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Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 31
competent intervals. Sample tags for that interval are placed inside the bag with the sample
and the sample number was written on the outside of the bag in permanent marker.
o The sample saw was kept clean with care taken after cutting samples from a known high
grade mineralized zone.
Bagging and Shipping: Samples were placed inside the secure warehouse in the area reserved for
shipment preparation.
Blanks and standards were added to the samples for shipment using the tags which were reserved
out of the sequence while first marking the intervals to be sampled earlier.
After the hole was finished being sampled, the sample transmittal forms were filled out and the indi-
vidual samples were aggregated in larger rice bags, labeled for shipment and hauled to Alaska Air
Freight by authorized Grande Portage personnel and shipped to:
ALS Prep Lab
1060 Bush Street
Fairbanks, AK 99709
Ph.# 907 452-2188
ALS is a commercial laboratory with ISO17025 certification, independent of the Company. It operates a preparation facility
in Fairbanks Alaska with analytical facilities in North Vancouver.
The author’s opinion is that the sample preparation, security and analytical procedures are appropriate for this project.
11.2 Security
Core logging facilities and core storage containers were locked at all times when not under direct supervision
and observation by Company employees. Special care was taken to keep core in order so that no mistakes made
in number recordation, notes, sequences, bag labeling, photographing, etc. Communication between Coastal
Helicopters, drillers, and Company personnel were maintained during transport. Time for core storage at
Coastal Helicopters hanger was kept to a minimum.
Sample shipments to the ALS prep lab in Fairbanks were made for each hole as soon as the samples are cut and
bagged.
11.3 Sample Analyses
Crushing Procedures
a) ALS Crushing Procedure 21
The entire sample is passed through a primary crusher to yield a crushed product that 70% of which passes 6mm.
b) ALS Preparation Procedure 41-g
The sample is logged in the tracking system, weighed, dried and finely crushed to better than 70% passing a 2 mm screen.
A split of up to 1000 g is taken and pulverized to better than 85% passing a 75 micron screen.
Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 32
Analytical Procedures (Several Analytical Procedures were used)
a) ME-ICP61
A 0.25 gm sample is dissolved in four acids and analysed for 48 selected elements on a mass spectrometer. Significant
detection and over limit values include:
Element Detection Limit
ppm
Over Limit
ppm
Ag 0.01 100
As 0.2 10,000
Cu 0.2 10,000
Pb 0.5 10,000
Zn 2 10,000
b) Au-ICP21
Gold was analysed in all samples since 2011 on 30 gm samples by standard fire assay with Inductively Coupled Plasma
Emission Spectrometry finish.
c) Au GR21
A 30 g prepared sample is fused with a mixture of lead oxide, sodium carbonate, borax and other reagents in order to
produce a lead button. This button is cupelled to remove the lead. The remaining gold bead is parted in dilute nitric acid,
annealed and weighed as gold.
d) Au-SCR21
The sample pulp is passed through a 100 micron stainless steel screen. Any material remaining on the screen (>100 mm)
is retained and analysed in its entirety by fire assay with gravimetric finish and reported as the Au(+) fraction. The material
passing through the screen (<100 micron) is homogenized and two sub-samples (50g) are analysed by fire assay with AA
finish (Au AA26 and Au AA26D). The average of the two AAS results is taken and reported as the Au (-) fraction. All three
results are used in calculating the combined gold content of the plus and minus fractions. The gold values for both the (+)
100 and (-) fractions are reported together with the weight of each fraction as well as the calculated gold content of the
sample.
12 DATA VERIFICATION (Item 12)
The author reviewed all analytical data collected by the Company, including the standards and blanks that were submitted.
The Company uses marble chips from Home Depot for its blank material.
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Grande Portage Resources Ltd. Page 33
Figure 4. Assays of blanks submitted in 2017 and 2018 drill program.
Forty-eight blank samples were inserted into the sample stream. All yielded acceptable results except for one anomalous
value at 0.028 gpt obtained. This is unacceptable for a blank value and the data set from drill hole 17L2 should be rerun,
however it is a low enough value to not be of material concern in the author’s opinion. The Company should consider
using certified blanks in the future.
Seven sets of commercial standards were inserted into the sample stream over the past 3 years which combined with the
series of blanks provides for a robust quality assurance and quality control program. All standards reported within
expected values.
Figure 5. Assays of OREAS 215 standard
0.000
0.005
0.010
0.015
0.020
0.025
0.030
1 3 5 7 9 11 13 15 17 19 21 23 25 27 29 31 33 35 37 39 41 43 45 47
Go
ldA
ssay
(IC
P,gp
t)
Sample sequence
Blanks
Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 34
Figure 6. Assays of OREAS 217 standard
Figure 7. Assays of ORAES 10C standard.
Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 35
Figure 8. Assays of OREAS 221 standard
Figure 9. Assays of OREAS 229 standard.
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Grande Portage Resources Ltd. Page 36
Figure 10. Assays of OREAS 256 standard
The standards run by the Company all returned acceptable values and confirm that their QA/QC work in appropriate for
this project in the author’s opinion. Some high-grade standard should be considered for future work.
In addition, the author collected his own sample of the goat vein from material collected by the company during the 2017
drilling campaign. It assayed 24.3 gpt gold by fire assay (Bureau Veratis’s FA530 technique and 38.8 gpt by ICP (Bureau
Veratis’s AQ251 technique). Both are in accord with reported grades for the Goat Vein in this area.
The author believes that the data is accurate for the purposes of this report.
13 MINERAL PROCESSING AND METALLURGICAL TESTING (Item 13)
In 2010 a sample prepared from cannibalized drill core was tested for “Bond Ball Grindability” and gold recoveries. The
results cite a value of 15.7 kw/hr/tonne for work index (WI) and combined gold and silver recoveries of 91% and 78%
respectively using gravity concentration and cyanidation of the concentrate and tails (G&T Metallurgical Services Ltd,
2011). The report recommends further metallurgical testing to understand the large consumption of sodium cyanide in
the process. Though the metallurgical study consisted of representative material from the core, the material collected
was uniformly from relatively low-grade material recovered from the 2010 drilling campaign and did not include the high-
grade with visible gold drilled during the 2011 season.
In 2018, two samples were selected to determine the recoverability of gold using either whole-ore cyanidation as well as
gravity plus flotation of the gravity tails at Bureau Veritas Commodities Canada Ltd’s Metallurgical Division in Richmond
B.C. (“BVI”). BVI is an ISO/IEC 17025:2005 accredited laboratory and is independent of the Company.
The presence of coarse free gold caused persistent scatters in gold head assay on the two test samples. Gold grades from
direct fire-assay varied in a wide range from 92.6 to 167g/t in sample 54524, and from 19.5 to 34.1 in sample 339807.
Comminution Bond ball mill work index testing of representative splits from the two test samples indicated moderately
hard characteristics of the test samples with respect to breakage in ball mills.
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Preliminary metallurgical testing showed that both test samples responded well to whole-ore cyanidation and
gravity+flotation process options. The response to each process option at a grind size of P80 105 m are presented in the
table below.
Figure 11. Summary of Gold Recoveries
The samples were collected from the Goat Vein in sawn channel cuts and the Deep Trench Vein by PQ drilling in areas
where high-grade gold values had been obtained in previous sampling.
Figure 12. Assay Head Grades of metallurgical test samples.
Figure 13. Bond Work Index of two metallurgical samples
Figure 14. Whole ore cyanidation performance
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Figure 15. Gold and silver leach kinetics.
Figure 16. Gravity and flotation response
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Figure 17. Selected analysis of flotation concentrate.
The samples show that excellent recoveries can be obtained by whole ore cyanidation or gravity plus flotation methods.
The mineralization where tested was very high-grade and may not represent average characteristics of the deposit. It is
a moderately hard rock and contains high lead, zinc, silver, arsenic and mercury in flotation concentrates.
Further work should be completed on more average composites to determine what deleterious elements may be present
in each vein system, and what each individual vein systems’ recoveries might be.
14 MINERAL RESOURCE ESTIMATES (Item 14)
14.1 Resource Estimation Procedures
All reference to distance, tonnes, and grade are in SI units of metres (m), tonnes (t), and grams per tonne (gpt). All
references to ounces will be troy ounces which are 31.1035 grams. North on the accompanying diagrams will be UTM
grid north which is 0.38o east of true north at Juneau, Alaska.
A total of 154 diamond drillholes, four trenches and two sawn channel cuts test mineralization on the Herbert Property.
Three thousand, four hundred sixty three (3,463) ICP gold assays, 116 gold assays with gravimetric finish, 1,083 screened
metallic gold assays and 3,301 ICP multi-element (33 element) analyses were presented in a digital database. The author
reviewed the data with the view to produce a resource estimate if possible. A resource has been published for this
property dated May 28, 2011, completed by Garth D Kirkham, P.Geo of Kirkham Geosystems Ltd. and later in April 2013
an updated resource was published by Dupre, D.G., and Webb, D.R. In July 12, 2018 an updated Mineral Resource was
published by Webb, D.R. This work builds on the latest report.
The nineteen 1986 - 1988 diamond drill holes were assessed statistically by ANOVA techniques as no core exists for direct
validation. The drillholes constitute 12% of the drill hole (plus four trench) database and 5% of the total meters included.
Other pertinent statistics are shown below in Table 4
Table 4. Selected statistics for 1988 drill holes.
1988 DDH Full Data
Assays >0 223 3,301
Range 0 – 142.7 0-432.9
Mean 2.05 2.87
Median 0.29 0.25
Standard Dev 10.56 17.96
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Student T tests (2 sided, T=0.127) and Fisher F tests, two ANOVA tests used to consider whether sample populations are
similar confirm that the 1988 drilling is part of the overall population at the >99th percentile. The author has no reason to
suspect that the data is other than presented.
The database was validated and corrected as needed. The following sections detail the procedures, methods and
strategies employed in creating the resource estimate for the Herbert Project.
Solid Model Construction
A series of cross sections generally spaced 20 m apart were developed for each of nine different zones where correlations
between trends identified in gold assays, alteration zones, and multi-element data appears to exist down-dip on section
and between sections. These correlations were corrected and modified as supported by surface mapping and geology.
MapInfo’s 3D solid generation routine was used to construct three dimensional models from the sections. These were
examined to conform to geology and all analytical data and adjusted where necessary.
Some areas provided multiple options for correlations that were permissive by geology and sample geochemistry. The
correlation that best matched surface geology was selected. The Deep Trench vein was remarkable in the extreme
simplicity and consistency in a very planar orientation of the correlations.
Figure 18. Typical east facing cross section showing vein correlations with drill hole traces on a 100 m grid.
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Grande Portage Resources Ltd. Page 41
Figure 19. Typical east facing cross section showing vein correlations with drill hole traces.
Assay Database
The database consists of 154 diamond drillholes and four trenches and two sawn channel cuts (total 26,859.5 m). Nine-teen diamond drillholes were completed by a previous operator in 1986 and 1988 (total 1,607.0m) (Van Wyck and Burnett,2012). In 2010 and 2011 forty-six additional diamond drillholes were completed with collar and downhole surveys. Thirty-nine drillholes were completed in 2012. This and the four trenches (total 19.7m) provided the database for the previousresource estimate which only used the 2010 and 2011 drillholes due to uncertainty in the location of the collars and dataquality (Van Wyck and Burnett, 2012). Twelve diamond drillholes totaling 3,709 m were completed in 2017. Surveys werenot completed on all drillholes, however these were the shorter holes (<100m). An additional 13 drill holes and two sawnchannel cuts were completed in 2018 with survey data. All data are considered by the author accurate for the purposesof this report
The logs were reviewed and selected assays compared to the raw data sheets. Minor from/to errors had been previouslyidentified by the author, largely due to imperial/metric conversions. The author corrected these. Some survey data wasfound to be corrupted, and traced back to a bad survey instrument. These were corrected by applying a constant drift of+3 degrees azimuth and +3 degrees inclination as determined from the balance of the surveyed data. The collars, survey,and assay database has been verified and is considered appropriate for the purposes of this report.
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All unsampled drill hole intervals were assigned zero grade to facilitate resource calculations. Metallic or screened assays
were used in all instances where they were available (1,083 samples). All other assays are standard one assay ton results
reported using ICP finish or where over limit (>10 gpt) are reported using gravimetric finish.
14.1.1.1 Univariate Statistics
The univariate statistics for the entire database is shown on Table 5.
Table 5. Univariate statistics for all of the raw analytical data from the drill and trench database. All negative, non-numeric and zero values aredeclared invalid.
Field au_ppm as_ppm ag_ppm pb_ppm zn_ppm w_ppm
Count_n 4659 4659 4659 4659 4659 4659
Count Valid 3301 3323 2493 3106 3036 2843
Count Invalid 1358 1336 2166 1553 1623 1816
Minimum 0.001 3 0.2 0.33 1 5
Maximum 432.9 153000.0 4010.0 31800.0 31200.0 6020.0
Mean 2.9 5002.5 4.1 169.3 140.1 68.9
Median 0.248 1565 0.2 14 105 20
Range 432.9 152997.0 4009.8 31799.7 31199.0 6015.0
Mode 0.002 15000 0.2 12 104 10
Variance 322.63 80307197.87 6602.11 1339375.15 450211.26 73741.38
Standard Deviation 17.96 8961.43 81.25 1157.31 670.98 271.55
The data was composited into 1.5 m lengths down hole with all unassayed, trace, or less than detection level samples
given a negative value and treated as zeros during the compositing procedure.
Table 6. Univariate statistics for all of the 1.5m composite data from the drill and trench database within the nine solids. All negative, non-numeric and zero values are declared invalid.
Field au_ppm as_ppm ag_ppm pb_ppm zn_ppm w_ppm
Count_n 1089 1089 1089 1089 1089 1089
Count Valid 716 709 674 701 686 678
Count Invalid 373 380 415 388 403 411
Minimum 0.00 0.47 0.00 0.11 0.59 0.13
Maximum 290 95386.67 224 9098.27 5490 1025.47
Mean 4.94 6584.94 3.06 236.88 129.90 48.94
Median 1.09 3735.77 0.58 16.87 96.35 22.83
Range 290.00 95386.20 224.00 9098.16 5489.41 1025.33
Mode 26.82 15000 0.2 13 102 20
Variance 366.21 67506006 165.02 803181 106115 9567.6
Standard Deviation 19.14 8216.20 12.85 896.20 325.75 97.81
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The log probability plot of the 1.5m composite data showed a smooth curve consistent with a small population of very low grade composites(11.5%), a smaller population of high-grade samples (1.8%) grading greater than 60 gpt, and the bulk of the population with an average gradebetween 1 to 2 gpt.
-4
-3
-2
-1
0
1
2
+
+
+
N Scores
Log
Go
ld(g
pt)
Log Probability Plot of all Composites within Veins, Herbert
Figure 20. Lonormal probability plot of all 1.5 m composites within the mineralized solids. The black oval marks a sample that exceeds expectedvalue by 10 to 20 gpt and marks where composites are capped (125 gpt).
Topography
The topographic relief is fairly steep with valleys incised east-west across a generally rising trend from 40m AMSL to 340m
AMSL to the east and then more rapidly rising to >600m AMSL to the southeast. Mapping has shown that mineralization
extends to surface in places and that in places these outcropping zones are constrained to topographic lows. A LiDAR
survey completed in 2018 complete with DEM was used to create contours for presentation.
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Figure 21. General location of the four principal vein structures with respect to topography, 10 metre contour intervals.
Density
A total of 30 mineralized samples from diamond drilling in 2012 were submitted for bulk density measurements (Table 7)
to ALS for their determination using water immersion protocols (ALS OA-GRA09). The average density of 2.757 gm/cm3 is
used in all calculations.
Table 7. Bulk density measurements on 30 mineralized intersections from the 2012 diamond drilling.
SAMPLERecvdWt. B.D.
DESCRIPTION kg g/cm3
1023405 1.42 2.76
1023406 1.26 2.76
1023407 0.58 2.66
1023408 1.95 2.83
1023409 2.34 2.78
1023410 1.07 2.85
1023411 2.22 2.82
1023412 1.09 2.73
1023413 0.84 2.63
1023414 1.68 2.78
1023415 0.92 2.80
1023416 1.58 2.71
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1023417 2.05 2.79
1023418 0.93 2.83
1023419 0.58 2.73
1023420 1.78 2.78
1023421 0.51 2.70
1023422 1.13 2.77
1023423 1.03 2.76
1023424 0.71 2.74
1023425 1.38 2.75
1023426 0.63 2.75
1023427 0.56 2.63
1023428 0.55 2.78
1023429 0.58 2.78
1023430 1.17 2.75
1023431 1.08 2.71
1023432 0.56 2.72
1023433 0.82 2.74
1023434 0.57 2.89
Average 2.757
Figure 22. Density measurements on samples from Herbert Gold Project.
Bulk density samples are consistent with what the author expects to see on this project.
Compositing
For compositing and resource purposes, metallic assay data were used whenever they existed. All other data used the 1
assay ton values (1 AT). Composites over the length of the drillholes were calculated to a maximum of 1.5m in order to
provide interval-independent grades over lengths that compromise between grade delineation and dilution.
Treatment of High-grade outliers
2.6
2.65
2.7
2.75
2.8
2.85
2.9
2.95
0 5 10 15 20 25 30 35
gram
sp
er
cc
No. of Samples
Bulk Density of 2012 Samples
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High-grade outliers are defined as ones that appear to deviate markedly from other members of the sample in which it
occurs (Grubbs, F.E., 1969).
A lognormal probability plot of the 1.5m composite data within the vein data shows multiple populations with a very high-
grade population appearing in less than 1.8 % of the population. It is well developed with the exception of a single sample
at 140 gpt that is either overweighted or over reported. Consequently, the author has chosen to cut to 125 gpt, the point
where the data deviates from a log normal distribution.
Both cut and uncut runs were considered, using a top cut of 125 gpt gold (log 2.10). An examination of the resultant block
data distribution showed that the uncut run provided for a substantially more gold as the high-grade holes in the Goat
Vein are all the final holes to the east and therefor carry a disproportionate weight to the other more closely spaced
drillholes. Cutting the assays as supported by the univariate statistics was one method chosen to limit this effect. The
blocks appear to slightly over-estimate the grade of veins compared to both the cut and uncut composites at grades below
0.6 gpt, slightly under-estimate the grades between 1.8 and 5.6 gpt and very slightly under-estimate the grade of the veins
above 16 gpt gold. This was deemed acceptable and realistic.
Figure 23. The uncut composite data (blue) was cut to 125 gpt (green) to estimate the block grades (purple)
Variography
The low number of sample points provides no meaningful results from variography. Covariation plots on the two solids
with the highest number of data points (Main Vein and Deep Trench Vein) reveal results consistent with the data trends.
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Figure 24. Covariance diagram of the composites within the Deep Trench Vein.
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Figure 25. Covariance plot of all composites for the Main Vein shows no covariance.
Block Model Estimate
A series of tabular blocks 1.5 m x 8m x 8m were rotated into the plan of the vein for each of the nine veins.
Only composites whose center lies within the solid were used in the estimation. Sub-blocking was not applied due to the
small size of the blocks relative to the solids model.
Blocks were constrained to surface topography, and by geology. Blocks west of the inclined sedimentary contact on the
western side of the Main Vein and Deep Trench Vein were omitted.
Interpolation Method
The grades of each block were estimated using inverse distance squared methods. It was determined that there was
insufficient data to estimate using variography. Estimation ranges of between 75 and 150m were tested and it was
determined that 100m provided reasonable results. This is consistent with previous estimates.
Estimation Plans
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A single pass search strategy was employed using the maximum supported ellipsoid size. The search ellipsoid was oriented
to each solid to lie within the structure. A minimum of 2 and a maximum of 8 composites were allowed for each block,
with no restrictions on the maximum from each drillhole due to the oblique nature of many of the intercepts.
Goat HWGoat Main
MainFW
MainHW
Deep Trench
DeepTre
nchHW
Deep Trench FW
Obl iq
ue
Figure 26. Oblique view, down to the northeast showing all of the vein solids, with an air photograph draped over topography. Grid is 200mspacing
Validation of the Block Model
A graphical validation was done on the block model where cross sections, plans, and a 3D examination were conducted,
testing intersections, solids and surface boundaries, and geology. Additional models were constructed removing selected
drillholes to test for the robustness of the model. Each block appears to be well represented by the immediately adjoining
composites as would be expected using the ID2 method. An Ordinary Kriged estimate using the same parameters and an
automatically generated default isotropic nugget with an anisotropic variogram was run on the Deep Trench Vein and
Main Vein as tests, providing similar results to ID2.
Longitudinal cross sections and cross section populated with the resource blocks for the Deep Trench Vein are shown
below with 50 m grids (red) and drill hole traces are shown.
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East West
Sediment domain
Figure 27. South facing longitudinal cross section of the Deep Trench Vein with drillhole traces and resource blocks shown on a 20m thick slice.
North South
Sediment domain
Figure 28. East looking cross section of the Deep Trench Vein with drillhole traces and resource blocks shown on a 20m thick slice.
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Longitudinal and cross sections populated with the resource blocks for the Main Vein are shown below with 50 m grids
(red).
East West
Sediment domain
Figure 29. Longitudinal section populated with the resource blocks for the Main Vein are shown with 50 m grids (red).
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North South
Sediment domain
Figure 30. East looking cross section of the Main Vein with drillhole traces and resource blocks shown on a 20m thick slice.
East West
Figure 31. South-facing longitudinal cross section of the Goat Vein with drillhole traces and resource blocks and 50m grid.
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North South
Figure 32. East looking cross section of the Goat Vein with drillhole traces and resource blocks shown on a 20m thick slice.
14.2 Resource Statement
Surface mapping, trenching and diamond drilling demonstrates continuity of mineralization on sections and between
sections and enables three dimensional solids models to be constructed. Further modeling of the diamond drill and trench
information within the solids enables the grade distribution to be estimated. An analysis of the resource blocks in the
Main Vein and Deep Trench Vein reveals that many of the blocks are within 60m of composites, and these form cohesive,
well defined domains. It was decided to classify these blocks as Indicated Mineral Resources and the balance as Inferred
Mineral Resources. The decision to use a 60 m cut off between Indicated and Inferred Mineral Resources is based upon a
break in composite density near this point. All except less than 10% of these resource blocks classified as Indicate Mineral
Resource achieve the maximum number of composites in their estimation. A US$1,300 gold price is assumed to be
reasonable for these estimation purposes.
The resource classification is presented on Error! Reference source not found. and Error! Reference source not found.
(below) at various cut-offs. It is believed that for the location, geometry and grade distribution, it is reasonable to report
the resource at the 2.5 gpt cut-off. All figures use a specific gravity of 2.757, tonnes are rounded to the nearest thousand
and ounces are rounded to the nearest hundred.
Table 8. Indicated Mineral Resource by Cut-off
Cut-off Tonnes Grade Ounces
3.0 gpt 1,431,600 12.33 567,450
2.5 gpt 1,880,500 10.03 606,500
2.0 gpt 2,636,100 7.80 660,930
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Table 9. Inferred Mineral Resource by Cut-off
Cut-off Tonnes Grade Ounces
3.0 gpt 410,771 18.12 239,280
2.5 gpt 553,429 14.15 251,700
2.0 gpt 913,118 9.48 278,240
Table 10. Indicated Mineral Resourced at 2.5 gpt cut-off, by vein
Vein Tonnes Au gpt ounces Au
Goat North 1,300 3.04 130
Goat HW 142,900 8.27 37,990
Goat Vein 435,900 19.82 277,790
Main HW 132,900 2.72 11,620
Main 392,200 7.57 95,430
Main FW 276,800 6.91 61,490
Oblique 14,800 5.36 2,550
Deep Trench HW 91,000 2.64 7,720
Deep Trench 392,500 8.85 111,740
Totals 1,880,500 10.03 606,500
Table 11. Inferred Mineral Resource at 2.5 gpt cut-off, by vein
Vein Tonnes Au gpt ounces Au
Goat North - - -
Goat HW 54,300 9.15 15,960
Goat Vein 325,300 21.03 219,920
Main HW 95,800 2.76 8,500
Main 27,000 3.12 2,710
Main FW - - -
Oblique 2,600 4.36 370
Deep Trench HW 40,800 2.67 3,490
Deep Trench 7,675 3.17 780
Totals 553,400 14.15 251,700
The presumed mining method would be underground shrinkage mining with 1.5m minimum widths or longhole with 2.0m
minimum widths. Similar mines can extract planar steeply dipping veins at US$90 to $120 per tonne and achieve a high
degree of extraction.
As such, at current or near current gold prices US$1,300 per ounce, it is determined that there is a reasonable prospect of
economic extraction under reasonably anticipated at the declared conditions.
In accordance with the Canadian Institute of Mining, Metallurgy and Petroleum (CIM) Standards on Mineral Resource and
Mineral Reserves, adopted by the CIM Council, as amended; the classification of the resource is as an Indicated Mineral
Resource where blocks are within 60m of a composite, and as Inferred Mineral Resource where blocks are >60 m and
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<100m from two composites, (a minimum three composites for the Goat Vein in an effort to reduce the influence of the
2018 very high-grade composites).
Mineral Resources that are not Mineral Reserves do not have demonstrated economic viability. The mineral resource
estimates generally can be affected by environmental, permitting, taxation, socio-economic, marketing, political,
metallurgical, mining and infrastructure issues. These issues are normal for any mine development project and clear paths
exist to deal with each aspect. No specific issues have been identified that are considered to materially affect the
economics of this project.
15 Mineral Reserve Estimates (Item 15)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
16 MINING METHODS (Item 16)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
17 RECOVERY METHODS (Item 17)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
18 PROJECT INFRASTRUCTURE (item 18)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
19 MARKET STUDIES AND CONTRACTS (Item 19)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
20 ENVIRONMENTAL STUDIES, PERMITTING AND SOCIAL OR COMMUNITY IMPACT
(Item 20)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
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21 CAPITAL AND OPERATING COSTS (Item 21)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
22 ECONOMIC ANALYSIS (Item 22)
The Herbert Gold Property is not an advanced property, and this section does not apply to an early stage exploration
project.
23 ADJACENT PROPERTIES (Item 23)
There are five active claim blocks in close proximity to the Herbert Gold Project area. Figure 2 depicts these claims in
yellow with the Herbert Gold Project claims in red. The edge of the closest Isa claim block centered on the Mitchell and
McPherson prospect (Barnett and Miller, 2003 - JU096) located 1100 m to the northwest. The next claim block 5 km to
the northwest includes the Eagle River/Amalga Mine (Barnett and Miller, 2003 - JU094). This currently inactive mine had
a reported 30,000 feet of underground workings and a 20-stamp mill dating from the 1930's. To the south within a 6 km
radius are two other small claim blocks. The shape and orientation of all the claim blocks suggest a strong NW-SE structural
orientation and are consistent with the regional mineralized trend.
24 OTHER RELEVANT DATA AND INFORMATION (Item 24)
The author is not aware of any other data that has material bearing on the Herbert Gold Property.
25 INTERPRETATION AND CONCLUSIONS (Item 25)
The Herbert Gold Project is located in the heart of the historic Juneau Gold District, SE Alaska. Mineralization at the
property consists of mesothermal quartz-carbonate-gold-base metal veining and is typical to that seen throughout the
district. Three principal veins have been named from south to north and are the Deep Trench (and splays including Lake
Vein), Main, and Goat veins. Minor veins include the Oblique (F Vein), Floyd, North, and Ridge. The principal veins strike
N80E and dip steeply to the north. The cumulative strike length of all mapped veins at present is over 3,700 m. Drilling at
the Herbert Gold Project has been used to define an Indicated and Inferred mineral resource along a portion of the Goat,
Main and Trench veins (and associated splays).
The author concludes from observation and work completed to date that the Herbert Gold Project mineralization
conforms to a model of orogenic-mesothermal gold mineralization and that such systems in Alaska have potential to
develop economically recoverable resources. Work to date has made good progress in identifying mineralized continuity
of the Goat, Main and Deep Trench veins along a strike lengths of 530 m, 680 m and 800 m along strike respectively and
down dip extents from surface (mean 50 to 150 m AMSL) down to elevations as deep as -330 m (330 m below sea level).
No geological evidence has been found to limit the down dip extension of these veins.
Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 57
The Goat Vein offers a strong potential for additional resources and four more minor veins are not well tested. Additional
vein exposures recently exposed by the retreating Herbert Glacier north of the Goat Vein as well as other east-west
trending structures identified in the LiDAR survey suggests substantial additional undocumented potential exists.
This resource estimate is strongly influenced by high-grade shoots along the veins which is not atypical for these types of
orogenic gold deposits. The eastern-most fence of composites on the Goat Vein includes the following composites:
Drill/Channel From (m) To (m) Length (m) Grade (Au gpt)
Surface 1 0 1.5 1.5 196.10
Surface 2 0 1.5 1.5 96.08
17L-1 117.1 118.5 1.5 0.73
17L-2 163.5 165.0 1.5 2.72
17L-2 165.0 166.5 1.5 35.93
18M-6 268.5 270.0 1.5 5.88
18M-6 270.0 271.5 1.5 4.88
18M-6 271.5 273.0 1.5 1.03
18M-6 273.0 274.5 1.5 33.91
18M-6 274.5 276.0 1.5 19.55
The resource model is largely dependent on this and other high-grade zones and drill delineation of the downdip
extensions and identification of additional shoots are a priority. The resource remains open in multiple directions along
these defined veins in addition to there being several highly prospective structures spread over the property.
26 RECOMMENDATIONS (Item 26)
26.1 2019 EXPLORATION PROGRAM
An exploration program designed to increase resources is proposed. The total cost of the program is dependent upon on-
going success, and the location of drill platforms, as such a significant contingency cost is included. Specific targets would
be to:
a. Continue with an additional fence of holes to the east of the resource on the Goat and Goat Hanging Wall Vein.
b. Additional step out holes to the west of the Goat and Goat Hanging Wall veins at depth.
c. Follow-up on the 27.8 gpt intercept at 146.3 m downhole in 18M-1.
d. General prospecting and sampling south of the Deep Trench Vein focusing on LiDAR lineaments should be
considered.
e. Prospecting to the north of the Goat Vein should continue to identify additional veins for follow-up, and drillplatforms for those veins can be extended to get deeper cuts on the Goat and potentially Main Vein and theirrespective splays.
f. Metallurgical testing on cores should be considered on an annual basis, looking at gravity recoverable gold aswell as bulk cyanidable (bottle role testing on pulps).
Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 58
g. Additional specific gravity analyses should be completed to increase the database, incorporating wall rock aswell as vein material.
h. Additional baseline studies (water, biology, basic ABA and SWEP testing (or equivalents) should be initiated orfollowed=up on.
Table 12. Proposed budget and work program to continue to expand Herbert Gold Project resources
Item description Cost
Phase One
Drilling Further expansion in 10 to 20 drill holes, plus pad construction $1,500,000
Prospecting Expand north and south of the known mineralization $200,000
Metallurgical Bulk cyanidation, gravity, density $100,000
Environmental ABA, SWEP, water, biology $100,000
Miscellaneous Administration, support, G&A $200,000
Subtotal $2,100,000
Phase Two
Drilling Conditional upon success in Phase One $1,100,000
Contingency $150,000
Subtotal $1,250,000
Total Assuming success in Phase One $3,350,000
The contingency includes immediate follow-up drill capacity to minimize mobilization and set-up costs. These drill holes
would not be drilled if the initial drill holes did not support immediate follow-up.
27 REFERENCES (Item 27)
Barnett, J.C., and Miller, L.D., 2003, ARDF report for the Juneau Quadrangle. USGS Open File Report 03-456, 587 p.
Dupre D.G. and Webb, D.R., 2013. Technical Report on the Herbert Gold Project, Juneau District, Southeast Alaska.
Gehrels, G.E. and Berg, H.C. 1992. Geologic map of Southestern Alaska. USGS Miscellaneous Investigation Series Map 1-
1867. 1:600,000 map sheet and accompanying booklet 24p.
Gehrels, G.E. and Berg, H.C. 1994, Geology of southeastern Alaska, in: Plafker, G. and Berg, H.C. eds. The Geology of Alaska,
Geological Society of America, The Geology of North America, v. G-1.
Groves, D. I., Goldfarb, R. J., Robert, F., Hart, C. J. R., 2003, Gold Deposits in Metamorphic Belts: Overview of Current
Understanding, Outstanding Problems, Future Research, and Exploration Significance. Economic Geology 98: 1-29.
Goldfarb, R.J., Miller, L.D., Leach, D.L., and Snee, L.W, 1997, Gold deposits in metamorphic rocks in Alaska, in Goldfarb,
R.J., and Miller, L.D., eds., Mineral Deposits of Alaska: Economic Geology Monograph 9:151-190.
Technical Report on the Herbert Gold Property June 2019
Grande Portage Resources Ltd. Page 59
G & T Metallurgical Services, Ltd., 2011. Metallurgical testing report on the Herbert Glacier Project, dated March 15, 2011.
Internal report, 49 p.
Hawley Resource Group, 2007 to 2011. Digital data files of sampling and assay results, aerial photography and geologic
mapping at 1:2200 at Herbert Glacier Project.
Light, T.D., Brew, D.A., and Ashley, R.P., 1989, Gold deposits in metamorphic rocks. USGS Bulletin 1857D 27- 36.
Moerlein, G.A., 1986, Preliminary summary report Herbert Glacier, Juneau, Alaska. Internal report, 17 p.
Moerlein, G.A., 1988, 1988 diamond drilling, Herbert Vein - Juneau, Alaska. Internal report, 38 p.
Redman, E.C., Maas, K.M., Kurtak, J.M., and Miller, L.D., 1989, Bureau of Mines Mineral Investigations in the Juneau Mining
District, Alaska, 1984-1988, Volume 2--Detailed mine, prospect, and mineral occurrence descriptions, Section D, Juneau
Gold Belt Subarea: U.S. Bureau of Mines Special Publication, 424 p.
Technical Report on the Herbert Gold Property June 2019
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APPENDIX I
Glossary of Terms and Abbreviations
Glossary of Technical Terms
Adit – common mining term for a horizontal to sub–horizontal tunnel driven into a hillside to access an ore body.
Agglomerate – a volcanic rock consisting of fragments of pyroclastic rocks more than 2 cm in size.
Alkaline – a term applied to igneous rocks which are characterised by relatively high concentrations of sodium and
potassium.
Alluvial – deposits of sediment, usually sand and gravel transported and deposited by a river.
Argillaceous rocks – a group of detrital, fine grained, sedimentary rocks subdivided into silt grade (particle size range 1/16
to 1/256 mm) and clay grade (particle size < 1/256 mm).
Arsenide – a mineral formed by the combination of arsenic with another chemical
Barite – a white, yellow or colourless mineral, BaSO4. The principal ore of barium used in paints, drilling muds and as filler
for paper and textiles. Syn: baryte, barytes.
Basic – describes an igneous rock with relatively low silica content (between 45–52% SiO2). Basic rocks are relatively rich
in iron, magnesium and calcium and thus include most mafic rocks.
Beneficiation – the process of concentration of the valuable components of an ore or other mineral commodity.
Commonly includes multiple stages such as crushing, grinding, washing, screening, flotation, roasting, etc.
Breccia – a rock that has been mechanically, hydraulically or pneumatically broken into angular fragments and re–
cemented
Bulk Leach Extractable Gold - more commonly shortened to BLEG is a geochemical sampling/analysis tool used during
exploration for gold. It was developed in the early 1980s to address concerns relating to the accurately measuring fine
grained gold, and dealing with problems associated with sample heterogeneity.
Calcite – a very common rock forming mineral comprising calcium, carbon and oxygen (CaCO3).
Cenozoic Era – period of geological time extending from 65 million years ago to the present.
Chert – sedimentary rock that is ultra–fine grained and composed almost entirely of silica. May be of organic or inorganic
origin.
Core strategy: sets out the long-term spatial vision for the local planning authority area, the spatial objectives and strategic
policies to deliver that vision. The core strategy will have the status of a development plan document.
Cretaceous – period of geological time from 142 to 65.5 million years ago. Marks the end of the Mesozoic Era.
Devonian – period of geological time from 417 to 354 million years ago.
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Electrolytic – the process of extracting metal based on passing an electric current through a solution containing dissolved
metals, causing the metals to be deposited on the cathode.
Extrusive – describes igneous rocks that have been formed by solidification of magma on or above the Earth's surface.
Felsic – In modern usage, the term felsic rock, although sometimes used as a synonym, refers to a high-silica-content
(greater than 63% SiO2 by weight) volcanic rock, such as rhyolite. In order to be classified as felsic, it generally needs to
contain >75% felsic minerals; namely quartz, orthoclase and plagioclase. Rocks with greater than 90% felsic minerals can
also be called leucocratic, meaning 'light-colored'.
Footwall – the name given to the host rock of an ore deposit that is physically below the ore deposit.
Gangue – the undesirable or unwanted minerals in an ore deposit.
Graben - An elongated block of the earth's crust lying between two faults and displaced downward relative to the blocks
on either side, as in a rift valley.
Hangingwall – the name given to the host rock of an ore deposit that is physically above the ore deposit.
Highwall mining – mining method used to maximize the output of an open–pit coal mine. Remotely operated cutting or
boring machines are used to penetrate the coal seam at the foot of the highwall (the final wall in an open–pit) to extract
coal.
Hydrometallurgy – the treatment of ores by wet processes, resulting in the dissolution of a particular component and its
subsequent recovery by precipitation, adsorption or electrolysis.
Igneous – one of the three main groups of rocks on Earth. They have a crystalline texture and appear to have consolidated
from a silicate melt (magma).
Inductively coupled plasma mass spectrometry (ICP-MS) -- a type of mass spectrometry that is highly sensitive and capable
of the determination of a range of metals and several non-metals at concentrations below one part in 1012 (part per
trillion). It is based on coupling together an inductively coupled plasma as a method of producing ions (ionization) with a
mass spectrometer as a method of separating and detecting the ions. ICP-MS is also capable of monitoring isotopic
speciation for the ions of choice.
Intrusion – a body of igneous rock emplaced into pre–existing rocks, either along some structural feature such as a fault
or by deformation and rupturing of the invaded rocks. (Intrusive, adj).
Jurassic – period of geological time from 205.1–142 million years ago.
Kaolin – group of pale coloured clay minerals. In the UK kaolin is an industrial mineral extracted from kaolinised granites
in south–west England. It is used as a paper filler and coater, and for high grade ceramics and pottery (china clay). .
Lenticular – lens shaped body of rock.
Lode – mining term for a mineralized vein (used irrespective of whether the vein can be economically extracted).
Mesozoic Era – period of geological time from 250 to 65.5 million years ago.Subdivided into the Triassic, Jurassic and
Cretaceous periods.
Miocene – period of geological time from 23.8 to 5.32 million years ago.
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Mudstone – fine grained sedimentary rocks that are similar to shales in their non–plasticity, cohesion and low water
content but lack fissility.
Neogene – part of the Cenozoic Era, comprising the Miocene and Pliocene epochs from 23.8 to 1.81 million years ago.
Oligocene – period of geological time from 28.5 to 23.8 million years ago.
Ordovician – period of geological time from 495 to 440 million years ago.
Paleogene – part of the Cenozoic Era comprising the Paleocene, Eocene and Oligocene epochs, from 65.5 to 23.8 million
years ago.
Paleozoic Era – period of geological time from 545 to 245 million years ago.Subdivided into the Cambrian, Ordovician,
Silurian, Devonian, Carboniferous and Permian Periods.
Permian – period of geological time from 280 to 255 million years ago marks the end of the Paleozoic Era. Globally
important source of coal.
Pliocene – period of geological time from 5.3 to 1.81 million years ago.
Precambrian - an informal name for the span of time before the current Phanerozoic Eon, and is divided into several eons
of the geologic time scale. It spans from the formation of Earth around 4600 Ma (million years ago) to the beginning of
the Cambrian Period, about 542 Ma, when macroscopic hard-shelled animals first appeared in abundance. Accounts for
90% of all geological time and ends approximately 545 million years ago.
Proterozoic - a geological eon representing a period before the first abundant complex life on Earth. The Proterozoic Eon
extended from 2500 Ma to 542.0 ± 1.0 Ma (million years ago), and is the most recent part of the old, informally named
‘Precambrian’ time.
Pyroclastic – fragmental volcanic material that has been blown into the atmosphere by an explosive eruption.
Pyrometallurgical – the treatment of ores by processes involving heating.
Quarrying (mining) – the extraction of rock from an open pit site.
Quaternary – the uppermost part of the Cenozoic Era from 1.81 million years ago to present day.
Refractory – a general term for a material that resists chemical or physical change.
Refractory ore – ore from which it is difficult to extract the valuable constituents. This material may require special
treatments, such as pressure leaching, to recover the valuable minerals.
Sedimentary rocks – rocks formed from material derived from other rocks by weathering. Deposited by water, wind or
ice.
Silurian – period of geological time from 440 to 417 million years ago.
Stope – mining term for the underground void left after ore extraction has taken place.
Stratabound – an ore deposit that is confined to a single stratigraphic bed or horizon but which does not constitute the
entire bed.
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Stratiform – an ore deposit that occurs as a specific stratigraphic (i.e. sedimentary) bed.
Sulphide – a mineral formed by the combination of sulphur with another chemical element. Most economic deposits of
non–ferrous metals occur as sulphide minerals e.g. galena, PbS; sphalerite, ZnS; chalcopyrite, CuFeS2.
Triassic – period of geological time from 250 to 205.1 million years ago. This period marks the beginning of the Mesozoic
Era.
Tuff -- (from the Italian tufo) is a type of rock consisting of consolidated volcanic ash ejected from vents during a volcanic
eruption.
Tuff Breccia and Volcanic Agglomerate - as distinguished from the true ashes, these tend to occur in angular fragments;
and when they form a large part of the mass the rock is more properly a "volcanic breccia" than a tuff. The ashes vary in
size from large blocks ten meters or more in diameter to the minutest impalpable dust. Any ash in which large angular
blocks are very abundant is called an agglomerate.
Ultrabasic – describes an igneous rock containing less than 45% silica (SiO2), including most ultramafic rocks.
Ultramafic – composed chiefly of ferromagnesian (Fe–Mg) minerals, such as olivine and pyroxene.
Vein – A tabular or sheet–like assemblage of minerals that has been intruded into a joint or fissure in rocks.
Volcanogenic massive sulphide, VMS – an ore deposit typically comprising a lens of massive sulphide minerals (>60%
sulphide) formed by volcanic processes normally on the sea–floor. VMS deposits are important sources of copper, lead
and zinc.
Wallrock – an economic geology term used to describe the rock adjacent to an accumulation of ore minerals (veins, layers,
disseminations, etc.).
Workings – the current or past underground or surface openings and tunnels of a mine. More specifically, the area where
the ore has been extracted.
Zoning – in economic geology, the spatial distribution of distinct mineral assemblages or chemical elements associated
with an ore–forming process.
Abbreviations
Unless otherwise indicated, the metric system of measure has been used throughout this report, including metric tons
(tonnes, t), kilograms (kg) or grams (g) for weight, kilometers (km) or metres (m) for distance, hectares (ha) for area, liters
(L) for volume and grams per tonne for gold (g/t Au) and silver (g/t Ag) grades. Base metal grades are usually expressed
in weight percent (%). Geochemical results or precious metal grades may be expressed in parts per million (ppm) or parts
per billion (ppb) (1 ppm = 1 g/t). Precious metal quantities may also be reported in troy ounces (ounces, oz), a common
practice in the mining industry. In the Imperial System, significant gold concentrations are reported as troy ounces per
short ton. In the metric system, gold concentration is now reported in grams per metric tonne. One troy ounce per short
ton= 34.2857 grams per metric tonne. Currency values are in Canadian dollars ($CDN).
Technical Report on the Herbert Gold Property June 2019
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Description Abbreviation Description Abbreviation
Atomic absorption AA Millions of years ago Ma
Acme Analytical Laboratories Acme Inductively coupled plasma mass
spectrometry
ICPAR-UT
Banded Iron Formation BIF Kilometre(s) km
Bulk Leach Extractable Gold BLEG Lead Pb
Canadian Dollars $CDN Methyl isobutyl ketone MIBK
Canadian National Instrument 43-101 NI 43-101 Ounce(s)/Troy ounce(s) oz
Centimetre(s) Cm Ounce per ton Oz/t
Gainey Capital Corp. GCC Parts per billion ppb
Degree(s) 0 Parts per million ppm
Degrees Centigrade/Celsius 0c Percent %
Foot/feet ft. Qualified Person(s) QP(s)
Fire Assay FA Quality Assurance/Quality Control QA/QC
Geological Survey of Canada GSC Reduced Level RL
Gold Au Rock quality designation RQD
Gram(s) g Silver Ag
Gram-metres per tonne, metres x
grams per tonne
g/t Specific gravity SG
Grams per tonne g/t Square kilometers km2
Micron(s) µ Three-dimensional 3D
Metre(s) m Tonnes per cubic metre t/m3
Metres above sea level masl Two-dimensional 2D
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SA
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Pro
ject
:H
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Gold
The
follow
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sh
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,V
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****
*See
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02
21
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84
021
8
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an
dap
pro
ved
for
rele
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Sig
natu
re:
Co
lin
Ram
sh
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,V
anco
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Lab
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Manager
****
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Pag
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Recvd
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Pag
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Accou
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Page:
1T
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pp
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Date
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OV
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Accou
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Sig
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Ap
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dix
Page
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*
Pag
e:2
-A
Tota
l#
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es:3
(A-
C)
Plu
sA
pp
end
ixPag
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Fin
ali
zed
Date
:10
-N
OV
-2
018
Accou
nt:
PO
RC
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ALS
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Recvd
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****
*See
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ixPag
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rcom
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gard
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this
cert
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****
*
Pag
e:2
-B
Tota
l#
Pag
es:3
(A-
C)
Plu
sA
pp
end
ixPag
es
Fin
ali
zed
Date
:10
-N
OV
-2
018
Accou
nt:
PO
RC
ES
ALS
Can
ad
aLtd
.
210
3D
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on
Hw
yN
ort
hV
ancou
ver
BC
V7H
0A
7Phone:+
1(6
04)
984
02
21
Fax:
+1
(604
)9
84
021
8
ww
w.a
lsg
lob
al.com
/geoch
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GR
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PO
RT
AG
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LT
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SU
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50
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bm
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SA
on
10-SEP-2018.
Pro
ject
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Gold
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1T
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Date
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CT
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984
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21
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021
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w.a
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an
dap
pro
ved
for
rele
ase.
Sig
natu
re:
Co
lin
Ram
sh
aw
,V
anco
uver
Lab
ora
tory
Manager
****
*See
Ap
pen
dix
Page
for
co
mm
en
tsre
gard
ing
this
cert
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ate
****
*
Pag
e:2
-A
Tota
l#
Pag
es:2
(A-
C)
Plu
sA
pp
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CT
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02
21
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021
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Recvd
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Pag
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To: P
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Herb
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18
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ple
Descri
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*
Page:A
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Ap
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Pag
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Fin
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****
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Plu
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Date
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anco
uver
Lab
ora
tory
Manager
****
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8
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Page:A
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(604
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84
021
8
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