Slide 1

Slide 1 text

why, what, how KTH UPD Compositions Manoochehri 101122 ENERGY & WASTE

Slide 2

Slide 2 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE

Slide 3

Slide 3 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK

Slide 4

Slide 4 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK

Slide 5

Slide 5 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK Discuss in the group, and in some short text and / or symbol way present, the questions:

Slide 6

Slide 6 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK Discuss in the group, and in some short text and / or symbol way present, the questions: what is energy, and why is it needed for cities?

Slide 7

Slide 7 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK Discuss in the group, and in some short text and / or symbol way present, the questions: what is energy, and why is it needed for cities? what is waste, and why is it created by cities?

Slide 8

Slide 8 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK Discuss in the group, and in some short text and / or symbol way present, the questions: what is energy, and why is it needed for cities? what is waste, and why is it created by cities?

Slide 9

Slide 9 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK Discuss in the group, and in some short text and / or symbol way present, the questions: what is energy, and why is it needed for cities? what is waste, and why is it created by cities? MAX OUTPUT: Not very much

Slide 10

Slide 10 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE

Slide 11

Slide 11 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM

Slide 12

Slide 12 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM

Slide 13

Slide 13 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city).

Slide 14

Slide 14 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city).

Slide 15

Slide 15 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy?

Slide 16

Slide 16 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy?

Slide 17

Slide 17 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations

Slide 18

Slide 18 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations

Slide 19

Slide 19 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM

Slide 20

Slide 20 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM

Slide 21

Slide 21 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM Proposing new urban morphologies, find more profound integrations of energy/waste (and now you get the idea of energy production/conservation, and waste reduction/waste recycling practices) with urban form and fabric.

Slide 22

Slide 22 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM Proposing new urban morphologies, find more profound integrations of energy/waste (and now you get the idea of energy production/conservation, and waste reduction/waste recycling practices) with urban form and fabric. For example (not possible with existing morphologies), orienting entire blocks for maximum total solar gain.

Slide 23

Slide 23 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM Proposing new urban morphologies, find more profound integrations of energy/waste (and now you get the idea of energy production/conservation, and waste reduction/waste recycling practices) with urban form and fabric. For example (not possible with existing morphologies), orienting entire blocks for maximum total solar gain.

Slide 24

Slide 24 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM Proposing new urban morphologies, find more profound integrations of energy/waste (and now you get the idea of energy production/conservation, and waste reduction/waste recycling practices) with urban form and fabric. For example (not possible with existing morphologies), orienting entire blocks for maximum total solar gain. MAX OUTPUT: 1 x A1, diags, text, illustrations

Slide 25

Slide 25 text

ENERGY & WASTE

Slide 26

Slide 26 text

ENERGY & WASTE WHY IS IT IMPORTANT?

Slide 27

Slide 27 text

ENERGY & WASTE WHY IS IT IMPORTANT? WHAT IS IT?

Slide 28

Slide 28 text

ENERGY & WASTE WHY IS IT IMPORTANT? WHAT IS IT? HOW DOES A CITY DO IT?

Slide 29

Slide 29 text

ENERGY

Slide 30

Slide 30 text

WHY?

Slide 31

Slide 31 text

No content

Slide 32

Slide 32 text

ENERGY IS EVERYTHING

Slide 33

Slide 33 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation

Slide 34

Slide 34 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation ENTROPY IS EVERYWHERE

Slide 35

Slide 35 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation ENTROPY IS EVERYWHERE energy always degrades

Slide 36

Slide 36 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation ENTROPY IS EVERYWHERE energy always degrades ENERGY IS HOW WE UNDERSTAND NATURE

Slide 37

Slide 37 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation ENTROPY IS EVERYWHERE energy always degrades ENERGY IS HOW WE UNDERSTAND NATURE biology energy flow diagrams, human system energy flows, material flows

Slide 38

Slide 38 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation ENTROPY IS EVERYWHERE energy always degrades ENERGY IS HOW WE UNDERSTAND NATURE biology energy flow diagrams, human system energy flows, material flows ENERGY IS HOW WE UNDERSTAND OURSELVES

Slide 39

Slide 39 text

ENERGY IS EVERYTHING food, heat; production, transport; city organisation ENTROPY IS EVERYWHERE energy always degrades ENERGY IS HOW WE UNDERSTAND NATURE biology energy flow diagrams, human system energy flows, material flows ENERGY IS HOW WE UNDERSTAND OURSELVES power over everything and everyone

Slide 40

Slide 40 text

WHAT

Slide 41

Slide 41 text

THEORY & MEASURE

Slide 42

Slide 42 text

ENERGY IS CAPACITY TO DO WORK THEORY & MEASURE

Slide 43

Slide 43 text

ENERGY IS CAPACITY TO DO WORK Overcoming inertia - gravitational, electromagnetic THEORY & MEASURE

Slide 44

Slide 44 text

ENERGY IS CAPACITY TO DO WORK Overcoming inertia - gravitational, electromagnetic JOULES PER SECOND = WATT THEORY & MEASURE

Slide 45

Slide 45 text

ENERGY IS CAPACITY TO DO WORK Overcoming inertia - gravitational, electromagnetic JOULES PER SECOND = WATT Remember, energy always degrades THEORY & MEASURE

Slide 46

Slide 46 text

HISTORY

Slide 47

Slide 47 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ HISTORY

Slide 48

Slide 48 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain HISTORY

Slide 49

Slide 49 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass HISTORY

Slide 50

Slide 50 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro HISTORY

Slide 51

Slide 51 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source HISTORY

Slide 52

Slide 52 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core HISTORY

Slide 53

Slide 53 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM HISTORY

Slide 54

Slide 54 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM 200 years of bottled sunlight HISTORY

Slide 55

Slide 55 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM 200 years of bottled sunlight POST-FOSSIL PARADIGM? HISTORY

Slide 56

Slide 56 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM 200 years of bottled sunlight POST-FOSSIL PARADIGM? Back to pre-fossil solar? HISTORY

Slide 57

Slide 57 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM 200 years of bottled sunlight POST-FOSSIL PARADIGM? Back to pre-fossil solar? Neo-fossil paradigm? HISTORY

Slide 58

Slide 58 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM 200 years of bottled sunlight POST-FOSSIL PARADIGM? Back to pre-fossil solar? Neo-fossil paradigm? Post-fossil solar paradigm? HISTORY

Slide 59

Slide 59 text

BASIC ENERGY PARADIGM > SOLAR PARADIGM ++ Solar Gain Biomass Wind, Wave, Hydro Ground-source ++ Moon, Earth Core FOSSIL PARADIGM 200 years of bottled sunlight POST-FOSSIL PARADIGM? Back to pre-fossil solar? Neo-fossil paradigm? Post-fossil solar paradigm? HISTORY +++ ? Minerals, Wacky Biota

Slide 60

Slide 60 text

TECHNOLOGY & DESIGN

Slide 61

Slide 61 text

VECTORISATION TECHNOLOGY & DESIGN

Slide 62

Slide 62 text

VECTORISATION Concentration? TECHNOLOGY & DESIGN

Slide 63

Slide 63 text

VECTORISATION Concentration? Storage? TECHNOLOGY & DESIGN

Slide 64

Slide 64 text

VECTORISATION Concentration? Storage? Transport? TECHNOLOGY & DESIGN

Slide 65

Slide 65 text

VECTORISATION Concentration? Storage? Transport? CONVERSION TECHNOLOGY & DESIGN

Slide 66

Slide 66 text

VECTORISATION Concentration? Storage? Transport? CONVERSION Efficiency of final use? TECHNOLOGY & DESIGN

Slide 67

Slide 67 text

VECTORISATION Concentration? Storage? Transport? CONVERSION Efficiency of final use? ROEI / EROEI TECHNOLOGY & DESIGN

Slide 68

Slide 68 text

HOW?

Slide 69

Slide 69 text

PRE-FOSSIL

Slide 70

Slide 70 text

DIRECT PRE-FOSSIL

Slide 71

Slide 71 text

DIRECT vectorisation: biotic, solar gain PRE-FOSSIL

Slide 72

Slide 72 text

DIRECT vectorisation: biotic, solar gain production: ... eh? (> fuel industry) PRE-FOSSIL

Slide 73

Slide 73 text

DIRECT vectorisation: biotic, solar gain production: ... eh? (> fuel industry) applications: fires, solar gain PRE-FOSSIL

Slide 74

Slide 74 text

DIRECT vectorisation: biotic, solar gain production: ... eh? (> fuel industry) applications: fires, solar gain functions: (fuel > food, space heating) PRE-FOSSIL

Slide 75

Slide 75 text

DIRECT vectorisation: biotic, solar gain production: ... eh? (> fuel industry) applications: fires, solar gain functions: (fuel > food, space heating) conservation: massing, insulation, orientation PRE-FOSSIL

Slide 76

Slide 76 text

PRE-FOSSIL

Slide 77

Slide 77 text

INDIRECT PRE-FOSSIL

Slide 78

Slide 78 text

INDIRECT animal transport PRE-FOSSIL

Slide 79

Slide 79 text

INDIRECT animal transport local food PRE-FOSSIL

Slide 80

Slide 80 text

INDIRECT animal transport local food local and natural materials PRE-FOSSIL

Slide 81

Slide 81 text

INDIRECT animal transport local food local and natural materials spatial engineering rather than technology PRE-FOSSIL

Slide 82

Slide 82 text

INDIRECT animal transport local food local and natural materials spatial engineering rather than technology systems not objects PRE-FOSSIL

Slide 83

Slide 83 text

INDIRECT animal transport local food local and natural materials spatial engineering rather than technology systems not objects culture not consumers PRE-FOSSIL

Slide 84

Slide 84 text

INDIRECT animal transport local food local and natural materials spatial engineering rather than technology systems not objects culture not consumers human-scale urbanism PRE-FOSSIL

Slide 85

Slide 85 text

INDIRECT animal transport local food local and natural materials spatial engineering rather than technology systems not objects culture not consumers human-scale urbanism vertical and horizontal; i.e. mass/void, connections PRE-FOSSIL

Slide 86

Slide 86 text

FOSSIL

Slide 87

Slide 87 text

DIRECT FOSSIL

Slide 88

Slide 88 text

DIRECT vectorisation: fossils, electricity FOSSIL

Slide 89

Slide 89 text

DIRECT vectorisation: fossils, electricity production: fossil/mineral burning FOSSIL

Slide 90

Slide 90 text

DIRECT vectorisation: fossils, electricity production: fossil/mineral burning applications: transport, food, power, plastics FOSSIL

Slide 91

Slide 91 text

DIRECT vectorisation: fossils, electricity production: fossil/mineral burning applications: transport, food, power, plastics functions: ... whatevs FOSSIL

Slide 92

Slide 92 text

DIRECT vectorisation: fossils, electricity production: fossil/mineral burning applications: transport, food, power, plastics functions: ... whatevs conservation: ... eh? FOSSIL

Slide 93

Slide 93 text

FOSSIL

Slide 94

Slide 94 text

INDIRECT FOSSIL

Slide 95

Slide 95 text

INDIRECT machine transport FOSSIL

Slide 96

Slide 96 text

INDIRECT machine transport chemical-machine food FOSSIL

Slide 97

Slide 97 text

INDIRECT machine transport chemical-machine food distant food and material supply chains FOSSIL

Slide 98

Slide 98 text

INDIRECT machine transport chemical-machine food distant food and material supply chains technology not spatial engineering FOSSIL

Slide 99

Slide 99 text

INDIRECT machine transport chemical-machine food distant food and material supply chains technology not spatial engineering objects not systems FOSSIL

Slide 100

Slide 100 text

INDIRECT machine transport chemical-machine food distant food and material supply chains technology not spatial engineering objects not systems consumers not culture FOSSIL

Slide 101

Slide 101 text

INDIRECT machine transport chemical-machine food distant food and material supply chains technology not spatial engineering objects not systems consumers not culture machine-scale urbanism FOSSIL

Slide 102

Slide 102 text

INDIRECT machine transport chemical-machine food distant food and material supply chains technology not spatial engineering objects not systems consumers not culture machine-scale urbanism vertical and horizontal; mass/void, connections FOSSIL

Slide 103

Slide 103 text

ENERGY & WASTE

Slide 104

Slide 104 text

ENERGY & WASTE WHY IS IT IMPORTANT?

Slide 105

Slide 105 text

ENERGY & WASTE WHY IS IT IMPORTANT? WHAT IS IT?

Slide 106

Slide 106 text

ENERGY & WASTE WHY IS IT IMPORTANT? WHAT IS IT? HOW DOES A CITY DO IT?

Slide 107

Slide 107 text

POST-FOSSIL

Slide 108

Slide 108 text

PRE-FOSSIL SOLAR? POST-FOSSIL

Slide 109

Slide 109 text

PRE-FOSSIL SOLAR? NEO-FOSSIL? POST-FOSSIL

Slide 110

Slide 110 text

POST-FOSSIL

Slide 111

Slide 111 text

DIRECT POST-FOSSIL

Slide 112

Slide 112 text

DIRECT vectorisation: solar vs ? POST-FOSSIL

Slide 113

Slide 113 text

DIRECT vectorisation: solar vs ? production: how? integration? why? POST-FOSSIL

Slide 114

Slide 114 text

DIRECT vectorisation: solar vs ? production: how? integration? why? applications: what actually needs energy? POST-FOSSIL

Slide 115

Slide 115 text

DIRECT vectorisation: solar vs ? production: how? integration? why? applications: what actually needs energy? conservation: why is this so hard? POST-FOSSIL

Slide 116

Slide 116 text

POST-FOSSIL

Slide 117

Slide 117 text

INDIRECT POST-FOSSIL

Slide 118

Slide 118 text

INDIRECT transport: why travel? how travel? POST-FOSSIL

Slide 119

Slide 119 text

INDIRECT transport: why travel? how travel? food: local? regional? POST-FOSSIL

Slide 120

Slide 120 text

INDIRECT transport: why travel? how travel? food: local? regional? natural materials: what are natural materials? POST-FOSSIL

Slide 121

Slide 121 text

INDIRECT transport: why travel? how travel? food: local? regional? natural materials: what are natural materials? engin’ing vs tech: > pulleys, levers, arches ... & parametrics! POST-FOSSIL

Slide 122

Slide 122 text

INDIRECT transport: why travel? how travel? food: local? regional? natural materials: what are natural materials? engin’ing vs tech: > pulleys, levers, arches ... & parametrics! systems vs objects: do we design objects or systems? POST-FOSSIL

Slide 123

Slide 123 text

INDIRECT transport: why travel? how travel? food: local? regional? natural materials: what are natural materials? engin’ing vs tech: > pulleys, levers, arches ... & parametrics! systems vs objects: do we design objects or systems? culture vs consumers: whose idea(l)s are we designing for? POST-FOSSIL

Slide 124

Slide 124 text

INDIRECT transport: why travel? how travel? food: local? regional? natural materials: what are natural materials? engin’ing vs tech: > pulleys, levers, arches ... & parametrics! systems vs objects: do we design objects or systems? culture vs consumers: whose idea(l)s are we designing for? urbanism scale: the big question! POST-FOSSIL

Slide 125

Slide 125 text

INDIRECT transport: why travel? how travel? food: local? regional? natural materials: what are natural materials? engin’ing vs tech: > pulleys, levers, arches ... & parametrics! systems vs objects: do we design objects or systems? culture vs consumers: whose idea(l)s are we designing for? urbanism scale: the big question! vertical and horizontal; i.e. mass/void, connections POST-FOSSIL

Slide 126

Slide 126 text

WASTE

Slide 127

Slide 127 text

WHY?

Slide 128

Slide 128 text

No content

Slide 129

Slide 129 text

POLLUTION

Slide 130

Slide 130 text

POLLUTION human and non-human wellbeing

Slide 131

Slide 131 text

POLLUTION human and non-human wellbeing RESOURCES

Slide 132

Slide 132 text

POLLUTION human and non-human wellbeing RESOURCES human and non-human survival

Slide 133

Slide 133 text

POLLUTION human and non-human wellbeing RESOURCES human and non-human survival justice?! hello?!

Slide 134

Slide 134 text

POLLUTION human and non-human wellbeing RESOURCES human and non-human survival justice?! hello?! REVEALS SYSTEM DESIGN

Slide 135

Slide 135 text

POLLUTION human and non-human wellbeing RESOURCES human and non-human survival justice?! hello?! REVEALS SYSTEM DESIGN waste is a system error not a behaviour error

Slide 136

Slide 136 text

POLLUTION human and non-human wellbeing RESOURCES human and non-human survival justice?! hello?! REVEALS SYSTEM DESIGN waste is a system error not a behaviour error REVEALS LIFESTYLES

Slide 137

Slide 137 text

POLLUTION human and non-human wellbeing RESOURCES human and non-human survival justice?! hello?! REVEALS SYSTEM DESIGN waste is a system error not a behaviour error REVEALS LIFESTYLES waste is a social error not a behaviour error

Slide 138

Slide 138 text

WHAT

Slide 139

Slide 139 text

[Pollution, waste] is matter out of place. MARY DOUGLAS, 1966

Slide 140

Slide 140 text

No content

Slide 141

Slide 141 text

BIOTA

Slide 142

Slide 142 text

BIOTA plant biomass

Slide 143

Slide 143 text

BIOTA plant biomass human and animal excreta

Slide 144

Slide 144 text

BIOTA plant biomass human and animal excreta animal biomass

Slide 145

Slide 145 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS

Slide 146

Slide 146 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals

Slide 147

Slide 147 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics

Slide 148

Slide 148 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics other

Slide 149

Slide 149 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics other OTHER

Slide 150

Slide 150 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics other OTHER composites

Slide 151

Slide 151 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics other OTHER composites mixtures

Slide 152

Slide 152 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics other OTHER composites mixtures suspensions

Slide 153

Slide 153 text

BIOTA plant biomass human and animal excreta animal biomass MINERALS metals ceramics other OTHER composites mixtures suspensions synthetic fluids

Slide 154

Slide 154 text

No content

Slide 155

Slide 155 text

SCIENCE

Slide 156

Slide 156 text

SCIENCE ELEMENTS

Slide 157

Slide 157 text

SCIENCE ELEMENTS COMPOUNDS

Slide 158

Slide 158 text

SCIENCE ELEMENTS COMPOUNDS MIXTURES

Slide 159

Slide 159 text

CRADLE TO CRADLE SCIENCE ELEMENTS COMPOUNDS MIXTURES

Slide 160

Slide 160 text

CRADLE TO CRADLE TECHNICAL CYCLE SCIENCE ELEMENTS COMPOUNDS MIXTURES

Slide 161

Slide 161 text

CRADLE TO CRADLE TECHNICAL CYCLE BIO CYCLE SCIENCE ELEMENTS COMPOUNDS MIXTURES

Slide 162

Slide 162 text

HOW?

Slide 163

Slide 163 text

PRE-FOSSIL

Slide 164

Slide 164 text

DIRECT PRE-FOSSIL

Slide 165

Slide 165 text

DIRECT production: excreta, mineral industrial waste PRE-FOSSIL

Slide 166

Slide 166 text

DIRECT production: excreta, mineral industrial waste minimisation: economic constraints PRE-FOSSIL

Slide 167

Slide 167 text

DIRECT production: excreta, mineral industrial waste minimisation: economic constraints reclamation: biotic, technical PRE-FOSSIL

Slide 168

Slide 168 text

PRE-FOSSIL

Slide 169

Slide 169 text

INDIRECT PRE-FOSSIL

Slide 170

Slide 170 text

INDIRECT local disposal PRE-FOSSIL

Slide 171

Slide 171 text

INDIRECT local disposal local recovery PRE-FOSSIL

Slide 172

Slide 172 text

INDIRECT local disposal local recovery limited non-biotic, non-mineral waste - composites, synths PRE-FOSSIL

Slide 173

Slide 173 text

INDIRECT local disposal local recovery limited non-biotic, non-mineral waste - composites, synths ‘design’ for biocycle PRE-FOSSIL

Slide 174

Slide 174 text

INDIRECT local disposal local recovery limited non-biotic, non-mineral waste - composites, synths ‘design’ for biocycle ‘design’ for technical cycle PRE-FOSSIL

Slide 175

Slide 175 text

FOSSIL

Slide 176

Slide 176 text

DIRECT FOSSIL

Slide 177

Slide 177 text

DIRECT production: vast complexity and pollution of waste-streams FOSSIL

Slide 178

Slide 178 text

DIRECT production: vast complexity and pollution of waste-streams composites, synthetics FOSSIL

Slide 179

Slide 179 text

DIRECT production: vast complexity and pollution of waste-streams composites, synthetics minimisation: economic constraints?? FOSSIL

Slide 180

Slide 180 text

DIRECT production: vast complexity and pollution of waste-streams composites, synthetics minimisation: economic constraints?? reclamation: downcycling FOSSIL

Slide 181

Slide 181 text

FOSSIL

Slide 182

Slide 182 text

INDIRECT FOSSIL

Slide 183

Slide 183 text

INDIRECT offsite disposal FOSSIL

Slide 184

Slide 184 text

INDIRECT offsite disposal recovery-for-offsite-disposal FOSSIL

Slide 185

Slide 185 text

INDIRECT offsite disposal recovery-for-offsite-disposal massive non-biotic, non-mineral waste - composites, synths FOSSIL

Slide 186

Slide 186 text

INDIRECT offsite disposal recovery-for-offsite-disposal massive non-biotic, non-mineral waste - composites, synths no design for biocycle FOSSIL

Slide 187

Slide 187 text

INDIRECT offsite disposal recovery-for-offsite-disposal massive non-biotic, non-mineral waste - composites, synths no design for biocycle no design for technical cycle FOSSIL

Slide 188

Slide 188 text

POST-FOSSIL

Slide 189

Slide 189 text

PRE-FOSSIL SOLAR? POST-FOSSIL

Slide 190

Slide 190 text

PRE-FOSSIL SOLAR? NEO-FOSSIL? POST-FOSSIL

Slide 191

Slide 191 text

POST-FOSSIL

Slide 192

Slide 192 text

DIRECT POST-FOSSIL

Slide 193

Slide 193 text

DIRECT production: why? what? POST-FOSSIL

Slide 194

Slide 194 text

DIRECT production: why? what? minimisation: economic constraints? > POLICY POST-FOSSIL

Slide 195

Slide 195 text

DIRECT production: why? what? minimisation: economic constraints? > POLICY reclamation: economic opportunities! POST-FOSSIL

Slide 196

Slide 196 text

POST-FOSSIL

Slide 197

Slide 197 text

INDIRECT POST-FOSSIL

Slide 198

Slide 198 text

INDIRECT disposal: ... eh? POST-FOSSIL

Slide 199

Slide 199 text

INDIRECT disposal: ... eh? recovery: designed for recovery at appropriate scale POST-FOSSIL

Slide 200

Slide 200 text

INDIRECT disposal: ... eh? recovery: designed for recovery at appropriate scale non-biotic, non-mineral waste - composites, synths: hard design, yeah! POST-FOSSIL

Slide 201

Slide 201 text

INDIRECT disposal: ... eh? recovery: designed for recovery at appropriate scale non-biotic, non-mineral waste - composites, synths: hard design, yeah! ‘design’ for biocycle? POST-FOSSIL

Slide 202

Slide 202 text

INDIRECT disposal: ... eh? recovery: designed for recovery at appropriate scale non-biotic, non-mineral waste - composites, synths: hard design, yeah! ‘design’ for biocycle? ‘design’ for technical cycle? POST-FOSSIL

Slide 203

Slide 203 text

ASSIGNMENT

Slide 204

Slide 204 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 1. CONCEPT CHECK Discuss in the group, and in some short text and / or symbol way present, the questions: what is energy, and why is it needed for cities? what is waste, and why is it created by cities? MAX OUTPUT: Not very much

Slide 205

Slide 205 text

AREA & PROJECT: ADAPT PREVIOUS GROUPS: BY CHOICE 2. FINDING SYNERGIES WITH FORM Propose SYNERGIES for integrating energy and waste handling infrastructure with EXISTING urban form and fabric. For example, an Envac vacuum-tube waste system (doesn't require rebuilding the city). Consider: ZERO waste? (think, Cradle To Cradle); ZERO energy, or zero from-outside energy? MAX OUTPUT: 1 x A1, diags, text, illustrations 3. CREATING SYNERGIES WITH FORM Proposing new urban morphologies, find more profound integrations of energy/waste (and now you get the idea energy production/conservation, and waste reduction/waste recycling practices) with urban form and fabric. For example (not possible with existing morphologies), orienting entire blocks for maximum total solar gain. MAX OUTPUT: 1 x A1, diags, text, illustrations

Slide 206

Slide 206 text

why, what, how KTH UPD Compositions jm@resourcevision.se 101122 ENERGY & WASTE