1. An electronic device, comprising:
a case;
a heat source located inside the case; and
a radiator disposed inside the case and spaced apart from the heat source at a distance so as to absorb heat from the heat source through thermal radiation, the radiator comprising a case body and a plurality of cellular compartments formed by a plurality of partition plates disposed inside the case body, the cellular compartments being filled with a heat dissipation material.
2. The electronic device as claimed in claim 1, wherein the heat dissipation material contains 15%-30% by volume of copper, 50%-85% by volume of a phase change material and 15%-20% by volume of air.
3. The electronic device as claimed in claim 2, wherein the radiator has a surface facing the heat source, a central area and an outer surrounding area are defined on the radiator surface, the outer surrounding area surrounds the central area, a geometrical central point of the central area overlaps a geometrical central point of the radiator surface, an area of the central area is 10%-50% of an area of the radiator surface, and an orthographic projection range of the heat source on the radiator surface is located on the central area.
4. The electronic device as claimed in claim 3, wherein some of the cellular compartments are filled with the copper material and contiguously arranged to extend from the central area toward the outer surrounding area.
5. The electronic device as claimed in claim 2, wherein the radiator has a surface facing toward the heat source, a central area and an outer surrounding area are defined on the radiator surface, the outer surrounding area surrounds the central area, a geometrical central point of the central area overlaps a geometrical central point of the radiator surface, an area of the central area is 10%-50% of an area of the radiator surface, and an orthographic projection range of the heat source on the surface is located on the outer surrounding area.
6. The electronic device as claimed in claim 5, wherein some of the cellular compartments are filled with the copper material and contiguously arranged to extend from the central area toward the outer surrounding area.
7. The electronic device as claimed in claim 2, wherein the cellular compartments that overlap the orthographic projection range of the heat source are filled with the phase change material.
8. The electronic device as claimed in claim 2, wherein the cellular compartments adjacent a side edge of the case body are filled with the copper material.
9. The electronic device as claimed in claim 2, wherein the phase change material is an alkane.
10. The electronic device as claimed in claim 1, wherein the case body and the partition plates are made of aluminum.
11. A radiator for dissipating heat from an electronic device that has a heat source, the radiator comprising:
a case body;
a plurality of cellular compartments formed by a plurality of partition plates disposed inside the case body; and
heat dissipation material that fills the cellular compartments.
12. The radiator as claimed in claim 11, wherein the heat dissipation material contains 15%-30% by volume of copper, 50%-85% by volume of a phase change material and 15%-20% by volume of air.
13. The radiator as claimed in claim 12, wherein the radiator has a surface facing the heat source, a central area and an outer surrounding area are defined on the radiator surface, the outer surrounding area surrounds the central area, a geometrical central point of the central area overlaps a geometrical central point of the radiator surface, an area of the central area is 10%-50% of an area of the radiator surface, and an orthographic projection range of the heat source on the radiator surface is located on the central area.
14. The electronic device as claimed in claim 13, wherein some of the cellular compartments are filled with the copper material and contiguously arranged to extend from the central area toward the outer surrounding area.
15. The electronic device as claimed in claim 12, wherein the radiator has a surface facing toward the heat source, a central area and an outer surrounding area are defined on the radiator surface, the outer surrounding area surrounds the central area, a geometrical central point of the central area overlaps a geometrical central point of the radiator surface, an area of the central area is 10%-50% of an area of the radiator surface, and an orthographic projection range of the heat source on the surface is located on the outer surrounding area.
16. The electronic device as claimed in claim 15, wherein some of the cellular compartments are filled with the copper material and contiguously arranged to extend from the central area toward the outer surrounding area.
17. The electronic device as claimed in claim 12, wherein the cellular compartments that overlap the orthographic projection range of the heat source are filled with the phase change material.
18. The electronic device as claimed in claim 12, wherein the cellular compartments adjacent a side edge of the case body are filled with the copper material.
19. The electronic device as claimed in claim 12, wherein the phase change material is an alkane.
20. The electronic device as claimed in claim 1, wherein the case body and the partition plates are made of aluminum.
The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.
1. A method comprising:
defining a plurality of translating references for an object;
generating a common information model (CIM) with a processor of a system, the CIM comprising one or more functional object attributes of the object;
generating a first instantiation of a user information model (UIM), the first instantiation of the UIM comprising one or more user-associated attributes of the object;
interfacing with the CIM using the first instantiation of the UIM;
translating the one or more user-associated attributes of the first instantiation of the UIM to the one or more functional object attributes of the CIM using the plurality of translating references;
generating a second instantiation of the UIM;
interfacing with the CIM using the second instantiation of the UIM; and
translating one or more user-associated attributes of the second instantiation of the UIM to the one or more functional object attributes of the CIM using the plurality of translating references;
the first instantiation of the UIM describing the user-associated attributes of the object in terms specific to a first management area and the second instantiation of the UIM describing the user-associated attributes of the object in terms specific to a second management area.
2. The method of claim 1, wherein the first instantiation of the UIM is a service management model and the second instantiation of the UIM is a transport resources management model.
3. The method of claim 1, wherein the first instantiation of the UIM is a domain-focused view of the CIM.
4. The method of claim 1, wherein the first instantiation of the UIM is one of a service management model, a transport resources management model, and a communication protocol management model.
5. The method of claim 1, further comprising storing the plurality of translating references in a storage device.
6. The method of claim 1, wherein the object is a radio.
7. A computer readable storage device comprising a resource management software module that is operative, when executed by a processor, to perform a method, the method comprising:
defining a plurality of translating references for an object;
generating a common information model (CIM), the CIM comprising one or more functional object attributes of the object;
generating a first instantiation of a user information model (UIM), the first instantiation of the UIM comprising one or more user-associated attributes of the object;
interfacing with the CIM using the first instantiation of the UIM;
translating the one or more user-associated attributes of the first instantiation of the UIM to the one or more functional object attributes of the CIM using the plurality of translating references;
generating a second instantiation of the UIM;
interfacing with the CIM using the second instantiation of the UIM; and
translating one or more user-associated attributes of the second instantiation of the UIM to the one or more functional object attributes of the CIM using the plurality of translating references;
the first instantiation of the UIM describing the user-associated attributes of the object n terms specific to a first management area and the second instantiation of the UIM describing the user-associated attributes of the object in terms specific to a second management area.
8. The computer readable storage device of claim 7, wherein the first instantiation of the UIM is a service management model and the second instantiation of the UIM is a transport resources management model.
9. The computer readable storage device of claim 7, wherein the first instantiation of the UIM is a domain-focused view of the CIM.
10. The computer readable storage device of claim 7, wherein the first instantiation of the UIM is one of a service management model, a transport resources management model, and a communication protocol management model.
11. The computer readable storage device of claim 7, wherein the method further comprises storing the plurality of translating references in a storage device.
12. The computer readable storage device of claim 7, wherein the object is a radio.
13. A system comprising:
a processor;
a means for defining a plurality of translating references for an object;
a means for generating a common information model (CIM), the CIM comprising one or more functional object attributes of the object;
a means for generating a first instantiation of a user information model (UIM), the first instantiation of the UIM comprising one or more user-associated attributes of the object, interfacing with the CIM using the first instantiation of the UIM, and translating the one or more user-associated attributes of the first instantiation of the UIM to the one or more functional object attributes of the CIM using the plurality of translating references; and
a means for generating a second instantiation of a user information model (UIM), interfacing with the CIM using the second instantiation of the UIM, and translating one or more user-associated attributes of the second instantiation of the UIM to the one or more functional attributes of the CIM using the plurality of translating references;
the first instantiation of the UIM describing the user-associated attributes of the object in terms specific to a first management area and the second instantiation of the UIM describing the user associated attributes of the object in terms specific to a second management area.
14. The system of claim 13, wherein the first instantiation of the UIM is a service management model and the second instantiation of the UIM is a transport resources management model.