Utafiti wa kitaaluma, lugha inayoeleweka

Verianla | Akademik Araştırmalardan Türkçe Ekonomi ve Bilim İçerikleri

27 Septemba 2026, Jumapili
VERİANLAUchapishaji huru wa sayansi
Fungua au funga menyu
...
Home / Sayansi za Kibinadamu / Usanifu Majengo / Upitishaji wa Joto na Muundo Mdogo wa Biokompoziti Mpya ya Udongo wa Mfinyanzi–Nyuzi za Mtama: Miundo ya Uhomojenishaji wa Kianaliti na Tomografia ya Kompyuta ya Mionzi-X
Usanifu Majengo

Upitishaji wa Joto na Muundo Mdogo wa Biokompoziti Mpya ya Udongo wa Mfinyanzi–Nyuzi za Mtama: Miundo ya Uhomojenishaji wa Kianaliti na Tomografia ya Kompyuta ya Mionzi-X

Utafiti huu umechunguza upitishaji wa joto na muundo mdogo wa vipimo vitatu wa biokompoziti za udongo usiochomwa zilizoandaliwa kwa kuchanganya udongo wa mfinyanzi kutoka eneo la Boudry, Burkina Faso, na nyuzi asilia kutoka mashina ya mtama.

05/08/2026  Veri Anla Imetazamwa mara 53
Upitishaji wa Joto na Muundo Mdogo wa Biokompoziti Mpya ya Udongo wa Mfinyanzi–Nyuzi za Mtama: Miundo ya Uhomojenishaji wa Kianaliti na Tomografia ya Kompyuta ya Mionzi-X

Utafiti huu umechunguza thermal conductivity na microstructure ya vipimo vitatu ya biocomposites za udongo usiochomwa zilizoandaliwa kwa kuchanganya udongo wa mfinyanzi kutoka eneo la Boudry, Burkina Faso, na nyuzi asilia zilizopatikana kutoka mashina ya mtama. Makundi matano ya sampuli yenye kiasi cha nyuzi za mtama cha %0, %2, %5, %7 na %10 kwa uzito yaliandaliwa; thermal conductivity ya sampuli zilizokaushwa ilipimwa kwa kifaa cha KD2Pro kinachotumia transient line heat source method. Porosity, fiber volume fraction na usambazaji wa anga wa nyuzi ulitathminiwa kwa X-ray computed tomography katika resolutions za 4, 10 na 22 µm/voxel.

Kwa mujibu wa jedwali la majaribio, thermal conductivity ya sampuli isiyo na nyuzi za mtama ilikuwa 0,886 ± 0,006 W·m−1·K−1, huku thamani ya sampuli yenye %10 nyuzi ikiwa 0,508 ± 0,009 W·m−1·K−1 . Kupungua kati ya thamani hizi mbili ni takribani %42,7. Hata hivyo, katika muhtasari, matokeo na maelezo husika ya utafiti, upungufu uliripotiwa kuwa takribani %27 au %27,1. Kwa kuwa thamani za namba haziendani na dai la asilimia, matokeo ya majaribio yanayoweza kuthibitishwa ni kushuka kutoka 0,886 hadi 0,508 W·m−1·K−1; kauli ya %27 inapaswa kusomwa kama kutolingana kwa kihesabu ndani ya chanzo.

Dry density katika sampuli isiyo na nyuzi ilikuwa 1924,13 kg·m−3, wakati katika sampuli yenye %10 nyuzi za mtama ilitolewa kuwa 1068,67 kg·m−3. Mabadiliko haya yanalingana na kupungua kwa density kwa takribani %44,5. Watafiti walieleza kupungua kwa thermal conductivity kwa uingizwaji wa sehemu ya mineral clay phase na plant fibers zenye density ya chini, pamoja na kuongezeka kwa porosity baada ya kuongeza nyuzi, jambo linalofanya njia ya uhamishaji wa joto kuwa yenye mikunjo zaidi.

Matokeo ya tomography yalionyesha kwamba kadiri kiasi cha nyuzi kinavyoongezeka, porosity iliyohesabiwa pia huongezeka. Hata hivyo, porosity iliyopimwa inategemea kwa kiasi kikubwa voxel size iliyotumika. Resolution bora zaidi ya 4 µm/voxel ilinasa vizuri pores ndogo, lakini iliweza kuchunguza volume ndogo zaidi ya material. Resolution coarse zaidi ya 22 µm/voxel ilikosa baadhi ya micropores, lakini kwa kuwa ilijumuisha volume kubwa zaidi, ilichukuliwa kuwa karibu zaidi na Representative Elementary Volume kwa macroscopic thermal modeling.

Orientation analysis ya sampuli yenye asilimia 5 ya nyuzi kwa uzito ilionyesha kwamba nyuzi za mtama kwa ujumla zilisambazwa kwa nasibu ndani ya clay matrix. Kwa mujibu wa watafiti, usambazaji huu huzuia kuundwa kwa njia endelevu na preferred za uhamishaji wa joto kupitia solid phase; nyuzi na pores huongeza urefu wa njia inayofuata heat flow na hivyo kupunguza effective thermal conductivity ya material.

Ili kuhusisha thermal properties na microstructure, mbinu ya homogenization ya hatua tatu ilitumika. Kwanza, experimental conductivity ya porous clay isiyo na nyuzi na tomographic porosity zilitumika kukadiria intrinsic thermal conductivity ya solid clay phase kwa inverse Maxwell, Russell na Hadley models. Kisha, experimental conductivities za composite na fiber volume fractions zilitumika kukokotoa intrinsic thermal conductivity ya nyuzi za mtama kwa inverse Glicksman method kuwa 0,407 W·m−1·K−1. Katika hatua ya mwisho, effective conductivity ya composite ilikadiriwa tena kwa series, parallel, geometric mean na Glicksman models.

Iliripotiwa kwamba Glicksman model ilitoa matokeo yaliyo karibu sana na experimental curve. Hata hivyo, kwa kuwa fiber conductivity ilipatikana kwa kutumia experimental data hizohizo katika inverse Glicksman equation, ukaribu huu unatokana kwa sehemu na muundo wa mbinu yenyewe. Katika finite element model iliyotengenezwa kwa ulinganisho huru zaidi, nyuzi fupi na zisizo za kawaida ziliwakilishwa kama cylinders zilizoelekezwa kwa nasibu na zisizopenyana. Tofauti kati ya numerical results na experiments ziliripotiwa kuwa takribani %1–6, na kwa kauli pana zaidi katika sehemu ya matokeo, chini ya %7.

Utafiti unaonyesha kwamba composites za udongo zenye nyuzi za mtama zinaweza kuwa na thermal conductivity ya chini kuliko reference clay. Hata hivyo, ni sampuli ndogo za cubes za 4 cm zilizokaushwa tu zilizochunguzwa; compressive na flexural strength, water resistance, erosion, fire behavior, biological degradation, thermal conductivity katika hali yenye unyevu, full-scale wall performance na building energy consumption havikutathminiwa. Kwa hiyo, matokeo si ushahidi wa suitability kama building product au usable load-bearing brick.

Tathmini kwa mtazamo wa Türkiye: Mbinu ya utafiti inatoa research framework inayoweza kutumika Türkiye kwa tathmini ya pamoja ya earth-based building materials na agricultural fibers kwa mazingira ya joto na kavu. Hata hivyo, mineralogy ya Boudry clay kutoka Burkina Faso, muundo wa nyuzi za mtama, sample production na climate targets haziwezi kudhaniwa kuwa sawa na materials za Türkiye. Kwa matumizi Türkiye, mineralogical, mechanical, hygrothermal, fire, durability na biological properties za local clays na fibers zinapaswa kupimwa upya; full-size block na wall tests zinapaswa kufanywa. Utafiti hautoi uthibitisho wa kufuata Turkish standard yoyote, load-bearing use, earthquake safety au legal building-material approval.

Swali kuu la utafiti ni nini?

Swali kuu la utafiti ni jinsi kuongeza kiasi tofauti cha nyuzi za mtama kwenye udongo usiochomwa kunavyobadilisha porosity, fiber distribution, density na effective thermal conductivity ya material, na kama mabadiliko haya yanaweza kuelezwa kwa tomographic images na analytical homogenization models.

Utafiti haukuishia tu kuandaa jedwali la experimental conductivity. Watafiti walijaribu kubaini kwa njia isiyo ya moja kwa moja sifa mbili ambazo ni vigumu kupima moja kwa moja kwa majaribio:

  • Intrinsic thermal conductivity ya solid clay phase isiyo na pores,
  • Intrinsic thermal conductivity ya nyuzi za mtama pekee.

Thamani hizi hazikupimwa moja kwa moja; zilikokotolewa kwa inverse-problem approach kwa kutumia measured conductivity ya composite na phase fractions zilizotolewa kutoka tomography.

Kwa nini utafiti ni muhimu?

Unfired earth materials ni muhimu katika sustainable-building research kwa sababu ya low processing energy, matumizi ya local raw materials na recyclability. Hata hivyo, thermal behavior ya earth-based material huathiriwa na density, porosity, mineral composition, fiber content, moisture na manufacturing method.

Kuongeza natural fiber kunaweza kuchukua nafasi ya sehemu ya dense mineral phase kwa structure nyepesi na yenye pores zaidi. Mabadiliko haya yanaweza kupunguza heat transfer; lakini pia yanaweza kuathiri mechanical strength, water absorption, cracking behavior na durability ya material. Kwa kuwa utafiti huu uliangalia thermal conductivity na microstructure pekee, bado haijulikani kama thermal improvement imesawazishwa na mahitaji mengine ya engineering.

“Banco” na clay–sorghum biocomposite vina maana gani?

Katika utafiti, neno “banco” limetumika kuelezea traditional building material ya clay au earth basis inayokaushwa bila kuchomwa. Nyuzi za mtama zilizokatwa au kuandaliwa zinapoongezwa, clay huchukuliwa kama continuous matrix na sorghum fibers kama biological reinforcement na dispersed phase.

Ingawa neno “reinforcement” limetumika, utafiti haukupima mechanical reinforcement effect ya sorghum fibers. Haiwezi kuhitimishwa kutoka chanzo hiki kwamba nyuzi ziliongeza compressive strength, tensile strength au fracture energy. Mchango uliothibitishwa katika utafiti huu umewekewa mipaka kwenye kupungua kwa density na thermal conductivity.

Sampuli ziliandaliwa kwa malighafi gani?

Clay ilichukuliwa kutoka eneo la Boudry, Burkina Faso, linalojulikana kwa traditional earth structures. Granulometry iliyotayarishwa ilikuwa takribani %42 coarse particles na %58 fine particles. Sorghum fibers zilipatikana kutoka mashina ya mtama yaliyovunwa ndani ya eneo.

Fiber ratios tano zilitumika:

  • %0 sorghum fiber kwa uzito: reference clay,
  • %2 sorghum fiber kwa uzito,
  • %5 sorghum fiber kwa uzito,
  • %7 sorghum fiber kwa uzito,
  • %10 sorghum fiber kwa uzito.

Chanzo kimefafanua ratios hizi kama mass percentages. Kwa sababu nyuzi zina density ndogo, mass percentage ileile inalingana na volume fraction kubwa zaidi. Kwa mfano, katika resolution ya 22 µm/voxel, %10 mass fraction imetolewa kama takribani %13 fiber volume fraction.

Sample production ilifanywaje?

Clay particles zilichaguliwa na kuchanganywa kulingana na target granulometry, kisha sorghum fibers zikaongezwa. Maji kwa kiasi cha %30 yaliongezwa kwenye mixture. Imeelezwa kwamba ratio hii iliamuliwa na geotechnical study inayotegemea Atterberg limits za clay; lakini haijaandikwa wazi kama %30 ilihesabiwa dhidi ya dry-clay mass, total-solid mass au msingi mwingine.

Mixture iliwekwa katika cube molds za 4 cm × 4 cm × 4 cm kwa layers tatu. Kila layer ilicompactiwa kwa vibration ya sekunde tano ili kuongeza homogeneity. Sampuli ziliachwa zikauke kwa angalau siku 14; kuanzia siku ya saba, zingeweza kutolewa kwa sehemu kutoka mold ili kusaidia more uniform drying.

Temperature ya drying environment, relative humidity, air movement na kama sampuli zilifikia constant mass havikuripotiwa. Kwa kuwa conditions hizi zinaweza kuathiri residual moisture ya natural-fiber clay na kwa hiyo measured thermal conductivity, zinapunguza uwezo wa kurudia mbinu kwa namna ileile katika laboratory nyingine.

Thermal conductivity ilipimwaje?

Thermal conductivity ilipimwa kwa KD2Pro thermal properties analyzer iliyotengenezwa na Decagon Devices. Kifaa hutumia transient line heat source method; huhesabu thermal conductivity kutokana na heat pulse inayozalishwa na needle-shaped sensor iliyowekwa ndani ya sampuli na temperature response.

Chanzo kimetoa measurement accuracy ya kifaa kuwa ±%10 na kimesema mbinu inaoana na ASTM D5334 na IEEE 442-1981 standards. Vipimo vilifanywa kwenye sampuli zilizokaushwa na katika ambient temperature.

Hata hivyo, maelezo yafuatayo hayakutolewa:

  • Ni independent samples ngapi zilipimwa kwa kila composition,
  • Ni repeats ngapi zilifanywa kwa kila sampuli,
  • Model na dimensions za KD2Pro needle sensor iliyotumika,
  • Orientation ya needle kulingana na fibers na position yake ndani ya sampuli,
  • Equilibrium temperature na waiting time kabla ya kipimo,
  • Kama ± values zilizoripotiwa ni standard deviation, standard error au instrument fitting error.

Dispersion values za ±0,001–0,009 W·m−1·K−1 katika jedwali ni ndogo sana kuliko ±%10 accuracy iliyotajwa kwa kifaa. Hizi si aina ileile ya uncertainty; hata hivyo, kwa kuwa idadi ya repeats na uncertainty calculation hazijaelezwa, total measurement uncertainty haijawakilishwa kikamilifu katika jedwali.

X-ray computed tomography ilitumika vipi?

Tomography measurements zilifanywa katika laboratory X-ray scanner iliyopo katika MATEIS na LaMCoS laboratories ndani ya INSA Lyon, Ufaransa. Kila sampuli ilizungushwa 360° kuzunguka vertical axis yake na jumla ya projections 1120 zikarekodiwa. Three-dimensional reconstruction ilifanywa kwa Xact software.

Figure 2 katika ukurasa wa 5 wa chanzo inaonyesha cone-beam scanning principle, laboratory setup na sample inavyoonekana kwenye kompyuta wakati wa scanning. X-ray source hupitia sample, flat-panel detector hurekodi projections kutoka angles tofauti na images hizi hubadilishwa kuwa three-dimensional volume.

Kwa nini tomography resolutions tatu zilitumika?

Voxel sizeSpatial detailVolume inayoweza kuchunguzwaMatumizi katika utafiti
4 µm/voxelResolution bora zaidi; hunasa pores ndogo vizuri zaidiVolume ndogo zaidiTathmini ya fine microporosity
10 µm/voxelKiwango cha katiVolume ya ukubwa wa katiUlinganisho wa resolution–volume balance
22 µm/voxelResolution coarse zaidi; hukosa baadhi ya pores ndogoVolume kubwa zaidiMacroscopic thermal modeling na kukaribia REV

Voxel size ndogo kitaalamu ina maana ya spatial resolution kubwa zaidi. Katika baadhi ya sentensi za chanzo, option ya 22 µm imeelezwa kwa namna inayoweza kusomeka kama “high resolution”; hata hivyo, maelezo ya kimwili ya matokeo yanaonyesha kwamba 22 µm ni coarser resolution yenye field of view kubwa zaidi.

Representative Elementary Volume ni nini?

Representative Elementary Volume (REV) ni sample volume ndogo zaidi ambayo average properties za material, kama porosity, fiber fraction au orientation, hazibadiliki kwa kiasi kikubwa volume inapoongezwa zaidi.

Kwa kuwa natural-fiber earth composites ni heterogeneous, volume ndogo sana inaweza kuwakilisha local region yenye fiber density kubwa au ndogo. Watafiti waliamua kwamba resolution ya 22 µm/voxel inafaa zaidi kwa global modeling kwa sababu inajumuisha volume kubwa zaidi. Hata hivyo, chanzo hakijatoa separate REV curve au statistical convergence test inayoonyesha convergence ya properties kadiri volume inavyoongezeka.

Images ziligawanywaje?

Tomography images zilisgmentiwa kwa LABKIT plugin ndani ya ImageJ. Katika chanzo, black voxels zinawakilisha voids na gray voxels zinawakilisha solid phase. Pores na fibers zinazogusa REV boundary ziliondolewa kwenye calculations.

Utafiti ulitenganisha pores, clay na sorghum fibers na kuzalisha taarifa za fiber volume na orientation; hata hivyo, haijaripotiwa jinsi LABKIT classifier ilivyofundishwa, ni images ngapi zililabeliwa kwa mkono, segmentation accuracy, threshold sensitivity na independent-validation results. Kuondoa boundary objects kunaweza pia kuathiri calculated phase fraction, hasa katika small volumes.

Tomography images zinaonyesha nini?

Figure 6 katika ukurasa wa 12 wa chanzo inaonyesha two-dimensional virtual section ya sampuli isiyo na fibers. Pores nyeusi za sizes tofauti zinaonekana ndani ya gray-tone clay matrix. Figure 7 katika ukurasa huohuo inaonyesha three-dimensional reconstruction ya sampuli yenye %10 fibers na usambazaji wa fibers katika volume.

Figure 4 katika ukurasa wa 11 inaonyesha kwamba porosity inaongezeka na fiber mass fraction katika tomography resolutions zote tatu. Hata hivyo, absolute porosity values zinatofautiana sana. Katika sampuli yenye %10 fibers, porosity imetolewa kuwa takribani %51 katika 4 µm/voxel, takribani %45 katika 10 µm/voxel na takribani %30 katika 22 µm/voxel.

Orientation ya fibers ilitathminiwaje?

Theoretical random orientation distribution ya fibers imeelezwa katika chanzo kwa function ifuatayo:

\[ f(\theta)=1-\cos(\theta) \]

Hapa \(\theta\) ni fiber orientation angle. Fraction ya fibers ndani ya angle range fulani kutoka tomographic images imefafanuliwa kama ifuatavyo:

\[ R_{\mathrm{fibres}}(\theta)=\frac{N(\theta)}{N_{\mathrm{total}}} \]

\(N(\theta)\) inaonyesha idadi ya fibers katika orientation range husika; \(N_{\mathrm{total}}\) inaonyesha total number of fibers.

Figure 5 inalinganisha tomographic orientation curve ya sampuli yenye %5 mass fraction na theoretical random distribution. Curves kwa ujumla zinafanana, lakini kuna tofauti dhahiri kati ya 0°–60°. Watafiti walihusisha hali hii na sample-preparation constraints. Kwa kuwa orientation graph katika chanzo imeonyeshwa wazi kwa sampuli ya %5 pekee, haijaonyeshwa kwa separate graphs kwamba fiber ratios zote zina random orientation kwa kiwango sawa.

Three-stage homogenization approach ni nini?

Figure 3 katika ukurasa wa 7 wa chanzo inaonyesha analytical approach katika hatua tatu:

  1. Kubaini solid clay phase: Porous clay isiyo na fibers hugawanywa katika phases mbili: solid clay na air. Measured conductivity ya 0,886 W·m−1·K−1 na tomographic porosity hutumika kukokotoa unknown intrinsic conductivity ya solid clay kwa inverse Maxwell, Russell na Hadley models.
  2. Kubaini sorghum fiber: Fiber inapoongezwa katika porous clay matrix, measured composite conductivity, matrix conductivity na fiber volume hutumika kukokotoa unknown intrinsic conductivity ya sorghum fiber kwa inverse Glicksman equation.
  3. Kukadiria composite upya: Porous clay matrix na sorghum fiber huchukuliwa kama phases mbili na effective composite conductivity hukokotolewa kwa series, parallel, Glicksman na geometric mean models.

Effective conductivity ilihesabiwaje katika finite element model?

Katika finite element model, sorghum fibers ziliwakilishwa kama short cylinders zilizoelekezwa kwa nasibu ndani ya clay na zisizoingiliana. Badala ya classical cubic REV, thin rectangular slice-shaped REV yenye dimensional relationship \(L_x \approx L_y \gg L_z\) ilitumika.

Chanzo kimesema kwamba uniform temperature-gradient boundary conditions zilitoa matokeo stable na accurate zaidi kuliko mixed boundary conditions. Contact kati ya fiber na clay ilidhaniwa kuwa perfect, yaani bila interfacial thermal resistance.

Effective thermal conductivity ilihesabiwa kwa equation ifuatayo:

\[ k_{\mathrm{eff}}= \frac{\left|\sum \mathrm{RFL11}\right|\,e} {S\,\Delta T} \]

Hapa \(\sum \mathrm{RFL11}\) inaonyesha total thermal reaction flux kupitia boundary ya model; \(e\) ni thickness ya REV katika direction ya temperature gradient; \(S\) ni surface area ambako temperature boundary condition imetumika; na \(\Delta T\) ni temperature difference kati ya opposite surfaces.

Katika source text, variable inaonekana kama “PRFL11” katika baadhi ya sehemu na kama “RFL11” katika equation. Tofauti hii ya notation haijaelezwa.

Glicksman model imefafanuliwaje?

Katika chanzo, Glicksman model imetolewa kwa two-phase medium inayojumuisha air phase na randomly dispersed fibers au particles kama ifuatavyo:

\[ k_{\mathrm{eff}} = (1-f_v)k_{\mathrm{fluid}} + f_v\frac{1}{3}k_{\mathrm{fib}} \]

\(k_{\mathrm{eff}}\) ni effective thermal conductivity; \(k_{\mathrm{fluid}}\) ni 0,026 W·m−1·K−1 kwa air; \(k_{\mathrm{fib}}\) ni fiber conductivity na \(f_v\) ni volume fraction.

Ni muhimu kufuatilia kwa makini katika hatua gani model inatumika kwa air–fiber system na katika hatua gani kwa porous clay–fiber system. Katika hatua ya tatu ya homogenization, neno “fluid” linabadilishwa na effective porous-clay matrix.

Bruggeman model inawakilisha nini?

Bruggeman model imewasilishwa kama adaptation ya Maxwell approach kwa cylindrical particles:

\[ k_{\mathrm{eff}} = k_{\mathrm{mat}} \left[ 1- \left( 1-\frac{k_{\mathrm{fib}}}{k_{\mathrm{mat}}} \right) \frac{\frac{2}{3}f_v\delta_i} {1+(\delta-1)f_v} \right] \]

Shape parameter imefafanuliwa katika chanzo kama ifuatavyo:

\[ \delta= \frac{5k_{\mathrm{mat}}+k_{\mathrm{fib}}} {3(k_{\mathrm{mat}}+k_{\mathrm{fib}})} \]

Equation inatumia \(\delta_i\), lakini ni \(\delta\) pekee iliyofafanuliwa. Haijaelezwa kama subscripted term ni variable tofauti au typographical variation.

Series na parallel models zinatoa mipaka gani?

Series model inawakilisha lower Wiener bound ambapo phases zimepangwa kwa mfululizo kulingana na heat flow:

\[ \frac{1}{k_{\mathrm{eff}}} = \frac{f_{v,f}}{k_{\mathrm{fib}}} + \frac{f_{v,m}}{k_{\mathrm{mat}}} \]

Parallel model inatoa upper Wiener bound ambapo phases zimepangwa parallel na heat flow:

\[ k_{\mathrm{eff}} = f_{v,f}k_{\mathrm{fib}} + f_{v,m}k_{\mathrm{mat}} \]

\(f_{v,f}\) inaonyesha fiber volume fraction; \(f_{v,m}\) inaonyesha matrix volume fraction. Real random-composite behavior ilitarajiwa kubaki kati ya ideal bounds hizi mbili.

Geometric mean model imeandikwaje?

Chanzo kimetoa geometric mean model kama ifuatavyo:

\[ k_{\mathrm{eff}} = k_{\mathrm{fib}}^{\,f_{v,f}} \, k_{\mathrm{mat}}^{\,\phi+f_{v,m}} \]

Hapa \(\phi\) ni porosity. Kwa kuwa haijawekwa wazi vya kutosha karibu na equation kama matrix ni porous clay au solid-clay volume pekee, uhusiano wa exponents na total volume lazima ujengwe upya kikamilifu kutoka chanzo.

Kwa nini Maxwell model ilichaguliwa?

Maxwell model inadhani kuwepo kwa non-interacting spherical pores ndani ya continuous solid matrix:

\[ k_{\mathrm{eff}} = k_{\mathrm{mat}} \frac{ 2k_{\mathrm{mat}}+k_{\mathrm{fluid}} -2\phi(k_{\mathrm{mat}}-k_{\mathrm{fluid}}) }{ 2k_{\mathrm{mat}}+k_{\mathrm{fluid}} +\phi(k_{\mathrm{mat}}-k_{\mathrm{fluid}}) } \]

Watafiti walitathmini kwamba pores katika clay zinafanana zaidi na spherical inclusions kuliko cubic cells katika Russell model. Maximum difference ya takribani %5 kati ya Russell na Maxwell results pia ilitafsiriwa kama limited sensitivity kati ya models hizi mbili.

Russell model imefafanuliwaje?

Russell model inawakilisha porous structure yenye cubic cells zilizopangwa kwa series na parallel:

\[ k_{\mathrm{eff}} = k_{\mathrm{mat}} \left[ \frac{ \phi^{2/3} + \frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}} (1-\phi^{2/3}) }{ \phi^{2/3}-\phi + \frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}} (1+\phi-\phi^{2/3}) } \right] \]

Matokeo ya model hii yalikuwa karibu na Maxwell katika resolutions zilizochaguliwa.

Hadley model inatumia taarifa gani ya ziada?

Hadley model inazingatia spatial distribution na shape ya pores au particles kupitia coefficients mbili:

\[ \frac{k_{\mathrm{eff}}}{k_{\mathrm{fluid}}} = (1-\alpha_0) \frac{ \phi f_0+ \frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}}(1-\phi f_0) }{ 1-\phi(1-f_0)+ \phi(1-f_0)\frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}} } + \alpha_0 \frac{ 2\left(\frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}}\right)^2(1-\phi) + (1+2\phi)\frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}} }{ (2+\phi)\frac{k_{\mathrm{mat}}}{k_{\mathrm{fluid}}} +1-\phi } \]

\[ f_0=0{,}8+0{,}1\phi \]

Chanzo kimefafanua \(\log\alpha_0\) kama piecewise function inayotegemea porosity, lakini hakijatoa branches wazi za function na badala yake kinarejelea original work ya Hadley. Kwa hiyo, full Hadley calculation haiwezi kurudiwa kwa kutumia preprint hii pekee.

Sorghum-fiber conductivity ilihesabiwaje kwa inverse?

Katika chanzo, inverse Glicksman relation imetolewa kama ifuatavyo:

\[ k_{\mathrm{SG},s} = \frac{3}{2-f_s} \, \frac{ k_{\mathrm{eff}} - (1-f_v)k_{\mathrm{mat}\%,\mathrm{eff}} }{ f_v } \]

Kwa equation hii, mean intrinsic conductivity ya sorghum fiber ilikadiriwa kuwa 0,407 W·m−1·K−1 kwa kutumia data za 22 µm/voxel.

Hata hivyo, symbol \(f_s\) katika equation haijafafanuliwa katika text, tables au nomenclature list. Pia individual fiber-conductivity values kutoka kila fiber fraction, mean yake, standard deviation na uncertainty range hazijaripotiwa.

Kwa nini thermal conductivity ilipungua?

Utafiti unapendekeza mechanisms mbili kuu:

  1. Phase replacement: Sehemu ya denser clay phase ilibadilishwa na lower-density sorghum fibers.
  2. Porosity na tortuosity: Kuongezwa kwa fibers kuliongeza void content, na fibers pamoja na pores zilirefusha solid conduction path inayofuatwa na heat flow.

Kwa kuwa thermal conductivity ya air ni ndogo kuliko ya solid clay, kuongezeka kwa porosity kunaweza kupunguza conductivity katika dry sample. Hata hivyo, pores zikijaa maji, trend hii huenda isiendelee. Kwa kuwa utafiti uliangalia dried samples pekee, behavior ya wet material haijulikani.

“Perfect model agreement” inapaswa kutafsiriwaje?

Glicksman curve ilikuwa karibu sana na experimental results. Hata hivyo, fiber conductivity ya 0,407 W·m−1·K−1 ilibainishwa kwa kuweka experimental composite conductivities katika inverse Glicksman equation. Kutumia parameter hiyo hiyo tena katika forward Glicksman equation hufanya iwe kawaida kwa model kutoa matokeo yaliyo karibu na dataset ileile.

Kwa hiyo, Glicksman agreement inaonyesha kwamba model inaendana na data; lakini peke yake haithibitishi predictive success katika samples mpya na independent. Kwa independent validation, fiber conductivity inapaswa kupimwa kwa method tofauti au new composites ambazo hazikutumika katika parameter identification zinapaswa kutabiriwa.

Je, finite element model inatoa independent validation?

Finite element model inatoa additional check kwa sababu inatumia geometry ya kina zaidi kuliko analytical models. Short irregular fibers ziliwakilishwa kwa thin rectangular REV na uniform temperature-gradient boundary conditions. Tofauti kutoka experimental values ziliripotiwa kuwa takribani %1–6.

Hata hivyo, model bado inatumia fiber conductivity iliyokadiriwa kwa inverse Glicksman method na inadhania perfect thermal contact katika clay–fiber interface. Kwa hiyo si independent kabisa kutoka analytical model. Fiber-geometry distributions, mesh convergence, element count na numerical uncertainty details pia hazijatolewa kikamilifu katika preprint hii.

Utafiti unaunga mkono matokeo gani?

  • Kadiri sorghum-fiber fraction ilivyoongezeka, thermal conductivity ya dry samples zilizochunguzwa ilipungua kwa utaratibu.
  • Thamani za 0,886 na 0,508 W·m−1·K−1 zinalingana na kupungua kwa takribani %42,7 kati ya reference sample na sample yenye %10 fibers.
  • Dry density ilishuka kutoka 1924,13 hadi 1068,67 kg·m−3.
  • Tomographic porosity iliongezeka pamoja na fiber fraction.
  • Calculated porosity inategemea sana voxel size.
  • Katika sample yenye %5 fiber, fiber orientation kwa ujumla ilikuwa karibu na random distribution.
  • Data ya 22 µm/voxel ilipendelewa kwa macroscopic modeling kwa sababu ilijumuisha volume kubwa zaidi.
  • Maxwell na Russell models zilitoa results zinazokaribiana kwa solid-clay conductivity.
  • Hadley model ilitoa results tofauti zaidi na models nyingine, hasa porosity ilipoongezeka.
  • Glicksman model na finite element model ziliweza kufuatilia experimental conductivity trend.

Utafiti haujathibitisha nini?

  • Upungufu wa %27 ulioandikwa katika chanzo hauwezi kuthibitishwa kutoka initial na final values zilizotolewa katika table.
  • Intrinsic conductivity ya sorghum fibers haikupimwa moja kwa moja kwa majaribio.
  • Haijaonyeshwa kwamba thamani ya 0,407 W·m−1·K−1 ni halali kwa sorghum varieties zote, sehemu zote za stalk na moisture conditions zote.
  • Haijathibitishwa kwamba material yenye %10 fiber ni thermal-insulation product inayokidhi building codes.
  • Haijaonyeshwa kwamba material ina compressive au flexural strength ya kutosha kutumika kama load-bearing brick.
  • Haijaonyeshwa kwamba thermal conductivity itabaki chini kwa kiwango kilekile katika wet conditions.
  • Resistance dhidi ya water, rain, erosion, freeze–thaw, biological degradation au fire haikupimwa.
  • Energy consumption na indoor comfort katika full-scale wall au building havijathibitishwa.
  • Haijatenganishwa kwa uhakika kwamba porosity increase ilisababishwa na fiber addition pekee na haikuathiriwa na compaction au drying differences.
  • Haijaonyeshwa kwamba Glicksman model ni superior katika independent dataset.
  • Haijathibitishwa kwamba volume ya 22 µm/voxel ni REV iliyofikia statistical convergence kwa uhakika.

Nguvu za utafiti ni zipi?

  • Fiber fractions tano tofauti za sorghum zililinganishwa katika experimental framework ileile.
  • Thermal-conductivity measurements zilihusishwa na microstructure images.
  • X-ray tomography iliwezesha three-dimensional examination bila kuharibu material.
  • Resolution–representative-volume balance ilitathminiwa kwa kutumia voxel sizes tatu.
  • Mbali na porosity, fiber volume na orientation pia ziliquantifyiwa.
  • Analytical models zilitumika si kwa forward prediction pekee bali pia kwa inverse calculation ya intrinsic phase properties.
  • Physical range ya model results ilionyeshwa kwa series na parallel Wiener bounds.
  • Analytical results zililinganishwa na finite element approach.
  • Chanzo kiliripoti dry density na thermal conductivity pamoja.

Mipaka ya utafiti ni ipi?

  • Utafiti ni preprint ambayo haijapitia peer review.
  • Percentage calculation ya kushuka kutoka 0,886 hadi 0,508 imetolewa katika chanzo kuwa %27 kwa namna yenye kosa au isiyoelezeka.
  • Idadi ya samples na measurement repeats haijatajwa.
  • Statistical definition ya ± values zilizoripotiwa haijaelezwa.
  • ±%10 instrument accuracy ya KD2Pro na small dispersions zilizotolewa katika table hazijaunganishwa kuwa uncertainty budget moja.
  • Method ya kupima dry density haijaelezwa tofauti.
  • Haijaelezwa kwamba %30 mixing-water fraction inategemea msingi gani wa mass au volume.
  • Length, diameter, void structure na density distributions za sorghum fibers hazijatolewa katika summary table.
  • Fiber na clay densities zilizotumika kubadilisha mass fraction kuwa volume fraction pamoja na explicit conversion equation hazijatolewa.
  • Accuracy na sensitivity analysis ya tomography segmentation haijawasilishwa.
  • Kuondoa pores na fibers katika REV boundary kunaweza kuathiri phase fractions.
  • Kuna tofauti kubwa sana za porosity kati ya 4, 10 na 22 µm/voxel results.
  • Resolution ya 22 µm/voxel hukosa fine pores.
  • REV selection haijaonyeshwa kwa statistical convergence test.
  • Random-orientation comparison imewasilishwa wazi kwa sample ya %5 pekee.
  • Piecewise \(\alpha_0\) function katika Hadley model haipo katika chanzo.
  • Bruggeman equation inatumia \(\delta_i\), lakini \(\delta\) pekee ndiyo iliyofafanuliwa.
  • \(f_s\) katika inverse Glicksman equation haijafafanuliwa.
  • Fiber conductivity haikupimwa moja kwa moja na uncertainty range haijatolewa.
  • Forward Glicksman prediction ni partly circular kwa sababu inatumia parameter iliyopatikana inversely kutoka model hiyo hiyo.
  • Finite element model inadhania perfect clay–fiber thermal contact.
  • Finite element mesh structure, convergence analysis na detailed geometry distributions hazijaripotiwa.
  • Baadhi ya model abbreviations katika Figure 9 hazijafafanuliwa wazi katika text na nomenclature list.
  • Ni dried small cube samples pekee zilizochunguzwa.
  • Moisture, mechanical performance, fire na long-term durability tests hazikufanywa.

Umuhimu wake kwa yaliyopita, sasa na yajayo ni upi?

Kuongeza straw na plant fibers katika earth materials ni building technique iliyotumika kihistoria. Utafiti huu unachunguza kwa kiasi traditional approach hiyo kwa kutumia three-dimensional tomography, inverse parameter identification, analytical homogenization na finite element modeling.

Mchango wake wa sasa ni kuonyesha dry thermal-conductivity–microstructure relationship ya Boudry clay yenye sorghum fibers ndani ya experimental framework moja. Hasa kuonyesha athari ya tomography resolution kwenye calculated porosity na phase properties kuna methodological importance kwa tafiti zinazofanana za biocomposites.

Katika siku zijazo, direct fiber-conductivity measurements, moisture-controlled thermal experiments, mechanical strength, water absorption, erosion, fire, biological durability na full-scale wall tests zinahitajika. Pia independent model validation inapaswa kufanywa kwa new samples ambazo hazikutumika katika parameter identification.

Mbinu na Matokeo ya Utafiti

Muhtasari wa kiufundi wa study design

Kipengele cha kimetodolojiaApproach iliyotumika katika utafiti
Chanzo cha clayBoudry, Burkina Faso
Clay granulometryTakribani %42 coarse particles na %58 fine particles
Chanzo cha fiberMashina ya mtama yaliyovunwa ndani ya eneo
Fiber mass fractions%0, %2, %5, %7 na %10
Mixing water%30; msingi wa calculation haujaelezwa
Sample size4 cm × 4 cm × 4 cm
MoldingLayers tatu; sekunde 5 za vibration kwa kila layer
DryingAngalau siku 14; partial demolding baada ya siku ya 7
Thermal measurement deviceKD2Pro Thermal Properties Analyzer
Measurement principleTransient line heat source
Specified instrument accuracy±%10
Tomography projectionProjections 1120 katika 360°
Reconstruction softwareXact
Image analysisLABKIT plugin ndani ya ImageJ
Voxel sizes4, 10 na 22 µm/voxel
Analytical modelsGlicksman, Bruggeman, series, parallel, geometric mean, Maxwell, Russell na Hadley
Numerical methodFinite element model; slice-shaped REV na uniform temperature gradient
Interface assumptionPerfect thermal contact kati ya clay–fiber

Experimental thermal conductivity na density results

Sorghum fiber
(kwa uzito %)
Thermal conductivity
(W·m−1·K−1)
Calculated reduction relative to referenceDry density
(kg·m−3)
00,886 ± 0,006Reference1924,13 ± 0,04
20,790 ± 0,002Takribani %10,81535,00 ± 0,07
50,674 ± 0,002Takribani %23,91384,55 ± 0,04
70,598 ± 0,001Takribani %32,51115,65 ± 0,05
100,508 ± 0,009Takribani %42,71068,67 ± 0,03

Percentage changes relative to reference zilikokotolewa kutoka values katika source table kwa relationship \((0{,}886-k)/0{,}886\times100\). Kauli ya %27,1 iliyotolewa na chanzo kwa %10 fiber haiendani na table hii.

Density na conductivity zilibadilikaje pamoja?

Kadiri fiber fraction ilivyoongezeka, dry density na thermal conductivity zote mbili zilipungua kwa mwelekeo mmoja. Density ya sample yenye %10 fiber ni takribani %44,5 chini ya reference. Mabadiliko haya ya pamoja yanaonyesha kwamba fiber effect na porosity effect hazikutenganishwa kwa kujitegemea katika experimental design.

Kwa maneno mengine, utafiti haukupima kwa separate experiments tofauti kati ya “material property ya sorghum fiber pekee” na “athari ya additional voids zinazotokea wakati fiber inaongezwa”. Homogenization models zinajaribu kutenganisha contributions hizi mbili kupitia phase properties na volume fractions.

Porosity ilibadilikaje kulingana na resolution?

Fiber fraction
(kwa uzito %)
4 µm/voksel
porosity (%)
10 µm/voksel
porosity (%)
22 µm/voksel
porosity (%)
010,85,162,518
217,316,48
5323916
744,341,722
10514530

Resolutions zote tatu zilionyesha trend ileile ya kuongezeka, lakini absolute values zilitofautiana sana. Curve ya 22 µm/voxel ilionekana karibu linear na ilitumika katika modeling iliyofuata kwa sababu ilijumuisha volume kubwa zaidi. Uchaguzi huu haumaanishi kwamba pores zote ndogo zilipimwa.

Fiber volume fraction ilibadilikaje kulingana na resolution?

Fiber mass fraction (%)4 µm/voxel volume fraction (%)10 µm/voxel volume fraction (%)22 µm/voxel volume fraction (%)
0000
2335
55510
76711
107813

Resolution difference katika volume fraction ina direct effect kwenye inversely calculated fiber conductivity. Chanzo kilikubali results za 22 µm/voxel kuwa representative zaidi, lakini hakikuonyesha sensitivity ya fiber conductivity inayotokana na resolutions tatu katika separate uncertainty table.

Estimated conductivity ya solid clay phase

Voxel sizePorosity ya fiber-free sampleHadley
(W·m−1·K−1)
Russell
(W·m−1·K−1)
Maxwell
(W·m−1·K−1)
4 µm%10,81,6031,0061,040
10 µm%5,161,0820,9370,995
22 µm%2,510,9510,9100,919

Katika resolution ya 22 µm/voxel, tofauti kati ya models ilipungua. Maxwell na Russell zilitoa values zinazokaribiana, wakati Hadley ilihitaji higher solid-clay conductivity hasa katika finer resolution. Watafiti walitathmini kwamba Hadley inafaa zaidi kwa highly porous foams na granular materials, huku Maxwell ikiwa representative zaidi kwa clay.

Effective porous clay matrix kwa 22 µm/voxel

Fiber mass fraction (%)Fiber volume fraction (%)Porosity (%)HadleyRussellMaxwell
002,5180,8860,8860,886
2580,6850,8310,817
510160,4820,7470,723
711220,3780,6840,656
1013300,2830,6000,572

Values katika table ziko katika units za W·m−1·K−1. Tofauti kati ya Hadley na Maxwell inaongezeka kadiri fiber na porosity fractions zinavyoongezeka. Chanzo kiliripoti kwamba maximum relative deviation inaweza kufikia takribani %62.

Estimated intrinsic conductivity ya sorghum fiber

SifaThamani iliyotolewa katika utafitiDetermination methodKikomo kikuu
Intrinsic thermal conductivity ya sorghum fiber0,407 W·m−1·K−1Inverse Glicksman calculation kwa 22 µm/voxel volume fractions na experimental composite valuesSi direct measurement; uncertainty na individual estimates hazijatolewa

Composite predictions za analytical models

Figure 8 katika ukurasa wa 14 inalinganisha experimental conductivity na series, parallel, geometric mean na Glicksman models. Katika low fiber fractions, curves ziko karibu. Kadiri fiber volume inavyoongezeka, tofauti kati ya series na parallel bounds huongezeka.

Glicksman curve ilitoa result iliyo karibu zaidi na experimental points. Series model kwa kawaida iliunda lower bound, na parallel model upper bound. Watafiti walisema kwamba sensitivity kwa model geometry ilibaki limited kwa sababu tofauti kati ya conductivity za clay matrix na fiber si kubwa sana.

Numerical model comparison

Figure 9 katika ukurasa wa 15 inalinganisha experimental values na Glicksman analytical model pamoja na finite element results. Curves zote zinaonyesha kwamba conductivity inapungua kadiri fiber volume inavyoongezeka.

UlinganishoResult iliyoripotiwa katika chanzoTafsiri
Finite element–experimentTakribani %1–6 deviationNumerical model ilifuatilia experimental trend
General limit katika sehemu ya matokeoChini ya %7Broader rounded statement
Glicksman–experiment“Perfect agreement”Si independent validation kwa sababu fiber parameter ilitolewa kwa inverse Glicksman kutoka data hizohizo

Matokeo makuu yanayoonyeshwa na figures zenyewe

Figure na pageContentMain messageInterpretation limit
Figure 1, page 4Cube samples zenye %0, %2, %5, %7 na %10 fiberInaonyesha physical sample groups tano zenye increasing fiber contentPhotographs hazithibitishi homogeneity kwa kiasi
Figure 2, page 5Cone-beam schematic, scanner setup na computer imageInaeleza tomography process yenye projections 1120Scanning voltage, current na filter details hazijaonyeshwa
Figure 3, page 7Three-stage homogenization flowInaonyesha inverse na forward calculation relationship ya solid clay, fiber na final composite propertiesHaionyeshi jinsi parameter uncertainties zinavyo-propagate
Figure 4, page 11Porosity dhidi ya fiber mass fractionInaonyesha porosity inaongezeka na fiber fraction na inategemea resolutionResolutions tatu hazichunguzi physical volume ileile
Figure 5, page 11Theoretical na tomographic fiber orientation ya %5 sampleInaonyesha overall distribution iko karibu na random orientationKuna tofauti katika 0°–60° na ratios nyingine hazijaonyeshwa
Figure 6, page 12Two-dimensional tomographic section ya fiber-free clayInaonyesha pores za sizes tofauti ndani ya clay matrixSingle section haiwakilishi entire three-dimensional volume
Figure 7, page 12Three-dimensional reconstruction ya %10 fiber sampleInaonyesha distribution ya fibers katika material volumeSegmentation accuracy haiwezi kubainishwa kutoka image
Figure 8, page 14Analytical models na experimental conductivityInaonyesha models zote zinafuatilia decreasing trendGlicksman parameter ilitolewa kutoka experiments hizohizo
Figure 9, page 15Analytical, numerical na experimental resultsInaonyesha finite element model iko karibu na experimental trendBaadhi ya legend abbreviations hazijafafanuliwa wazi

Balanced interpretation ya findings

Experimental table inaonyesha wazi kwamba sorghum fiber inaweza kupunguza thermal conductivity ya dry clay composite. Reduction ni ya utaratibu kadiri fiber fraction inavyoongezeka na hutokea pamoja na density decrease. Hili ndilo finding la moja kwa moja zaidi na linalotegemea model kwa kiwango kidogo zaidi.

Microstructure results zinaunga mkono porosity kuongezeka kwa fiber addition; lakini absolute magnitude ya porosity inategemea tomography resolution. Kwa hiyo, “true porosity” inapaswa kutathminiwa si kama single exact value, bali kama measurement inayotegemea detectable pore size na examined volume.

Analytical models ni muhimu kwa kueleza microstructure–conductivity relationship; lakini inverse calculation ya baadhi ya parameters kutoka experiments hizohizo hufanya model validation iwe partly circular. Finite element comparison inatoa additional support, lakini hakuna directly measured fiber property wala independent validation sample.

Kwa hiyo, utafiti unaunga mkono kwamba clay yenye sorghum fiber inaweza kuwa na lower thermal conductivity katika dry state; hauhitimishi kuhusu overall building performance, mechanical safety au long-term durability ya material.

Maelezo ya Chanzo na Mbinu

Jina kamili la asili la utafiti: Thermal conductivity and microstructure of a novel clay-sorghum fiber biocomposite: Analytical homogenization models and X-ray computed tomography

Waandishi na mpangilio sahihi: Hamidou Sankara; Ousmane Coulibaly; Dominique Baillis; Naïm Naouar; Mohammed Zaidi; Marion Fourmeau.

Ulinganifu wa mwandishi–taasisi:

  • Hamidou Sankara: CNRS–INSA Lyon LaMCoS na Université Joseph Ki-Zerbo LPCE.
  • Ousmane Coulibaly: Université Joseph Ki-Zerbo LPCE.
  • Dominique Baillis: CNRS–INSA Lyon LaMCoS.
  • Naïm Naouar: CNRS–INSA Lyon LaMCoS.
  • Mohammed Zaidi: CNRS–INSA Lyon LaMCoS.
  • Marion Fourmeau: CNRS–INSA Lyon LaMCoS.

Taasisi:

  • CNRS, INSA Lyon, LaMCoS, UMR5259, 69621 Villeurbanne, France.
  • Université Joseph Ki-Zerbo, LPCE, 03 BP 7021 Ouagadougou, Burkina Faso.

Co-first author: Hakuna taarifa ya equal contribution au co-first authorship iliyotolewa.

Corresponding author: Hamidou Sankara.

Anwani ya mawasiliano: sankarah461@gmail.com

DOI:10.2139/ssrn.6926473

Kiungo rasmi cha chanzo:https://ssrn.com/abstract=6926473

Jukwaa la uchapishaji: SSRN.

Mwaka wa uchapishaji: 2026.

Idadi ya kurasa: 21.

Siku sahihi ya uchapishaji: Haijaandikwa wazi katika maandishi ya utafiti. File metadata ya version iliyopakiwa ina tarehe ya last modification ya 12 Juni 2026; taarifa hii haipaswi kuchukuliwa kuwa sawa na exact first-submission date ya SSRN.

Aina ya chanzo: Research preprint inayojumuisha experimental thermal measurement, three-dimensional X-ray tomography, inverse parameter identification, analytical homogenization na finite element modeling.

Hali ya peer review: Utafiti haujapitia peer review. Findings na model parameters zinapaswa kutathminiwa kwa kuzingatia kikomo hiki.

Jarida: Hakuna taarifa ya peer-reviewed journal.

Mchapishaji wa asili: Hakuna peer-reviewed journal publisher; utafiti uliwasilishwa katika SSRN preprint platform.

Hali ya peer-reviewed version: Katika title na DOI check ya 5 Agosti 2026, peer-reviewed journal version ya utafiti huohuo haikuthibitishwa.

Michango ya waandishi: Chanzo hakina separate CRediT author-contribution statement.

Ufadhili: Chanzo hakina explicit funding statement.

Mgongano wa maslahi: Chanzo hakina separate conflict-of-interest declaration. Kukosekana huku hakupaswi kutafsiriwa kuwa hakuna conflict of interest.

Upatikanaji wa data: Hakuna public repository link iliyotolewa kwa tomography volumes, segmentation files, raw KD2Pro measurements au processed data tables.

Upatikanaji wa code: Hakuna public code repository iliyotajwa kwa analytical calculations, image-processing workflow au finite element model.

Software na tools kuu zilizotumika: Xact reconstruction software; LABKIT plugin ndani ya ImageJ; text inarejelea ABAQUS approach kwa finite element calculations, lakini exact version na model files hazijatolewa.

Makala hii ya Kiswahili imeandaliwa baada ya kupitia text ya utafiti uliopakiwa, equations 14, tables saba, figures tisa, experimental measurements, tomography analyses, analytical models, finite element comparison, discussion na results section. Hakuna external scientific findings ambazo hazipo katika utafiti zilizoongezwa. External check ilitumika tu kwa bibliographic verification ya SSRN record, DOI, publishing platform na peer-reviewed-version status.

Kutolingana muhimu zaidi ndani ya chanzo ni kwamba kushuka kutoka 0,886 hadi 0,508 W·m−1·K−1 kumeripotiwa kuwa takribani %27. Namba zilizotolewa zinatoa upungufu wa takribani %42,7. Katika makala hii ya Kiswahili, namba za asili na percentage claim ya chanzo zimehifadhiwa tofauti, na kosa halijasahihishwa kimya kimya.

Masuala mengine ya uwazi ni: \(f_s\) isiyofafanuliwa katika inverse Glicksman equation, \(\delta_i\) isiyofafanuliwa katika Bruggeman equation, incomplete piecewise \(\alpha_0\) function ya Hadley model, ambiguous basis ya %30 mixing water, kukosekana kwa experimental repeats, kutotolewa kwa statistical definition ya ± values, kukosekana kwa mass–volume conversion details, segmentation validation kutoripotiwa na baadhi ya model abbreviations katika Figure 9 kutofafanuliwa.

Utafiti unaunga mkono kwamba kuongeza sorghum fiber kunaweza kupunguza density na effective thermal conductivity katika dry Boudry-clay samples zilizochunguzwa. Utafiti hautoi ushahidi wa mechanical adequacy, building-standard compliance, wet-environment performance, fire safety, long-term durability, full-scale building energy saving au commercial-product suitability.


Shiriki:

Maoni huchapishwa baada ya kukaguliwa.Maoni yako yatapitia mchakato wa idhini na yataonekana yakikubaliwa.

Acha maoni

Anwani yako ya barua pepe haitachapishwa. Sehemu za lazima zimewekewa alama ya *

Your experience on this site will be improved by allowing cookies Cookie Policy