Radio Remote Unit and Communications Device
20190230815 ยท 2019-07-25
Inventors
Cpc classification
H01L2924/0002
ELECTRICITY
H05K7/20163
ELECTRICITY
H01L2924/0002
ELECTRICITY
H01L2924/00
ELECTRICITY
H05K7/20563
ELECTRICITY
International classification
Abstract
A radio remote unit, including a unit body, and multiple heat dissipation fins that are disposed on a surface of the body, where an opening groove is disposed on the heat dissipation fin, and opening grooves on the multiple heat dissipation fins form a fan ventilation groove, where the fan ventilation groove is connected to ventilation channels between the heat dissipation fins, and a fan is disposed in a built-in manner in the fan ventilation groove. The fan ventilation groove formed by the opening grooves on the multiple heat dissipation fins is connected to the ventilation channels between the heat dissipation fins, and the fan is disposed, which implements that in a case in which a quantity of heat dissipation fins is unchanged, the fan performs air cooling on the radio remote unit, effectively improving a heat dissipation capability.
Claims
1. A radio remote unit comprising: a body; and multiple heat dissipation fins disposed on a surface of the body, wherein an opening groove is disposed on the multiple heat dissipation fins, wherein the opening grooves on the multiple heat dissipation fins form a fan ventilation groove, wherein the fan ventilation groove is coupled to ventilation channels between the multiple heat dissipation fins, and wherein a fan is disposed in a built-in manner in the fan ventilation groove and located in a space surrounded by the heat dissipation fins and the body.
2. The radio remote unit of claim 1, wherein a hollow fan ventilation duct is disposed at the fan ventilation groove, wherein a height of the hollow fan ventilation duct is less than a height of the multiple heat dissipation fins, wherein air outlets are disposed on an exterior wall along a height direction of the hollow fan ventilation duct, and wherein the air outlets are coupled to the ventilation channels between the multiple heat dissipation fins.
3. The radio remote unit of claim 1, wherein the fan is disposed at an end of the fan ventilation groove.
4. The radio remote unit of claim 3, wherein the fan uses a blowing mode.
5. The radio remote unit of claim 1, wherein cross-sectional areas of N opening grooves of the fan ventilation groove gradually increase along a direction that is toward the fan such that the fan ventilation groove evenly allocates heat dissipation airflow, and wherein N is a quantity of the multiple heat dissipation tins.
6. The radio remote unit of claim 1, wherein cross-sectional areas of N opening grooves of the fan ventilation groove stepwise increase along a direction that is toward the fan such that the fan ventilation groove evenly allocates heat dissipation airflow, and wherein N is a quantity of the multiple heat dissipation fins.
7. The radio remote unit of claim 1, wherein a flow direction of the fan is perpendicular to the surface of the body.
8. The radio remote unit of claim 1, wherein a flow direction of the fan is parallel with the surface of the body.
9. The radio remote unit of claim 8, wherein the fan is disposed in the fan ventilation groove and away from the surface of the body.
10. The radio remote unit of claim 1, wherein the multiple heat dissipation fins are straight line segments parallel with each other or are of a curvilinear shape.
11. The radio remote unit of claim 1, wherein the fan is a blade-rotating fan or an air velocity generation apparatus configured to generate heat dissipation airflow.
12. A communications device comprising: a radio remote unit comprising: a body; and multiple heat dissipation fins that are disposed on a surface of the body, wherein an opening groove is disposed on the multiple heat dissipation fins, wherein opening grooves on the multiple heat dissipation fins form a fan ventilation groove, wherein the fan ventilation groove is coupled to ventilation channels between the multiple heat dissipation fins, and wherein a fan is disposed in a built-in manner in the fan ventilation groove and located in a space surrounded by the heat dissipation fins and the body; a building baseband unit coupled to the radio remote unit; and an antenna coupled to the radio remote unit.
13. The radio remote unit of claim 12, wherein a hollow fan ventilation duct is disposed at the fan ventilation groove, wherein a height of the hollow fan ventilation duct is less than a height of the multiple heat dissipation fins, wherein air outlets are disposed on an exterior wall along a height direction of the hollow fan ventilation duct, and wherein the air outlets are coupled to the ventilation channels between the multiple heat dissipation fins.
14. The radio remote unit of claim 12, wherein the fan is disposed at an end of the fan ventilation groove.
15. The radio remote unit of claim 14, wherein the fan uses a blowing mode.
16. The radio remote unit of claim 12, wherein cross-sectional areas of N opening grooves of the fan ventilation groove gradually increase or stepwise increase along a direction that is toward the fan such that the fan ventilation groove evenly allocates heat dissipation airflow, and wherein N is a quantity of the multiple heat dissipation fins.
17. The radio remote unit of claim 12, wherein a flow direction of the fan is perpendicular to or parallel with the surface of the body.
18. The radio remote unit of claim 17, wherein when the flow direction of the fan is parallel with the surface of the body, the fan is disposed in the fan ventilation groove and away from the surface of the body.
19. The radio remote unit of claim 12, wherein the multiple heat dissipation fins are straight line segments parallel with each other or are of a curvilinear shape.
20. The radio remote unit of claim 12, wherein the fan is a blade-rotating fan or an air velocity generation apparatus configured to generate heat dissipation airflow.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0017] To describe the technical solutions in the embodiments of the present disclosure more clearly, the following briefly introduces the accompanying drawings required for describing the embodiments. The accompanying drawings in the following description show some embodiments of the present disclosure, and a person of ordinary skill in the art may still derive other drawings from these accompanying drawings without creative efforts.
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF EMBODIMENTS
[0026] To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the following clearly describes the technical solutions in the embodiments of the present disclosure with reference to the accompanying drawings in the embodiments of the present disclosure. The described embodiments are some but not all of the embodiments of the present disclosure. All other embodiments obtained by a person of ordinary skill in the art based on the embodiments of the present disclosure without creative efforts shall fall within the protection scope of the present disclosure.
[0027]
[0028] As shown in
[0029] After the fan 13 generates heat dissipation airflow, the heat dissipation airflow separately enters the ventilation channels between the heat dissipation fins 11 by using the fan ventilation groove 12. In addition, because of a buoyant force of hot air itself, natural airflow also passes upward, in a height direction, through the ventilation channels between the heat dissipation fins 11.
[0030] According to the RRU provided in this embodiment, an opening groove is disposed on a heat dissipation fin, and opening grooves on multiple heat dissipation fins form a fan ventilation groove, where the fan ventilation groove is connected to ventilation channels between the heat dissipation fins; and a fan is disposed in a built-in manner in the fan ventilation groove, which implements that in a case in which a quantity of heat dissipation fins is unchanged, the fan performs air cooling on the RRU, effectively improving a heat dissipation capability. Meanwhile, a consideration is given to a natural heat dissipation capability of the RRU itself, so that when the fan becomes faulty, natural airflow may still pass through the ventilation channels between the heat dissipation fins, and the natural heat dissipation capability of the RRU is ensured. In addition, it is not required to increase a surface area of the RRU, thereby reducing manufacturing costs of the RRU and a requirement on load bearing, wind resistance and other factors of an antenna pole for bearing the RRU.
[0031] Further, a shape of the fan ventilation groove 12 is preferably that cross-sectional areas of N opening grooves of the fan ventilation groove 12 gradually increase or stepwise increase along a direction that is toward the fan 13, so that the fan ventilation groove evenly allocates heat dissipation airflow, that is, air volumes that pass through air outlets 141 (see
[0032] Further, a hollow fan ventilation duct may be disposed at the fan ventilation groove 12 in
[0033]
[0034]
[0035] Referring to
[0036] Further, in a state in which the flow direction of the fan is parallel with the surface of the body,
[0037] In a case in which heat dissipation is performed completely by means of forced air cooling, as shown in
[0038] In addition, in the foregoing embodiments, the fan may be a blade-rotating fan, or an air velocity generation apparatus that is configured to generate heat dissipation airflow. The air velocity generation apparatus may be a piezoelectric fan, a vibration fan, or the like. It should be noted that a quantity of fans is not limited in the foregoing embodiments.
[0039]
[0040] The radio remote unit 21 may use the structures shown in
[0041] As shown in
[0042] The building baseband unit (BBU) 20 may be connected to the radio remote unit 21 by using an optical fiber. The building baseband unit 20 is configured to perform baseband processing on a signal to be sent by the communications device, and then the radio remote unit 21 performs radio-frequency signal processing on a signal on which baseband processing has been performed, and the signal is sent by using the antenna 22. Alternatively, the radio remote unit 21 performs radio-frequency signal processing on a signal received by the antenna 22, and after the building baseband unit 20 performs baseband processing on the signal on which radio-frequency signal processing has been performed, the signal is subsequently transmitted. Generally, the building baseband unit 20 may be connected to multiple radio remote units 21. Correspondingly, a quantity of antennas 22 is corresponding to the radio remote unit 21.
[0043] Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present disclosure, but not for limiting the present disclosure. Although the present disclosure is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some or all technical features thereof, without departing from the scope of the technical solutions of the embodiments of the present disclosure.