructed, or be operated in, a specific orientation, and therefore could not be understood as limitations of the present invention. In addition, the terms ‘first’ and ‘second’ are only used for descriptive purposes, and could not be understood as indication or implication of relative importance.
[0037] The present invention discloses a container type variable-frequency drive skid. With reference to
[0038] A separation plate (not labeled in the drawings) is provided in the accommodation space 610, which is used to divide it into a plurality of sub spaces mutually independent with each other. The wiring unit 300, the power transformation unit 400, the inverter unit 500, and the second cooling unit 200 are respectively arranged in one sub space, wherein the power transformation unit 400 and the first cooling unit 100 share a sub space. The container body 600 is provided with doors (not labeled in the drawings) corresponding to the sub spaces, units disposed therein could be checked and maintained by opening the door, which is convenient in usage. Additionally, the compartmentalized structural design of the accommodation space 610 also facilitates modular installation and improves assembly efficiency.
[0039] With reference to
[0040] Ambient air enters the vertical air duct 111 from the air inlet 120 under a suction force exerted by the first cooling fan 140. During a process when air flows upwards into the horizontal air duct 112, the power transformation unit 400 is cooled by airflow while heated air after heat exchange with the power transformation unit 400 finally flows out through the horizontal air duct 112 and the air outlet 130.
[0041] Further, with reference to
[0042] Furthermore, the air inlet 120 and the air outlet 130 are provided with rain-proof shutters 620 to prevent external miscellaneous from entering the accommodation space 610 therethrough to affect internal components.
[0043] The power transformation unit 400 is fixedly mounted at a bottom of the container body 600 through a bracket 410. A lower end of the vertical air duct 111 and the bracket 410 are fixedly connected by connecting plates 150. Adjacent connecting plates 150 are spaced apart with a certain distance to avoid blocking air from entering the vertical air duct 111 from the air inlet 120. The upper end of the vertical air duct 111 is fixedly connected with the horizontal air duct 112, and an upper side of the horizontal air duct 112 is fixedly connected with the top of the container body 600, and in this way a fixed installation of the air duct 110 in the accommodation space 610 is realized.
[0044] During an installation process, the vertical air duct 111 is sleeved on the periphery of the power transformation unit 400 from top to bottom and the lower end of the vertical air duct 111 is fixedly connected with the bracket 410 through the connecting plates 150 to realize the fixation of the vertical air duct 111; the upper side of the horizontal air duct 112 is fixedly installed on the top of the container body 600 through lifting rings 160 to realize the fixation of the horizontal air duct 112; the positions where the vertical air duct 111 and the horizontal air duct 112 are connected are tightened by screws to realize the fixation of the overall air duct 110.
[0045] With reference to
[0046] The refrigerant containment box 211 is arranged on the second cooling fan 220 to make full use of the space.
[0047] The refrigerant containment box 211 and the second cooling fan 220 are located at an end side of the accommodation space 610, and the cooling conductive plate assembly 212 is located at a rear area of the accommodation space 610. On one hand, the cooling conductive plate assembly 212 and the inverter unit 500 are close to each other to make cooling more efficiency; on the other hand, the second cooling fan 220 at the end side could further facilitate heat dissipation of the inverter unit 500 so that heat in the sub space where the inverter unit 500 is installed could be discharged by the second cooling fan 220 in time.
[0048] Further, with reference to
[0049] The cooling conductive plate assembly 212 includes a plurality of cooling conductive plate sub units 2122 arranged side by side, and further each cooling conductive plate sub unit 2122 includes a plurality of cooling conductive plates 2121 arranged side by side, and two adjacent cooling conductive plates 2121 within one cooling conductive plate sub unit 2122 are in communication with each other by a second pipe 214. In the present embodiment, determined by the size of the inverter unit 500, two cooling conductive plate sub units 2122 are provided. The two cooling conductive plate sub units 2122 are arranged side by side along a horizontal direction. Each cooling conductive plate sub unit 2122 includes two cooling conductive plates 2122 arranged side by side along a vertical direction, and the two cooling conductive plates 2121 are in communication with each other through the second pipe 214.
[0050] Refrigerant from the inlet pipe 2131 enters each cooling plate sub unit 2122 respectively, converges in the outlet pipe 2132, and finally flows back to the refrigerant containment box 211.
[0051] With reference to
[0052] The first pipe 213 is provided with a discharge port 2133. In the present embodiment, the discharge port 2133 is formed on the inlet pipe 2131. Refrigerant could be discharged from the discharge port 2133 to facilitate maintenance operations.
[0053] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, not to limit them; 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: technical solutions recited in the foregoing embodiments could be modified, or some of the technical features thereof could be equivalently replaced; but these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.