Experimental Study on Improving Wear Resistance by Hardfacing of Rotary Drying Segments Used in the Asphalt Industry
Abstract
1. Introduction
2. Materials and Methods
2.1. Hardfacing of Rotary Dryer Flights
2.2. Operation of Hardfaced Rotary Dryer Flights on Site, Under Real Conditions
3. Results and Discussion
3.1. Hardness Measurements of Hardfaced Flights
3.2. Thickness Measurements of the Hardfaced Rotary Dryer
3.3. Wear Rate and Wear Distribution Along the Flight Profile
4. Conclusions
- a flattening (uniforming) effect on the pronounced wear developed between marked zones 14–26, which are the most affected areas during operation;
- the lowest wear rate, especially between marked zones 14–26, which are the most affected areas during operation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| GMAW | Gas Metal Arc Welding |
| SMAW | Shielded Metal Arc Welding |
| EAPA | European Asphalt Pavement Association |
| USD | United States Dollar |
| DEM | Discrete Element Method |
| MEK | Methyl-Ethyl-Ketone |
| PTAW | Plasma Transfer Arc Welding |
| APS | Asphalt Producers Service |
References
- European Asphalt Pavement Association (EAPA); National Asphalt Pavement Association (NAPA). The Asphalt Paving Industry: A Global Perspective. Available online: https://irp-cdn.multiscreensite.com/f2c35bed/files/uploaded/gl101bookweb.pdf (accessed on 29 January 2026).
- Research and Markets. Asphalt-Global Strategic Business Report 2026. Available online: https://www.researchandmarkets.com/report/asphalt (accessed on 29 January 2026).
- Future Market Insights, Inc. Asphalt Mixing Plants Market Size and Share Forecast Outlook 2025 to 2035. Available online: https://www.futuremarketinsights.com/reports/asphalt-mixing-plants-market (accessed on 29 January 2026).
- E-MAK Innovation and Reliability. How Does an Asphalt Plants Work? Available online: https://e-mak.com/en/blog/how-does-asphalt-plants-work?gad_source=1&gad_campaignid=19661548065&gbraid=0AAAAAD3lkOz4OBGNRCGetDA1olFHIlZ4U&gclid=CjwKCAiAmp3LBhAkEiwAJM2JUD1i49jnGG2DKAFQ04USmjnpkV2KOXqnM8F5OEKARdoREiwzFr1wNBoCW1UQAvD_BwE (accessed on 29 January 2026).
- A Wirtgen Group Company–Benninghoven. Dryer Drum Highlight Flyer. Available online: https://www.wirtgen-group.com/binary/full/o228335v95_Dryer_drum_Highlight_flyer_enGB.pdf (accessed on 29 January 2026).
- Burlacu, A.I.; Tănase, M.; Ilincă, C.; Petrescu, M.G. Optimizing the trajectory of aggregates in drying units from the asphalt plants. IOP Conf. Ser. Mater. Sci. Eng. 2002, 1262, 012003. [Google Scholar] [CrossRef]
- Burlacu, A.; Petrescu, M.G.; Dumitru, T.; Niță, A.; Tănase, M.; Laudacescu, E.; Ramadan, I.; Ilincă, C. Numerical Approach Regarding the Effect of the Flight Shape on the Performance of Rotary Dryers from Asphalt Plants. Processes 2022, 10, 2339. [Google Scholar] [CrossRef]
- Cimbola, Z.; Dolaček-Alduk, Z. Managing Thermal Energy of Exhaust Gases in the Production of Asphalt Mixtures. Tech. Gaz. 2018, 25, 444–451. [Google Scholar]
- Silveira, J.C.; Lima, R.M.; Brandao, R.J.; Duarte, C.R.; Barrozo, M.A.S. A study of the design and arrangement of flights in a rotary drum. Powder Technol. 2022, 395, 195–206. [Google Scholar] [CrossRef]
- Xie, Q.; Chen, Z.; Hou, Q.; Yu, A.B.; Yang, R. DEM investigation of heat transfer in a drum mixer with lifters. Powder Technol. 2017, 314, 175–181. [Google Scholar] [CrossRef]
- Karali, M.A.; Specht, E.; Herz, F.; Mellmann, J.; Refaey, H.A. Unloading characteristics of flights in a flighted rotary drum operated at optimum loading. Powder Technol. 2018, 333, 347–352. [Google Scholar] [CrossRef]
- Asphalt Producers Service (APS). New Rotary Dryers. Available online: https://asphaltproducers.net/new-dryers/ (accessed on 29 January 2026).
- Stansteel-Hotmix Parts & Service. How to Change Drum Flights. Available online: https://theasphaltpro.com/articles/how-to-change-drum-flights/ (accessed on 29 January 2026).
- Petrescu, M.G.; Popovici, A.I.; Burlacu, A.; Isbășoiu, G.D.; Laudacescu, E.; Dumitru, T.; Maria Tănase, M. Modeling of Flight-Specific Degradation Phenomena in Rotary Dryers Used in the Asphalt Industry. In Lubrication Science—Challenges and Emerging Technologies; IntechOpen: London, UK, 2025; Available online: https://www.intechopen.com/chapters/1226305 (accessed on 29 January 2026).
- Tudor, A.; Vlase, M. Material Wear; Bren Publishing Press: Bucharest, Romania, 2010. [Google Scholar]
- Petrescu, M.G.; Burlacu, A.; Isbăsoiu, G.D.; Dumitru, T.; Tănase, M. Estimating the Lifetime of Rotary Dryer Flights Based on Experimental Data. Processes 2024, 12, 993. [Google Scholar] [CrossRef]
- Okechukwu, C.; Dahunsi, O.A.; Oke, P.K.; Oladele, I.O.; Dauda, M. Review on Hardfacing as Method of Improving the Service Life of Critical Components Subjected to Wear in Service. Niger. J. Technol. 2017, 36, 1095–1103. [Google Scholar] [CrossRef]
- Bădicioiu, M.; Călțaru, M.M.; Petrescu, M.G. Engineering Application of Hardbanding Technology in the Petroleum Industry. Materials 2024, 17, 6075. [Google Scholar] [CrossRef] [PubMed]
- Ranjan, R. An overview on enhancing materials’ tribological and mechanical characteristics by using gas metal arc weld hardfacing. J. Eng. Sci. Technol. 2024, 17, 54–62. [Google Scholar] [CrossRef]
- Ning, Y.; Qiu, Z.; Wu, B.; Pan, Z.; Li, H. Hardfacing of metals: A review of consumables, properties and strengthening processes. J. Mater. Res. Technol. 2025, 36, 6330–6349. [Google Scholar] [CrossRef]
- EN 10025-2:2019; Hot Rolled Products of Structural Steels—Part 2: Technical Delivery Conditions for Non-Alloy Structural Steels. CEN: Brussels, Belgium, 2004.
- FLUXOFIL 51—Technical Data Sheet. Available online: https://ch-delivery.lincolnelectric.com/api/public/content/e195c33fd52a4526a09ad65813c0c1bc?v=c9bcff53 (accessed on 29 January 2026).
- FLUXOFIL 56—Technical Data Sheet. Available online: https://ch-delivery.lincolnelectric.com/api/public/content/2f65dc771d0348988d840c2894662310?v=53291476 (accessed on 29 January 2026).
- SAFER R 400—Technical Data Sheet. Available online: https://ch-delivery.lincolnelectric.com/api/public/content/a070f127c102405ab5190b3561e34a98?v=ec027064 (accessed on 29 January 2026).
- SAFER R 600—Technical Data Sheet. Available online: https://ch-delivery.lincolnelectric.com/api/public/content/afedc2a4f92842d78c97673fb7bc135f?v=3a52428b (accessed on 29 January 2026).
- Cartea Tehnica—Instructiuni de Utilizare 02.00.00 Tambur de Uscare; BAL_TT06_2996558_02_ro; Benninghoven GmbH & Co. KG: Wittlich, Germany, 2018.














| Chemical Composition, % | |||||||||
|---|---|---|---|---|---|---|---|---|---|
| C | Si | Mn | P | S | Cr | Mo | Ni | Nb | V |
| 0.1710 | 0.0320 | 1.370 | 0.0106 | 0.0032 | 0.0279 | 0.0017 | 0.0205 | 0.0004 | 0.0029 |
| Filler Material Type | Chemical Composition, % | ||||
|---|---|---|---|---|---|
| C | Mn | Si | Cr | Mo | |
| FLUXOFIL 51 (basic flux core tubular wires, Ø 1.2 mm) | 0.2 | 1.6 | 0.6 | 1.4 | - |
| FLUXOFIL 56 (basic flux core tubular wires, Ø 1.6 mm) | 0.4 | 1.7 | 0.6 | 6.0 | 0.7 |
| SAFER R 400 (electrode, Ø 3.2 mm × 450 mm) | 0.1 | 0.6 | 0.3 | 2.4 | - |
| SAFER R 600 (electrode, Ø 3.2 mm × 450 mm) | 0.6 | 1.1 | 1.0 | 2.8 | - |
| Filler Material | Identification Probe * | Number of Hardfaced Layers | Welding Parameter (Average Value) |
|---|---|---|---|
| Wire S1 (FLUXOFIL 51) | F51-1 | 1 | Amperage: Is = 160 A Voltage: Ua = 20.8 V Shielding gas: 100% CO2 |
| F51-2 | 2 | ||
| Wire S2 (FLUXOFIL 56) | F56-1 | 1 | Amperage: Is = 200 A Voltage: Ua = 20.6 V Shielding gas: 100% CO2 |
| F56-2 | 2 | ||
| Electrode E1 (SAFER R 400) | E400-1 | 1 | Amperage: Is = 85 A Voltage: Ua = 19.2 V |
| E400-2 | 2 | ||
| Electrode E2 (SAFER R 600) | E600-1 | 1 | Amperage: Is = 110 A Voltage: Ua = 20.8 V |
| E600-2 | 2 |
| Identification Probe | Vickers Hardness of the Hardfaced Flights, HV | Hardness Increase, % | |
|---|---|---|---|
| Initial State (Before Being Mounted in the Rotary Dryer) | Final State (After 1150 h of Operation in the Rotary Dryer) | ||
| S | 149 | 187 | 13 |
| F51-1 | 474 | 498 | 5 |
| F56-1 | 679 | 689 | 1.5 |
| E400-1 | 463 | 533 | 15 |
| E600-1 | 670 | 714 | 6.5 |
| F51-2 | 538 | 567 | 5.3 |
| F56-2 | 679 | 731 | 7.6 |
| E400-2 | 474 | 524 | 10.5 |
| E600-2 | 715 | 729 | 2 |
| Point of Measurement | Flight Thickness Without Deposition, mm | |||
|---|---|---|---|---|
| Initial State | After 300 h (Intermediate State) | After 730 h (Intermediate State) | After 1150 h (Final State) | |
| 1 | 8 | 7.52 | 6.32 | 5.76 |
| 2 | 8 | 6.83 | 5.41 | 4.8 |
| 3 | 8 | 6.91 | 5.63 | 5.04 |
| 4 | 8 | 7.12 | 5.79 | 5.3 |
| 5 | 8 | 7.24 | 6.03 | 5.5 |
| 6 | 8 | 7.32 | 5.63 | 4.8 |
| 7 | 8 | 7.23 | 5.38 | 4.61 |
| 8 | 8 | 7.50 | 5.47 | 4.48 |
| 9 | 8 | 7.43 | 5.24 | 4.29 |
| 10 | 8 | 7.25 | 5.54 | 4.97 |
| 11 | 8 | 7.45 | 5.8 | 5.21 |
| 12 | 8 | 7.53 | 5.8 | 4.31 |
| 13 | 8 | 7.41 | 5.95 | 4.19 |
| 14 | 8 | 7.69 | 4.88 | 3.30 |
| 15 | 8 | 7.88 | 5.12 | 3.55 |
| 16 | 8 | 7.67 | 5.21 | 3.59 |
| 17 | 8 | 7.61 | 5.78 | 4.29 |
| 18 | 8 | 7.37 | 5.46 | 4.27 |
| 19 | 8 | 7.34 | 5.3 | 4.48 |
| 20 | 8 | 7.45 | 5.27 | 4.36 |
| 21 | 8 | 7.37 | 5.22 | 4.32 |
| 22 | 8 | 7.63 | 5.42 | 4.22 |
| 23 | 8 | 7.45 | 5.46 | 4.54 |
| 24 | 8 | 7.36 | 4.34 | 3.15 |
| 25 | 8 | 7.29 | 4.32 | 3.27 |
| 26 | 8 | 7.11 | 4.49 | 3.58 |
| Point of Measurement | Flight Thickness with Single-Pass Deposition, mm * | |||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Identification Probe | ||||||||||||||||
| F51-1 | F56-1 | E400-1 | E600-1 | F51-1 | F56-1 | E400-1 | E600-1 | |||||||||
| Initial State | Initial State | Initial State | Initial State | After 300 h | After 730 h | After 1150 h | After 300 h | After 730 h | After 1150 h | After 300 h | After 730 h | After 1150 h | After 300 h | After 730 h | After 1150 h | |
| 1 | 9.84 | 11.68 | 10.11 | 9.92 | 9.81 | 7.72 | 7.53 | 11.26 | 9.65 | 9.51 | 8.08 | 8.16 | 7.84 | 7.71 | 7.48 | 7.36 |
| 2 | 10.03 | 11.22 | 9.77 | 9.10 | 9.80 | 8.20 | 7.89 | 11.05 | 9.64 | 8.32 | 8.45 | 5.95 | 5.53 | 8.03 | 5.49 | 5.22 |
| 3 | 10.05 | 10.30 | 9.40 | 9.13 | 9.71 | 8.08 | 7.78 | 10.12 | 8.75 | 7.24 | 8.37 | 6.47 | 5.90 | 8.11 | 6.26 | 5.94 |
| 4 | 9.94 | 9.95 | 9.36 | 9.21 | 9.63 | 8.27 | 8.08 | 9.91 | 7.98 | 6.81 | 8.27 | 5.93 | 5.71 | 7.12 | 5.76 | 5.34 |
| 5 | 9.74 | 9.82 | 9.31 | 9.40 | 9.50 | 7.98 | 7.53 | 9.76 | 6.95 | 6.53 | 7.47 | 5.86 | 4.92 | 7.39 | 3.59 | 3.31 |
| 6 | 9.78 | 9.90 | 9.18 | 9.50 | 9.71 | 6.86 | 6.25 | 9.73 | 6.84 | 6.14 | 7.01 | 5.83 | 5.63 | 6.55 | 4.37 | 3.84 |
| 7 | 10.02 | 9.91 | 9.22 | 9.29 | 9.33 | 7.54 | 6.94 | 9.83 | 7.16 | 6.77 | 7.17 | 6.02 | 4.58 | 6.63 | 4.85 | 4.66 |
| 8 | 9.42 | 10.27 | 9.20 | 8.98 | 9.29 | 6.98 | 6.40 | 9.99 | 7.59 | 6.44 | 7.13 | 5.41 | 4.75 | 6.50 | 4.99 | 4.51 |
| 9 | 9.42 | 10.52 | 9.24 | 8.84 | 9.28 | 6.84 | 6.36 | 9.90 | 7.98 | 7.54 | 7.13 | 5.69 | 4.96 | 6.53 | 4.64 | 4.54 |
| 10 | 9.45 | 10.35 | 9.23 | 8.98 | 9.41 | 6.87 | 6.42 | 10.20 | 7.57 | 7.26 | 7.16 | 5.33 | 4.84 | 6.55 | 4.75 | 4.29 |
| 11 | 9.50 | 10.14 | 9.29 | 8.87 | 9.44 | 6.64 | 5.93 | 9.82 | 6.95 | 6.60 | 7.21 | 5.35 | 4.92 | 6.45 | 4.60 | 4.33 |
| 12 | 9.57 | 10.02 | 9.47 | 8.80 | 9.46 | 6.79 | 6.11 | 9.70 | 6.83 | 6.29 | 7.34 | 5.49 | 5.11 | 6.53 | 4.82 | 4.55 |
| 13 | 9.60 | 10.11 | 9.63 | 8.79 | 9.53 | 6.86 | 5.98 | 9.96 | 7.39 | 5.98 | 7.50 | 5.27 | 5.05 | 6.61 | 4.35 | 4.24 |
| 14 | 9.65 | 10.45 | 9.60 | 8.90 | 9.46 | 6.64 | 5.81 | 9.68 | 7.31 | 5.92 | 7.47 | 5.69 | 5.37 | 6.79 | 3.29 | 2.08 |
| 15 | 9.67 | 10.39 | 9.61 | 8.95 | 9.58 | 6.98 | 5.98 | 9.87 | 6.81 | 5.21 | 7.50 | 5.71 | 5.33 | 6.88 | 4.19 | 2.83 |
| 16 | 9.68 | 10.20 | 9.56 | 9.16 | 9.36 | 7.06 | 6.29 | 9.83 | 6.76 | 5.15 | 7.47 | 5.76 | 5.42 | 6.87 | 4.51 | 4.07 |
| 17 | 9.73 | 9.78 | 9.52 | 9.48 | 9.30 | 7.11 | 6.26 | 9.59 | 5.95 | 4.38 | 7.43 | 5.85 | 5.30 | 6.81 | 5.65 | 4.32 |
| 18 | 9.63 | 9.62 | 9.43 | 9.27 | 9.21 | 7.52 | 6.52 | 9.53 | 6.92 | 5.67 | 7.40 | 6.61 | 5.75 | 5.37 | 4.13 | 3.23 |
| 19 | 9.61 | 10.93 | 9.51 | 9.64 | 9.49 | 6.76 | 5.83 | 9.68 | 9.02 | 7.56 | 7.32 | 4.28 | 3.58 | 6.34 | 5.19 | 4.78 |
| 20 | 9.56 | 11.11 | 9.53 | 8.92 | 9.43 | 6.78 | 6.08 | 9.78 | 7.48 | 6.20 | 6.86 | 4.46 | 3.63 | 5.45 | 3.89 | 3.64 |
| 21 | 9.59 | 11.13 | 9.51 | 8.97 | 9.33 | 6.57 | 5.90 | 9.71 | 7.29 | 6.42 | 6.93 | 4.45 | 3.51 | 5.57 | 4.14 | 4.02 |
| 22 | 10.28 | 11.12 | 9.20 | 9.08 | 10.01 | 7.29 | 6.72 | 9.64 | 7.34 | 6.25 | 6.66 | 4.89 | 3.62 | 5.63 | 4.76 | 4.60 |
| 23 | 10.62 | 10.77 | 9.01 | 8.77 | 10.07 | 7.93 | 7.48 | 9.25 | 7.15 | 5.83 | 6.63 | 4.67 | 3.78 | 5.55 | 4.41 | 4.14 |
| 24 | 10.52 | 10.41 | 9.15 | 8.90 | 10.06 | 8.77 | 8.10 | 9.82 | 6.92 | 5.96 | 6.70 | 4.41 | 3.86 | 5.60 | 4.19 | 3.75 |
| 25 | 11.60 | 10.27 | 9.39 | 9.13 | 10.44 | 9.45 | 8.86 | 9.68 | 6.87 | 5.75 | 7.08 | 4.20 | 3.74 | 5.79 | 3.94 | 3.63 |
| 26 | 10.71 | 9.85 | 9.63 | 8.65 | 10.41 | 8.69 | 8.09 | 9.78 | 5.74 | 4.78 | 7.14 | 5.24 | 4.48 | 5.21 | 4.24 | 3.44 |
| Point of Measurement | Flight Thickness with Double-Pass Deposition, mm * | |||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Identification Probe | ||||||||||||||||
| F51-2 | F56-2 | E400-2 | E600-2 | F51-2 | F56-2 | E400-2 | E600-2 | |||||||||
| Initial State | Initial State | Initial State | Initial State | After 300 h | After 730 h | After 1150 h | After 300 h | After 730 h | After 1150 h | After 300 h | After 730 h | After 1150 h | After 300 h | After 730 h | After 1150 h | |
| 1 | 13.30 | 14.30 | 10.77 | 9.39 | 11.46 | 11.25 | 11.09 | 13.49 | 12.25 | 12.12 | 8.87 | 8.72 | 8.50 | 7.20 | 6.94 | 6.83 |
| 2 | 13.11 | 15.07 | 12.16 | 11.34 | 11.4 | 11.33 | 11.27 | 13.30 | 12.49 | 12.17 | 9.46 | 8.18 | 7.93 | 9.59 | 7.66 | 7.46 |
| 3 | 13.10 | 14.66 | 11.83 | 11.05 | 11.16 | 11.13 | 11.03 | 12.73 | 12.13 | 11.64 | 9.29 | 8.86 | 8.36 | 8.61 | 8.08 | 7.88 |
| 4 | 13.09 | 14.16 | 11.63 | 10.94 | 11.38 | 11.32 | 11.23 | 11.96 | 11.39 | 11.01 | 8.52 | 8.12 | 8.06 | 8.23 | 7.43 | 7.07 |
| 5 | 13.12 | 13.41 | 11.64 | 11.09 | 11.33 | 11.23 | 11.09 | 11.03 | 10.52 | 10.09 | 8.19 | 7.75 | 7.25 | 5.96 | 5.20 | 5.04 |
| 6 | 13.05 | 12.81 | 11.47 | 10.87 | 9.88 | 9.73 | 9.53 | 10.41 | 9.49 | 9.06 | 8.52 | 8.15 | 7.97 | 6.49 | 5.75 | 5.24 |
| 7 | 11.95 | 12.43 | 11.28 | 10.45 | 9.25 | 9.07 | 8.89 | 10.64 | 9.55 | 9.28 | 7.40 | 6.94 | 6.44 | 6.63 | 6.01 | 5.76 |
| 8 | 11.94 | 12.95 | 11.03 | 10.02 | 9.5 | 9.26 | 8.98 | 10.77 | 10.27 | 9.05 | 7.32 | 6.95 | 6.68 | 7.13 | 5.94 | 5.60 |
| 9 | 11.97 | 13.05 | 11.21 | 9.92 | 9.65 | 9.36 | 9.12 | 10.72 | 10.44 | 10.09 | 7.46 | 7.06 | 6.93 | 7.13 | 5.77 | 5.61 |
| 10 | 12.16 | 13.10 | 11.23 | 10.04 | 9.53 | 9.36 | 9.12 | 10.53 | 10.31 | 10.02 | 7.35 | 7.03 | 6.94 | 6.77 | 5.84 | 5.34 |
| 11 | 12.50 | 13.00 | 11.09 | 10.25 | 9.52 | 9.24 | 8.92 | 10.27 | 9.76 | 9.47 | 7.30 | 6.83 | 6.70 | 7.51 | 5.99 | 5.71 |
| 12 | 12.57 | 12.96 | 11.14 | 10.42 | 9.96 | 9.59 | 9.1 | 10.02 | 9.68 | 9.16 | 7.61 | 7.16 | 6.78 | 7.09 | 6.44 | 6.13 |
| 13 | 12.71 | 12.82 | 11.11 | 10.43 | 10.51 | 9.71 | 9.08 | 10.11 | 9.80 | 8.68 | 7.95 | 6.71 | 6.51 | 7.29 | 6.03 | 5.86 |
| 14 | 12.74 | 12.89 | 11.12 | 10.62 | 10.52 | 9.63 | 8.89 | 10.02 | 9.74 | 8.39 | 7.71 | 7.01 | 6.88 | 5.40 | 5.01 | 3.79 |
| 15 | 12.72 | 13.16 | 11.02 | 11.08 | 10.75 | 9.84 | 9 | 9.75 | 9.28 | 8.00 | 7.78 | 7.14 | 6.73 | 6.67 | 6.20 | 4.98 |
| 16 | 12.79 | 13.12 | 11.05 | 11.09 | 11 | 10.15 | 9.3 | 9.67 | 9.48 | 7.97 | 7.89 | 7.21 | 6.89 | 7.73 | 6.45 | 6.01 |
| 17 | 12.85 | 13.19 | 11.15 | 10.98 | 11.15 | 10.18 | 9.37 | 9.49 | 9.12 | 7.71 | 8.10 | 7.48 | 6.92 | 7.58 | 7.11 | 5.85 |
| 18 | 12.43 | 12.59 | 11.53 | 10.92 | 10.7 | 10.3 | 9.21 | 10.13 | 9.96 | 8.65 | 9.21 | 8.74 | 7.95 | 6.33 | 5.83 | 4.88 |
| 19 | 12.97 | 12.64 | 11.65 | 10.88 | 10.93 | 10.1 | 9.21 | 11.02 | 10.77 | 9.30 | 6.84 | 6.38 | 5.62 | 7.70 | 6.41 | 5.94 |
| 20 | 12.40 | 13.86 | 11.16 | 10.82 | 10.46 | 9.62 | 8.91 | 10.39 | 10.08 | 8.94 | 6.69 | 6.12 | 5.24 | 7.12 | 5.78 | 5.57 |
| 21 | 12.21 | 13.17 | 11.25 | 10.63 | 10.09 | 9.19 | 8.54 | 9.97 | 9.15 | 8.45 | 6.72 | 6.23 | 5.27 | 7.25 | 5.81 | 5.67 |
| 22 | 12.35 | 13.22 | 11.06 | 10.58 | 10.32 | 9.34 | 8.77 | 9.87 | 9.21 | 8.38 | 7.17 | 6.75 | 5.52 | 7.68 | 6.27 | 6.11 |
| 23 | 12.17 | 13.31 | 11.12 | 10.54 | 10.55 | 9.51 | 9.01 | 9.88 | 9.65 | 8.34 | 7.19 | 6.76 | 5.84 | 7.47 | 6.18 | 5.92 |
| 24 | 11.80 | 13.03 | 11.17 | 10.48 | 10.9 | 10.03 | 9.37 | 10.07 | 9.46 | 8.54 | 6.96 | 6.40 | 5.83 | 7.25 | 5.71 | 5.34 |
| 25 | 11.59 | 12.88 | 11.18 | 9.93 | 10.28 | 9.42 | 8.87 | 9.67 | 9.41 | 8.36 | 6.90 | 6.01 | 5.49 | 6.81 | 4.76 | 4.41 |
| 26 | 11.41 | 12.80 | 11.21 | 10.27 | 10.15 | 9.33 | 8.77 | 9.07 | 8.72 | 7.68 | 7.38 | 6.83 | 6.00 | 6.39 | 5.89 | 5.06 |
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Burlacu, A.; Petrescu, M.G.; Laudacescu, E.; Călțaru, M.-M.; Dumitru, A.-M.; Bădicioiu, M.; Sescu-Gal, C. Experimental Study on Improving Wear Resistance by Hardfacing of Rotary Drying Segments Used in the Asphalt Industry. Materials 2026, 19, 1331. https://doi.org/10.3390/ma19071331
Burlacu A, Petrescu MG, Laudacescu E, Călțaru M-M, Dumitru A-M, Bădicioiu M, Sescu-Gal C. Experimental Study on Improving Wear Resistance by Hardfacing of Rotary Drying Segments Used in the Asphalt Industry. Materials. 2026; 19(7):1331. https://doi.org/10.3390/ma19071331
Chicago/Turabian StyleBurlacu, Andrei, Marius Gabriel Petrescu, Eugen Laudacescu, Mihaela-Mădălina Călțaru, Andreea-Mioara Dumitru, Marius Bădicioiu, and Cristina Sescu-Gal. 2026. "Experimental Study on Improving Wear Resistance by Hardfacing of Rotary Drying Segments Used in the Asphalt Industry" Materials 19, no. 7: 1331. https://doi.org/10.3390/ma19071331
APA StyleBurlacu, A., Petrescu, M. G., Laudacescu, E., Călțaru, M.-M., Dumitru, A.-M., Bădicioiu, M., & Sescu-Gal, C. (2026). Experimental Study on Improving Wear Resistance by Hardfacing of Rotary Drying Segments Used in the Asphalt Industry. Materials, 19(7), 1331. https://doi.org/10.3390/ma19071331

