Green Manufacturing and Sustainable Manufacturing Partnership
Parent: Laboratory for Manufacturing and Sustainability
eScholarship stats: Breakdown by Item for May through August, 2026
| Item | Title | Total requests | Download | View-only | %Dnld |
|---|---|---|---|---|---|
| 8260n3t5 | A Review of Engineering Research in Sustainable Manufacturing | 553 | 134 | 419 | 24.2% |
| 0gv882qk | Comparing Environmental Impacts of Additive Manufacturing vs. Traditional Machining via Life-Cycle Assessment | 398 | 170 | 228 | 42.7% |
| 26q3w4bc | An Environmental and Economic Trade-off Analysis of Manufacturing Process Chains to Inform Decision Making for Sustainability | 281 | 123 | 158 | 43.8% |
| 7931209f | A Hybrid Life Cycle Inventory of Nano-Scale Semiconductor Manufacturing | 271 | 117 | 154 | 43.2% |
| 08k854nq | Development of a micro-drilling burr-control chart for PCB drilling | 249 | 97 | 152 | 39.0% |
| 12b238cd | On the Shrinkage and Stiffening of a Cellulose Sponge upon Drying | 242 | 96 | 146 | 39.7% |
| 5gz7j6rn | Machine Tool Design and Operation Strategies for Green Manufacturing | 231 | 28 | 203 | 12.1% |
| 8390918m | The engineering design process as a problem solving and learning tool in K-12 classrooms | 227 | 129 | 98 | 56.8% |
| 4w89d0m2 | Integrated Sustainability Analysis of Atomic Layer Deposition for Microelectronics Manufacturing | 218 | 116 | 102 | 53.2% |
| 6bd3c6bw | Towards Energy and Resource Efficient Manufacturing: A Processes and Systems Approach | 214 | 124 | 90 | 57.9% |
| 80p3d1tr | Energy Use per Worker-Hour: Evaluating the Contribution of Labor to Manufacturing Energy Use | 203 | 29 | 174 | 14.3% |
| 0zz4s5qb | Burrs-Analysis, control and removal | 202 | 115 | 87 | 56.9% |
| 40g995w6 | Energy Consumption Characterization and Reduction Strategies for Milling Machine Tool Use | 201 | 125 | 76 | 62.2% |
| 4zs976kx | Improving Machine Tool Interoperability Using Standardized Interface Protocols: MT Connect | 201 | 36 | 165 | 17.9% |
| 9zp430wp | Review of the Impacts of Crumb Rubber in Artificial Turf Applications | 196 | 95 | 101 | 48.5% |
| 3j5411bd | Automated energy monitoring of machine tools | 191 | 80 | 111 | 41.9% |
| 2wr9b3t1 | Life-cycle assessment of NAND flash memory | 190 | 75 | 115 | 39.5% |
| 66s822jk | Wireless Sensor Networks for Home Health Care | 184 | 43 | 141 | 23.4% |
| 25p8s2qb | Improving endmilling surface finish by workpiece rotation and adaptive toolpath spacing | 183 | 45 | 138 | 24.6% |
| 80x443hk | Sustainable Manufacturing – Greening Processes, Systems and Products | 179 | 57 | 122 | 31.8% |
| 9nr6b6jr | Semi-empirical material removal rate distribution model for SiO<sub>2</sub> chemical mechanical polishing (CMP) processes | 174 | 91 | 83 | 52.3% |
| 2jv2x7wn | Micromachining and Burr Formation for Precision Mechanical Components | 168 | 99 | 69 | 58.9% |
| 5fj0343s | Quantifying the Improvements in Rapid Prototyping and Product Life Cycle Performance Created by Machining | 165 | 100 | 65 | 60.6% |
| 0330g886 | A Decision-Based Analysis of Compressed Air Usage Patterns in Automotive Manufacturing | 160 | 56 | 104 | 35.0% |
| 20d8v6kt | Life Cycle Inventory of a CMOS Chip | 160 | 75 | 85 | 46.9% |
| 55z9v0f2 | Ecological Footprint Budgeting: Environmental Analysis of the Generic American Car | 150 | 33 | 117 | 22.0% |
| 9ct6f6d2 | Environmental Analysis of Milling Machine Tool Use in Various Manufacturing Environments | 149 | 31 | 118 | 20.8% |
| 1tv7d8j3 | Reducing the Environmental Footprint and Economic Costs of Automotive Manufacturing through an Alternative Energy Supply | 146 | 30 | 116 | 20.5% |
| 9w13b4dr | Assessment of Lean and Green Strategies by Simulation of Manufacturing Systems in Discrete Production Environments | 145 | 94 | 51 | 64.8% |
| 10w7h9rb | Appropriate use of Green Manufacturing Frameworks | 144 | 50 | 94 | 34.7% |
| 7cp1p0ww | Condition Monitoring in End-Milling Using Wireless Sensor Networks (WSNs) | 140 | 61 | 79 | 43.6% |
| 1387x8h9 | Software-based tool path evaluation for environmental sustainability | 136 | 55 | 81 | 40.4% |
| 6bt786nf | Environmental Assessment and Metrics for Solar: Case Study of SolFocus Solar Concentrator Systems | 132 | 39 | 93 | 29.5% |
| 2d47b7dg | Life-Cycle Energy Demand of Computational Logic: From High-Performance 32nm CPU to Ultra-Low-Power 130nm MCU | 131 | 36 | 95 | 27.5% |
| 647722kf | Precision Manufacturing Process Monitoring with Acoustic Emission | 128 | 69 | 59 | 53.9% |
| 78g5824b | Quantifying the Environmental Footprint of Semiconductor Equipment Using the Environmental Value Systems Analysis (EnV-S) | 128 | 55 | 73 | 43.0% |
| 6j39z8nj | Semi-empirical Modeling of the Energy Consumed during the Injection Molding Process | 127 | 71 | 56 | 55.9% |
| 262749ph | A Three Dimensional System Approach for Environmentally Sustainable Manufacturing | 126 | 65 | 61 | 51.6% |
| 8zp825mq | An Indigenous Application for Estimating Carbon footprint of academia library systems based on life cycle assessment | 126 | 22 | 104 | 17.5% |
| 9tj3t93z | Evaluating the End-of-Life Phase of Consumer Electronics:Methods and Tools to Improve Product Design and Material Recovery | 126 | 78 | 48 | 61.9% |
| 0649879n | Modeling Gaps and Overlaps of Sustainability Standards | 124 | 44 | 80 | 35.5% |
| 75x445xn | Implementing Engineering and Sustainability Curriculum in K-12 Education | 122 | 52 | 70 | 42.6% |
| 7br9q19x | Acoustic emission based tool contact detection for ultra-precision machining | 122 | 59 | 63 | 48.4% |
| 4037n2wd | Prediction of Burr Formation during Face Milling Using an Artificial Neural Network with Optimized Cutting Conditions | 121 | 45 | 76 | 37.2% |
| 5qs5k8pv | Combination of Speed Stroke Grinding and High Speed Grinding with Regard to Sustainability | 121 | 42 | 79 | 34.7% |
| 0sc1x8mq | Development of a CMP Pad with Controlled Micro Features for Improved Performance | 119 | 54 | 65 | 45.4% |
| 4c11k74w | Precision and Energy Usage for Additive Manufacturing | 118 | 46 | 72 | 39.0% |
| 1bc7g9kj | A Study of Surface Roughness in the Micro-End-Milling Process | 117 | 73 | 44 | 62.4% |
| 5rs7n92f | Impact of the manufacturing phase on the life cycle of machined products | 114 | 40 | 74 | 35.1% |
| 84z0z75t | Understanding Life Cycle Social Impacts in Manufacturing: A processed-based approach | 114 | 39 | 75 | 34.2% |
Note: Due to the evolving nature of web traffic, the data presented here should be considered approximate and subject to revision. Learn more.