Water Mass Vertical Mixing in The Sulawesi Sea and Makassar Strait During the Second Transition Monsoon
1Master Program in Earth Sciences, Faculty of Earth Sciences and Technology, Bandung Institute of Technology, Bandung, Indonesia 2Research Center for Geological Disaster, National Research and Innovation Agency, Indonesia
Research Group of Oceanography, Faculty of Earth Sciences and Technology, Bandung Institute of Technology, Bandung, Indonesia
Agency for Marine and Fisheries Research and Human Resources, Ministry of Marine Affairs and Fisheries, Jakarta 14430, Indonesia
Coastal Hazards and Energy System Science Laboratory, Graduate School of Innovation and Practice for Smart Society, Hiroshima University, 1-5-1 Kagamiyama, Higashi-Hiroshima, 739-8529, Hiroshima, Japan
DOI: https://doi.org/10.36956/eps.v4i1.2061
Received: 26 April 2025; Published: 20 June 2025
Copyright © 2025 Shofia Karima, Nining Sari Ningsih, Anastasia Rita Tisiana, Gandhi Napitupulu. Published by Nan Yang Academy of Sciences Pte. Ltd..
This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.
Abstract
The transformation of water masses along the Indonesian Throughflow (ITF) pathway is evident from the disappearance of Western North Pacific Water (WNPW) south of the Makassar Strait, despite its prior presence in the Sulawesi Sea. One of the primary mechanisms driving this transformation is vertical mixing. This study investigates the characteristics of vertical mixing along the Sulawesi Sea–Makassar Strait route during the second transition season (September–November), using vertical diffusivity (Kz) as a key indicator. The temperature, density, and current velocity data were obtained from the Transport, Internal Waves, and Mixing in the Indonesian Throughflow Regions (TIMIT) cruise in October 2015. The results show spatial variability of vertical mixing both horizontally and vertically. Horizontally, the strongest vertical mixing was observed in the Makassar Strait (Kz = 8.5 × 10−3 m2 /s and Ri = 2.0−2.2), consistent with values reported for the first transition season but exceeding those typical of the southeast monsoon. Vertically, mixing was most intense in the deep layer (Kz = 9.2 × 10−3 m2/s), followed by the homogeneous layer (Kz = 3.9 × 10−3 m2/s), while the weakest is in the thermocline layer (Kz = 1.2 × 10−3 m2/s). These patterns are influenced by the complex interaction of current dynamics and bathymetric features such as sills. The findings highlight the southern Makassar Strait (Transect 4) as a hotspot of vertical mixing and water mass transformation, playing a critical role in shaping ITF structure and the downstream transport of thermohaline properties.
Keywords: Richardson Number, Vertical Diffusivity, Sulawesi Sea, Vertical Mixing
