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污水预处理设计器

依据明确的项目与设备数据,校核预处理流量工况、渠道水力、格栅与除砂额定能力、冗余及可选残渣处理量。

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ENGINEERING WORKBENCH · STAGE 02

Headworks process train

Manual, explicit influent flow cases. No hidden browser-state import.

  1. 01HEADWORKS INFLUENT
  2. 02SCREENING
  3. 03GRIT REMOVAL
  4. 04PRETREATED INFLUENT

Workflow path Influent / Acceptance → Preliminary Treatment → Equalization where required (optional) → Primary Treatment. Equalization remains conditional on declared variability; values transfer manually.

01 · PROJECT AND FLOW BASIS

Headworks design inputs

The peak-hour input is entered as a flow rate for one hour. Required hierarchy checks enforce Minimum ≤ Average Day ≤ Maximum Day and Peak Hour ≥ Average Day. Peak Hour below Maximum Day is a basis-review warning only; event flow is outside this hierarchy.

Required flow cases

Each flow includes source provenance.

Bounded event / shock flow

Optional · requires a positive duration and source

02 · SCREEN / CHANNEL EQUIPMENT

Installed and duty basis

Screen equipment ratings and channel hydraulics use separate counts. Each channel is modeled with the same entered width and operating depth, with equal flow split across channels in service.

03 · SCREENING DESIGN

Opening area, velocity criteria, and headloss basis

Technology boundaryRepeated-bar geometry is available only for coarse/fine bar racks. Perforated plate, step, drum, and proprietary screens require vendor/project effective area or rated capacity. The EPA equation below is limited to a clean bar screen.

Effective open area

Geometry dimensions are projected normal to through-flow.

Project velocity criteria

Calculated values are reported separately from declared criteria.

Screen headloss

Basis and flow point stay visible in results and exports.
EPA clean bar-screen methodhL = (V² − v²) / (2 × 0.7 × g)V = velocity through bar openings; v = approach velocity. Clean bar screens only. Fouled loss is not inferred.

04 · CHANNEL HYDRAULICS

Minimum and design-flow channel checks

Approach velocity uses Q divided by the gross wetted area of the entered number of channels in service. Through-screen velocity uses effective opening area when the selected method supports it. Screen equipment capacity is evaluated from its separate duty count.

Velocity across explicit flow cases

Flow caseTotal flowApproach velocityThrough-screen velocityCalculated / rated lossHeadloss basis / provenanceDuty utilization
Calculate to populate these values.
Capacity by flow case is available after calculation.

05 · GRIT REMOVAL

Technology-specific hydraulic and equipment basis

Horizontal-flow chamber velocity criteria are project inputs. Aerated and vortex/proprietary capacity is vendor/project-rated. No generic capture efficiency is predicted.

Geometry and hydraulic detention

Required rectangular active-channel geometry.

Optional declared performance basis

Never labeled as an ATLAS prediction.

06 · REDUNDANCY AND FAILURE CASES

Selected one-unit-out capacity and hydraulics

Failure scenarios use separate screen and channel counts: one screen out, one channel out, a paired screen-and-channel N−1 case, and all installed screens/channels. Vendor headloss curves are not extrapolated for failure cases.

Screen duty and failure-case checks

ScenarioAvailable screensActive channelsHydraulic capacityUtilizationCapacity marginActual shortfallApproach velocityThrough-screen velocityHeadlossHeadloss method / basis
Calculate to populate these values.

07 · OPTIONAL HANDLING BASIS

Screenings and grit quantities

Solids identity: influent TSS is not screenings and is not grit. Screenings and grit are separate from primary sludge and biological sludge. Quantities below require a declared measured/project/vendor rate.

Screenings handling basis

Grit handling basis

08 · DETAILED RESULTS

Engineering values and limitations

Calculate a valid input snapshot to populate detailed results. Infeasible inputs do not expose a normal design result.

Revision ww-headworks-1.1.0 · deterministic local calculation · explicit project/vendor assumptions

Vendor-rated screen/grit performance must be verified for the selected equipment. Generic hydraulic screening does not predict proprietary capture efficiency. Influent TSS is not screenings production and is not grit production. This preliminary check does not replace equipment supplier hydraulic curves or detailed civil/mechanical design.

此工程工具目前仅提供英文版本。

01

工程依据

方法

依据明确的项目与设备数据,校核预处理流量工况、渠道水力、格栅与除砂额定能力、冗余及可选残渣处理量。

假设

  • 一体化预处理工作台。不预测专有设备捕获效率,不根据进水 TSS 推算栅渣或砂量,也不替代供应商曲线或详细土建与机械设计。

范围 / 限制

  • 一体化预处理工作台。不预测专有设备捕获效率,不根据进水 TSS 推算栅渣或砂量,也不替代供应商曲线或详细土建与机械设计。
02

工程路径

上游背景

  • 污水进水设计基础 一体化预处理工作台。不预测专有设备捕获效率,不根据进水 TSS 推算栅渣或砂量,也不替代供应商曲线或详细土建与机械设计。

当前工具决策

  • 污水预处理设计器 依据明确的项目与设备数据,校核预处理流量工况、渠道水力、格栅与除砂额定能力、冗余及可选残渣处理量。

下游工程步骤

  • 污水均衡池设计工具 依据输入的进水与受控出水时序,评估有效均衡容积和运行库存。 可选:仅在已声明的流量波动支持均衡处理时使用。数值需手动输入,不会自动传递。
  • 沉淀池设计 一体化预处理工作台。不预测专有设备捕获效率,不根据进水 TSS 推算栅渣或砂量,也不替代供应商曲线或详细土建与机械设计。