US2025354762A1PendingUtilityA1

Combination heat dissipation structure

Assignee: ASIA VITAL COMPONENTS CHINA CO LTDPriority: Nov 8, 2023Filed: Aug 1, 2025Published: Nov 20, 2025
Est. expiryNov 8, 2043(~17.3 yrs left)· nominal 20-yr term from priority
F28D 15/04F28D 15/0233F28D 15/0275F28D 15/046
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Claims

Abstract

A combination heat dissipation structure includes a vapor chamber and at least one heat pipe. The vapor chamber defines an airtight chamber filled with a working fluid and provided with first and second wick structures. The vapor chamber further includes at least one through hole formed on its upper wall and communicable with the airtight chamber, and annular elements provided in the airtight chamber corresponding to the through hole to contact with the first and second wick structures. The heat pipe has an open end inserted into the airtight chamber to contact with the first wick structure, such that the heat pipe is axially supported and located by the annular elements. With these arrangements, a flow-back path between the vapor chamber and the heat pipe is largely shortened to avoid dry burning in the vapor chamber and upgrade the two-phase heat exchange efficiency of the vapor chamber.

Claims

exact text as granted — not AI-modified
What is claimed is: 
     
         1 . A combination heat dissipation structure, comprising:
 a vapor chamber having an upper plate member and a lower plate member, which are closed to each other to define an airtight chamber between them, and the airtight chamber being filled with a working fluid; two opposing inner side surfaces of the upper plate member and the lower plate member that correspondingly face toward the airtight chamber being provided with a first wick structure and a second wick structure, respectively; and the upper plate member being provided with at least one through hole, which extends through the upper plate member in a thickness direction thereof and is communicable with the airtight chamber;   at least one heat pipe internally defining a heat pipe chamber that is communicable with the airtight chamber; the heat pipe having two ends, one of which is a closed end and the other is an open end; and the open end of the heat pipe being correspondingly inserted into the through hole to enter the airtight chamber of the vapor chamber and being in contact with the first wick structure; and   a plurality of annular elements being provided in the airtight chamber at a location corresponding to the through hole; each annular element having an upper end surface and a lower end surface, which are in contact with the first wick structure and the second wick structure, respectively; the open end of the heat pipe inserted into the airtight chamber being axially propped, located and supported by the plurality of annular elements, such that the vapor chamber and the heat pipe joined together can have an enhanced overall structural strength; and the plurality of annular elements being able to guide the working fluid condensed in the heat pipe to directly and quickly flow back to the second wick structure in the vapor chamber, such that the path and the time required for the working fluid to flow from the heat pipe back to the vapor chamber are largely shortened to enable upgraded two-phase heat exchange efficiency of the vapor chamber.   
     
     
         2 . The combination heat dissipation structure as claimed in  claim 1 , wherein each through hole formed on the vapor chamber includes an axially outward and upward protruded flange. 
     
     
         3 . The combination heat dissipation structure as claimed in  claim 1 , wherein the heat pipe chamber is provided on its entire inner wall surface with a third wick structure. 
     
     
         4 . The combination heat dissipation structure as claimed in  claim 3 , wherein the first, the second, and the third wick structure are formed of a sintered powder material. 
     
     
         5 . The combination heat dissipation structure as claimed in  claim 1 , wherein each annular element has an axial bore; and the axial bore being formed on the annular element to axially extend through the upper end surface and the lower end surface, such that the annular element forms a hollow structure. 
     
     
         6 . The combination heat dissipation structure as claimed in  claim 1 , wherein the upper end surfaces of the plurality of annular elements overlap the through hole, and outer edges of the plurality of annular elements do not contact one another. 
     
     
         7 . The combination heat dissipation structure as claimed in  claim 1 , wherein the annular element is a porous structure. 
     
     
         8 . The combination heat dissipation structure as claimed in  claim 5 , wherein the annular element is a porous structure. 
     
     
         9 . The combination heat dissipation structure as claimed in  claim 6 , wherein the annular element is a porous structure.

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