The invention relates to a fan, and in particular to a fan rotatable without a motor.
A conventional fan is actuated by a single motor for expelling airflow to dissipate heat from a heat source.
For example, if the different heat sources, e.g. a CPU, a power supply module, an image driver and a case of a computer, are respectively equipped with a conventional fan to dissipate heat, the number of the motors is increased correspondingly and thus noise and cost are increased.
The invention provides a fan actuated by a main airflow from a feeding port so that the fan can be rotated without a motor, thus decreasing cost and power consumption.
An axial fan system includes a first airflow generator providing a main airflow, a duct having a first feeding port to guide the main airflow, and a first fan. The first fan includes a base, a rotor connected to the base by a shaft, and a plurality of blades connected to the rotor. Each blade includes a passive part corresponding to the first feeding port and an active part. The main airflow drives the passive part rotating about the shaft to synchronously rotate the active part.
The passive part is near the rotor and the active part is far from the rotor. The main airflow from the first feeding port is divided into a first airflow and a second airflow by the passive part, so that a pressure difference formed between the first and second airflows drives the passive part to rotate about the shaft.
The passive part can have a wing section. The first fan further includes an inlet and an outlet, and the pressure at the outlet is smaller than that at the inlet when the active part rotates about the shaft, to impel the main airflow.
The fan system further includes a bearing connecting the shaft to the base. The bearing can be selected from the group of a sleeve bearing, a ball bearing and a magnetic bearing.
The first fan further includes a housing and a rib connected to the housing and the base.
The duct further includes a second feeding port, and the duct distributes the main airflow to the first feeding port and the second feeding port.
The fan system further includes a second airflow generator, and the duct distributes the main airflow to the first feeding port and the second feeding port.
The fan system further includes a second airflow generator, and the duct distributes the main airflow to the first feeding port.
The first airflow generator can be selected from the group of an axial fan motor and a centrifugal fan motor.
The second airflow generator can be selected from the group of an axial fan motor and a centrifugal fan motor.
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
In
In
A main airflow provided from the first airflow generator 31 passes through the duct 21 and outputs from the first feeding port 210, to blow on the blades 14 generating power. Each blade 14 includes a passive part 141 corresponding to a first feeding port 210 of the first airflow generator 31 and an active part 142.
With the duct 21, the first airflow generator 31 can be placed far from the first fan 1 disposed on the desired electronic device, i.e., the first airflow generator 31 and the first fan 1 are individually separated, to obtain better noise control quality.
As the main airflow from the first feeding port 210 impacts the passive parts 141, the rotor 12 and the blades 14 rotate about the shaft 13, generating the pressure difference by the active parts 142 of the blades 14 to impel the airflow. According to the law of conservation of energy, it is understood that the product of the volume of airflow in per unit time Q and the pressure P of the inlet 18 is equal to that of the outlet 19. Thus, the first feeding port 210 can provide a high-pressure airflow to blow on the passive parts 141 of the blades 14 rotating about the shaft 13. With the conversion of the first fan 1, the exterior airflow can be drawn into the first fan 1 to increase flow rate of the airflow of the outlet 19 and to decrease the pressure at the outlet 19, thus the low-pressure airflow from the outlet 19 blows on, but does not damage, the delicate heat source while dissipating heat therefrom.
In
Each blade 14 includes a passive part 141 corresponding to the first feeding port 221 of the duct 22 and an active part 142, and each blade 24 includes a passive part 241 corresponding to the second feeding port 222 of the duct 22 and an active part 242.
The main airflow conducted by the duct 22 is divided into to two separated airflows flowing to the first and second fans 1 and 2, to dissipate heat from the electronic devices not shown.
For example, heat sources, e.g. a CPU, a power supply module, an image driver and a case, of a host of a computer generate heat when operating. Each heat source can be equipped with the first or second fans 1 or 2 of the invention, driven by the same airflow from the first airflow generator 31 to efficiently dissipate heat and decrease the number of motors of the related art. Note that the first airflow generator 31 can be placed far from the host to reduce noise and vibration.
In
In this embodiment, the fan system S3 uses two airflow generators 31 and 32 to generate the main airflow to the first fan 1. Therefore, based on the desired functions and minimum requirements, e.g., rate of airflow and pressure, the size of the airflow generators 31 and 32 can be minimized, to reduce cost and noise.
While the invention has been described with respect to preferred embodiment, it is to be understood that the invention is not limited thereto, but, on the contrary, is intended to accommodate various modifications and equivalent arrangements included within the spirit and scope of the appended claims.
Number | Date | Country | Kind |
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94113695 A | Apr 2005 | TW | national |
Number | Name | Date | Kind |
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3904324 | Flatt et al. | Sep 1975 | A |
5427508 | Kapich | Jun 1995 | A |
6591873 | McNeil | Jul 2003 | B1 |
6652225 | Esa | Nov 2003 | B2 |
6899523 | Wobben | May 2005 | B2 |
Number | Date | Country | |
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20060245948 A1 | Nov 2006 | US |