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Collecting systems shall take into account waste water treatment requirements.
The design, construction and maintenance of collecting systems shall be undertaken in accordance with the best technical knowledge not entailing excessive costs, notably regarding:
volume and characteristics of urban waste water,
prevention of leaks,
limitation of pollution of receiving waters due to storm water overflows.
Industrial waste water entering collecting systems and urban waste water treatment plants shall be subject to such pre-treatment as is required in order to:
protect the health of staff working in collecting systems and treatment plants,
ensure that collecting systems, waste water treatment plants and associated equipment are not damaged,
ensure that the operation of the waste water treatment plant and the treatment of sludge are not impeded,
ensure that discharges from the treatment plants do not adversely affect the environment, or prevent receiving water from complying with other Community Directives,
ensure that sludge can be disposed of safety in an environmentally acceptable manner.
Alternative methods to those mentioned in paragraphs 2, 3 and 4 may be used provided that it can be demonstrated that equivalent results are obtained.
Member States shall provide the Commission with all relevant information concerning the applied method. If the Commission considers that the conditions set out in paragraphs 2, 3 and 4 are not met, it will submit an appropriate proposal to the Council.
Good international laboratory practices aiming at minimizing the degradation of samples between collection and analysis shall be applied.
— 2 000 to 9 999 p.e.: | 12 samples during the first year. four samples in subsequent years, if it can be shown that the water during the first year complies with the provisions of the Directive; if one sample of the four fails, 12 samples must be taken in the year that follows. |
— 10 000 to 49 999 p. e.: | 12 samples. |
— 50 000 p.e. or over: | 24 samples. |
for the parameters specified in Table 1 and Article 2 (7), a maximum number of samples which are allowed to fail the requirements, expressed in concentrations and/or percentage reductions in Table 1 and Article 2 (7), is specified in Table 3;
for the parameters of Table 1 expressed in concentrations, the failing samples taken under normal operating conditions must not deviate from the parametric values by more than 100 %. For the parametric values in concentration relating to total suspended solids deviations of up to 150 % may be accepted;
for those parameters specified in Table 2 the annual mean of the samples for each parameter shall conform to the relevant parametric values.
a Reduction in relation to the load of the influent. | |||
b The parameter can be replaced by another parameter: total organic carbon (TOC) or total oxygen demand (TOD) if a relationship can be established between BOD5 and the substitute parameter. | |||
c This requirement is optional. | |||
Parameters | Concentration | Minimum percentage of reductiona | Reference method of measurement |
---|---|---|---|
Biochemical oxygen demand (BOD5 at 20 °C) without nitrificationb | 25 mg/l O2 | 70-90 40 under Article 4 (2) | Homogenized, unfiltered, undecanted sample. Determination of dissolved oxygen before and after five-day incubation at 20 °C ± 1 °C, in complete darkness. Addition of a nitrification inhibitor |
Chemical oxygen demand (COD) | 125 mg/l O2 | 75 | Homogenized, unfiltered, undecanted sample Potassium dichromate |
Total suspended solids | 35 mg/lc 35 under Article 4 (2) (more than 10 000 p.e.) 60 under Article 4 (2) (2 000-10 000 p.e.) | 90c 90 under Article 4 (2) (more than 10 000 p.e.) 70 under Article 4 (2) (2 000-10 000 p.e.) |
|
Analyses concerning discharges from lagooning shall be carried out on filtered samples; however, the concentration of total suspended solids in unfiltered water samples shall not exceed 150 mg/l.
[X1Requirements for discharges from urban waste water treatment plants to sensitive areas which are subject to eutrophication as identified in Annex II.A(a).] One or both parameters may be applied depending on the local situation. The values for concentration or for the percentage of reduction shall apply. U.K.
Textual Amendments
a Reduction in relation to the load of the influent. | |||
b Total nitrogen means the sum of total Kjeldahl nitrogen (organic and ammoniacal nitrogen) nitrate-nitrogen and nitrite-nitrogen. | |||
c These values for concentration are annual means as referred to in Annex I, paragraph D.4(c). However, the requirements for nitrogen may be checked using daily averages when it is proved, in accordance with Annex I, paragraph D.1, that the same level of protection is obtained. In this case, the daily average must not exceed 20 mg/l of total nitrogen for all the samples when the temperature from the effluent in the biological reactor is superior or equal to 12 °C. The conditions concerning temperature could be replaced by a limitation on the time of operation to take account of regional climatic conditions.] | |||
Parameters | Concentration | Minimum percentage of reduction a | Reference method of measurement |
---|---|---|---|
Total phosphorus | [X22 mg/l ( 10 000 — 100 000 p.e.)] | 80 | Molecular absorption spectrophotometry |
1 mg/l (more than 100 000 p.e.) | |||
Total nitrogen b | 15 mg/l ( 10 000 - 100 000 p.e.) c | 70-80 | Molecular absorption spectrophotometry |
10 mg/l (more than 100 000 p.e.) c |
Editorial Information
Series of samples taken in any year | Maximum permitted number of samples which fail to conform |
---|---|
4-7 | 1 |
8-16 | 2 |
17-28 | 3 |
29-40 | 4 |
41-53 | 5 |
54-67 | 6 |
68-81 | 7 |
82-95 | 8 |
96-110 | 9 |
111-125 | 10 |
126-140 | 11 |
141-155 | 12 |
156-171 | 13 |
172-187 | 14 |
188-203 | 15 |
204-219 | 16 |
220-235 | 17 |
236-251 | 18 |
252-268 | 19 |
269-284 | 20 |
285-300 | 21 |
301-317 | 22 |
318-334 | 23 |
335-350 | 24 |
351-365 | 25 |
Given that it is not possible in practice to construct collecting systems and treatment plants in a way such that all waste water can be treated during situations such as unusually heavy rainfall, Member States shall decide on measures to limit pollution from storm water overflows. Such measures could be based on dilution rates or capacity in relation to dry weather flow, or could specify a certain acceptable number of overflows per year.