Spring control device for a circuit breaker
09589744 ยท 2017-03-07
Assignee
Inventors
- Heinz Aeschbach (Reinach, CH)
- Simon Ardyna (Habsheim, FR)
- Jean-Pierre Dupraz (Bressolles, FR)
- David BERARD (Villeurbanne, FR)
Cpc classification
International classification
H01H5/00
ELECTRICITY
Abstract
For application to medium- and high-voltage circuit breakers, the control device makes it possible to actuate opening of the circuit breakers used in the medium- and high-voltage networks very quickly. The spring used in the control device is a spring of the composite type, having a curved C- or -shape. The spring has a stationary first end and a movable second end that is pivotally connected to the end of a lever device, that is itself constrained to rotate with the drive shaft of the control device.
Claims
1. A spring control device for a circuit breaker in a high- or medium-voltage electrical network, the device including a drive shaft (6) for enabling very fast actuation of at least one movable contact of the circuit breaker; the control device comprising a composite spring having a C-shape or Omega ()-shape, and in that the spring has: a first end (2) in the shape of a hook and fastened to a housing (10A, 10B) of the control device; and a second end (3) in the shape of a hook that is movable and that is pivotally fastened to a distal end of a lever system (7), the distal end of the lever system being constrained to rotate with the drive shaft (6).
2. A spring control device for a circuit breaker in a high- or medium-voltage electrical network, comprising: a drive shaft for enabling actuation of at least one movable contact of the circuit breaker; the control device comprising a composite spring having a C-shape or Omega ()-shape, and having: a first end in the shape of a hook and fastened to a housing of the control device; and a second end in the shape of a hook that is movable and that is pivotally fastened to a distal end of a lever system, the distal end of the lever system being constrained to rotate with the drive shaft; and a housing having two parallel plates between which there is fastened a stationary rod that is fastened to the first end of the spring, the second end of the spring being movable between the two plates.
Description
LIST OF THE FIGURES
(1) The invention and its various technical characteristics can be better understood on reading the following description, accompanied by two figures in which, respectively:
(2)
(3)
DETAILED DESCRIPTION OF AN EMBODIMENT OF THE INVENTION
(4)
(5) The first end 2 is fastened to a stationary rod 5 that is stationary relative to the housing of the control device. The second hook-shaped end 3 is movable in the sense that its position can vary relative to the stationary rod 5. Thus, the first end 2 of the spring 1 remains in a stationary position.
(6) The second end 3 of the spring 1, which is also hook-shaped, is fastened about a movable rod 4 that is movable in position. This movable rod 4 is placed at the end of a lever system 7, i.e. placed between the two distal ends of two levers 7A and 7B that are parallel. The other ends of these two levers 7A and 7B are fastened to a drive shaft 6, that is notched or fluted, in such a manner as to be capable of being constrained to rotate with said drive shaft.
(7) The spring 1 is loaded in compression. At this stage, the second end 3 of the spring 1 has a first position that is determined relative to the first end 2 of the spring 1. When the spring 1 is suddenly unloaded, i.e. when it relaxes, the second end 3 moves away a little from the first end 2 of the spring 1. In other words, the radius of curvature of the spring 1 increases slightly. In order to better define this deformation, it may be said that the central portion 8 of the spring 1 moves towards a plane defined by the axes of the two rods, the stationary rod 5 and the movable rod 4.
(8) As a result of this relaxing, the movable rod 4 changes position and makes the lever system 7 turn slightly, thus turning the drive shaft 6. Two arrows show the downward movement of the central portion 8 of the spring 1 and the turning of the drive shaft 6. The drive shaft is secured to the lever system 7 by means of a notch system and/or by means of fluting.
(9) With reference to
(10)
(11) The lever system 7 projects from the two plates 10A and 10B, as does the movable rod 4, which is fastened to the second end 3 of the spring 1. The position of the lever device 7 therefore depends on whether or not the spring 1 is loaded.
(12) Because it has not been envisaged to increase the height of the plates 10A and 10B, the spring and the lever device project upwards from the housing of the control device. It could be envisaged to increase the height of the two plates 10A and 10B so that they surround the spring 1 and the lever device 7 entirely.
(13) The spring 1 is therefore used for opening operations of the circuit breaker, and that requires a very high speed of intervention.
(14) Relating to the closing operations of the circuit breaker, a conventional spring is used, in known manner, and is placed inside a box 11, fastened to the housing, on the side of said housing. The closing spring is generally a conventional helical spring.
ADVANTAGES OF THE INVENTION
(15) The invention of a composite spring in a curved C-shape or -shape makes it possible to reduce the mass of the assembly by 10%.
(16) Due to this reduction in mass, the resonant frequency of the spring is increased. Consider the formula below:
(17)
where f is the resonant frequency of the spring and m is the mass of the spring. This may be of great importance when designing the spring control device.
(18) The use of springs of the composite type makes it possible to increase the lifespan of the control device. It should be recalled that a curved spring of the C-shape or -shape type, and that is of the composite type, is capable of surviving load tests of 6 000 000 cycles.
(19) This type of spring presents excellent resistance to creep over time.
(20) Compared to the solution presented in document EP-0 658 909, no chain is used in the control device of the invention to connect the spring that is used to the drive shaft. This minimizes the potential breakdown rate of the assembly.
(21) This type of control device was designed to be fitted to circuit breakers of the gas-insulated switchgear (GIS) type, but it may also be fitted to air-insulated circuit breakers, oil-insulated circuit breakers, or low-oil circuit breakers.
(22) The applications for all of these embodiments are relatively diverse since they concern both outdoor installations and indoor installations.