Title
Experimental investigation of contact forces and temperatures in rubbing interactions of honeycomb interstate sealsVersion
http://purl.org/coar/version/c_970fb48d4fbd8a85
Rights
© IOP Publishing LtdAccess
http://purl.org/coar/access_right/c_abf2Publisher’s version
https://doi.org/10.1088/1757-899X/1193/1/012070Published at
IOP Conference Series: Materials Science and Engineering Vol. 1193. N. artículo 0102070, 2021Publisher
IOP PublishingKeywords
Rubbing
temperature measurement
Honeycomb
Thermography ... [+]
temperature measurement
Honeycomb
Thermography ... [+]
Rubbing
temperature measurement
Honeycomb
Thermography
Labyrinth seal [-]
temperature measurement
Honeycomb
Thermography
Labyrinth seal [-]
Abstract
The new architecture of high velocity aircraft engines includes labyrinth-honeycomb interstate seals to improve the engine’s stability. To increase these engines capacity a commonly used strategy is t ... [+]
The new architecture of high velocity aircraft engines includes labyrinth-honeycomb interstate seals to improve the engine’s stability. To increase these engines capacity a commonly used strategy is to reduce the clearance between the blades and the sealing system. However, this reduction causes non-desired contacts (rubbing) between the rotating and static components of the engine. This rubbing interaction has an adverse effect on the engine life (wear and thermal cracking) and efficiency. In this work, experimental tests were carried out to recreate the rub between an F110 steel fin and a Hastelloy X honeycomb seal. A conventional CNC machine controlled the sliding and penetration velocities, and the interaction forces and fin tip temperatures were measured during the rub. Results demonstrate the dependence that both, interaction forces and tip temperatures, have with sliding and penetration velocities. However, it is clear that this influence is more pronounced in relation to the sliding velocity. [-]
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Gobierno Vascoxmlui.dri2xhtml.METS-1.0.item-projectID
info:eu-repo/grantAgreement/GV/Elkartek 2018/KK-2018-00078/CAPV/Tecnologías disruptivas para la nueva generación de turbinas de alta velocidad/GERTURACollections
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