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Green Building Material For Sustainable Architecture

Abstract: GREEN BUILDING MATERIAL FOR SUSTAINABLE ARCHITECTURE Abstract Outlined is a pioneering green building material system, crafted for the forefront of sustainable architecture. The foundational element is a base material, conscientiously sourced from either recycled or renewable reservoirs. Augmenting this, an additive is incorporated, its primary role being to reinforce structural endurance. Integrated with the base material, a moisture-resistant agent stands guard against potential dampness and water-induced detriments. Capping off the assembly, a UV protection layer is meticulously layered atop the base, shielding it from ultraviolet degradations. The concerted interplay of the base material, additive, moisture-resistant agent, and UV protection layer culminates in a building material that not only boasts extended lifespan but also substantially minimizes the environmental footprint of edifices it forms, marking a milestone in eco-friendly architectural solutions.

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Notices, Deadlines & Correspondence

Patent Information

Application #
Filing Date
07 September 2023
Publication Number
40/2023
Publication Type
INA
Invention Field
POLYMER TECHNOLOGY
Status
Email
Parent Application

Applicants

BANASTHALI VIDYAPITH
BANASTHALI VIDYAPITH, P.O. BANASTHALI, BANASTHALI, RAJASTHAN, INDIA, 304022 JAIPUR

Inventors

1. MS. AARUSHI PANDEY
BANASTHALI VIDYAPITH, P.O. BANASTHALI, BANASTHALI, RAJASTHAN, INDIA, 304022 JAIPUR
2. MR. VIVEK KAMLESH KARELIA
BANASTHALI VIDYAPITH, P.O. BANASTHALI, BANASTHALI, RAJASTHAN, INDIA, 304022 JAIPUR

Claims

1. A green building material system for sustainable architecture, comprising: a base material derived from recycled or renewable resources; an additive promoting enhanced structural durability; a moisture-resistant agent integrated with the base material; and a UV protection layer applied over the base material, wherein the functional relationship between the base material, additive, moisture-resistant agent, and UV protection ensures longevity and reduces the environmental impact of the building structure.

2. The system of claim 1, wherein the base material includes one or more of: recycled concrete, reclaimed wood, or bio-based polymers.

3. The system of claim 1, wherein the additive comprises natural fibers sourced sustainably, enhancing tensile strength and reducing the carbon footprint of the building material.

4. The system of claim 1, further comprising a thermal insulating layer adhered to one side of the base material, promoting energy efficiency in the resulting architectural structure.

5. The system of claim 1, wherein the moisture-resistant agent incorporates natural hydrophobic compounds to reduce water absorption and extend the material's lifespan.

6. A method for constructing sustainable architecture using green building materials, comprising: selecting a base material derived from recycled or renewable sources; integrating a structural additive to enhance the base material's strength; applying a moisture-resistant treatment to the integrated material; and adding a UV protective layer to the outer surface, thereby achieving a harmonized, sustainable construction material with prolonged durability.

7. The method of claim 6, further comprising the steps of: affixing a thermal insulating layer to the green building material; and assembling the treated material in the architectural structure to optimize energy consumption.

8. The method of claim 6, wherein the base material's selection involves evaluating the environmental impact and carbon footprint of potential materials, ensuring the most sustainable option is chosen.

9. The method of claim 6, further comprising: monitoring the performance and environmental impact of the constructed structure over time; and making adjustments or renovations using the same green building material, ensuring consistent sustainability throughout the building's lifespan.

10. The method of claim 6, further comprising: recycling old or damaged parts of the architectural structure; and re-integrating the recycled components into new green building materials, further promoting a closed-loop system of sustainable construction. GREEN BUILDING MATERIAL FOR SUSTAINABLE ARCHITECTURE Abstract Outlined is a pioneering green building material system, crafted for the forefront of sustainable architecture. The foundational element is a base material, conscientiously sourced from either recycled or renewable reservoirs. Augmenting this, an additive is incorporated, its primary role being to reinforce structural endurance. Integrated with the base material, a moisture-resistant agent stands guard against potential dampness and water-induced detriments. Capping off the assembly, a UV protection layer is meticulously layered atop the base, shielding it from ultraviolet degradations. The concerted interplay of the base material, additive, moisture-resistant agent, and UV protection layer culminates in a building material that not only boasts extended lifespan but also substantially minimizes the environmental footprint of edifices it forms, marking a milestone in eco-friendly architectural solutions. , Claims:Claims :

1. A green building material system for sustainable architecture, comprising: a base material derived from recycled or renewable resources; an additive promoting enhanced structural durability; a moisture-resistant agent integrated with the base material; and a UV protection layer applied over the base material, wherein the functional relationship between the base material, additive, moisture-resistant agent, and UV protection ensures longevity and reduces the environmental impact of the building structure.

2. The system of claim 1, wherein the base material includes one or more of: recycled concrete, reclaimed wood, or bio-based polymers.

3. The system of claim 1, wherein the additive comprises natural fibers sourced sustainably, enhancing tensile strength and reducing the carbon footprint of the building material.

4. The system of claim 1, further comprising a thermal insulating layer adhered to one side of the base material, promoting energy efficiency in the resulting architectural structure.

5. The system of claim 1, wherein the moisture-resistant agent incorporates natural hydrophobic compounds to reduce water absorption and extend the material's lifespan.

6. A method for constructing sustainable architecture using green building materials, comprising: selecting a base material derived from recycled or renewable sources; integrating a structural additive to enhance the base material's strength; applying a moisture-resistant treatment to the integrated material; and adding a UV protective layer to the outer surface, thereby achieving a harmonized, sustainable construction material with prolonged durability.

7. The method of claim 6, further comprising the steps of: affixing a thermal insulating layer to the green building material; and assembling the treated material in the architectural structure to optimize energy consumption.

8. The method of claim 6, wherein the base material's selection involves evaluating the environmental impact and carbon footprint of potential materials, ensuring the most sustainable option is chosen.

9. The method of claim 6, further comprising: monitoring the performance and environmental impact of the constructed structure over time; and making adjustments or renovations using the same green building material, ensuring consistent sustainability throughout the building's lifespan.

10. The method of claim 6, further comprising: recycling old or damaged parts of the architectural structure; and re-integrating the recycled components into new green building materials, further promoting a closed-loop system of sustainable construction.

Specification

Description:GREEN BUILDING MATERIAL FOR SUSTAINABLE ARCHITECTURE
Field of the Invention
[0001] The present invention pertains to the field of construction materials and sustainable architecture. Specifically, it relates to a green building material designed to promote sustainability, energy efficiency, and environmental responsibility in architectural design and construction.
Background
[0002] The background description includes information that may be useful in understanding the present invention. It is not an admission that any of the information provided herein is prior art or relevant to the presently claimed invention, or that any publication specifically or implicitly referenced is prior art.
[0003] Green building materials are at the forefront of sustainable architecture, focusing on minimizing environmental impact, enhancing energy efficiency, and promoting the health and well-being of occupants. Traditional construction materials, often derived from resource-intensive processes, contribute to significant environmental degradation. In response, the development and use of green building materials have gained prominence, aiming to reduce the carbon footprint of buildings and create healthier, more sustainable living and working spaces.
[0004] Green building materials encompass a wide range of products that prioritize factors such as resource efficiency, renewable sourcing, reduced emissions, and improved indoor air quality. These materials integrate advanced technologies and manufacturing processes to align with sustainable design principles.
[0005] Materials made from recycled content, such as recycled steel, reclaimed wood, and recycled glass, reduce the demand for virgin resources and divert waste from landfills. Recyclable materials can be repurposed at the end of their life cycle, further reducing environmental impact. The Kendeda Building for Innovative Sustainable Design at Georgia Tech incorporates reclaimed wood and other recycled materials, showcasing the potential of such materials in sustainable architecture.
[0006] Bamboo and cork are rapidly renewable materials that offer alternatives to traditional hardwoods. Bamboo grows quickly and can be harvested sustainably, while cork is harvested from the bark of cork oak trees without harming the trees themselves. Both materials offer durability, versatility, and reduced environmental impact. The Bullitt Center in Seattle used bamboo flooring and cork wall panels to enhance sustainability.
[0007] Materials with low volatile organic compound (VOC) emissions contribute to improved indoor air quality by reducing the release of harmful chemicals into the air. Low-VOC paints, adhesives, and finishes promote occupant health and comfort. The Adam Joseph Lewis Center at Oberlin College utilized low-VOC materials to create a healthy indoor environment for students and staff.
[0008] Green insulation materials, such as cellulose, wool, and cotton, offer eco-friendly alternatives to conventional insulation materials. These materials are often recycled or bio-based and have low embodied energy. The Bullitt Center features cellulose insulation made from recycled newspaper, contributing to its energy-efficient and sustainable design.
[0009] Solar reflective roofing materials, also known as "cool roofs," reflect sunlight and absorb less heat, reducing the need for cooling and improving energy efficiency. These materials can lower urban heat island effects and mitigate energy consumption. The California Academy of Sciences uses a cool roof with a living canopy of plants to enhance energy efficiency and sustainability.
[00010] Fly ash, a byproduct of coal combustion, can be used as a partial replacement for cement in concrete mixtures. This reduces the demand for cement production and lowers greenhouse gas emissions. The Vancouver Convention Centre utilized fly ash concrete in its construction to enhance sustainability and reduce environmental impact.
[00011] In conclusion, green building materials play a pivotal role in advancing sustainable architecture by promoting resource efficiency, reducing environmental impact, and enhancing occupant well-being. Through the use of recycled and recyclable materials, bamboo and cork, low-VOC options, green insulation, solar reflective roofing, and concrete alternatives, architects and designers can create buildings that align with the principles of sustainability and contribute to a more environmentally responsible future. These examples showcase the transformative potential of green building materials in reshaping the construction industry towards a more sustainable direction.
[00012]
[00013] All references, including publications, patent applications, and patents, cited herein are hereby incorporated by reference to the same extent as if each reference were individually and specifically indicated to be incorporated by reference and were set forth in its entirety herein.
[00014] It also shall be noted that as used herein and in the appended claims, the singular forms “a”, “an”, and “the” include plural referents unless the context clearly dictates otherwise. This invention can be achieved by means of hardware including several different elements or by means of a suitably programmed computer. In the unit claims that list several means, several ones among these means can be specifically embodied in the same hardware item. The use of such words as first, second, third does not represent any order, which can be simply explained as names.
Summary
[00015] Various objects, features, and advantages of the disclosed subject matter can be more fully appreciated with reference to the following detailed description of the disclosed subject matter when considered in connection with the following drawings, in which like reference numerals identify like elements.
[00016] The present invention pertains to the field of construction materials and sustainable architecture. Specifically, it relates to a green building material designed to promote sustainability, energy efficiency, and environmental responsibility in architectural design and construction.
[00017] At its core is the base material – a choice made with care. Derived from recycled or renewable resources, it's a statement against waste and environmental harm. This material doesn't just lay the foundation; it sets the stage for responsible architecture.
[00018] Adding strength to this foundation is the additive – a secret ingredient that enhances structural durability. Sourced sustainably from natural fibers, it's about imbuing strength while reducing the material's carbon footprint. It's more than just reinforcement; it's a step towards a greener future.
[00019] But sustainability isn't just about durability; it's about withstanding nature's elements. The moisture-resistant agent steps in, protecting against water's effects. It's not just about repelling moisture; it's about extending the material's lifespan, proving that longevity and environmental consciousness can coexist.
[00020] The sun's rays are more than just light; they're also agents of decay. Enter the UV protection layer – a guardian against degradation caused by sun exposure. It's more than just a shield; it's about ensuring that the material stands the test of time without compromising its sustainable essence.
[00021] Choices matter, and the base material embodies this philosophy. It's not just about the material itself; it's about what it represents. Whether it's recycled concrete, reclaimed wood, or bio-based polymers, it's a canvas upon which responsible architecture can be painted.
[00022] Strength and sustainability go hand in hand, and the additive embodies this union. It's not just about reinforcement; it's about contributing to a future where structural integrity aligns with environmental responsibility.
[00023] Moisture might be nature's adversary, but the moisture-resistant agent stands strong. It's not just about resistance; it's about safeguarding the material's essence for years to come.
[00024] The sun's light might illuminate, but it can also degrade. The UV protection layer doesn't just shield; it's about preserving the material's integrity while reducing its ecological impact.
[00025] In essence, the Green Building Material System isn't just a material; it's a statement. It's a testament to the belief that construction can be a responsible act, that structures can stand tall without standing against the environment. It's about building with a conscience, leaving behind footprints that are green and lasting.
[00026] The art of sustainable architecture reaches new heights with the method of constructing sustainable architecture using green building materials. It's not just about construction; it's about building responsibly, harmonizing with the environment, and ensuring longevity.
[00027] At the heart of this method lies a conscious choice – the selection of a base material derived from recycled or renewable sources. This choice goes beyond aesthetics; it's a statement against waste, signaling a commitment to responsible construction.
[00028] But strength is vital, and that's where the structural additive comes in. It's more than just a supplement; it's about enhancing the base material's strength while reducing its ecological footprint. It's about fortifying construction with the power of sustainability.
[00029] Moisture might be a natural adversary, but it doesn't have to dictate the material's destiny. The moisture-resistant treatment stands strong, guarding against water's effects. It's not just about protection; it's about ensuring the material's integrity in the face of nature's challenges.
[00030] The sun might illuminate, but it can also be destructive. The UV protective layer steps in as a guardian, preserving the material's essence while minimizing its ecological impact. It's not just about shielding; it's about ensuring that the construction stands the test of time with its sustainability intact.
[00031] The journey doesn't end with material treatment; it extends to the architectural structure. The thermal insulating layer becomes a part of the equation, promoting energy efficiency. It's not just about insulation; it's about optimizing energy consumption in a structure that aligns with nature.
[00032] Every choice is guided by responsibility, and that's why material selection is a meticulous process. Evaluating environmental impact and carbon footprints are not just steps; they're a pledge to choose the most sustainable option, forging a path towards a greener future.
[00033] And the journey doesn't stop with construction; it continues with monitoring and adaptation. The performance and environmental impact are continually assessed, ensuring that sustainability remains at the forefront. Adjustments and renovations are made with the same green building material, guaranteeing consistent commitment to responsibility.
[00034] Even the end of one cycle is the beginning of another. Recycling old or damaged parts isn't just about waste reduction; it's about creating a closed-loop system where the past contributes to the future. It's about demonstrating that the spirit of sustainability goes beyond construction; it's a legacy that keeps on giving.
[00035] In essence, the method for constructing sustainable architecture using green building materials is more than just a process; it's a promise. It's a promise to build responsibly, to construct with nature in mind, and to create structures that stand as testaments to the harmonious relationship between human ingenuity and the environment.
[00036]
Brief Description of the Drawings
[00037] The features and advantages of the present disclosure would be more clearly understood from the following description taken in conjunction with the accompanying drawings in which:
[00038] FIG. 1 pictorially depicts a framework of a green building material system for sustainable architecture, according to some embodiments of the present disclosure.
[00039] FIG. 2 figuratively portrays a detailed schematic flow chart of a method for constructing sustainable architecture using green building materials, according to some embodiments of the present disclosure.
[00040]
Detailed Description
[00041] The following is a detailed description of exemplary embodiments to illustrate the principles of the invention. The embodiments are provided to illustrate aspects of the invention, but the invention is not limited to any embodiment. The scope of the invention encompasses numerous alternatives, modifications and equivalent; it is limited only by the claims.
[00042] In view of the many possible embodiments to which the principles of the present discussion may be applied, it should be recognized that the embodiments described herein with respect to the drawing figures are meant to be illustrative only and should not be taken as limiting the scope of the claims. Therefore, the techniques as described herein contemplate all such embodiments as may come within the scope of the following claims and equivalents thereof.
[00043] Throughout the present disclosure, the term “network” relates to an arrangement of interconnected programmable and/or non-programmable components that are configured to facilitate data communication between one or more electronic devices and/or databases, whether available or known at the time of filing or as later developed. Furthermore, the network may include, but is not limited to, one or more peer-to-peer network, a hybrid peer-to-peer network, local area networks (LANs), radio access networks (RANs), metropolitan area networks (MANS), wide area networks (WANs), all or a portion of a public network such as the global computer network known as the Internet, a private network, a cellular network and any other communication system or systems at one or more locations.
[00044] Throughout the present disclosure, the term “process”* relates to any collection or set of instructions executable by a computer or other digital system so as to configure the computer or the digital system to perform a task that is the intent of the process.
[00045] Throughout the present disclosure, the term ‘Artificial intelligence (AI)’ as used herein relates to any mechanism or computationally intelligent system that combines knowledge, techniques, and methodologies for controlling a bot or other element within a computing environment. Furthermore, the artificial intelligence (AI) is configured to apply knowledge and that can adapt it-self and learn to do better in changing environments. Additionally, employing any computationally intelligent technique, the artificial intelligence (AI) is operable to adapt to unknown or changing environment for better performance. The artificial intelligence (AI) includes fuzzy logic engines, decision-making engines, preset targeting accuracy levels, and/or programmatically intelligent software.
[00046] The detailed description is described with reference to the accompanying figures. In the figures, the left-most digit(s) of a reference number identifies the figure in which the reference number first appears. The use of the same reference numbers in different instances in the description and the figures may indicate similar or identical items.
[00047] Pursuant to the "Detailed Description" section herein, whenever an element is explicitly associated with a specific numeral for the first time, such association shall be deemed consistent and applicable throughout the entirety of the "Detailed Description" section, unless otherwise expressly stated or contradicted by the context.
[00048] The present invention pertains to the field of construction materials and sustainable architecture. Specifically, it relates to a green building material designed to promote sustainability, energy efficiency, and environmental responsibility in architectural design and construction.
[00049] Pursuant to the "Detailed Description" section herein, whenever an element is explicitly associated with a specific numeral for the first time, such association shall be deemed consistent and applicable throughout the entirety of the "Detailed Description" section, unless otherwise expressly stated or contradicted by the context.
[00050] In the ever-evolving landscape of sustainable architecture, the quest for environmentally conscious building materials is an imperative. The green building material system 100, a remarkable research at the intersection of science and sustainability, stands as a testament to this endeavour. It weaves together elements from the natural world, recycled resources, and cutting-edge technology to create a building material system that not only constructs structures but also nurtures the planet. Through this exploration, we delve into the intricacies of this system 100, dissecting its components, understanding their synergistic relationships, and appreciating the profound impact they have on architecture and the environment.
[00051] According to a pictorial portrayal in FIG. 1, illustrating an architectural setup of the system 100 comprising a base material 102 derived from recycled or renewable resources, an additive 104 promoting enhanced structural durability, a moisture-resistant agent 106 integrated with the base material, and a UV protection layer 108 applied over the base material, wherein the functional relationship between the base material, additive, moisture-resistant agent, and UV protection ensures longevity and reduces the environmental impact of the building structure.
[00052] At the core of the green building material system 100 is the base material - the canvas upon which the sustainable architectural masterpiece takes form. Derived from recycled or renewable resources, this base material stands in defiance of the resource-intensive practices of the past. Imagine a reclaimed wooden plank salvaged from a decommissioned barn. In this instance, the base material is a testament to sustainability, as

it gives new life to a resource that would otherwise be relegated to the annals of history.
[00053] In yet another embodiment, the diversity of the base material is a celebration of the environment's abundance. It can manifest as recycled concrete, embodying a rebirth of demolished structures into the very foundation of new ones. Or it can emerge as bio-based polymers, transforming renewable plant-derived resources into sturdy architectural components.
[00054] In yet another embodiment, the building material system's longevity is intricately tied to its structural durability. The green building material system acknowledges this truth by incorporating an additive that reinforces the material's core. This additive is more than a mere supplement; it's a safeguard against the ravages of time and elements. Imagine a natural fiber extracted from sustainably sourced plants. In this context, the additive becomes a guardian, enhancing the material's tensile strength while curbing its carbon footprint. Consider a scenario where this system is employed to construct a community center. The additive, derived from natural fibers, binds the material's particles together, endowing it with resilience. This ensures that the community center, despite enduring footfalls, gatherings, and myriad events, remains a steadfast embodiment of sustainable architectural values.
[00055] In the face of nature's elements, moisture stands as a formidable adversary, capable of eroding even the strongest materials over time. The green building material system, ever attuned to environmental harmony, incorporates a moisture-resistant agent that stands as a barrier against this persistent force. This agent isn't a synthetic creation; it's a fusion of nature's wisdom and modern ingenuity. Picture a building nestled amidst a coastal landscape, where salt-laden air carries with it the potential for corrosion. In this context, the moisture-resistant agent is akin to an invisible shield. It integrates natural hydrophobic compounds, extracted from plant sources, effectively reducing water absorption and extending the material's lifespan. This synergy of nature and science is a testament to the system's commitment to longevity.
[00056] In an era when environmental awareness is paramount, the green building material system steps forward to not only construct but also safeguard against the sun's potent rays. The UV protection layer, a sentinel of sorts, is applied over the base material, offering defense against the sun's unrelenting onslaught. This layer is more than cosmetic; it's a proactive measure to preserve both the material and the environment. Visualize a school building where children gather to learn and play. The UV protection layer acts as a guardian, preventing the sun's rays from causing premature deterioration. This layer isn't merely about preserving appearances; it's about upholding the integrity of the material and reducing the need for frequent replacements - a testament to the system's sustainability goals.
[00057] In yet another embodiment, the beauty of the green building material system lies in the functional relationships between its components. The base material, reinforced by the additive, protected by the moisture-resistant agent, and shielded by the UV protection layer, forms an ensemble that's more than the sum of its parts. This ensemble ensures longevity, resilience, and environmental consciousness, giving rise to structures that endure without compromising the planet's health. Imagine an artist's studio constructed using this system. The base material, a mix of reclaimed wood and the additive of natural fibers, becomes a backdrop for creativity. The moisture-resistant agent guards against the humidity that accompanies artistic endeavors, and the UV protection layer preserves the studio's charm against the sun's rays. This ensemble speaks of sustainability not just in construction but also in fostering creativity and artistic expression.
[00058] In the grand tapestry of architectural research, the green building material system 100 emerges as a vibrant thread. It's a thread that weaves together recycled resources, natural wisdom, and technological advancement. It's a thread that's not just about erecting structures but about crafting a sustainable legacy. As buildings rise and fall, this system's impact endures, nurturing an environment where buildings don't just stand as testaments to human achievement but as allies in the pursuit of a greener, more harmonious world.
[00059] In the realm of architecture, the pursuit of sustainable practices has become a cornerstone of modern construction. The method 200 for constructing sustainable architecture using green building materials, as exemplified by the present invention, is a testament to this commitment. This method 200 transcends conventional construction approaches by marrying eco-consciousness with structural integrity. Through this exploration, we delve into the intricacies of this method, dissecting its components, understanding their symbiotic relationships, and appreciating the profound impact they have on sustainable construction.
[00060] Figuratively depicted in FIG. 2, representing a flow diagram of the method 200 for constructing sustainable architecture using green building materials, comprising steps of (at step 202) selecting a base material derived from recycled or renewable sources, (at step 204) integrating a structural additive to enhance the base material's strength, (at step 206) applying a moisture-resistant treatment to the integrated material, and (at step 208) adding a UV protective layer to the outer surface, thereby achieving a harmonized, sustainable construction material with prolonged durability.
[00061] At the heart of this method 200 lies a pivotal decision - the selection of the base material. This choice isn't arbitrary, it's an orchestrated dance between resource efficiency and environmental stewardship. Consider a scenario where a construction project is underway, aiming to erect an eco-friendly community center. In this instance, the selection of the base material becomes a strategic move that aligns with the project's overarching goals.
[00062] The base material, derived from recycled or renewable sources, stands as a statement against resource depletion. It could manifest as recycled concrete, embodying the reclamation of demolished structures into the very foundation of new ones. Alternatively, it could take the form of reclaimed wood, a testament to the transformation of historical resources into contemporary architectural marvels. This selection process isn't just about aesthetics; it's about nurturing the environment and creating structures that embody sustainability.
[00063] Every architectural endeavor is underpinned by the need for structural integrity. The method recognizes this requirement and takes it a step further by introducing a structural additive that elevates the base material's strength. This additive isn't just an appendage; it's a strategic element that fortifies the material's core. Imagine natural fibers sourced sustainably and infused into the base material. In this context, the additive becomes a guardian, enhancing the material's tensile strength while reducing its environmental footprint. Imagine a scenario where this method is employed to construct an energy-efficient office building. The structural additive, entwined with the base material, ensures that the building stands as a paragon of both sustainability and stability. It becomes a haven for productivity, harmonizing human endeavors with ecological values.
[00064] In the realm of construction, moisture stands as a silent adversary, eroding structures and thwarting their longevity. The method takes a pre-emptive stance against this challenge by integrating a moisture-resistant treatment. This treatment, rather than being a synthetic barrier, is a fusion of nature's wisdom and modern technology. Visualize a building situated in a region prone to heavy rains. Here, the moisture-resistant treatment assumes the role of a protector, ensuring that water doesn't seep into the material and weaken its core.
[00065] This integration isn't just about structural preservation; it's about creating spaces that endure the tests of time. Imagine a school building that echoes with the laughter of generations. The moisture-resistant treatment becomes an unsung hero, safeguarding against leaks and dampness, ensuring that the building remains a nurturing environment for learning.
[00066] As architecture engages in a delicate dance with the environment, the method stands as a sentinel against one of nature's most potent forces - the sun. The application of a UV protective layer over the base material's outer surface is more than a cosmetic measure; it's an acknowledgment of the sun's potential to erode even the most resilient materials. Imagine a sustainable housing project situated in a sun-drenched locale. The UV protective layer acts as a guardian, shielding the building's facade from the sun's relentless rays. This layer isn't merely about aesthetics; it's about upholding the material's integrity and reducing the need for frequent replacements.
[00067] In an exemplary embodiment, the beauty of the method 200 lies in the harmony of its elements. The base material, fortified by the structural additive, protected by the moisture-resistant treatment, and shielded by the UV protective layer, forms a symphony that transcends the individual components. This symphony ensures durability, resilience, and environmental consciousness - qualities that contribute to the construction of buildings that endure while treading lightly on the planet. Imagine an art gallery that serves as a sanctuary for creativity. The base material, infused with the structural additive, becomes a canvas for artistic expression. The moisture-resistant treatment ensures that the paintings remain unmarred by dampness, and the UV protective layer safeguards the art from the sun's rays. This harmony serves as a backdrop that doesn't just support art but also embodies the ethos of sustainability.
[00068] The method 200 for constructing sustainable architecture using green building materials emerges as a vibrant thread. It's a thread that weaves together reclaimed resources, scientific insight, and environmental consciousness. It's a thread that's not just about constructing buildings but about nurturing a legacy of sustainability. As structures rise and age, this method's impact persists, nurturing a world where buildings don't just shelter human endeavors but also stand as guardians of the environment.
[00069] The above description is intended to be illustrative, and not restrictive. Although the present disclosure has been described with references to specific illustrative examples and implementations, it will be recognized that the present disclosure is not limited to the examples and implementations described. The scope of the disclosure should be determined with reference to the following claims, along with the full scope of equivalents to which the claims are entitled.
[00070] Modifications, additions, or omissions may be made to the systems and apparatuses described herein without departing from the scope of the disclosure. The components of the systems and apparatuses may be integrated or separated. Moreover, the operations of the systems and apparatuses may be performed by more, fewer, or other components. Additionally, operations of the systems and apparatuses may be performed using any suitable logic comprising software, hardware, and/or other logic. As used in this document, “each” refers to each member of a set or each member of a subset of a set.
[00071] The term “memory,” as used herein relates to a volatile or persistent medium, such as a magnetic disk, or optical disk, in which a computer can store data or software for any duration. Optionally, the memory is non-volatile mass storage such as physical storage media. Furthermore, a single memory may encompass and in a scenario wherein computing system is distributed, the processing, memory and/or storage capability may be distributed as well.
[00072] Throughout the present disclosure, the term ‘server’ relates to a structure and/or module that include programmable and/or non-programmable components configured to store, process and/or share information. Optionally, the server includes any arrangement of physical or virtual computational entities capable of enhancing information to perform various computational tasks.

Claims
I/We Claim:
1. A green building material system for sustainable architecture, comprising: a base material derived from recycled or renewable resources; an additive promoting enhanced structural durability; a moisture-resistant agent integrated with the base material; and a UV protection layer applied over the base material, wherein the functional relationship between the base material, additive, moisture-resistant agent, and UV protection ensures longevity and reduces the environmental impact of the building structure.
2. The system of claim 1, wherein the base material includes one or more of: recycled concrete, reclaimed wood, or bio-based polymers.
3. The system of claim 1, wherein the additive comprises natural fibers sourced sustainably, enhancing tensile strength and reducing the carbon footprint of the building material.
4. The system of claim 1, further comprising a thermal insulating layer adhered to one side of the base material, promoting energy efficiency in the resulting architectural structure.
5. The system of claim 1, wherein the moisture-resistant agent incorporates natural hydrophobic compounds to reduce water absorption and extend the material's lifespan.
6. A method for constructing sustainable architecture using green building materials, comprising: selecting a base material derived from recycled or renewable sources; integrating a structural additive to enhance the base material's strength; applying a moisture-resistant treatment to the integrated material; and adding a UV protective layer to the outer surface, thereby achieving a harmonized, sustainable construction material with prolonged durability.
7. The method of claim 6, further comprising the steps of: affixing a thermal insulating layer to the green building material; and assembling the treated material in the architectural structure to optimize energy consumption.
8. The method of claim 6, wherein the base material's selection involves evaluating the environmental impact and carbon footprint of potential materials, ensuring the most sustainable option is chosen.
9. The method of claim 6, further comprising: monitoring the performance and environmental impact of the constructed structure over time; and making adjustments or renovations using the same green building material, ensuring consistent sustainability throughout the building's lifespan.
10. The method of claim 6, further comprising: recycling old or damaged parts of the architectural structure; and re-integrating the recycled components into new green building materials, further promoting a closed-loop system of sustainable construction.

GREEN BUILDING MATERIAL FOR SUSTAINABLE ARCHITECTURE
Abstract
Outlined is a pioneering green building material system, crafted for the forefront of sustainable architecture. The foundational element is a base material, conscientiously sourced from either recycled or renewable reservoirs. Augmenting this, an additive is incorporated, its primary role being to reinforce structural endurance. Integrated with the base material, a moisture-resistant agent stands guard against potential dampness and water-induced detriments. Capping off the assembly, a UV protection layer is meticulously layered atop the base, shielding it from ultraviolet degradations. The concerted interplay of the base material, additive, moisture-resistant agent, and UV protection layer culminates in a building material that not only boasts extended lifespan but also substantially minimizes the environmental footprint of edifices it forms, marking a milestone in eco-friendly architectural solutions. , Claims:Claims
I/We Claim:
1. A green building material system for sustainable architecture, comprising: a base material derived from recycled or renewable resources; an additive promoting enhanced structural durability; a moisture-resistant agent integrated with the base material; and a UV protection layer applied over the base material, wherein the functional relationship between the base material, additive, moisture-resistant agent, and UV protection ensures longevity and reduces the environmental impact of the building structure.
2. The system of claim 1, wherein the base material includes one or more of: recycled concrete, reclaimed wood, or bio-based polymers.
3. The system of claim 1, wherein the additive comprises natural fibers sourced sustainably, enhancing tensile strength and reducing the carbon footprint of the building material.
4. The system of claim 1, further comprising a thermal insulating layer adhered to one side of the base material, promoting energy efficiency in the resulting architectural structure.
5. The system of claim 1, wherein the moisture-resistant agent incorporates natural hydrophobic compounds to reduce water absorption and extend the material's lifespan.
6. A method for constructing sustainable architecture using green building materials, comprising: selecting a base material derived from recycled or renewable sources; integrating a structural additive to enhance the base material's strength; applying a moisture-resistant treatment to the integrated material; and adding a UV protective layer to the outer surface, thereby achieving a harmonized, sustainable construction material with prolonged durability.
7. The method of claim 6, further comprising the steps of: affixing a thermal insulating layer to the green building material; and assembling the treated material in the architectural structure to optimize energy consumption.
8. The method of claim 6, wherein the base material's selection involves evaluating the environmental impact and carbon footprint of potential materials, ensuring the most sustainable option is chosen.
9. The method of claim 6, further comprising: monitoring the performance and environmental impact of the constructed structure over time; and making adjustments or renovations using the same green building material, ensuring consistent sustainability throughout the building's lifespan.
10. The method of claim 6, further comprising: recycling old or damaged parts of the architectural structure; and re-integrating the recycled components into new green building materials, further promoting a closed-loop system of sustainable construction.

Documents

Application Documents

# Name Date
1 202311060097-REQUEST FOR EARLY PUBLICATION(FORM-9) [07-09-2023(online)].pdf 2023-09-07
2 202311060097-POWER OF AUTHORITY [07-09-2023(online)].pdf 2023-09-07
3 202311060097-OTHERS [07-09-2023(online)].pdf 2023-09-07
4 202311060097-FORM-9 [07-09-2023(online)].pdf 2023-09-07
5 202311060097-FORM FOR SMALL ENTITY(FORM-28) [07-09-2023(online)].pdf 2023-09-07
6 202311060097-FORM 1 [07-09-2023(online)].pdf 2023-09-07
7 202311060097-EVIDENCE FOR REGISTRATION UNDER SSI(FORM-28) [07-09-2023(online)].pdf 2023-09-07
8 202311060097-EDUCATIONAL INSTITUTION(S) [07-09-2023(online)].pdf 2023-09-07
9 202311060097-DRAWINGS [07-09-2023(online)].pdf 2023-09-07
10 202311060097-DECLARATION OF INVENTORSHIP (FORM 5) [07-09-2023(online)].pdf 2023-09-07
11 202311060097-COMPLETE SPECIFICATION [07-09-2023(online)].pdf 2023-09-07