a) Field of the Invention
The present invention relates to a memory cooling device, and more particularly to a cooling device which is able to improve a heat dissipation efficiency of a memory or a chip, thereby increasing a lifetime of usage for the memory or chip.
b) Description of the Prior Art
A conventional heat dissipation structure for a memory is disclosed in the Taiwanese Utility Model Patent No. M298165, wherein connection sections of a heat pipe are inserted into arc-shape grooves of a connection seat, and a cross-over member is used to clamp a memory. However, under a long term usage, the structure is provided with following shortcomings:
The primary object of the present invention is to provide a memory cooling device such that by a straight surface at a side of a heat pipe, and by affixing at least one layer of thermal adhesive on a surface of a memory, operating temperature of a working memory can be transmitted directly to the heat pipe and a left and a right clamping seat by the thermal adhesive, to provide a higher heat dissipation rate of the memory and more actual and efficient heat dissipation, thereby improving a lifetime of usage for the memory.
Another object of the present invention is to provide a memory cooling device such that by using the thermal adhesive as a connection interface between an outer wall of the heat pipe and the memory, the heat dissipation effect of the memory can be further improved.
To enable a further understanding of the said objectives and the technological methods of the invention herein, the brief description of the drawings below is followed by the detailed description of the preferred embodiments.
Referring to
The first thermal adhesive 30 can be coated in a glue shape on the clamping surface 121 of the left clamping seat 12, and the first straight surface 22, allowing the bottom surface 42 of the memory 40 to be affixed into the first thermal adhesive 30.
The second thermal adhesive 30′ can be coated in a glue shape on the clamping surface 141 of the right clamping seat 14, allowing the outer surface 44 of the memory 40 to be affixed into the second thermal adhesive 30′.
The fixing interface 122 of the left clamping seat 12 is provided with connection holes 124, the fixing interface 144 of the right clamping seat 14 is provided with connection holes 145, and bolts 50 are screwed into the connection holes 145, 124, to connect the left and right clamping seats 12, 14 into one body.
Heat generated from the bottom surface 42 of the memory 40 can be transmitted to the clamping surface 121 of the left clamping seat 12 through the first thermal adhesive 30.
The first heat pipe 20 is provided with a second straight surface 24 at a location opposite to the first straight surface 22, and the second straight surface 24 is latched to and in touch with a groove wall 125 (as shown in
The first heat pipe 20 is in a U shape and is disposed with an outer pipe 21. A surface of the outer pipe 21 is latched with cooling fins 211 (as shown in
Outer surfaces of the left and right clamping seats 12, 14 are provided with cooling gills 126, 146.
Referring to
The outer surface 44 of the memory 40 is affixed on a surface of the second thermal adhesive 30′, the fixing interface 144 of the right clamping seat 14 is connected and fixed with the fixing interface 122 of the left clamping seat 12, and the left and right clamping seats 12, 14 clamp and affix the memory 40 and the first and second heat pipes 20, 20′ respectively. Operating temperature generated by the memory 40 is transmitted to the first thermal adhesive 30 from the bottom surface 42, and is then directly transmitted to the first straight surface 22 of the first heat pipe 20; whereas, the operating temperature generated by the memory 40 is transmitted to the second thermal adhesive 30′ from the outer surface 44, and is directly transmitted to the first straight surface 22′ of the second heat pipe 20′ for cooling.
The first thermal adhesive 30 can be coated in a glue shape on the clamping surface 121 of the left clamping seat 12, and the first straight surface 22, allowing the bottom surface 42 of the memory 40 to be affixed into the first thermal adhesive 30.
The second thermal adhesive 30′ can be coated in a glue shape on the clamping surface 141 of the right claming seat 14, allowing the outer surface 44 of the memory 40 to be affixed into the second thermal adhesive 30′.
Referring to
The fixing interface 122 of the left clamping seat 12 is provided with connection holes 124, the fixing interface 144 of the right clamping seat 14 is provided with connection holes 145, and bolts 50 are screwed into the connection holes 145, 124, to connect the left and right clamping seats 12, 14 into one body.
Temperature generated from the bottom surface 42 of the memory 40 can be transmitted to the clamping surface 121 of the left clamping seat 12 through the first thermal adhesive 30; whereas, temperature generated from the outer surface 44 of the memory 40 can be transmitted to the clamping surface 141 of the right clamping seat 14 through the second thermal adhesive 30′.
Referring to
The first straight surface 22 of the first heat pipe 20 is affixed on the bottom surface 42 by the first thermal adhesive 30. As a design of the first straight surface 22, heat conduction area is enlarged. Due to that the first thermal adhesive 30 is plastically (can be filled) affixed to surface capillaries of the first straight surface 22, surface capillaries of the clamping surface 121, and capillaries of the bottom surface 42, an efficiency of transmitting heat from the bottom surface 42 to the first straight surface 22 is completely improved, thereby increasing the heat dissipation efficiency.
The second thermal adhesive 30′ is plastically (can be filled) affixed on surface capillaries of the clamping surface 141, and is plastically affixed on the outer surface 44, enabling heat on the outer surface 44 to be efficiently transmitted to the right clamping seat 14 for cooling. Its heat dissipation efficiency is apparently improved from the affixing of the second thermal adhesive 30′. Furthermore, fins 211 are used to enhance the effect of heat dissipation for the first heat pipe 20, and the gills 126, 146 also improve the effect of heat dissipation.
Referring to
Furthermore, the first and second heat pipes 20, 20′ are latched respectively into the grooves 123, 147, and also transmit the heat to the left and right clamping seats 12, 14 for cooling, upon transmitting the heat. In a same time, fins 211′ that are fixed on an outer pipe 21′ also enhance the effect of heat dissipation for the second heat pipe 20′, and the gill 146 is also used to enhance the effect of heat dissipation.
Accordingly, as the first and second heat pipes 20, 20′ of the present invention are provided with the first straight surfaces 22, 22′ of larger areas, which provide larger heat conduction areas; and the heat transmission is executed using the first and second thermal adhesives 30, 30′ as the heat transmission media, the heat transmission efficiency will be improved. Therefore, operating temperature on the bottom surface 42 and the outer surface 44 of the memory 40 can be almost directly transmitted to the first and second heat pipes 20, 20′, which is provided with the heat dissipation efficiency higher than that of the prior art, thereby effectively solving the problems that the heat is insufficiently dissipated from the memory 40, and that the heat dissipation efficiency is inferior.
It is of course to be understood that the embodiments described herein is merely illustrative of the principles of the invention and that a wide variety of modifications thereto may be effected by persons skilled in the art without departing from the spirit and scope of the invention as set forth in the following claims.