ANGLED PEDESTALS FOR COOLING CHANNELS
A turbomachine component includes a body defining a cooling inlet and a cooling outlet in fluid communication with each other through a cooling channel that defines a longitudinal axis, and at least one pedestal disposed within the cooling channel. The pedestal is angled within the cooling channel relative to the longitudinal axis. The turbomachine component can be a vane, a blade, a blade outer air seal, or a combustor panel.
1 . A turbomachine component, comprising:
a body defining a cooling inlet and a cooling outlet in fluid communication with each other through a cooling channel that defines a longitudinal axis; and
at least one pedestal disposed within the cooling channel, wherein the pedestal is angled within the cooling channel relative to the longitudinal axis.
2 . The turbomachine of claim 1 , wherein the at least one pedestal is angled between about 10 degrees to about 90 degrees relative to the longitudinal axis.
3 . The turbomachine component of claim 1 , wherein the turbomachine component is a vane, a blade, a blade outer air seal, or a combustor panel.
4 . The turbomachine component of claim 1 , wherein the pedestal is angled tangentially circumferential within the cooling channel relative to an axial direction that is parallel to the longitudinal axis.
5 . The turbomachine component of claim 1 , wherein the pedestal is angled radially within the cooling channel relative to an axial direction that is perpendicular to the longitudinal axis.
6 . The turbomachine component of claim 5 , wherein the pedestal is also angled tangentially circumferential within the cooling channel relative to an axial direction that is parallel to the longitudinal axis.
7 . The turbomachine component of claim 2 , wherein the pedestal includes a circular, elliptical, or square cross-sectional shape.
8 . The turbomachine component of claim 2 , further comprising a plurality of pedestals that are angled relative to one another.
9 . The turbomachine component of claim 8 , wherein at least two pedestals in the plurality of pedestals have a different angle degree and/or angle direction relative to each other.
10 . The turbomachine component of claim 8 , wherein the plurality of pedestals are disposed in a predetermined pattern relative to each other.
11 . The turbomachine component of claim 10 , wherein the predetermined pattern includes one or more rows or columns.
12 . A method, comprising:
forming a turbomachine component having a body defining a cooling inlet and a cooling outlet in fluid communication with each other through a cooling channel that defines a longitudinal axis, wherein at least one pedestal is disposed within the cooling channel, wherein the pedestal is angled within the cooling channel relative to the longitudinal axis.
13 . The method of claim 12 , wherein forming includes at least one of additively manufacturing the turbomachine component, using electric discharge machining (EDM) to manufacture the turbomachine component, or using a laser to manufacture the turbomachine component.
14 . The method of claim 13 , wherein forming includes shaping the body into a turbomachine vane, blade, blade outer air seal, or combustor panel.
15 . A turbomachine, comprising:
a turbomachine component, having:
a body defining a cooling inlet and a cooling outlet in fluid communication with each other through a cooling channel that defines a longitudinal axis; and
at least one pedestal disposed within the cooling channel, wherein the pedestal is angled within the cooling channel relative to the longitudinal axis.
16 . The turbomachine of claim 15 , wherein the at least one pedestal is angled between about 10 degrees to about 90 degrees relative to the longitudinal axis.
17 . The turbomachine of claim 15 , wherein the turbomachine component is a vane, a blade, a blade outer air seal, or a combustor panel.
18 . The turbomachine of claim 15 , wherein the pedestal is angled tangentially circumferential within the cooling channel relative to an axial direction that is parallel to the longitudinal axis.
19 . The turbomachine of claim 15 , wherein the pedestal is angled radially within the cooling channel relative to an axial direction that is perpendicular to the longitudinal axis.
20 . The turbomachine of claim 19 , wherein the pedestal is also angled tangentially circumferential within the cooling channel relative to an axial direction that is parallel to the longitudinal axis.