| name | hydraulic-networks |
| description | Hydraulic networks — series/parallel circuits, accumulator sizing, pressure compensation, variable displacement pumps, load-sensing systems, flow sharing, mobile hydraulics, ISO 4413. |
| metadata | {"priority":7,"promptSignals":{"phrases":["hydraulic network","hydraulic circuit","hydraulic system design","accumulator hydraulic","load sensing hydraulic","variable displacement pump","parallel hydraulic"],"minScore":3}} |
Hydraulic Networks — Complete Skill
Fundamental Relationships
Flow continuity:
Q_pump = Q_actuator1 + Q_actuator2 + ... + Q_leakage [L/min]
Pressure drops (series):
P_supply - P_tank = Σ ΔP_component [bar]
ΔP_components: valve ΔP, pipe ΔP, filter ΔP, cylinder back-pressure
Hydraulic power:
P = Q × ΔP / 600 [kW; Q in L/min; ΔP in bar]
Pump efficiency:
η_pump = Q_actual × ΔP / P_motor = η_vol × η_mech
η_vol (volumetric): 90–97%; η_mech: 88–95%; combined: 80–90%
Series vs. Parallel Hydraulic Circuits
Series
Same flow through all components; pressures add
Q_total = Q (one flow rate)
P_supply = P_cyl1 + P_valve1 + P_cyl2 + P_valve2 + ΔP_lines
Use for: synchronized motion (both actuators travel at same speed)
Problem: if one cylinder loads more → all pressure drop there; others starve
Parallel
Same pressure at inlet junction; flows divide
Q_total = Q₁ + Q₂ + ...
Each branch: Q_i = Cv_i × √(ΔP_i) for valve-controlled branches
Unequal loading: higher load takes less flow; lower load steals flow → velocity runaway
Solution: flow-sharing valves (LUDV) or pressure-compensated flow controls
Pressure Compensation
Individual Pressure Compensators
Each directional control valve section has own pressure compensator
Maintains constant ΔP across metering orifice regardless of load
Flow ∝ spool position only; independent of load
CEMB (Closed Center Metering Block): full pressure compensation; every section independent
LUDV (Load-Independent Flow Distribution)
German: "Lastdruckunabhängige Durchflussverteilung"
How: all sections get same max load pressure as signal; each compensator adjusts to maintain equal flow priority
If pump output exceeded: all functions reduce speed proportionally (priority preserved)
Used in: mobile cranes, excavators, multiple-function mobile equipment
Open Center (Fixed Pump, Uncompensated)
Pump always runs; unneeded flow returns over-center to tank at low pressure
Simple; low cost; energy inefficient (pump always running at full flow)
Common in low-cost agricultural/construction equipment
Load-Sensing (LS) Systems
Concept:
Pump displacement adjusts to maintain pressure margin ΔP_LS = P_pump - P_load_max
Typical margin: 10–30 bar
Variable displacement pump regulator:
If P_pump < P_load + ΔP_LS → increase displacement (more flow)
If P_pump > P_load + ΔP_LS → decrease displacement (less flow)
Advantages:
Energy efficient: pump output tracks actual demand
Quiet: variable speed/displacement
Fast response: load changes → pump adjusts in < 50 ms
LS signal line:
Signal shuttle valve selects highest pressure section → feed to pump regulator
Anti-void control: pump minimum displacement = small (maintains pressure even at zero demand)
Negative LS Control
Pressure differential across metering restriction → regulates pump displacement
Hydraulic signal without separate signal line
Accumulator Types and Sizing
Types
Bladder accumulator: rubber bladder separates gas and oil; fast response; most common
Piston accumulator: floating piston; larger volumes; slower response; better for energy storage
Diaphragm accumulator: small volume (< 1 L); compact; fast; simple
Gas Pre-Charge (Nitrogen)
P₀ = pre-charge pressure at ambient T (before system pressurizes)
Typical: P₀ = 0.9 × P_min [bar; P_min = minimum working pressure]
Sizing for energy storage (pulsation damping, emergency):
Volume calculation (gas law — polytropic):
For adiabatic (fast cycle): P₁V₁^1.4 = P₂V₂^1.4
For isothermal (slow cycle): P₁V₁ = P₂V₂
Usable oil volume ΔV:
ΔV = V₁ - V₂ = V_gas0 × [(P₀/P₁)^(1/1.4) - (P₀/P₂)^(1/1.4)]
Required accumulator size V₀:
V₀ = ΔV / [(P₀/P_min)^(1/1.4) - (P₀/P_max)^(1/1.4)]
Emergency function (fail-safe):
Size to provide n full actuator strokes at reduced pressure after pump failure
ΔV = n × A_cyl × L_stroke; P₂ = minimum functional pressure
Pulsation Damping
Size accumulator to attenuate pump pressure ripple
Attenuation ratio: A = ΔP_attenuated / ΔP_pump; A = 0.1–0.3 typical
Pipe and Hose Sizing for Hydraulic Systems
Flow velocity guidelines:
Suction lines: V ≤ 1.0 m/s (prevent cavitation)
Return lines: V ≤ 3.0–4.0 m/s
Pressure lines: V ≤ 4.0–6.0 m/s (use higher end for short sections)
Case drain: V ≤ 2.0 m/s
Reynolds number:
Re = ρ V D / μ = 2100 V D / ν [ν = kinematic viscosity in cSt; D in mm; V in m/s]
Laminar if Re < 2300 (common in hydraulics at high viscosity)
Laminar pressure drop:
ΔP = 128 μ L Q / (π D⁴) = 384 ν ρ L Q / (π D⁴) [Pa; ν in m²/s]
= 64/Re × L/D × ρV²/2 [Hagen-Poiseuille in Darcy form]
Hydraulic Fluids
| Fluid | Viscosity at 40°C [cSt] | T_range [°C] | Application |
|---|
| Mineral oil (ISO VG 46) | 46 | -20 to +90 | General industrial |
| Mineral oil (ISO VG 68) | 68 | 0 to +100 | High-T systems |
| HFC (water-glycol) | 40–60 | -20 to +55 | Fire-resistant |
| HFAE (oil-in-water) | ≈ 1 | 5 to +50 | Fire-resistant; low cost |
| HFD (phosphate ester) | 30–100 | -20 to +80 | Aviation; fire-resistant |
| Biodegradable (HEES, VG 46) | 46 | -20 to +80 | Environmental |
Viscosity at operating T (Walther's equation):
log log(ν + 0.7) = a - b log T [T in K; ν in cSt; a, b from 2-point test]
ISO 4413:2011 — Hydraulic Fluid Power Safety
Cleanliness:
ISO 4406 contamination class: ISO-17/15/12 for precision servo systems; 18/16/13 for general
Filter rating: β₁₀ ≥ 75 for servo valve systems; β₃ ≥ 75 for general directional valves
Pressure setting: relief valve ≤ 1.25 × system MAWP
Thermal management: oil T ≤ 60–70°C (check reservoir size; heat exchanger if needed)
Reservoir sizing: V_reservoir ≥ 3–5 × Q_pump [L; Q in L/min]
Output
Provide: pump displacement and pressure [cc/rev and bar], flow at each actuator [L/min], velocity of actuators [mm/s], pressure drop at each component [bar], accumulator size V₀ [L] with pre-charge P₀ [bar] and working range P₁-P₂ [bar], pipe diameters at each segment [mm NB], fluid type and cleanliness class (ISO 4406), reservoir size [L], heat generation estimate Q_heat [kW], applicable standard (ISO 4413, ISO 4406).