Information
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Patent Grant
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6179552
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Patent Number
6,179,552
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Date Filed
Thursday, March 25, 199926 years ago
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Date Issued
Tuesday, January 30, 200124 years ago
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Inventors
-
Original Assignees
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Examiners
- Look; Edward K.
- Nguyen; Ninh
Agents
- Frishauf, Holtz, Goodman, Langer & Chick, P.C.
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CPC
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US Classifications
Field of Search
US
- 415 25
- 415 30
- 415 36
- 415 41
- 415 42
- 415 44
- 415 904
- 415 202
- 137 50
- 137 53
- 137 56
- 137 57
- 418 40
- 418 41
- 418 42
- 418 43
- 418 44
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International Classifications
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Abstract
A speed control unit for a pneumatic rotation motor having a stator (10) with an air inlet passage (14), a rotor (11) journalled in the stator (10). The speed control unit includes a speed governor (26) operated by two or more fly-weight members (28), and an overspeed safety device (27). The rotor (11) is formed with a coaxial blind bore (22) in which is secured a mounting structure (23) for supporting the fly-weight members (28), the valve element (29) and the bias spring (35) of the speed governor (26) inside the rotor (11). The overspeed safety device (27) includes a flow restricting element (39) displaceably guided in the air inlet passage (14) and locked in an inactive rest position by a trip element (43), and a speed responsive actuator (45) that is co-rotative with the rotor (11). The speed responsive actuator (45) may be formed by an elastically deformable spring element (44) secured to the speed governor valve element (29) and arranged to be radially bent by centrifugal action to hit and release the trip element (43) to thereby free the flow restricting element (39) at the attainment of a predetermined speed level.
Description
BACKGROUND OF THE INVENTION
This invention relates to speed control unit for controlling the speed of a pneumatic rotation motor. In particular, the invention concerns a speed control unit that includes a speed governor and an overspeed safety device for a pneumatic rotation motor having a stator with an air inlet passage and a rotor journalled in the stator.
One problem inherent in prior art speed control units including speed governors, for instance of the type described in U.S. Pat. No. 2,485,514, is that they are located at one end of the motor and, therefore, they add to the length of the motor. This previously known type of speed governor is also exposed to particles of all kinds entering the machine housing by the supplied pressure air. This means that this type of speed governor easily gets contaminated by foreign material and loses its ability to operate as intended.
Another prior art example of the above type of speed control unit is described in U.S. Pat. No. 3,708,240. This known speed governor is located in the rotor shaft and does not really add to the length of the motor. However, this built-in speed governor is still exposed to the risk of contamination, because the air flow to the motor passes right through the speed governor mechanism. Accordingly, foreign particles transported by the air flow passing through the governor may contaminate and cause malfunction of the governor.
In still another prior art device described in U.S. Pat. No. 3,071,115, there are provided both a flyweight operated speed governor and an overspeed safety device, both disposed within the rotor. Also the overspeed safety device is operated by flyweights, and the rotor design as a whole is rather complicated. Due to its location inside the rotor, these mechanisms are protected from dust and other particles transported by the pressure air. However, there are several guide surfaces for the flyweights and the valve element lock pins which after some time of tool operation may be exposed to corrosion or other types of sticking effect. This might jeopardise the intended safety function. Moreover, the flyweight type safety device actuator is not only complicated but requires a relatively large radial space. Still another drawback with this known type of device is the difficulty to make it operate with very fast rotating rotors, such as turbine wheels. In such applications, the centrifugal forces then acting on the flyweights and other parts are very strong, which puts high demands on for instance the dimensions and material of the flyweight springs.
OBJECT OF THE INVENTION
The primary object of the invention is to provide a speed control unit for a rotation motor wherein the control unit parts do not add to the dimensions of the motor and are well protected from dust and other foreign particles, and wherein the overspeed safety mechanism is structurally simple and reliable in operation, even in high speed applications.
BRIEF DESCRIPTION OF THE DRAWINGS
A preferred embodiment of the invention is below described in detail with reference to the accompanying drawings in which:
FIG. 1
shows a longitudinal section through a pneumatic motor provided with a speed control unit according to the invention.
FIG. 2
shows a cross section through the trip mechanism of the overspeed safety device according to the invention.
DETAILED DESCRIPTION
The motor shown in
FIG. 1
is a six-stage axial type air turbine comprising a stator
10
and a rotor
11
. The stator
10
is provided with rotor bearings
12
,
13
, a pressure air inlet passage
14
and six circumferential rows of guide vanes
16
. The air inlet passage
14
has a substantially cylindrical shape and is disposed coaxially relative to the rotation axis of the rotor
11
. A circumferential lateral opening
17
in the inlet passage
14
communicates pressure air to the guide vanes
16
and further to an outlet opening
18
.
The rotor
11
comprises a main body
20
which is provided with six circumferential rows of drive blades
21
disposed in a common way alternatingly between the rows of guide vanes
16
to complete the turbine. The pressure air supplied through the inlet passage
14
and the lateral opening
17
passes the guide vanes
16
and the drive blades
21
to generate a driving torque on the rotor
11
.
The rotor
11
is formed with an axially extending cavity or blind bore
22
which is open towards the inlet passage
14
. In this bore
22
, there is secured a mounting structure
23
which is formed with a coaxial neck portion
24
for carrying one of the rotor bearings
12
, and with a coaxial bore
25
. This mounting structure
23
forms a support both for a speed governor
26
and an overspeed safety mechanism
27
. As usual in motors being provided with such speed control means, the speed governor
26
is active within a certain speed range to regulate the supplied pressure air flow and maximise the motor speed to a certain first level, whereas the overspeed safety mechanism
27
remains completely inactive until a second predetermined higher motor speed level is reached. Then, it will be activated to stop or at least substantially restrict the air inlet flow so as to put the motor out of operation.
The speed governor
26
comprises an elongate valve element
29
extending coaxially through the bore
22
and being biassed by a spring
35
toward an open position. The speed governor
26
also includes two L-shaped fly-weight members
28
each of which is pivotally supported via a roller bearing on the mounting structure
23
and comprises a thrust part
30
and a weighted part
31
movable outwardly by centrifugal action. The fly-weight members
28
act via their thrust parts
30
on an end piece
33
mounted on the rear end of the valve element
29
. The end piece
33
also serves as an axial support for the bias spring
35
of the speed governor
26
. The end piece
33
is movable in the bore
25
of the mounting structure
23
and forms a rear support for the valve element
29
. At its forward end, the valve element
29
is movably guided in the neck portion
24
of the mounting structure
23
.
At its forward end, the valve element
29
is formed with a head
36
which is sealingly guided in a bore
38
forming the inlet passage
14
. The bore
38
as well as the valve element
29
are coaxially disposed relative to the rotation axis of the rotor
11
, and the valve element
29
is arranged to be axially displaced by the fly-weight members
28
such that the valve element head
36
controls the air flow through the lateral opening
17
.
The overspeed safety device
27
comprises a flow blocking or flow restricting element
39
which is tubular in shape and movably guided in the inlet passage bore
38
. The flow restricting element
39
is shiftable between a rest position, illustrated in
FIG. 1
, and an active position in which it restrict or blocks the air flow through the lateral opening
17
. A coil spring
40
is pretensioned between a shoulder
41
in the stator
10
and a shoulder
42
on the flow restricting element
39
so as to exert a bias force on the flow restricting element
39
toward the active air flow restricting position of the latter.
The flow restricting element
39
, however, is locked against displacement by a trip mechanism comprising a trip element
43
supported on the element
39
and a speed responsive actuator
45
co-rotative with the rotor
11
. The trip element
43
is pivoted between a lock position in which it engages a shoulder
46
in the bore
38
, thereby retaining the element
39
in its rest position. See
FIG. 2. A
leaf spring
37
carried on the flow restricting element
39
exerts a bias force on the trip element
43
toward the lock position of the latter.
The actuator
45
of the overspeed safety device
27
comprises a piece of elastically deformable spring element
44
which originally is of a linear shape but which is elastically bent to a pretensioned condition at mounting. The spring element
44
is preferably formed of a spring wire which by its one end is inserted and secured in a central bore
47
in the valve element
29
. The other end of the spring element
44
extends out of the bore
47
and is bent to rest on a radial support
48
on the valve element head
36
. The spring element
44
is not only bent out from the rotation axis but is provided with a tubular weight
49
for increasing the centrifugal action on the actuator
45
. The spring element
44
reaches out of the bore
47
long enough to be able to be further elastically bent at the attainment of the predetermined speed limit to, thereby, hit and release the trip element
43
.
When hit by the actuator
45
, the trip element
43
is pivoted against the action of the leaf spring
37
, as illustrated by a dash line arrow in
FIG. 2
, and is temporarily moved out of engagement with the shoulder
46
. Thereby, the flow restricting element
39
is freed for movement towards its air flow blocking position. At normal operation, however, i.e. when the speed governor
26
functions as intended, the spring element
44
remains in its rest position in contact with the support
48
and the trip element
43
remains uneffected in its locking position. See FIG.
2
.
If for some reason the speed governor
26
becomes stuck or otherwise malfunctions, resulting in an increased rotor speed, the spring element
44
is bent further outwardly by centrifugal action until the trip element
43
is hit by the tubular weight
49
. Thereby, the trip element
43
is released from its engagement with the shoulder
46
and frees the flow restricting element
39
for axial movement towards its active air flow restricting position in which it more or less blocks air flow through the opening
17
and reduces substantially the rotor speed.
The speed control unit according to the invention, as illustrated by the above example, is very compact and yet very simple in design. This makes it suitable for small size fast rotating motor applications, such as air turbine driven power tools. In particular, the overspeed safety device is not only very compact and simple but has a reliable function. The reason is that the actuator
45
has no guide surfaces exposed to friction forces but is shifted by elastic deformation only. The actuator
45
is reliable also in that it has a central location on the rotor
11
which means that the centrifugal forces acting on it are of moderate magnitude only, even at very high speed levels
Claims
- 1. A speed control unit for a pneumatic rotation motor having a stator with an air inlet passage, and a rotor journalled in the stator, said speed control unit comprising:a speed governor including at least two flyweight members, a bias spring, and a valve element displaceable by said flyweight members against said bias spring to restrict air flow through said inlet passage of said stator of said pneumatic rotation motor at motor operation speeds above a predetermined first speed level; and an overspeed safety device including a flow restricting element which is movably supported in said stator of said pneumatic rotation motor and which is shiftable between a rest position and an active flow restricting position, a spring which biases said flow restricting element toward said active position, a trip element which normally locks said flow restricting element in said rest position, and a speed responsive actuator which is co-rotative with said rotor and which is arranged to release said trip element and free said flow restricting element for movement toward said active position at motor operation speeds above a second predetermined motor speed level; wherein said rotor of said pneumatic rotation motor comprises a coaxial blind bore having an open end facing said air inlet passage and in which a mounting structure is provided for movably supporting said flyweight members, said bias spring, and said valve element within said bore; wherein said valve element comprises an air flow controlling head located outside said bore; and wherein said speed responsive actuator comprises an elongate spring element having a first end secured in a coaxial bore in said valve element and having a second end extending out of said valve element, with said elongate spring element being radially supported in an elastically bent shape and being arranged to be exposed to centrifugal action such that when said pneumatic rotation motor attains said second predetermined motor speed level said elongate spring element is further bent by the centrifugal action and said second end of said elongate spring element hits and releases said trip element.
- 2. The speed control unit according to claim 1, wherein:said flow restricting element is tubular in shape and axially movable in said air inlet passage of said stator of said pneumatic rotation motor; and said trip element is supported on said flow restricting element and is arranged to co-operate with a shoulder on said stator for locking said flow restricting element in said rest position.
- 3. The speed control unit according to claim 2, wherein said elongate spring element carries a weighted member at said second end thereof so as to increase the further bending of said elongate spring element in response to the centrifugal action.
- 4. The speed control unit according to claim 3, wherein said elongate spring element comprises a piece of wire which was originally of a linear shape but which has been elastically bent to a pre-tensioned condition when mounted in said coaxial bore of said valve element.
- 5. The speed control unit according to claim 4, wherein:said air inlet passage of said stator of said pneumatic rotation motor comprises a bore disposed coaxially with said valve element and having at least one lateral air feed opening; and both said valve element and said flow restricting element are tubular in shape and axially displaceable in said bore to control air flow through said at least one lateral feed opening.
- 6. The speed control unit according to claim 5, wherein said valve element comprises a rear end piece, and said at least two flyweight members are located at an inner end of said blind bore of said rotor and arranged to exert a valve element shifting force on said end piece.
- 7. The speed control unit according to claim 1, wherein said elongate spring element carries a weighted member at said second end thereof so as to increase the further bending of said elongate spring element in response to the centrifugal action.
- 8. The speed control unit according to claim 1, wherein said elongate spring element comprises a piece of wire which was originally of a linear shape but which has been elastically bent to a pre-tensioned condition when mounted in said coaxial bore of said valve element.
- 9. The speed control unit according to claim 1, wherein:said air inlet passage of said stator of said pneumatic rotation motor comprises a bore disposed coaxially with said valve element and having at least one lateral air feed opening; and both said valve element and said flow restricting element are tubular in shape and axially displaceable in said bore to control air flow through said at least one lateral feed opening.
- 10. The speed control unit according to claim 1, wherein said valve element comprises a rear end piece, and said at least two flyweight members are located at an inner end of said blind bore of said rotor and arranged to exert a valve element shifting force on said end piece.
- 11. An overspeed safety device for a pneumatic rotation motor having a rotor and a stator with an air inlet opening, said overspeed safety device comprising:a flow restricting element which is movably supported in said stator of said pneumatic rotation motor and which is shiftable between an inactive rest position and an active position in which said flow restricting element at least partly covers said inlet opening; a spring which biases said flow restricting element toward said active position; a trip element which normally locks said flow restricting element in said rest position; and a speed responsive actuator which is co-rotative with said rotor and which is arranged to release said trip element and free said flow restricting element for displacement toward said active position at motor operation speeds above a second predetermined motor speed level; wherein said speed responsive actuator comprises an elongate spring element having a first end secured in a coaxial relationship with said rotor of said pneumatic rotation motor, and a second end extending out of said rotor in a substantially axial direction; and wherein said elongate spring element is arranged to be elastically bent in a radial direction by centrifugal forces acting on said second end of said elongate spring element such that when said pneumatic rotation motor attains said second predetermined motor speed level said second end of said elongate spring element hits and releases said trip element.
- 12. The overspeed safety device according to claim 11, wherein said second end of said elongate spring element is supported on said rotor of said pneumatic rotation motor in an initially bent shape so as to be exposed to centrifugal action and to be further bent to a trip element hitting and releasing position when said pneumatic rotation motor attains said second predetermined motor speed level.
- 13. The overspeed safety device according to claim 12, wherein said elongate spring element comprises a piece of spring wire.
- 14. The overspeed safety device according to claim 13, wherein said elongate spring element is provided with a weighted member for increasing the centrifugal force acting on said spring element.
- 15. The overspeed safety device according to claim 11, wherein said elongate spring element comprises a piece of spring wire.
- 16. The overspeed safety device according to claim 15, wherein said elongate spring element is provided with a weighted member for increasing the centrifugal force acting on said spring element.
Priority Claims (1)
Number |
Date |
Country |
Kind |
9801080 |
Mar 1998 |
SE |
|
US Referenced Citations (10)