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Supporting Documentation · Apr 8, 2025

2918-25 STORMWATER final 4_1_25.doc.pdf

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24 R = A + B – (A x B) / 100, Where R = total TSS Percent Load Removal from application of both BMPs, and A = the TSS Percent Removal Rate applicable to the first BMP B = the TSS Percent Removal Rate applicable to the second BMP. 6. Stormwater management measures shall also be designed to reduce, to the maximum extent feasible, the post-construction nutrient load of the anticipated load from the developed site in stormwater runoff generated from the water quality design storm. In achieving reduction of nutrients to the maximum extent feasible, the design of the site shall include green infrastructure BMPs that optimize nutrient removal while still achieving the performance standards in§ 25- 29.4Q, R and S. 7. In accordance with the definition of FW1 at N.J.A.C. 7:9B-1.4, stormwater management measures shall be designed to prevent any increase in stormwater runoff to waters classified as FW1. 8. The Flood Hazard Area Control Act Rules at N.J.A.C. 7:13-4.1(c)1 establish 300-foot riparian zones along Category One waters, as designated in the Surface Water Quality Standards at N.J.A.C. 7:9B, and certain upstream tributaries to Category One waters. A person shall not undertake a major development that is located within or discharges into a 300-foot riparian zone without prior authorization from the Department under N.J.A.C. 7:13. 9. Pursuant to the Flood Hazard Area Control Act Rules at N.J.A.C. 7:13-11.2(j)3.i, runoff from the water quality design storm that is discharged within a 300-foot riparian zone shall be treated in accordance with this subsection to reduce the post-construction load of total suspended solids by 95 percent of the anticipated load from the developed site, expressed as an annual average. 10. The stormwater runoff quality standards do not apply to the construction of one individual single-family dwelling, if it is not part of a larger development or subdivision that has received preliminary or final site plan approval prior to December 3, 2018, and that the motor vehicle surfaces are made of permeable material(s) such as gravel, dirt, and/or shells. S. Stormwater Runoff Quantity Standards 1. This subsection contains the minimum design and performance standards to control stormwater runoff quantity impacts of major development. 2. The site shall be designed to manage, through on-site retention, the Retention Storm, (or ½ of the projected

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erformance standards to control stormwater runoff quantity impacts of major development. 2. The site shall be designed to manage, through on-site retention, the Retention Storm, (or ½ of the projected 2-year storm per square foot, as reflected in Table 6) at the site or on contiguous properties in common ownership. The management shall be using one or more green infrastructure techniques and shall apply to the total impervious on the site, both retained and proposed. 2. 3. To control stormwater runoff quantity impacts, the design engineer shall, using the assumptions and factors for stormwater runoff calculations at§ 25-29.5, complete one of the following:

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25 i. Demonstrate through hydrologic and hydraulic analysis that for stormwater leaving the site, post-construction runoff hydrographs for the current and projected 2-, 10-, and 100-year storm events, as defined and determined in § 25-29.5c and 5d respectively, of this ordinance, do not exceed, at any point in time, the pre-construction runoff hydrographs for the same storm events; ii. Demonstrate through hydrologic and hydraulic analysis that there is no increase, as compared to the pre-construction condition, in the peak runoff rates of stormwater leaving the site for the current and projected 2-, 10-, and 100-year storm events, as defined and determined pursuant to § 25-29.5c and 5d respectively, of this ordinance, and that the increased volume or change in timing of stormwater runoff will not increase flood damage at or downstream of the site. This analysis shall include the analysis of impacts of existing land uses and projected land uses assuming full development under existing zoning and land use ordinances in the drainage area; iii. Design stormwater management measures so that the post-construction peak runoff rates for the current and projected 2-, 10-, and 100-year storm events, as defined and determined in § 25-29.5c and 5d, respectively, of this ordinance, are 50, 75 and 80 percent, respectively, of the pre-construction peak runoff rates. The percentages apply only to the post-construction stormwater runoff that is attributable to the portion of the site on which the proposed development or project is to be constructed; or iv. In tidal flood hazard areas, stormwater runoff quantity analysis in accordance with § 25-29.4S3(i), (ii), and (iii) above is required unless the design engineer demonstrates through hydrologic and hydraulic analysis that the increased volume, change in timing, or increased rate of the stormwater runoff, or any combination of the three will not result in additional flood damage below the point of discharge of the major development. No analysis is required if the stormwater is discharged directly into any ocean, bay, inlet, or the reach of any watercourse between its confluence with an ocean, bay, or inlet and downstream of the first water control structure. 3. 4. The stormwater runoff quantity standards shall be applied at the site’s boundary to each abutting lot, roadway, watercourse, or receiving storm sewer system. §

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the first water control structure. 3. 4. The stormwater runoff quantity standards shall be applied at the site’s boundary to each abutting lot, roadway, watercourse, or receiving storm sewer system. § 25-29.4—. Calculation of Stormwater Runoff and Groundwater Recharge: A. Stormwater runoff shall be calculated in accordance with the following: 1. The design engineer shall calculate runoff using the following method: (a) The USDA Natural Resources Conservation Service (NRCS) methodology, including the NRCS Runoff Equation and Dimensionless Unit Hydrograph, as described in Chapters 7, 9, 10, 15 and 16 Part 630, Hydrology National Engineering Handbook, incorporated herein by reference as amended and supplemented. This methodology is additionally described in Technical Release 55 - Urban Hydrology for Small Watersheds (TR-55), dated June 1986, incorporated herein by reference as amended and supplemented. Information

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26 regarding the methodology is available from the Natural Resources Conservation Service website at: https://directives.sc.egov.usda.gov/viewerFS.aspx?hid=21422 or at United States Department of Agriculture Natural Resources Conservation Service, New Jersey State Office. 2. For calculating curve numbers and groundwater recharge, there is a presumption that the pre-construction condition of a site or portion thereof is a wooded land use with good hydrologic condition. The term “curve number” applies to the NRCS methodology above at § 25-29.5A1(a). A curve number or a groundwater recharge land cover for an existing condition may be used on all or a portion of the site if the design engineer verifies that the hydrologic condition has existed on the site or portion of the site for at least five years without interruption prior to the time of application. If more than one land cover has existed on the site during the five years immediately prior to the time of application, the land cover with the lowest runoff potential shall be used for the computations. In addition, there is the presumption that the site is in good hydrologic condition (if the land use type is pasture, lawn, or park), with good cover (if the land use type is woods), or with good hydrologic condition and conservation treatment (if the land use type is cultivation). To calculate runoff and groundwater recharge, the preconstruction land cover of a site or portion thereof shall be woods, unless the applicant provides sufficient evidence that another land cover (e.g., farmland) had existed for at least five years without interruption prior to development of the site. Furthermore, the pre-construction condition of the site or portion thereof shall be considered to have been in good hydrologic condition. If more than one land use existed on the site during the five years prior to initial development of the site, the land cover with the lowest runoff potential shall be used for the computations. 3. In computing pre-construction stormwater runoff, the design engineer shall account for all significant land features and structures, such as ponds, wetlands, depressions, hedgerows, or culverts, that may reduce pre-construction stormwater runoff rates and volumes. 4. In computing stormwater runoff from all design storms, the design engineer shall consider the relative stormwater runoff rates and/or volumes

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e pre-construction stormwater runoff rates and volumes. 4. In computing stormwater runoff from all design storms, the design engineer shall consider the relative stormwater runoff rates and/or volumes of pervious and impervious surfaces separately to accurately compute the rates and volume of stormwater runoff from the site. To calculate runoff from unconnected impervious cover, urban impervious area modifications as described in the NRCS Technical Release 55 – Urban Hydrology for Small Watersheds or other methods may be employed. 5. If the invert of the outlet structure of a stormwater management measure is below the flood hazard design flood elevation as defined at N.J.A.C. 7:13, the design engineer shall consider the effects of tailwater in the design of structural stormwater management measures.

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27 B. Groundwater recharge may be calculated in accordance with the following: The New Jersey Geological Survey Report GSR-32: A Method for Evaluating Groundwater-Recharge Areas in New Jersey, incorporated herein by reference as amended and supplemented. Information regarding the methodology is available from the New Jersey Stormwater Best Management Practices Manual; at the New Jersey Geological Survey website at: https://www.nj.gov/dep/njgs/pricelst/gsreport/gsr32.pdf or at New Jersey Geological and Water Survey, 29 Arctic Parkway, PO Box 420 Mail Code 29-01, Trenton, New Jersey 08625-0420. C. The precipitation depths of the current two-, 10-, and 100-year storm events shall be determined by multiplying the values determined in accordance with items 1 and 2 below: 1. The applicant shall utilize the National Oceanographic and Atmospheric Administration (NOAA), National Weather Service’s Atlas 14 Point Precipitation Frequency Estimates: NJ, in accordance with the location(s) of the drainage area(s) of the site. This data is available at: https://hdsc.nws.noaa.gov/hdsc/pfds/pfds_map_cont.html?bkmrk=nj; and 2. The applicant shall utilize Table 5: Current Precipitation Adjustment Factors below, which sets forth the applicable multiplier for the drainage area(s) of the site, in accordance with the county or counties where the drainage area(s) of the site is located. Where the major development lies in more than one county, the precipitation values shall be adjusted according to the percentage of the drainage area in each county. Alternately, separate rainfall totals can be developed for each county using the values in the table below. NOTE: The municipality may instead wish to abbreviate this table along with the text in Item 2 above to reflect only the relevant information, depending on the location of the municipality. The current precipitation adjustment factors added to the ordinance shall be those found in N.J.A.C. 7:8-5.7(c) as Table 5-5. Table 5: Current Precipitation Adjustment Factors County Current Precipitation Adjustment Factors 2-year Design Storm 10-year Design Storm 100-year Design Storm Atlantic 1.01 1.02 1.03 Bergen 1.01 1.03 1.06 Burlington 0.99 1.01 1.04 Camden 1.03 1.04 1.05 Cape May 1.03 1.03 1.04

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28 Cumberland 1.03 1.03 1.01 Essex 1.01 1.03 1.06 Gloucester 1.05 1.06 1.06 Hudson 1.03 1.05 1.09 Hunterdon 1.02 1.05 1.13 Mercer 1.01 1.02 1.04 Middlesex 1.00 1.01 1.03 Monmouth 1.00 1.01 1.02 Morris 1.01 1.03 1.06 Ocean 1.00 1.01 1.03 Passaic 1.00 1.02 1.05 Salem 1.02 1.03 1.03 Somerset 1.00 1.03 1.09 Sussex 1.03 1.04 1.07 Union 1.01 1.03 1.06 Warren 1.02 1.07 1.15 D. Table 6: Future Precipitation Change Factors provided below sets forth the change factors to be used in determining the projected two-, 10-, and 100- year storm events for use in this chapter, which are organized alphabetically by county. The precipitation depth of the projected two-, 10-, and 100-year storm events of a site shall be determined by multiplying the precipitation depth of the two-, 10-, and 100-year storm events determined from the National Weather Service’s Atlas 14 Point Precipitation Frequency Estimates pursuant to (c)1 above, by the change factor in the table below, in accordance with the county or counties where the drainage area(s) of the site is located. Where the major development and/or its drainage area lies in more than one county, the precipitation values shall be adjusted according to the percentage of the drainage area in each county. Alternately, separate rainfall totals can be developed for each county using the values in the table below. NOTE: The municipality may instead wish to abbreviate this table along with the text in Item D above to reflect only the relevant information, depending on the location of the municipality. The future precipitation change factors added to the ordinance shall be those found in N.J.A.C. 7:8-5.7(d) as Table 5-6. Table 6: Future Precipitation Change Factors County Future Precipitation Change Factors 2-year Design Storm 10-year Design Storm 100-year Design Storm Atlantic 1.22 1.24 1.39

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29 Bergen 1.20 1.23 1.37 Burlington 1.17 1.18 1.32 Camden 1.18 1.22 1.39 Cape May 1.21 1.24 1.32 Cumberland 1.20 1.21 1.39 Essex 1.19 1.22 1.33 Gloucester 1.19 1.23 1.41 Hudson 1.19 1.19 1.23 Hunterdon 1.19 1.23 1.42 Mercer 1.16 1.17 1.36 Middlesex 1.19 1.21 1.33 Monmouth 1.19 1.19 1.26 Morris 1.23 1.28 1.46 Ocean 1.18 1.19 1.24 Passaic 1.21 1.27 1.50 Salem 1.20 1.23 1.32 Somerset 1.19 1.24 1.48 Sussex 1.24 1.29 1.50 Union 1.20 1.23 1.35 Warren 1.20 1.25 1.37 § 25-29.6—Sources for Technical Guidance: A. Technical guidance for stormwater management measures can be found in the documents listed below, which are available to download from the Department’s website at: https://dep.nj.gov/stormwater/bmp-manual/. 1. Guidelines for stormwater management measures are contained in the New Jersey Stormwater Best Management Practices Manual, as amended and supplemented. Information is provided on stormwater management measures such as, but not limited to, those listed in Tables 1, 2, and 3. 2. Additional maintenance guidance is available on the Department’s website at: https://dep.nj.gov/stormwater/maintenance-guidance/. B. Submissions required for review by the Department should be mailed to: The Division of Watershed Protection and Restoration, New Jersey Department of Environmental Protection, Mail Code 501-02A, PO Box 420, Trenton, New Jersey 08625-0420.

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30 § 25-29.7—Solids and Floatable Materials Control Standards: A. Site design features identified under § 25-29.4G above, or alternative designs in accordance with § 25-29.4H above, to prevent discharge of trash and debris from drainage systems shall comply with the following standard to control passage of solid and floatable materials through storm drain inlets. For purposes of this paragraph, “solid and floatable materials” means sediment, debris, trash, and other floating, suspended, or settleable solids. For exemptions to this standard see § 25-29.7A2 below. 1. Design engineers shall use one of the following grates whenever they use a grate in pavement or another ground surface to collect stormwater from that surface into a storm drain or surface water body under that grate: i. The New Jersey Department of Transportation (NJDOT) bicycle safe grate, which is described in Chapter 2.4 of the NJDOT Bicycle Compatible Roadways and Bikeways Planning and Design Guidelines; or ii. A different grate, if each individual clear space in that grate has an area of no more than seven (7.0) square inches, or is no greater than 0.5 inches across the smallest dimension. Examples of grates subject to this standard include grates in grate inlets, the grate portion (non-curb-opening portion) of combination inlets, grates on storm sewer manholes, ditch grates, trench grates, and grates of spacer bars in slotted drains. Examples of ground surfaces include surfaces of roads (including bridges), driveways, parking areas, bikeways, plazas, sidewalks, lawns, fields, open channels, and stormwater system floors used to collect stormwater from the surface into a storm drain or surface water body. iii. For curb-opening inlets, including curb-opening inlets in combination inlets, the clear space in that curb opening, or each individual clear space if the curb opening has two or more clear spaces, shall have an area of no more than seven (7.0) square inches, or be no greater than two (2.0) inches across the smallest dimension. 2. The standard in A.1. above does not apply: i. Where each individual clear space in the curb opening in existing curb- opening inlet does not have an area of more than nine (9.0) square inches; ii. Where the municipality agrees that the standards would cause inadequate hydraulic performance that could not practicably be overcome by using additional or larger

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