Sensor assembly
A sensor assembly includes a housing, a sensor unit attached to the housing, and an airfoil blade. The sensor unit includes a cylindrical shell defining a vertical axis. The cylindrical shell is rotatable around the axis relative to the housing. The cylindrical shell includes a lower edge and extends along the axis from the lower edge. The housing includes an aperture centered on the axis. The aperture defines an airflow outlet from the housing radially inside the aperture relative to the axis. The sensor unit defines an airflow inlet radially inside the lower edge relative to the axis and is positioned to receive airflow from the aperture. A gap is defined between the aperture and the lower edge along the axis. The airfoil blade is positioned at the gap and positioned to interrupt airflow from the housing through the aperture into the cylindrical shell.
1 . A sensor assembly comprising:
a housing;
a sensor unit attached to the housing; and
an airfoil blade;
the sensor unit including a cylindrical shell defining a vertical axis;
the cylindrical shell being rotatable around the axis relative to the housing;
the cylindrical shell including a lower edge and extending along the axis from the lower edge;
the housing including an aperture centered on the axis;
the aperture defining an airflow outlet from the housing, airflow passing through the airflow outlet radially inside the aperture relative to the axis;
the sensor unit defining an airflow inlet, airflow passing through the airflow inlet radially inside the lower edge relative to the axis, the airflow inlet being positioned to receive airflow from the aperture;
and
the airfoil blade being positioned to interrupt airflow from the housing through the aperture.
2 . The sensor assembly of claim 1 , further comprising a plurality of airfoil blades including the airfoil blade, wherein the airfoil blades are arranged circumferentially around the axis.
3 . The sensor assembly of claim 2 , wherein the airfoil blades are spaced equidistantly from each other around the axis.
4 . The sensor assembly of claim 1 , further comprising a pressurized-air source positioned to supply the airflow from the housing through the aperture into the cylindrical shell.
5 . The sensor assembly of claim 1 , further comprising a ring positioned along the axis below the lower edge of the cylindrical shell and rotatable relative to the housing around the axis, the airfoil blade being fixed relative to the ring.
6 . The sensor assembly of claim 5 , wherein the airfoil blade is arranged to direct airflow axially into the cylindrical shell relative to the axis when the ring rotates relative to the housing.
7 . The sensor assembly of claim 5 , wherein the cylindrical shell is rotatable around the axis in a first direction, and the ring is rotatable around the axis in a second direction opposite the first direction.
8 . The sensor assembly of claim 7 , wherein the airfoil blade is a first airfoil blade, the sensor assembly further comprising a second airfoil blade fixed relative to the cylindrical shell, wherein the second airfoil blade is positioned to direct outside air between the aperture and the lower edge when the cylindrical shell rotates.
9 . The sensor assembly of claim 5 , further comprising a first motor positioned to rotatably drive the cylindrical shell relative to the housing at a first speed, and a second motor positioned to rotatably drive the ring relative to the housing at a second speed different than the first speed.
10 . The sensor assembly of claim 9 , wherein the second speed is greater than the first speed.
11 . The sensor assembly of claim 5 , wherein the ring extends circumferentially around the axis.
12 . The sensor assembly of claim 5 , wherein the ring includes a concave surface facing radially outward relative to the axis and facing toward the cylindrical shell, and the airfoil blade extends from the concave surface.
13 . The sensor assembly of claim 1 , wherein the airfoil blade is fixed relative to the cylindrical shell.
14 . The sensor assembly of claim 13 , wherein the airfoil blade is positioned to direct airflow into the gap outside air between the aperture and the lower edge when the cylindrical shell rotates.
15 . The sensor assembly of claim 13 , wherein a shape of the airfoil blade includes a cross-section that is projected along the axis from the lower edge away from the cylindrical shell.
16 . The sensor assembly of claim 15 , further comprising a gutter fixed relative to the housing and extending around the aperture, wherein the gutter is elongated along the lower edge and positioned directly below the lower edge relative to the axis, and the airfoil blade extends from the lower edge toward the gutter.
17 . The sensor assembly of claim 1 , further comprising a gutter fixed relative to the housing and extending around the aperture, wherein the gutter is elongated along the lower edge and positioned directly below the lower edge relative to the axis.
18 . The sensor assembly of claim 17 , wherein the gutter includes a channel extending from radially inside the lower edge to radially outside the lower edge relative to the axis.
19 . The sensor assembly of claim 1 , wherein the sensor unit includes a sensor body fixed relative to the cylindrical shell and defining a cavity radially between the sensor body and the cylindrical shell relative to the axis, and the cavity extends continuously circumferentially around the sensor body relative to the axis.
20 . The sensor assembly of claim 1 , wherein the sensor unit includes a LIDAR sensing device.