Pollutant Source Tracking (PST) Technical Guidance

2011 ◽  
Author(s):  
Meriah Arias-Thode ◽  
Stacy Curtis ◽  
Robert George ◽  
Heather Halkola ◽  
Jim Leather ◽  
...  
2017 ◽  
Vol 13 (2) ◽  
pp. 119-128
Author(s):  
Nang Randu Utama

This study aims to obtain a description of the supporting and inhibiting factors in the process of organizational change of education based on management perspective that occurs in the scope of higher health education of the Ministry of Health of the Republic of Indonesia. This study used a qualitative approach by conducting case study at Palangka Raya Health Polytechnic. The research results are as follows: (a) Supporting factor that must be there is the existence of a manual or technical guidance in organizing the organization; (b) Whereas the inhibiting factor is the old habits, the mindset, the mental model is still inhibiting from the organizers and members of the organization; (c) The inhibiting factor is the existence of selfishness of each highly visible party; (d) Inhibitors may also occur if there are still "little kings" and selfishness from each of the former institutions; (e) Other issues that support in this process of change are in terms of facilities and infrastructure, namely the availability of buildings and land; (f) Another inhibiting factor is that in terms of educational qualifications, there are departments that do not meet, for example in the midwifery department there are still many average teachers with Diploma IV education background and non-linear education; (g) Inhibiting factors may also occur if the reason of seniority is always carried around; (h) The inhibiting factor is lack of human resources in using modern health equipment, including the use of teaching aids in accordance with the progress of science and teaching and learning technology.   Penelitian ini bertujuan untuk memperolah gambaran mengenai faktor pendukung dan penghambat dalam proses perubahan organisasi pendidikan yang ditinjau dari perspektif manajemen yang terjadi di lingkup organisasi pendidikan tinggi kesehatan Kementerian Kesehatan Republik Indonesia. Penelitian ini menggunakan pendekatan kualitatif dengan melakukan studi kasus pada institusi Politeknik Kesehatan Kemenkes Palangka Raya. Hasil penelitian adalah sebagai berikut: (a) Faktor pendukung yang harus ada yaitu adanya buku pedoman atau petunjuk teknis dalam penyelenggaraan organisasi; (b) Sedangkan yang menjadi faktor penghambat itu adalah kebiasaan lama, mindset-nya, mental model-nya masih bersifat menghambat dari para pengelola dan anggota organisasi; (c) Faktor penghambat yaitu adanya keegoisan masing-masing pihak yang sangat tampak; (d) Penghambat juga dapat terjadi apabila masih ada “raja-raja kecil” dan keegoisan dari masing-masing institusi yang dulu; (e) Perihal lain yang mendukung dalam proses perubahan ini adalah dari sisi sarana dan prasarana, yaitu tersedianya gedung dan tanah; (f) Faktor penghambat lain yaitu dari sisi kualifikasi pendidikan ternyata ada jurusan yang tidak memenuhi, misalnya di jurusan kebidanan masih banyak rata-rata tenaga pengajar dengan latar pendidikan Diploma IV dan pendidikannya tidak linear; (g) Faktor penghambat juga dapat terjadi apabila alasan senioritas selalu dibawa-bawa; (h) Faktor penghambat yaitu masih kurang kesiapan sumber daya manusia dalam menggunakan alat-alat kesehatan modern termasuk penggunaan alat bantu belajar mengajar yang sesuai dengan kemajuan ilmu pengetahuan dan teknologi pengajaran dan pembelajaran.


2002 ◽  
Author(s):  
Sophia Kapranos ◽  
Joseph Costantino ◽  
Tammy J. Hintz

Author(s):  
Wayan Budiarsa Suyasa ◽  
Sri Kunti Pancadewi G. A ◽  
Iryanti E. Suprihatin ◽  
Dwi Adi Suastuti G. A.

In order to maintain the environmental carrying capacity of coastal tourism, this research was conducted to determine the condition of river water environmental pollution in the Petitenget beach area and pollutant source activities. Determination of water quality is carried out by analyzing the water quality taken at several sampling points in the four rivers that lead to the Petitenget beach. Determined the pollution index value (IP) of the physical chemical and biological pollution parameters. The results showed that the four rivers that flow into the Petitenget Beach area had been contaminated with indications of pH, BOD, COD, ammonia, Coliform and E. coli which exceeded water quality category III class quality (PerGub Bali No 16 Year 2016). The four rivers are included in the criteria of severe contamination. The four rivers have experienced physical damage or structural changes that have very high discharge fluctuations both in quantity and quality. Slimy basic structure, smelly and slum aesthetic waters. While the indication of the impact of pollution is waste water which is directly discharged into the river from hotels, restaurants, homestays, commercial centers and settlements.


2021 ◽  
Vol 232 (2) ◽  
Author(s):  
Meriane Demoliner ◽  
Juliana Schons Gularte ◽  
Viviane Girardi ◽  
Ana Karolina Antunes Eisen ◽  
Fernanda Gil de Souza ◽  
...  

Sensors ◽  
2021 ◽  
Vol 21 (10) ◽  
pp. 3426
Author(s):  
Magdalena Paulina Buras ◽  
Fernando Solano Donado

Harsh pollutants that are illegally disposed in the sewer network may spread beyond the sewer network—e.g., through leakages leading to groundwater reservoirs—and may also impair the correct operation of wastewater treatment plants. Consequently, such pollutants pose serious threats to water bodies, to the natural environment and, therefore, to all life. In this article, we focus on the problem of identifying a wastewater pollutant and localizing its source point in the wastewater network, given a time-series of wastewater measurements collected by sensors positioned across the sewer network. We provide a solution to the problem by solving two linked sub-problems. The first sub-problem concerns the detection and identification of the flowing pollutants in wastewater, i.e., assessing whether a given time-series corresponds to a contamination event and determining what the polluting substance caused it. This problem is solved using random forest classifiers. The second sub-problem relates to the estimation of the distance between the point of measurement and the pollutant source, when considering the outcome of substance identification sub-problem. The XGBoost algorithm is used to predict the distance from the source to the sensor. Both of the models are trained using simulated electrical conductivity and pH measurements of wastewater in sewers of a european city sub-catchment area. Our experiments show that: (a) resulting precision and recall values of the solution to the identification sub-problem can be both as high as 96%, and that (b) the median of the error that is obtained for the estimation of the source location sub-problem can be as low as 6.30 m.


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