source: trunk/anuga_core/source/anuga/structures/inlet.py @ 8623

Last change on this file since 8623 was 8623, checked in by steve, 11 years ago

Some changes to inlet_operator to take negative rates.

File size: 7.1 KB
Line 
1import anuga.geometry.polygon
2from anuga.geometry.polygon import inside_polygon, is_inside_polygon, line_intersect
3from anuga.config import velocity_protection, g
4import math
5
6import numpy as num
7
8class Inlet:
9    """Contains information associated with each inlet
10    """
11
12    def __init__(self, domain, line, verbose=False):
13
14        self.domain = domain
15        self.domain_bounding_polygon = self.domain.get_boundary_polygon()
16        self.line = num.asarray(line, dtype=num.float64)
17        self.verbose = verbose
18
19        self.compute_triangle_indices()
20        self.compute_area()
21        self.compute_inlet_length()
22
23
24
25    def compute_triangle_indices(self):
26
27        # Get boundary (in absolute coordinates)
28        bounding_polygon = self.domain_bounding_polygon
29        domain_centroids = self.domain.get_centroid_coordinates(absolute=True)
30        vertex_coordinates = self.domain.get_vertex_coordinates(absolute=True)
31
32        # Check that line lies within the mesh.
33        for point in self.line: 
34                msg = 'Point %s ' %  str(point)
35                msg += ' did not fall within the domain boundary.'
36                assert is_inside_polygon(point, bounding_polygon), msg
37               
38
39
40        self.triangle_indices = line_intersect(vertex_coordinates, self.line)
41
42        if len(self.triangle_indices) == 0:
43            msg = 'Inlet line=%s ' % (self.line)
44            msg += 'No triangles intersecting line '
45            raise Exception, msg
46
47
48
49    def compute_area(self):
50       
51        # Compute inlet area as the sum of areas of triangles identified
52        # by line. Must be called after compute_inlet_triangle_indices().
53        if len(self.triangle_indices) == 0:
54            region = 'Inlet line=%s' % (self.inlet_line)
55            msg = 'No triangles have been identified in region '
56            raise Exception, msg
57       
58#        self.area = 0.0
59#        for j in self.triangle_indices:
60#            self.area += self.domain.areas[j]
61
62        self.area = num.sum(self.domain.areas[self.triangle_indices])
63
64        msg = 'Inlet exchange area has area = %f' % self.area
65        assert self.area > 0.0
66
67
68    def compute_inlet_length(self):
69        """ Compute the length of the inlet (as
70        defined by the input line
71        """
72
73        point0 = self.line[0]
74        point1 = self.line[1]
75
76        self.inlet_length = anuga.geometry.polygon.line_length(self.line)
77
78
79    def get_inlet_length(self):
80
81        return self.inlet_length
82
83    def get_line(self):
84
85        return self.line
86       
87    def get_area(self):
88
89        return self.area
90
91   
92    def get_areas(self):
93       
94        # Must be called after compute_inlet_triangle_indices().
95        return self.domain.areas.take(self.triangle_indices)
96   
97       
98    def get_stages(self):
99       
100        return self.domain.quantities['stage'].centroid_values.take(self.triangle_indices)
101       
102       
103    def get_average_stage(self):
104
105        return num.sum(self.get_stages()*self.get_areas())/self.area
106       
107    def get_elevations(self):   
108       
109        return self.domain.quantities['elevation'].centroid_values.take(self.triangle_indices)
110       
111    def get_average_elevation(self):
112
113        return num.sum(self.get_elevations()*self.get_areas())/self.area
114   
115   
116    def get_xmoms(self):
117   
118        return self.domain.quantities['xmomentum'].centroid_values.take(self.triangle_indices)
119       
120       
121    def get_average_xmom(self):
122
123        return num.sum(self.get_xmoms()*self.get_areas())/self.area
124       
125   
126    def get_ymoms(self):
127       
128        return self.domain.quantities['ymomentum'].centroid_values.take(self.triangle_indices)
129 
130 
131    def get_average_ymom(self):
132       
133        return num.sum(self.get_ymoms()*self.get_areas())/self.area
134   
135
136    def get_depths(self):
137   
138        return self.get_stages() - self.get_elevations()
139   
140   
141    def get_total_water_volume(self):
142       
143       return num.sum(self.get_depths()*self.get_areas())
144 
145
146    def get_average_depth(self):
147   
148        return self.get_total_water_volume()/self.area
149       
150       
151    def get_velocities(self):
152       
153            depths = self.get_depths()
154            u = self.get_xmoms()/(depths + velocity_protection/depths)
155            v = self.get_ymoms()/(depths + velocity_protection/depths)
156           
157            return u, v
158
159
160    def get_xvelocities(self):
161
162            depths = self.get_depths()
163            return self.get_xmoms()/(depths + velocity_protection/depths)
164
165    def get_yvelocities(self):
166
167            depths = self.get_depths()
168            return self.get_ymoms()/(depths + velocity_protection/depths)
169           
170           
171    def get_average_speed(self):
172 
173            u, v = self.get_velocities()
174           
175            average_u = num.sum(u*self.get_areas())/self.area
176            average_v = num.sum(v*self.get_areas())/self.area
177           
178            return math.sqrt(average_u**2 + average_v**2)
179
180
181    def get_average_velocity_head(self):
182
183        return 0.5*self.get_average_speed()**2/g
184
185
186    def get_average_total_energy(self):
187       
188        return self.get_average_velocity_head() + self.get_average_stage()
189       
190   
191    def get_average_specific_energy(self):
192       
193        return self.get_average_velocity_head() + self.get_average_depth()
194
195
196
197    def set_depths(self,depth):
198
199        self.domain.quantities['stage'].centroid_values.put(self.triangle_indices, self.get_elevations() + depth)
200
201
202    def set_stages(self,stage):
203
204        self.domain.quantities['stage'].centroid_values.put(self.triangle_indices, stage)
205
206
207    def set_xmoms(self,xmom):
208
209        self.domain.quantities['xmomentum'].centroid_values.put(self.triangle_indices, xmom)
210
211
212    def set_ymoms(self,ymom):
213
214        self.domain.quantities['ymomentum'].centroid_values.put(self.triangle_indices, ymom)
215
216
217    def set_elevations(self,elevation):
218
219        self.domain.quantities['elevation'].centroid_values.put(self.triangle_indices, elevation)
220
221    def set_stages_evenly(self,volume):
222        """ Distribute volume of water over
223        inlet exchange region so that stage is level
224        """
225
226        areas = self.get_areas()
227        stages = self.get_stages()
228        depths = self.get_depths()
229
230        stages_order = stages.argsort()
231
232        # accumulate areas of cells ordered by stage
233        summed_areas = num.cumsum(areas[stages_order])
234       
235        # accumulate the volume need to fill cells
236        summed_volume = num.zeros_like(areas)       
237        summed_volume[1:] = num.cumsum(summed_areas[:-1]*num.diff(stages[stages_order]))
238
239
240        assert volume >= 0.0
241
242
243        index = num.nonzero(summed_volume<=volume)[0][-1]
244
245        # calculate stage needed to fill chosen cells with given volume of water
246        depth = (volume - summed_volume[index])/summed_areas[index]
247        stages[stages_order[0:index+1]] = stages[stages_order[index]]+depth
248
249        self.set_stages(stages)
250
251
252
253
254    def set_depths_evenly(self,volume):
255        """ Distribute volume over all exchange
256        cells with equal depth of water
257        """
258           
259        new_depth = self.get_average_depth() + (volume/self.get_area())
260        self.set_depths(new_depth)
261
Note: See TracBrowser for help on using the repository browser.