Patent classifications
G01D5/34761
CONTAMINATION AND DEFECT RESISTANT OPTICAL ENCODER CONFIGURATION FOR PROVIDING DISPLACEMENT SIGNAL HAVING A PLURALITY OF SPATIAL PHASE DETECTORS ARRANGED IN A SPATIAL PHASE SEQUENCE ALONG A DIRECTION TRANSVERSE TO THE MEASURING AXIS
An optical encoder configuration comprises an illumination portion, a scale, and a photodetector configuration. The illumination portion transmits source light to a scale which outputs a periodic scale light pattern to the photodetector configuration. The photodetector configuration comprises a set of N spatial phase detectors arranged in a spatial phase sequence along a direction transverse to the measuring axis comprising two outer spatial phase detectors at a start and end of the sequence along the direction transverse to the measuring axis. At least a majority of the respective spatial phase detectors are relatively elongated along the measuring axis direction and relatively narrow along the direction perpendicular to the measuring axis direction, and comprise periodic scale light receptor areas positioned corresponding to a respective spatial phase of that spatial phase detector relative to the periodic scale light pattern, and are configured to provide a respective spatial phase detector signal.
Contamination and defect resistant optical encoder configuration for providing displacement signal having a plurality of spatial phase detectors arranged in a spatial phase sequence along a direction transverse to the measuring axis
An optical encoder configuration comprises an illumination portion, a scale, and a photodetector configuration. The illumination portion transmits source light to a scale which outputs a periodic scale light pattern to the photodetector configuration. The photodetector configuration comprises a set of N spatial phase detectors arranged in a spatial phase sequence along a direction transverse to the measuring axis comprising two outer spatial phase detectors at a start and end of the sequence along the direction transverse to the measuring axis. At least a majority of the respective spatial phase detectors are relatively elongated along the measuring axis direction and relatively narrow along the direction perpendicular to the measuring axis direction, and comprise periodic scale light receptor areas positioned corresponding to a respective spatial phase of that spatial phase detector relative to the periodic scale light pattern, and are configured to provide a respective spatial phase detector signal.
ENCODER APPARATUS
An encoder apparatus comprising a scale and a readhead assembly comprising a scale signal receiver. The scale and the scale signal receiver are located within a protective housing which is configured to protect them from contamination located outside the protective housing and comprises a seal through which the scale signal receiver can be connected to a part outside the protective housing. The arrangement of the scale signal receiver inside the protective housing is independent of the scale and protective housing.
ENCODER
A sealed encoder module for mounting onto a machine so as to measure relative displacement of first and second parts of the machine. The sealed encoder module can comprise, a scale, a readhead comprising a scale signal receiver, and an integral protective housing which encapsulates at least the scale and said scale signal receiver. The sealed encoder module can be configured to determine and output diagnostic information regarding a scale signal detected by the readhead.
Linear encoder with improved sealing
A sealed linear encoder includes a housing adapted for attachment to a first object and a scale unit and scanning unit arranged in a hollow body of the housing, which has a slot extending in a direction of measurement. The scanning unit is mounted on a first end of a pedestal slidably accommodated within the slot and whose second end is adapted for attachment to a second object. The slot is sealed by first and second pairs of sealing lips, which together with the pedestal are configured such that the pedestal intersects the first and second pairs of sealing lips at respective locations that are axially displaced along the direction of measurement such that there is no axial overlap between the first and second pairs of sealing lips at these locations.
Holding mechanism
A holding mechanism used in a measuring device includes a first groove, a second groove, and a pair of holding members holding the detection device by being attached to first and second sides in a length direction of a scale frame. The pair of holding member include a plate-like main body, a first hook portion engaging with the first groove, a second hook portion engaging with the second groove, and a projecting tab projecting from the main body and positioned at a gap. The pair of holding members are displaced from first and second sides toward the detection device along the length direction of the scale frame and the projecting tab is inserted into the gap, and thereby the projecting tab biases the scale frame and the detection device in mutually separating directions.
Displacement measuring apparatus
There is provided a displacement measuring apparatus capable of being used in a vacuum environment. The displacement measuring apparatus includes a scale and a detection head part disposed in such a manner as to be relatively displaceable to the scale and as to face the scale with a predetermined gap. The detection head part detects a displacement or position relative to the scale. The scale is disposed in a vacuum. The detection head part is housed in a housing holder separating an atmospheric environment side from a vacuum environment side. In a gap between the detection head part and the scale, the housing holder includes a relay means for passing a detection signal between the detection head part and the scale.
LINEAR ENCODER WITH IMPROVED SEALING
A sealed linear encoder includes a housing adapted for attachment to a first object and a scale unit and scanning unit arranged in a hollow body of the housing, which has a slot extending in a direction of measurement. The scanning unit is mounted on a first end of a pedestal slidably accommodated within the slot and whose second end is adapted for attachment to a second object. The slot is sealed by first and second pairs of sealing lips, which together with the pedestal are configured such that the pedestal intersects the first and second pairs of sealing lips at respective locations that are axially displaced along the direction of measurement such that there is no axial overlap between the first and second pairs of sealing lips at these locations.
LINEAR ENCODER
A linear encoder includes a scale disposed within a housing and a scanning unit that is displaceable in a measuring direction relative to the scale. The scanning unit includes a scanning head disposed inside of the housing opposite to the scale such that the scale is scannable by the scanning head, as well as a mount to which the scanning head is fastened, and a driving component, via which the mount is coupled to a mounting base disposed outside of the housing. A vibration damper suppresses vibrations transversely to the measuring direction. The vibration damper is disposed on the mount or on the scanning head, and includes a damping mass and an elastic element. The damping mass is fastened by the elastic element to an attachment surface of the mount or of the scanning head.