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civil-engineering

Civil engineering fundamentals including structural analysis, geotechnics, hydraulics, transportation, and construction management for infrastructure applications.

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Repository
NeuralBlitz/Agent-Gateway
Letzte Quellaktivität
9. April 2026 um 10:58
Erkannte Sprache von SKILL.md
Englisch
Sterne
1
Forks
0

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SKILL.md
Quellanweisungen · Schreibgeschützte Vorschau
name
Civil Engineering
description
Civil engineering fundamentals including structural analysis, geotechnics, hydraulics, transportation, and construction management for infrastructure applications.
license
MIT
compatibility
python>=3.8
audience
civil-engineers, construction-engineers, researchers, students
category
engineering
# Civil Engineering ## What I Do I provide comprehensive civil engineering tools including structural analysis, geotechnical calculations, hydraulics, transportation engineering, and construction management for infrastructure applications. ## When to Use Me - Structural analysis and design - Foundation design - Hydrological calculations - Transportation planning - Construction scheduling - Building codes compliance ## Core Concepts - **Structural Analysis**: Trusses, beams, frames - **Geotechnics**: Soil mechanics, foundations - **Hydraulics**: Open channel, pipe flow - **Transportation**: Traffic flow, pavement design - **Construction**: Critical path, cost estimation - **Materials**: Concrete, steel, composites - **Wind Engineering**: Loads, aerodynamics - **Seismic Design**: Response spectra, base isolation ## Code Examples ### Structural Analysis ```python import numpy as np def shear_force(V, a, L, w): return V - w * a def bending_moment(M, V, a, L, w): return M + V * a - w * a**2 / 2 def deflection_beam(w, L, E, I): x = np.linspace(0, L, 100) y = (w * x**2 / (24 * E * I)) * (L**2 - 2 * L * x + x**2) return x, y def influence_line_moment(span_length, position): a = position b = span_length - position return a * b / span_length def moment_distribution(method, stiffness, distribution_factors): pass E_steel = 200e9 # Pa I_beam = 1e-4 # m^4 L = 5 # m w = 10e3 # N/m x, y = deflection_beam(w, L, E_steel, I_beam) print(f"Max deflection: {max(y):.6f} m") ``` ### Geotechnical Engineering ```python def effective_stress(total_stress, pore_pressure): return total_stress - pore_pressure def bearing_capacity_qu(c, gamma, Df, B, phi): Nc = (np.exp(np.pi * np.tan(np.radians(phi))) * np.tan(np.radians(45 + phi/2))**2 - 1) / (np.tan(np.radians(phi))) Nq = np.exp(np.pi * np.tan(np.radians(phi))) * np.tan(np.radians(45 + phi/2))**2 Ngamma = 2 * (Nc + 1) * np.tan(np.radians(phi)) qu = c * Nc + gamma * Df * Nq + 0.5 * gamma * B * Ngamma return qu def settlement_compressible(S, mv, delta_p, B): return S = mv * delta_p * B def consolidation_time_factor(Tv, H_drain): return Tv * H_drain**2 / cv def slope_stability_fs(c, phi, gamma, H, beta): Ns = (2 * c) / (gamma * H * np.sin(beta) * np.cos(np.radians(phi))) return Ns / np.tan(np.radians(45 + phi/2)) c = 20e3 # Pa phi = 30 # degrees gamma = 18e3 # N/m³ B = 2 # m qu = bearing_capacity_qu(c, gamma, 0, B, phi) print(f"Bearing capacity: {qu/1000:.2f} kPa") ``` ### Hydraulics ```python def mannings_velocity(n, R, S): return (1/n) * R**(2/3) * S**0.5 def hydraulic_radius(A, P): return A / P def critical_depth(q, g=9.81): return (q**2 / g)**(1/3) def specific_energy(y, alpha, q, g=9.81): return y + alpha * q**2 / (2 * g * y**2) def darcy_weisbach(f, L, D, V, g=9.81): return f * (L/D) * (V**2 / (2*g)) n = 0.013 # Manning's n for concrete R = 0.5 # m S = 0.001 # slope V = mannings_velocity(n, R, S) print(f"Flow velocity: {V:.2f} m/s") Q = 5 # m³/s per m width yc = critical_depth(Q) print(f"Critical depth: {yc:.3f} m") ``` ### Transportation Engineering ```python def stopping_sight_distance(V, f, G, t_reaction=2.5, g=9.81): d_perception = V * t_reaction d_braking = V**2 / (2 * g * (f + G/100)) return d_perception + d_braking def level_of_service(v_c, v_free, k, c): return v_c / v_free def pavement_layer_thickness(ESAL, SN, layer_coefficients): D1 = ESAL * layer_coefficients['a1'] / SN D2 = ESAL * layer_coefficients['a2'] / SN return D1, D2 def traffic_signal_timing(cycle_length, green_ratio): green_time = cycle_length * green_ratio yellow_time = 3 all_red = 2 return {'green': green_time, 'yellow': yellow_time, 'all_red': all_red} V = 100 # km/h f = 0.35 # friction factor G = 2 # percent grade SSD = stopping_sight_distance(V/3.6, f, G) print(f"Stopping sight distance: {SSD:.2f} m") ``` ### Construction Management ```python def critical_path_method(activities, precedence): pass def cost_time_tradeoff(normal_cost, crash_cost, normal_time, crash_time): slope = (crash_cost - normal_cost) / (normal_time - crash_time) return slope def earned_value_management(BAC, PV, EV, AC): CV = EV - AC SV = EV - PV CPI = EV / AC SPI = EV / PV EAC = BAC / CPI ETC = EAC - AC return { 'CV': CV, 'SV': SV, 'CPI': CPI, 'SPI': SPI, 'EAC': EAC, 'ETC': ETC } def concrete_cylinder_strength(fc_prime, age, k1=0.79, age_ref=28): return fc_prime * (age / (k1 + (1-k1) * age/age_ref))**0.5 BAC, PV, EV, AC = 1000000, 250000, 200000, 275000 evm = earned_value_management(BAC, PV, EV, AC) print(f"CPI: {evm['CPI']:.2f}") print(f"SPI: {evm['SPI']:.2f}") ``` ## Best Practices 1. **Safety Factors**: Apply appropriate factors of safety 2. **Building Codes**: Follow local codes and standards 3. **Material Properties**: Use appropriate material properties 4. **Load Combinations**: Consider all load cases 5. **Site Conditions**: Account for actual site conditions ## Common Patterns ```python # Concrete mix design def concrete_mix_design(fc, max_aggregate, slump): pass ``` ## Core Competencies 1. Structural analysis and design 2. Geotechnical engineering 3. Hydraulics and hydrology 4. Transportation engineering 5. Construction management
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