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Plainview, TX
On March 10, 2025, about 1240 central daylight time, an experimental RV-7A airplane, N923ZA, was substantially damaged when it was involved in an accident near Plainview, Texas. The pilot was not injured. The airplane was operated as a Title 14 Code of Federal Regulations Part 91 personal cross-country flight. The pilot reported that the accident flight was the second leg of the flight. The first leg of the flight was about 2 hours and 15 minutes and was uneventful. After landing, the airplane was refueled, and he was in the process of departing for the destination airport. He reported that the takeoff was “smooth” until he reached 800 ft above ground level (agl), when the airplane shuddered and shook violently. He reduced the throttle, which reduced the shaking, then completed a forced landing in a field. After landing, the pilot noticed that one of the three propeller blades had separated from the hub and was found nearby in the field. A review of the maintenance logbooks revealed that the propeller was installed on December 19, 2023, and had accumulated about 25 hours of time in service. During the last two condition inspections, the propeller had been inspected and was determined to be in airworthy condition. The airplane was retained for further examination.
The improper machining of the propeller blade bearing seat, which resulted in an inflight propeller blade fatigue failure. Contributing to the accident was the improper machining of the propeller hub and propeller blade root and machining surface quality control.
On March 10, 2025, about 1240 central daylight time, a Vans RV-7A experimental airplane, N923ZA, was substantially damaged when it was involved in an accident near Plainview, Texas. The pilot was not injured. The airplane was operated as a Title 14 Code of Federal Regulations Part 91 personal cross-country flight. The pilot reported that the accident flight was the second leg of the flight. The first leg of the flight was about 2 hours and 15 minutes and was uneventful. After landing, the airplane was refueled, and he was in the process of departing for the destination airport. He reported that the takeoff was “smooth” until he reached 800 ft agl, when the airplane shuddered and shook violently. He reduced the throttle, which reduced the shaking, then completed a forced landing in a field. After landing, the pilot noticed that one of the three propeller blades had separated from the hub and was found nearby in the field. Postaccident examination revealed the engine mount was cracked. A review of the maintenance logbooks revealed that the propeller was installed on December 19, 2023, and had accumulated about 25 hours of time in service. During the last two condition inspections, the propeller had been inspected and was determined to be in airworthy condition. Examination of blade Nos. 1 and 3 did not find any indications of cracking and both were visually intact. The liberated blade was identified as blade No. 2, and the cracking appeared to emanate from a fillet on the blade root. The primary fracture progressed transversely through the hollow blade root, intersecting the three radial mounting pins, and final fracture occurred on the opposite side at approximately a 120° angle to the origin. Progressive growth was observed across the majority of the fracture surface, consistent with high cycle and low nominal stress loading. Adjacent to both the fracture initiation and final overstress regions, a portion of the machined fillet surface was found intact, exhibiting heavy wear marks indicating sliding contact against the hub housing. Surfaces adjacent to the wear path exhibited coarse machining marks, from which the crack appeared to originate. A single ratchet mark was observed towards one end of the region, while the rest of the origin appeared to emanate from a common plane. Several secondary thumbnail cracks appeared to have initiated from the corners of radial retention pin holes, often progressing until terminating at the intersection with the primary fracture progression or region of final overstress. Black greasy witness marks indicating the position of the blade root were observed within the pin holes suggesting that the top cartridge bearing inner diameter ring had slid at some point for an unknown reason. The No. 2 blade root fracture surface exhibited a feathery appearance with tear ridges, consistent with high-cycle fatigue. Numerous fine secondary cracks oriented perpendicular to the progression direction were observed going into the fracture surface. The origin sustained some fracture rub but appeared to largely emanate along a single machine mark spanning the region. Marks from other machine passes were observed parallel to origin. Numerous ratchet marks were observed midway through the progression on the inner diameter of the root, indicative of multiple fracture origins that quickly coalesced with the primary fracture. Electron microscopy revealed these origins emanated from machining chatter marks observed on the adjacent threads. It was unclear whether these thread features were permissible according to the design of the blade root. Portions of the No. 2 blade root were missing. Some secondary fracture propagation appeared to initiate from the fillet region and progress within the region of the first cartridge bearing interface, resulting in the separation of blade root fragments. The bearing interface surfaces that were still present appeared oxidized and had patches of galling, consistent with fretting and suggesting an amount of vibratory movement at the inner diameter (ID) bearing ring/blade root interface. It was unclear if an insecure bearing fitment at this interface was permissible by design. The propeller hub exhibited damage consistent with the radial ejection of the No. 2 blade on the No. 2 blade hub slot. Large cracks were observed on three of the four corners of the clamshell No. 2 blade pocket. One of these cracks on the forward shell exhibited an outward deformation, revealing a thumbnail progressive fracture emanating from the ID corner of the shell. The orientation of the crack corresponded with aggressive contact wear observed on the inner lip of the blade opening. Regions of the blade root fillet radius that exhibited aggressive contact wear corresponded to wear observed on the inner lip of the hub blade opening, indicating contact between the blade root and hub. No manufacturer documentation was provided to indicate if this was an intended design of the assembly. Clearance was observed between the hub opening and the blade root of No. 3 blade, allowing the blade pitch to rotate freely without contact. However, this clearance was not present in the assembled No. 2 blade, permitting contact between the blade root and propeller hub opening. Measurements between the bottom of the blade root and the fillet radius appeared consistent across all three blades and no significant dimensional deviation was observed. However, examinations of the No. 2 blade hub slot indicated a discrepancy compared with the slots for blade Nos. 1 and 3. In both blade Nos. 1 and 3, a full-circumference seating surface is machined into the lip that interfaces with the outer ring of the cartridge bearings. However, in the No. 2 blade slot, this surface blended into the machining of the slot opening lip, starting at the hub parting plane and disappearing altogether at the base of the slot (see figure 1). When properly configured with the fractured blade root, the initiation point of the primary fatigue crack, as well as the adjacent contact wear on the fillet, correlated with the missing region of the bearing seat. Similar bearing seat features were also observed on the rear shell No. 2 blade slot. Figure 1. Annotated images of the inner lip surfaces of the forward shell Nos. 2 and 3 blade slots. The bearing seat surface (contacting the top cartridge bearing) radial boundaries are identified via dashed lines, with the inner boundary denoted with orange and the outer with red. While both the Nos. 1 and 3 blade forward slots exhibited a continuous flat seat surface, the No. 2 blade seating surface disappears along the middle portion of the lip (Source: NTSB Materials Laboratory Factual Report 25-089). The NTSB investigated a similar AXSport propeller failure, CEN24LA038, in November 2023. Images of the blade root in this investigation exhibited similar coarse machining and chatter markings on the subject blade root. In both cases, the blade root of the propeller failed due to transverse fatigue progression through the component. While the primary cracks did not initiate in the same location as this investigation, the presence of similar undesirable machining features as well as similar progression influence in the same component was evident.