The invention relates to a liquid supply mechanism and a liquid cooling system and, more particularly, to a liquid supply mechanism capable of supplying a cooling liquid to a liquid cooling system in time when the cooling liquid is insufficient.
In general, a liquid cooling system essentially consists of a liquid cooling head, a radiator, a pump and a liquid storage box connected through a plurality of tubes. When the liquid cooling system is dissipating heat from an electronic component, the pump transports a cooling liquid to the liquid cooling head, the cooling liquid absorbs the heat generated by the electronic component, and then the radiator cools the cooling liquid. After the liquid cooling system is used for a long time, the cooling liquid will reduce due to vaporization, such that the cooling liquid may be insufficient. If the user does not supply the cooling liquid in time, the liquid cooling system may be damaged due to insufficient cooling liquid.
The invention provides a liquid supply mechanism and a liquid cooling system equipped with the liquid supply mechanism, so as to solve the aforesaid problems.
According to an embodiment of the invention, a liquid supply mechanism comprises a casing, a cover and a plunger. The casing has a liquid outlet. The cover is connected to the casing. A chamber is formed between the casing and the cover. The chamber communicates with the liquid outlet. The cover has a first magnetic area. The plunger is movably disposed in the chamber. The plunger has a second magnetic area. A position of the first magnetic area is corresponding to a position of the second magnetic area and a magnetic pole of an end of the first magnetic area facing the second magnetic area is identical to a magnetic pole of an end of the second magnetic area facing the first magnetic area, such that a magnetic repulsive force is generated between the first magnetic area and the second magnetic area.
According to another embodiment of the invention, a liquid cooling system comprises a liquid cooling head, a radiator, a pump, a liquid storage box, a plurality of tubes and a liquid supply mechanism. The tubes are connected between the liquid cooling head, the radiator, the pump and the liquid storage box. The liquid supply mechanism is selectively connected to one of the liquid cooling head, the radiator, the pump, the liquid storage box and the tubes. The liquid supply mechanism comprises a casing, a cover and a plunger. The casing has a liquid outlet. The cover is connected to the casing. A chamber is formed between the casing and the cover. The chamber communicates with the liquid outlet. The cover has a first magnetic area. The plunger is movably disposed in the chamber. The plunger has a second magnetic area. A position of the first magnetic area is corresponding to a position of the second magnetic area and a magnetic pole of an end of the first magnetic area facing the second magnetic area is identical to a magnetic pole of an end of the second magnetic area facing the first magnetic area, such that a magnetic repulsive force is generated between the first magnetic area and the second magnetic area.
According to an embodiment of the invention, a liquid supply mechanism comprises a casing, a cover and a plunger. The casing has a liquid outlet and a first magnetic area. The cover is connected to the casing. A chamber is formed between the casing and the cover. The chamber communicates with the liquid outlet. The plunger is movably disposed in the chamber. The plunger has a second magnetic area. A position of the first magnetic area is corresponding to a position of the second magnetic area and a magnetic pole of an end of the first magnetic area facing the second magnetic area is opposite to a magnetic pole of an end of the second magnetic area facing the first magnetic area, such that a magnetic attraction force is generated between the first magnetic area and the second magnetic area.
According to another embodiment of the invention, a liquid cooling system comprises a liquid cooling head, a radiator, a pump, a liquid storage box, a plurality of tubes and a liquid supply mechanism. The tubes are connected between the liquid cooling head, the radiator, the pump and the liquid storage box. The liquid supply mechanism is selectively connected to one of the liquid cooling head, the radiator, the pump, the liquid storage box and the tubes. The liquid supply mechanism comprises a casing, a cover and a plunger. The casing has a liquid outlet and a first magnetic area. The cover is connected to the casing. A chamber is formed between the casing and the cover. The chamber communicates with the liquid outlet. The plunger is movably disposed in the chamber. The plunger has a second magnetic area. A position of the first magnetic area is corresponding to a position of the second magnetic area and a magnetic pole of an end of the first magnetic area facing the second magnetic area is opposite to a magnetic pole of an end of the second magnetic area facing the first magnetic area, such that a magnetic attraction force is generated between the first magnetic area and the second magnetic area.
As mentioned in the above, the liquid supply mechanism of the invention is selectively connected to one of the liquid cooling head, the radiator, the pump, the liquid storage box and the tubes. When the cooling liquid reduces and then the hydraulic pressure of the liquid cooling system reduces, the liquid supply mechanism utilizes the magnetic repulsive force or the magnetic attraction force to drive the plunger to move, so as to inject the cooling liquid from the chamber into the liquid cooling system. In other words, the liquid supply mechanism of the invention can supply the cooling liquid to the liquid cooling system automatically when the cooling liquid is insufficient, so as to prevent the liquid cooling system from being damaged due to insufficient cooling liquid.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
Referring to
As shown in
As shown in
The liquid supply mechanism 20 comprises a casing 200, a cover 202, a plunger 204 and a washer 206. The casing 200 has a liquid outlet 2000. The cover 202 is connected to the casing 200 and a chamber 208 is formed between the casing 200 and the cover 202. The chamber 208 communicates with the liquid outlet 2000 and contains a cooling liquid 22. In practical applications, the cooling liquid 22 may be water or other liquids. The plunger 204 is movably disposed in the chamber 208. The washer 206 is sleeved on an outer wall of the plunger 204 and abuts against an inner wall of the casing 200. Accordingly, the washer 206 can prevent the cooling liquid 22 from entering a space between the cover 202 and the plunger 204.
When the liquid supply mechanism 20 is connected to one of the liquid cooling head 10, the radiator 12, the pump 14, the liquid storage box 16 and the tubes 18 shown in
The cover 202 has a first magnetic area 210 and the plunger 204 has a second magnetic area 212, wherein a position of the first magnetic area 210 is corresponding to a position of the second magnetic area 212. As shown in
When the liquid supply mechanism 20 is assembled completely and the chamber 208 contains the cooling liquid 22, the magnetic repulsive force generated between the first magnetic area 210 and the second magnetic area 212 balances with the hydraulic pressure generated by the cooling liquid 22. At this time, the plunger 204 stays static in the chamber 208 . When the cooling liquid of the liquid cooling system 1 reduces and then the hydraulic pressure reduces, the magnetic repulsive force generated between the first magnetic area 210 and the second magnetic area 212 will push the plunger 204 to move, so as to inject the cooling liquid 22 from the chamber 208 into one of the liquid cooling head 10, the radiator 12, the pump 14, the liquid storage box 16 and the tubes 18. In other words, the liquid supply mechanism 20 of the invention can supply the cooling liquid to the liquid cooling system 1 automatically when the cooling liquid is insufficient, so as to prevent the liquid cooling system 1 from being damaged due to insufficient cooling liquid. When the magnetic repulsive force generated between the first magnetic area 210 and the second magnetic area 212 balances with the hydraulic pressure generated by the cooling liquid 22 again, the plunger 204 stops moving.
Referring to
When the liquid supply mechanism 20′ is assembled completely and the chamber 208 contains the cooling liquid 22, the magnetic repulsive force generated between the first magnetic area 210 and the second magnetic area 212 and the magnetic attraction force generated between the second magnetic area 212 and the third magnetic area 214 balance with the hydraulic pressure generated by the cooling liquid 22. At this time, the plunger 204 stays static in the chamber 208. When the cooling liquid of the liquid cooling system 1 reduces and then the hydraulic pressure reduces, the magnetic repulsive force generated between the first magnetic area 210 and the second magnetic area 212 will push the plunger 204 to move and the second magnetic area 212 and the magnetic attraction force generated between the second magnetic area 212 and the third magnetic area 214 will pull the plunger 204 to move, so as to inject the cooling liquid 22 from the chamber 208 into one of the liquid cooling head 10, the radiator 12, the pump 14, the liquid storage box 16 and the tubes 18. When the magnetic repulsive force generated between the first magnetic area 210 and the second magnetic area 212 and the magnetic attraction force generated between the second magnetic area 212 and the third magnetic area 214 balance with the hydraulic pressure generated by the cooling liquid 22 again, the plunger 204 stops moving.
In this embodiment, the third magnetic area 214 may be detachably disposed on a bottom of the casing 200. When a user wants to supply the cooling liquid 22 to the liquid supply mechanism 20′, the user may detach the third magnetic area 214 from the bottom of the casing 200 first, so as to prevent the magnetic attraction force generated between the second magnetic area 212 and the third magnetic area 214 from hindering the supply of the cooling liquid 22.
Referring to
When the liquid supply mechanism 30 is connected to one of the liquid cooling head 10, the radiator 12, the pump 14, the liquid storage box 16 and the tubes 18 shown in
The casing 300 has a first magnetic area 310 and the plunger 304 has a second magnetic area 312, wherein a position of the first magnetic area 310 is corresponding to a position of the second magnetic area 312. As shown in
When the liquid supply mechanism 30 is assembled completely and the chamber 308 contains the cooling liquid 32, the magnetic attraction force generated between the first magnetic area 310 and the second magnetic area 312 balances with the hydraulic pressure generated by the cooling liquid 32. At this time, the plunger 304 stays static in the chamber 308 . When the cooling liquid of the liquid cooling system 1 reduces and then the hydraulic pressure reduces, the magnetic attraction force generated between the first magnetic area 310 and the second magnetic area 312 will pull the plunger 304 to move, so as to inject the cooling liquid 32 from the chamber 308 into one of the liquid cooling head 10, the radiator 12, the pump 14, the liquid storage box 16 and the tubes 18. In other words, the liquid supply mechanism 30 of the invention can supply the cooling liquid to the liquid cooling system 1 automatically when the cooling liquid is insufficient, so as to prevent the liquid cooling system 1 from being damaged due to insufficient cooling liquid. When the magnetic attraction force generated between the first magnetic area 310 and the second magnetic area 312 balances with the hydraulic pressure generated by the cooling liquid 32 again, the plunger 304 stops moving.
In this embodiment, the first magnetic area 310 may be detachably disposed on a bottom of the casing 300. When a user wants to supply the cooling liquid 32 to the liquid supply mechanism 30, the user may detach the first magnetic area 310 from the bottom of the casing 300 first, so as to prevent the magnetic attraction force generated between the first magnetic area 310 and the second magnetic area 312 from hindering the supply of the cooling liquid 32.
As mentioned in the above, the liquid supply mechanism of the invention is selectively connected to one of the liquid cooling head, the radiator, the pump, the liquid storage box and the tubes. When the cooling liquid reduces and then the hydraulic pressure of the liquid cooling system reduces, the liquid supply mechanism utilizes the magnetic repulsive force or the magnetic attraction force to drive the plunger to move, so as to inject the cooling liquid from the chamber into the liquid cooling system. In other words, the liquid supply mechanism of the invention can supply the cooling liquid to the liquid cooling system automatically when the cooling liquid is insufficient, so as to prevent the liquid cooling system from being damaged due to insufficient cooling liquid.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.