[{"main_file_link":[{"open_access":"1"}],"doi":"10.1016/j.powtec.2025.121992","author":[{"last_name":"Massopo","full_name":"Massopo, Orlando","first_name":"Orlando"},{"first_name":"Ricardo","last_name":"Tischendorf","full_name":"Tischendorf, Ricardo"},{"full_name":"Gonchikzhapov, Munko","last_name":"Gonchikzhapov","first_name":"Munko"},{"full_name":"Kasper, Tina","last_name":"Kasper","first_name":"Tina"},{"last_name":"Augustin","full_name":"Augustin, Peter","first_name":"Peter"},{"full_name":"Özer, Burak","last_name":"Özer","first_name":"Burak"},{"last_name":"Reddemann","full_name":"Reddemann, Manuel","first_name":"Manuel"},{"first_name":"Reinhold","full_name":"Kneer, Reinhold","last_name":"Kneer"},{"first_name":"Mohammed-Ali","last_name":"Sheikh","full_name":"Sheikh, Mohammed-Ali"},{"last_name":"Mert","full_name":"Mert, Aydan Akyildiz","first_name":"Aydan Akyildiz"},{"first_name":"Hartmut","full_name":"Wiggers, Hartmut","last_name":"Wiggers"},{"first_name":"Hans-Joachim","last_name":"Schmid","full_name":"Schmid, Hans-Joachim"}],"volume":470,"oa":"1","date_updated":"2026-02-25T07:45:44Z","citation":{"apa":"Massopo, O., Tischendorf, R., Gonchikzhapov, M., Kasper, T., Augustin, P., Özer, B., Reddemann, M., Kneer, R., Sheikh, M.-A., Mert, A. A., Wiggers, H., &#38; Schmid, H.-J. (2025). Influence of dispersion gas flow on the spray characteristics and γ-Fe2O3 nanoparticles formation and properties in reference SpraySyn burners. <i>Powder Technology</i>, <i>470</i>, Article 121992. <a href=\"https://doi.org/10.1016/j.powtec.2025.121992\">https://doi.org/10.1016/j.powtec.2025.121992</a>","bibtex":"@article{Massopo_Tischendorf_Gonchikzhapov_Kasper_Augustin_Özer_Reddemann_Kneer_Sheikh_Mert_et al._2025, title={Influence of dispersion gas flow on the spray characteristics and γ-Fe2O3 nanoparticles formation and properties in reference SpraySyn burners}, volume={470}, DOI={<a href=\"https://doi.org/10.1016/j.powtec.2025.121992\">10.1016/j.powtec.2025.121992</a>}, number={121992}, journal={Powder Technology}, publisher={Elsevier BV}, author={Massopo, Orlando and Tischendorf, Ricardo and Gonchikzhapov, Munko and Kasper, Tina and Augustin, Peter and Özer, Burak and Reddemann, Manuel and Kneer, Reinhold and Sheikh, Mohammed-Ali and Mert, Aydan Akyildiz and et al.}, year={2025} }","short":"O. Massopo, R. Tischendorf, M. Gonchikzhapov, T. Kasper, P. Augustin, B. Özer, M. Reddemann, R. Kneer, M.-A. Sheikh, A.A. Mert, H. Wiggers, H.-J. Schmid, Powder Technology 470 (2025).","mla":"Massopo, Orlando, et al. “Influence of Dispersion Gas Flow on the Spray Characteristics and γ-Fe2O3 Nanoparticles Formation and Properties in Reference SpraySyn Burners.” <i>Powder Technology</i>, vol. 470, 121992, Elsevier BV, 2025, doi:<a href=\"https://doi.org/10.1016/j.powtec.2025.121992\">10.1016/j.powtec.2025.121992</a>.","ama":"Massopo O, Tischendorf R, Gonchikzhapov M, et al. Influence of dispersion gas flow on the spray characteristics and γ-Fe2O3 nanoparticles formation and properties in reference SpraySyn burners. <i>Powder Technology</i>. 2025;470. doi:<a href=\"https://doi.org/10.1016/j.powtec.2025.121992\">10.1016/j.powtec.2025.121992</a>","ieee":"O. Massopo <i>et al.</i>, “Influence of dispersion gas flow on the spray characteristics and γ-Fe2O3 nanoparticles formation and properties in reference SpraySyn burners,” <i>Powder Technology</i>, vol. 470, Art. no. 121992, 2025, doi: <a href=\"https://doi.org/10.1016/j.powtec.2025.121992\">10.1016/j.powtec.2025.121992</a>.","chicago":"Massopo, Orlando, Ricardo Tischendorf, Munko Gonchikzhapov, Tina Kasper, Peter Augustin, Burak Özer, Manuel Reddemann, et al. “Influence of Dispersion Gas Flow on the Spray Characteristics and γ-Fe2O3 Nanoparticles Formation and Properties in Reference SpraySyn Burners.” <i>Powder Technology</i> 470 (2025). <a href=\"https://doi.org/10.1016/j.powtec.2025.121992\">https://doi.org/10.1016/j.powtec.2025.121992</a>."},"intvolume":"       470","publication_status":"published","publication_identifier":{"issn":["0032-5910"]},"article_number":"121992","article_type":"original","user_id":"98419","_id":"63830","status":"public","type":"journal_article","title":"Influence of dispersion gas flow on the spray characteristics and γ-Fe2O3 nanoparticles formation and properties in reference SpraySyn burners","date_created":"2026-02-02T11:41:04Z","publisher":"Elsevier BV","year":"2025","language":[{"iso":"eng"}],"keyword":["Spray flame synthesis","iron oxide nanoparticle","SpraySyn burner","Dispersion gas","Coaxial atomization","HiaT-SMPS"],"abstract":[{"lang":"eng","text":" This study investigates the effect of dispersion gas (DG) flow on the formation and properties of maghemite (γ-Fe2O3) nanoparticles using standardized SpraySyn burners (SS1 and SS2). Several diagnostics were employed to characterize the spray and nanoparticles. \r\nIncreasing DG flow (6 - 12 slm) results in smaller droplet sizes (DS), cooler flame temperatures, shorter high-temperature droplet/particle residence times, and smaller agglomerates in the size range of 5 - 12 nm with narrower primary particle size distribution, corresponding to higher mass fractal dimensions, as supported by TEM and SMPS analysis, resulting in more compact agglomerates. BET and TEM confirmed decreasing primary particle sizes with increasing DG flow. Raman and XRD analyses predominantly identified maghemite, which shows a bimodal distribution of crystallite sizes, while SS1 samples have a greater proportion of larger crystallites.\r\nThe self-preserving size distributions of agglomerates with a geometric standard deviation of 1.5 are reached faster with increasing DG flow. The barrier effect of DG observed in SS1 leads to slower droplet combustion kinetics, higher temperatures, and delayed precursor release, which, along with downstream flow recirculation, result in significantly higher agglomeration rates outside the visible flame. SS2 demonstrates improved atomization, more stable flames, and finer, uniform nanoparticles with less carbonaceous residues (CR). Conversely, SS1 showed broader DS distributions and higher CR levels on the γ-Fe2O3 surface, especially at higher DG flow.\r\nThis work highlights the essential role of DG flow and nozzle geometry in controlling droplet evaporation, flame stability, and nanoparticle growth, offering insights for optimizing SFS and validating numerical models.\r\n"}],"publication":"Powder Technology"},{"author":[{"first_name":"Paul","last_name":"Dunst","full_name":"Dunst, Paul","id":"22130"},{"last_name":"Bornmann","full_name":"Bornmann, Peter","first_name":"Peter"},{"first_name":"Tobias","last_name":"Hemsel","full_name":"Hemsel, Tobias","id":"210"},{"last_name":"Littmann","full_name":"Littmann, Walter ","first_name":"Walter "},{"first_name":"Walter","last_name":"Sextro","id":"21220","full_name":"Sextro, Walter"}],"date_updated":"2022-01-06T06:52:08Z","conference":{"location":"Enschede, The Netherlands","end_date":"2019-10-04","start_date":"2019-10-02","name":"4th Conference on MicroFluidic Handling Systems"},"publication_status":"published","has_accepted_license":"1","citation":{"ieee":"P. Dunst, P. Bornmann, T. Hemsel, W. Littmann, and W. Sextro, “Atomization of Fluids with Ultrasound,” in <i>Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)</i>, Enschede, The Netherlands, 2019, pp. 140–143.","chicago":"Dunst, Paul, Peter Bornmann, Tobias Hemsel, Walter  Littmann, and Walter Sextro. “Atomization of Fluids with Ultrasound.” In <i>Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)</i>, edited by Joost Lötters and Gerald Urban, 140–43. Enschede, The Netherlands, 2019.","ama":"Dunst P, Bornmann P, Hemsel T, Littmann W, Sextro W. Atomization of Fluids with Ultrasound. In: Lötters J, Urban G, eds. <i>Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)</i>. Enschede, The Netherlands; 2019:140-143.","apa":"Dunst, P., Bornmann, P., Hemsel, T., Littmann, W., &#38; Sextro, W. (2019). Atomization of Fluids with Ultrasound. In J. Lötters &#38; G. Urban (Eds.), <i>Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)</i> (pp. 140–143). Enschede, The Netherlands.","short":"P. Dunst, P. Bornmann, T. Hemsel, W. Littmann, W. Sextro, in: J. Lötters, G. Urban (Eds.), Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019), Enschede, The Netherlands, 2019, pp. 140–143.","bibtex":"@inproceedings{Dunst_Bornmann_Hemsel_Littmann_Sextro_2019, place={Enschede, The Netherlands}, title={Atomization of Fluids with Ultrasound}, booktitle={Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)}, author={Dunst, Paul and Bornmann, Peter and Hemsel, Tobias and Littmann, Walter  and Sextro, Walter}, editor={Lötters, Joost and Urban, GeraldEditors}, year={2019}, pages={140–143} }","mla":"Dunst, Paul, et al. “Atomization of Fluids with Ultrasound.” <i>Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)</i>, edited by Joost Lötters and Gerald Urban, 2019, pp. 140–43."},"page":"140-143","place":"Enschede, The Netherlands","user_id":"22130","department":[{"_id":"151"}],"_id":"14852","file_date_updated":"2019-11-07T15:22:56Z","type":"conference","status":"public","editor":[{"full_name":"Lötters, Joost","last_name":"Lötters","first_name":"Joost"},{"first_name":"Gerald","last_name":"Urban","full_name":"Urban, Gerald"}],"date_created":"2019-11-07T15:25:30Z","title":"Atomization of Fluids with Ultrasound","quality_controlled":"1","year":"2019","language":[{"iso":"eng"}],"ddc":["620"],"keyword":["atomization","ultrasound","standing-wave","capillarywave","vibrating-mesh"],"publication":"Conference Proceedings - The 4th Conference on MicroFluidic Handling Systems (MFHS2019)","file":[{"file_name":"Dunst_MFHS_2019.pdf","access_level":"closed","file_id":"14853","file_size":3850591,"date_created":"2019-11-07T15:22:56Z","creator":"pdunst","date_updated":"2019-11-07T15:22:56Z","relation":"main_file","success":1,"content_type":"application/pdf"}],"abstract":[{"lang":"eng","text":"In a variety of industrial applications, liquids are atomized to produce aerosols for further processing. Example applications are the coating of surfaces with paints, the application of ultra-thin adhesive layers and the atomization of fuels for the production of combustible dispersions. In this publication different atomizing principles (standing-wave, capillary-wave, vibrating-mesh) are examined and discussed. Using an optimized standing-wave system, tough liquids with viscosities of up to about 100 Pas could be successfully atomized."}]}]
