The disclosure relates to an electrical driving shaft, and more particularly to a waterproof driving shaft for a ventilation apparatus.
A conventional fire ventilation apparatus as disclosed in TWI 691684 is adapted to be mounted to a building for mechanically and electrically opening an exhaust port of the building in case of fire emergency. The fire ventilation apparatus includes a cover plate movably covering the exhaust port, and first and second actuating units connected between the cover plate and the building. The first actuating unit mechanically drives the cover plate to a shielding state and to a ventilating state. The second actuating unit has a telescopic rod which is electrically operated to move the cover plate between the shielding state and the ventilating state. The telescopic rod is connected with the cover plate and the building by means of a first connecting piece and a second connecting piece, respectively. One or both of the first and second connecting pieces is (are) made of an alloy with a low melting point. When the temperature in the building reaches the melting point of the alloy to cause melting, any one of the first and second connecting pieces may be separated from the cover plate or the building so that the cover plate returns to the ventilating state by virtue of a mechanical restoring force of the first actuating unit.
However, moisture and humidity may enter the second actuating unit from the opened cover plate to cause an electrical short circuit or a motor controller of the second actuating unit to break and lead to malfunction of the fire ventilation apparatus.
Therefore, an object of the disclosure is to provide a waterproof driving shaft for a fire ventilation apparatus that can alleviate at least one of the drawbacks of the prior art.
According to the disclosure, the waterproof driving shaft includes an inner tubular member, an electrical driving unit, a moving shaft member and a shield unit. The inner tubular member has a tubular wall which defines an accommodation space therein and extends along an axis, a through hole which is formed at an end thereof and in communication with the accommodation space, and at least one first guiding portion which is formed on and extends radially from the tubular wall. The electrical driving unit is disposed in the accommodation space of the tubular wall. The moving shaft member slidably extends through the through hole and along the axis. The moving shaft member has an inner end portion inserted into the accommodation space, and an outer end portion extending outwardly of the inner tubular member. The inner end portion is actuated by the electrical driving unit to move the outer end portion relative to the inner tubular member along the axis. The shield unit is securely connected with the moving shaft member. The shield unit includes a surrounding wall which surrounds the tubular wall and extends along the axis to terminate at a wall end that surrounds the outer end portion, and an end cap which is securely connected with the wall end and the moving shaft member and adjacent to the outer end portion. The shield unit cooperates with the tubular wall to seal the accommodation space. The shield unit further includes at least one second guiding portion which is formed on and extends radially from the surrounding wall and which is slidably engaged with the first guiding portion to be slidable relative to the first guiding portion along the axis.
Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment with reference to the accompanying drawings, of which:
Referring to
The waterproof driving shaft 100 is pivotably connected between the frame 101 and the cover plate 102 to turn the cover plate 102 relative to the frame 101 and the exhaust port 201 between a shielding state (as shown in
The inner tubular member 10 has a tubular wall 11 which defines an accommodation space 14 therein and which extends along an axis (L), and first and second end walls 12, 13 which are securely mounted on two ends of the tubular wall 11, respectively. The tubular wall 11 has a quadrilateral cross-section (see
The electrical driving unit 20 is disposed in the accommodation space 14 of the tubular wall 11. The electrical driving unit 20 includes a driving motor 21 and a threaded bolt 22 coupled with and driven by the driving motor 21 to rotate about the axis (L).
The moving shaft member 30 slidably extends through the through hole 121 and along the axis (L). That is, the moving shaft member 30 has an inner end portion 31 inserted into the accommodation space 14, and an outer end portion 32 extending outwardly of the inner tubular member 10. The inner end portion 31 is actuated by the electrical driving unit 20 to move the outer end portion 32 relative to the inner tubular member 10 along the axis (L). Specifically, the moving shaft member has a threaded hole 33 which extends from the inner end portion 31 toward the outer end portion 32 and along the axis (L) to be threadedly engaged with the threaded bolt 22. Hence, rotation of the threaded bolt 22 actuates the movement of the moving shaft member 30 along the axis (L) relative to the inner tubular member 10. Specifically, the moving shaft member 30 includes a larger-diameter section 34 which has the inner end portion 31 to slidably extend through the through hole 121, and a smaller-diameter section 35 which has the outer end portion 32 and which extends from the larger-diameter section 34 along the axis (L) to form a shoulder 36 therebetween. The smaller-diameter section 35 has an externally threaded portion 351 formed adjacent to the shoulder 36. A screw nut 37 is threadedly engaged with the externally threaded portion 351.
The shield unit 40 is securely connected with the moving shaft member 30. The shield unit 40 includes a surrounding wall 42 which surrounds the tubular wall 11 and the larger-diameter section 34 and which extends along the axis (L) to terminate at a wall end 422 that surrounds the outer end portion 32, and an end cap 41 which is securely connected with the wall end 422 and the moving shaft member 30 and adjacent to the outer end portion 32. The shield unit 40 cooperates with the tubular wall 11 of the inner tubular member 10 to seal the accommodation space 14. The surrounding wall 42 has a quadrilateral cross-section (see
The end cap 41 has an inner cap surface 412 which is attached to the wall end 422, an outer cap surface 411 which is opposite to the inner cap surface 412 along the axis (L), a penetrating hole 413 which extends therethrough along the axis (L) for passing of the moving shaft member 30, and a recess 414 which is recessed from the inner cap surface 412 and in communication with the penetrating hole 413. The shield unit 40 further includes a first O-ring 43 which is disposed in the recess 414 to sealingly engage the end cap 41 and the moving shaft member 30. By the threaded engagement of the screw nut 37 with the externally threaded portion 351, the screw nut 37 abuts against the outer cap surface 411 so as to bring the first O-ring 43 to be between the end cap 41 and the moving shaft member 30 and form a water-tight engagement. The shield unit 40 further includes a second O-ring 44 which is sealingly engaged with the inner cap surface 412 of the end cap 41 and the wall end 422 of the surrounding wall 42.
The first connecting member 50 is disposed on the outer end portion 32 of the moving shaft member 30 to be connected with the cover plate 102 of the fire ventilation apparatus 1 so as to pivotally interconnect the moving shaft member 30 and the cover plate 102.
The second connecting member 60 is disposed on the second end wall 13 of the inner tubular member 10 to be connected with the frame 101 of the fire ventilation apparatus 1 so as to pivotally interconnect the inner tubular member 10 and the frame 101. At least one of the first and second connecting members 50, 60 is made of an alloy material with a low melting point. When the temperature in the building reaches the melting point to cause melting, the first connecting member 50 or the second connecting member 60 may be separated from the cover plate 102 or the frame 101.
Referring again to
Referring to
Referring to
As illustrated, the waterproof driving shaft 100 has a simple construction and the service life thereof is prolonged.
It is noted that the waterproof driving shaft 100 is mountable on a ventilation apparatus for any other object, such as a door, a window, a vehicle, etc.
While the disclosure has been described in connection with what is considered the exemplary embodiment, it is understood that this disclosure is not limited to the disclosed embodiment but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.