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Operating method of anti-impact energy storage heat radiator with adjustable spherical two-way pressure release valve

A working method and radiator technology, applied in the direction of heat exchanger shell, indirect heat exchanger, heat exchanger type, etc., can solve the problems of unbalanced flow, increased pressure, small liquid storage volume, etc., and achieve high reliability , not easy to damage the effect

Inactive Publication Date: 2016-11-09
江苏金荣森制冷科技有限公司
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  • Summary
  • Abstract
  • Description
  • Claims
  • Application Information

AI Technical Summary

Problems solved by technology

It has a small liquid storage capacity and no buffer. In the case of large temperature difference, low temperature environment, unbalanced flow, liquid with a certain viscosity, and fluid with impact force, the pressure inside the heat dissipation channel of the radiator will also increase. , especially in the case of impact force and relatively high viscosity fluid, due to the resistance of the fluid inside the channel, the fluid cannot quickly pass through the inside of the radiator channel, so that the pressure increases, exceeding the maximum operating pressure of the radiator, and the radiator is very Easily damaged and scrapped

Method used

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  • Operating method of anti-impact energy storage heat radiator with adjustable spherical two-way pressure release valve
  • Operating method of anti-impact energy storage heat radiator with adjustable spherical two-way pressure release valve
  • Operating method of anti-impact energy storage heat radiator with adjustable spherical two-way pressure release valve

Examples

Experimental program
Comparison scheme
Effect test

Embodiment 1

[0046] The accumulator tube is built in. When the liquid inlet and outlet of the anti-impact energy storage radiator are located on the top of the first liquid collection tank 501 and the second liquid collection tank 502, the energy storage tube 500 is installed in the first liquid collection tank 501 and the second liquid collection tank 502. The inside of the second sump 502 is enough.

Embodiment 2

[0048]The accumulator tube is built in, and when the liquid inlet and outlet of the anti-impact energy storage radiator are located on the sides of the first liquid collection tank 501 and the second liquid collection tank 502, the energy storage tube 500 is installed on the first liquid collection tank 501 and the second liquid collection tank 502. Inside the second liquid collecting tank 502, if the height of the accumulator tube 500 is higher than the height of the liquid inlet and the liquid outlet, no other treatment is required; if the height of the accumulator tube 500 is lower than the height of the liquid inlet and the liquid outlet , it is necessary to install a diverter baffle 507 on the top of the energy storage tube 500, the diverter baffle 507 separates the liquid inlet and outlet from the diverter liquid tank 503 at the corresponding height, so as to avoid the direct impact of the liquid into the diverter liquid tank 503 .

Embodiment 3

[0050] The energy storage tube is placed outside, and the liquid inlet and liquid outlet of the anti-impact energy storage radiator are located at the top of the first liquid collection tank 501 and the second liquid collection tank 502 . The opening at the bottom of the accumulator tube 500 is threadedly connected to the connection ports on the bottom side of the first sump 501 and the second sump 502, and the top of the accumulator tube 500 is connected to the first sump 501 and the second sump. The mounting edge on the top side of the liquid tank 502 is fixedly connected by bolts, which is convenient for disassembly and assembly. Because the energy storage tube 500 of the anti-shock energy storage radiator is arranged outside the first liquid collection tank 501 and the second liquid collection tank 502, it is possible to select different capacity and various energy storage tubes according to the difference in liquid flow and impact force. .

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Abstract

The invention relates to an anti-impact energy storage heat radiator with an adjustable spherical two-way pressure release valve. The heat radiator is characterized in that the heat radiator comprises an anti-impact energy storage heat radiator part, wherein a hydraulic bypass is connected between a first liquid collecting tank and a second liquid collecting tank of the anti-impact energy storage heat radiator part; the adjustable spherical two-way pressure release valve is arranged on the hydraulic bypass; the anti-impact energy storage heat radiator part comprises a heat radiator body and an energy storage pipe; the heat radiator body comprises the first liquid collecting tank and the second liquid collecting tank that are arranged right and left vertically; a plurality of shunt liquid tanks arranged transversely are connected between the first liquid collecting tank and the second liquid collecting tank; the energy storage pipe is in a pipe structure with an opened bottom and enclosed other parts; and the opening at the bottom of the energy storage pipe is communicated with the first liquid collecting tank and the second liquid collecting tank. The heat radiator has the advantages that the heat radiator is high in reliability and not easy to damage and ensures stable operation of a system.

Description

technical field [0001] The invention relates to a working method of an anti-impact energy storage radiator with an adjustable ball-type two-way pressure relief valve. Background technique [0002] A general radiator has a fixed ratio of capacity in the sump of the radiator, and there is a certain large resistance for the fluid to pass through the heat dissipation channel of the radiator. It has a small liquid storage capacity and no buffer. In the case of large temperature difference, low temperature environment, unbalanced flow, liquid with a certain viscosity, and fluid with impact force, the pressure inside the heat dissipation channel of the radiator will also increase. , especially in the case of impact force and relatively high viscosity fluid, due to the resistance of the fluid inside the channel, the fluid cannot quickly pass through the inside of the radiator channel, so that the pressure increases, exceeding the maximum operating pressure of the radiator, and the r...

Claims

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Application Information

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Patent Type & Authority Applications(China)
IPC IPC(8): F28D1/02F28F9/00F16K17/18
CPCF28D1/0213F16K17/18F28D2001/0253F28F9/005
Inventor 黄晓军
Owner 江苏金荣森制冷科技有限公司